1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Performance events core code: 4 * 5 * Copyright (C) 2008 Thomas Gleixner <tglx@linutronix.de> 6 * Copyright (C) 2008-2011 Red Hat, Inc., Ingo Molnar 7 * Copyright (C) 2008-2011 Red Hat, Inc., Peter Zijlstra 8 * Copyright © 2009 Paul Mackerras, IBM Corp. <paulus@au1.ibm.com> 9 */ 10 11 #include <linux/fs.h> 12 #include <linux/mm.h> 13 #include <linux/cpu.h> 14 #include <linux/smp.h> 15 #include <linux/idr.h> 16 #include <linux/file.h> 17 #include <linux/poll.h> 18 #include <linux/slab.h> 19 #include <linux/hash.h> 20 #include <linux/tick.h> 21 #include <linux/sysfs.h> 22 #include <linux/dcache.h> 23 #include <linux/percpu.h> 24 #include <linux/ptrace.h> 25 #include <linux/reboot.h> 26 #include <linux/vmstat.h> 27 #include <linux/device.h> 28 #include <linux/export.h> 29 #include <linux/vmalloc.h> 30 #include <linux/hardirq.h> 31 #include <linux/rculist.h> 32 #include <linux/uaccess.h> 33 #include <linux/syscalls.h> 34 #include <linux/anon_inodes.h> 35 #include <linux/kernel_stat.h> 36 #include <linux/cgroup.h> 37 #include <linux/perf_event.h> 38 #include <linux/trace_events.h> 39 #include <linux/hw_breakpoint.h> 40 #include <linux/mm_types.h> 41 #include <linux/module.h> 42 #include <linux/mman.h> 43 #include <linux/compat.h> 44 #include <linux/bpf.h> 45 #include <linux/filter.h> 46 #include <linux/namei.h> 47 #include <linux/parser.h> 48 #include <linux/sched/clock.h> 49 #include <linux/sched/mm.h> 50 #include <linux/proc_ns.h> 51 #include <linux/mount.h> 52 53 #include "internal.h" 54 55 #include <asm/irq_regs.h> 56 57 typedef int (*remote_function_f)(void *); 58 59 struct remote_function_call { 60 struct task_struct *p; 61 remote_function_f func; 62 void *info; 63 int ret; 64 }; 65 66 static void remote_function(void *data) 67 { 68 struct remote_function_call *tfc = data; 69 struct task_struct *p = tfc->p; 70 71 if (p) { 72 /* -EAGAIN */ 73 if (task_cpu(p) != smp_processor_id()) 74 return; 75 76 /* 77 * Now that we're on right CPU with IRQs disabled, we can test 78 * if we hit the right task without races. 79 */ 80 81 tfc->ret = -ESRCH; /* No such (running) process */ 82 if (p != current) 83 return; 84 } 85 86 tfc->ret = tfc->func(tfc->info); 87 } 88 89 /** 90 * task_function_call - call a function on the cpu on which a task runs 91 * @p: the task to evaluate 92 * @func: the function to be called 93 * @info: the function call argument 94 * 95 * Calls the function @func when the task is currently running. This might 96 * be on the current CPU, which just calls the function directly 97 * 98 * returns: @func return value, or 99 * -ESRCH - when the process isn't running 100 * -EAGAIN - when the process moved away 101 */ 102 static int 103 task_function_call(struct task_struct *p, remote_function_f func, void *info) 104 { 105 struct remote_function_call data = { 106 .p = p, 107 .func = func, 108 .info = info, 109 .ret = -EAGAIN, 110 }; 111 int ret; 112 113 do { 114 ret = smp_call_function_single(task_cpu(p), remote_function, &data, 1); 115 if (!ret) 116 ret = data.ret; 117 } while (ret == -EAGAIN); 118 119 return ret; 120 } 121 122 /** 123 * cpu_function_call - call a function on the cpu 124 * @func: the function to be called 125 * @info: the function call argument 126 * 127 * Calls the function @func on the remote cpu. 128 * 129 * returns: @func return value or -ENXIO when the cpu is offline 130 */ 131 static int cpu_function_call(int cpu, remote_function_f func, void *info) 132 { 133 struct remote_function_call data = { 134 .p = NULL, 135 .func = func, 136 .info = info, 137 .ret = -ENXIO, /* No such CPU */ 138 }; 139 140 smp_call_function_single(cpu, remote_function, &data, 1); 141 142 return data.ret; 143 } 144 145 static inline struct perf_cpu_context * 146 __get_cpu_context(struct perf_event_context *ctx) 147 { 148 return this_cpu_ptr(ctx->pmu->pmu_cpu_context); 149 } 150 151 static void perf_ctx_lock(struct perf_cpu_context *cpuctx, 152 struct perf_event_context *ctx) 153 { 154 raw_spin_lock(&cpuctx->ctx.lock); 155 if (ctx) 156 raw_spin_lock(&ctx->lock); 157 } 158 159 static void perf_ctx_unlock(struct perf_cpu_context *cpuctx, 160 struct perf_event_context *ctx) 161 { 162 if (ctx) 163 raw_spin_unlock(&ctx->lock); 164 raw_spin_unlock(&cpuctx->ctx.lock); 165 } 166 167 #define TASK_TOMBSTONE ((void *)-1L) 168 169 static bool is_kernel_event(struct perf_event *event) 170 { 171 return READ_ONCE(event->owner) == TASK_TOMBSTONE; 172 } 173 174 /* 175 * On task ctx scheduling... 176 * 177 * When !ctx->nr_events a task context will not be scheduled. This means 178 * we can disable the scheduler hooks (for performance) without leaving 179 * pending task ctx state. 180 * 181 * This however results in two special cases: 182 * 183 * - removing the last event from a task ctx; this is relatively straight 184 * forward and is done in __perf_remove_from_context. 185 * 186 * - adding the first event to a task ctx; this is tricky because we cannot 187 * rely on ctx->is_active and therefore cannot use event_function_call(). 188 * See perf_install_in_context(). 189 * 190 * If ctx->nr_events, then ctx->is_active and cpuctx->task_ctx are set. 191 */ 192 193 typedef void (*event_f)(struct perf_event *, struct perf_cpu_context *, 194 struct perf_event_context *, void *); 195 196 struct event_function_struct { 197 struct perf_event *event; 198 event_f func; 199 void *data; 200 }; 201 202 static int event_function(void *info) 203 { 204 struct event_function_struct *efs = info; 205 struct perf_event *event = efs->event; 206 struct perf_event_context *ctx = event->ctx; 207 struct perf_cpu_context *cpuctx = __get_cpu_context(ctx); 208 struct perf_event_context *task_ctx = cpuctx->task_ctx; 209 int ret = 0; 210 211 lockdep_assert_irqs_disabled(); 212 213 perf_ctx_lock(cpuctx, task_ctx); 214 /* 215 * Since we do the IPI call without holding ctx->lock things can have 216 * changed, double check we hit the task we set out to hit. 217 */ 218 if (ctx->task) { 219 if (ctx->task != current) { 220 ret = -ESRCH; 221 goto unlock; 222 } 223 224 /* 225 * We only use event_function_call() on established contexts, 226 * and event_function() is only ever called when active (or 227 * rather, we'll have bailed in task_function_call() or the 228 * above ctx->task != current test), therefore we must have 229 * ctx->is_active here. 230 */ 231 WARN_ON_ONCE(!ctx->is_active); 232 /* 233 * And since we have ctx->is_active, cpuctx->task_ctx must 234 * match. 235 */ 236 WARN_ON_ONCE(task_ctx != ctx); 237 } else { 238 WARN_ON_ONCE(&cpuctx->ctx != ctx); 239 } 240 241 efs->func(event, cpuctx, ctx, efs->data); 242 unlock: 243 perf_ctx_unlock(cpuctx, task_ctx); 244 245 return ret; 246 } 247 248 static void event_function_call(struct perf_event *event, event_f func, void *data) 249 { 250 struct perf_event_context *ctx = event->ctx; 251 struct task_struct *task = READ_ONCE(ctx->task); /* verified in event_function */ 252 struct event_function_struct efs = { 253 .event = event, 254 .func = func, 255 .data = data, 256 }; 257 258 if (!event->parent) { 259 /* 260 * If this is a !child event, we must hold ctx::mutex to 261 * stabilize the the event->ctx relation. See 262 * perf_event_ctx_lock(). 263 */ 264 lockdep_assert_held(&ctx->mutex); 265 } 266 267 if (!task) { 268 cpu_function_call(event->cpu, event_function, &efs); 269 return; 270 } 271 272 if (task == TASK_TOMBSTONE) 273 return; 274 275 again: 276 if (!task_function_call(task, event_function, &efs)) 277 return; 278 279 raw_spin_lock_irq(&ctx->lock); 280 /* 281 * Reload the task pointer, it might have been changed by 282 * a concurrent perf_event_context_sched_out(). 283 */ 284 task = ctx->task; 285 if (task == TASK_TOMBSTONE) { 286 raw_spin_unlock_irq(&ctx->lock); 287 return; 288 } 289 if (ctx->is_active) { 290 raw_spin_unlock_irq(&ctx->lock); 291 goto again; 292 } 293 func(event, NULL, ctx, data); 294 raw_spin_unlock_irq(&ctx->lock); 295 } 296 297 /* 298 * Similar to event_function_call() + event_function(), but hard assumes IRQs 299 * are already disabled and we're on the right CPU. 300 */ 301 static void event_function_local(struct perf_event *event, event_f func, void *data) 302 { 303 struct perf_event_context *ctx = event->ctx; 304 struct perf_cpu_context *cpuctx = __get_cpu_context(ctx); 305 struct task_struct *task = READ_ONCE(ctx->task); 306 struct perf_event_context *task_ctx = NULL; 307 308 lockdep_assert_irqs_disabled(); 309 310 if (task) { 311 if (task == TASK_TOMBSTONE) 312 return; 313 314 task_ctx = ctx; 315 } 316 317 perf_ctx_lock(cpuctx, task_ctx); 318 319 task = ctx->task; 320 if (task == TASK_TOMBSTONE) 321 goto unlock; 322 323 if (task) { 324 /* 325 * We must be either inactive or active and the right task, 326 * otherwise we're screwed, since we cannot IPI to somewhere 327 * else. 328 */ 329 if (ctx->is_active) { 330 if (WARN_ON_ONCE(task != current)) 331 goto unlock; 332 333 if (WARN_ON_ONCE(cpuctx->task_ctx != ctx)) 334 goto unlock; 335 } 336 } else { 337 WARN_ON_ONCE(&cpuctx->ctx != ctx); 338 } 339 340 func(event, cpuctx, ctx, data); 341 unlock: 342 perf_ctx_unlock(cpuctx, task_ctx); 343 } 344 345 #define PERF_FLAG_ALL (PERF_FLAG_FD_NO_GROUP |\ 346 PERF_FLAG_FD_OUTPUT |\ 347 PERF_FLAG_PID_CGROUP |\ 348 PERF_FLAG_FD_CLOEXEC) 349 350 /* 351 * branch priv levels that need permission checks 352 */ 353 #define PERF_SAMPLE_BRANCH_PERM_PLM \ 354 (PERF_SAMPLE_BRANCH_KERNEL |\ 355 PERF_SAMPLE_BRANCH_HV) 356 357 enum event_type_t { 358 EVENT_FLEXIBLE = 0x1, 359 EVENT_PINNED = 0x2, 360 EVENT_TIME = 0x4, 361 /* see ctx_resched() for details */ 362 EVENT_CPU = 0x8, 363 EVENT_ALL = EVENT_FLEXIBLE | EVENT_PINNED, 364 }; 365 366 /* 367 * perf_sched_events : >0 events exist 368 * perf_cgroup_events: >0 per-cpu cgroup events exist on this cpu 369 */ 370 371 static void perf_sched_delayed(struct work_struct *work); 372 DEFINE_STATIC_KEY_FALSE(perf_sched_events); 373 static DECLARE_DELAYED_WORK(perf_sched_work, perf_sched_delayed); 374 static DEFINE_MUTEX(perf_sched_mutex); 375 static atomic_t perf_sched_count; 376 377 static DEFINE_PER_CPU(atomic_t, perf_cgroup_events); 378 static DEFINE_PER_CPU(int, perf_sched_cb_usages); 379 static DEFINE_PER_CPU(struct pmu_event_list, pmu_sb_events); 380 381 static atomic_t nr_mmap_events __read_mostly; 382 static atomic_t nr_comm_events __read_mostly; 383 static atomic_t nr_namespaces_events __read_mostly; 384 static atomic_t nr_task_events __read_mostly; 385 static atomic_t nr_freq_events __read_mostly; 386 static atomic_t nr_switch_events __read_mostly; 387 static atomic_t nr_ksymbol_events __read_mostly; 388 static atomic_t nr_bpf_events __read_mostly; 389 390 static LIST_HEAD(pmus); 391 static DEFINE_MUTEX(pmus_lock); 392 static struct srcu_struct pmus_srcu; 393 static cpumask_var_t perf_online_mask; 394 395 /* 396 * perf event paranoia level: 397 * -1 - not paranoid at all 398 * 0 - disallow raw tracepoint access for unpriv 399 * 1 - disallow cpu events for unpriv 400 * 2 - disallow kernel profiling for unpriv 401 */ 402 int sysctl_perf_event_paranoid __read_mostly = 2; 403 404 /* Minimum for 512 kiB + 1 user control page */ 405 int sysctl_perf_event_mlock __read_mostly = 512 + (PAGE_SIZE / 1024); /* 'free' kiB per user */ 406 407 /* 408 * max perf event sample rate 409 */ 410 #define DEFAULT_MAX_SAMPLE_RATE 100000 411 #define DEFAULT_SAMPLE_PERIOD_NS (NSEC_PER_SEC / DEFAULT_MAX_SAMPLE_RATE) 412 #define DEFAULT_CPU_TIME_MAX_PERCENT 25 413 414 int sysctl_perf_event_sample_rate __read_mostly = DEFAULT_MAX_SAMPLE_RATE; 415 416 static int max_samples_per_tick __read_mostly = DIV_ROUND_UP(DEFAULT_MAX_SAMPLE_RATE, HZ); 417 static int perf_sample_period_ns __read_mostly = DEFAULT_SAMPLE_PERIOD_NS; 418 419 static int perf_sample_allowed_ns __read_mostly = 420 DEFAULT_SAMPLE_PERIOD_NS * DEFAULT_CPU_TIME_MAX_PERCENT / 100; 421 422 static void update_perf_cpu_limits(void) 423 { 424 u64 tmp = perf_sample_period_ns; 425 426 tmp *= sysctl_perf_cpu_time_max_percent; 427 tmp = div_u64(tmp, 100); 428 if (!tmp) 429 tmp = 1; 430 431 WRITE_ONCE(perf_sample_allowed_ns, tmp); 432 } 433 434 static bool perf_rotate_context(struct perf_cpu_context *cpuctx); 435 436 int perf_proc_update_handler(struct ctl_table *table, int write, 437 void __user *buffer, size_t *lenp, 438 loff_t *ppos) 439 { 440 int ret; 441 int perf_cpu = sysctl_perf_cpu_time_max_percent; 442 /* 443 * If throttling is disabled don't allow the write: 444 */ 445 if (write && (perf_cpu == 100 || perf_cpu == 0)) 446 return -EINVAL; 447 448 ret = proc_dointvec_minmax(table, write, buffer, lenp, ppos); 449 if (ret || !write) 450 return ret; 451 452 max_samples_per_tick = DIV_ROUND_UP(sysctl_perf_event_sample_rate, HZ); 453 perf_sample_period_ns = NSEC_PER_SEC / sysctl_perf_event_sample_rate; 454 update_perf_cpu_limits(); 455 456 return 0; 457 } 458 459 int sysctl_perf_cpu_time_max_percent __read_mostly = DEFAULT_CPU_TIME_MAX_PERCENT; 460 461 int perf_cpu_time_max_percent_handler(struct ctl_table *table, int write, 462 void __user *buffer, size_t *lenp, 463 loff_t *ppos) 464 { 465 int ret = proc_dointvec_minmax(table, write, buffer, lenp, ppos); 466 467 if (ret || !write) 468 return ret; 469 470 if (sysctl_perf_cpu_time_max_percent == 100 || 471 sysctl_perf_cpu_time_max_percent == 0) { 472 printk(KERN_WARNING 473 "perf: Dynamic interrupt throttling disabled, can hang your system!\n"); 474 WRITE_ONCE(perf_sample_allowed_ns, 0); 475 } else { 476 update_perf_cpu_limits(); 477 } 478 479 return 0; 480 } 481 482 /* 483 * perf samples are done in some very critical code paths (NMIs). 484 * If they take too much CPU time, the system can lock up and not 485 * get any real work done. This will drop the sample rate when 486 * we detect that events are taking too long. 487 */ 488 #define NR_ACCUMULATED_SAMPLES 128 489 static DEFINE_PER_CPU(u64, running_sample_length); 490 491 static u64 __report_avg; 492 static u64 __report_allowed; 493 494 static void perf_duration_warn(struct irq_work *w) 495 { 496 printk_ratelimited(KERN_INFO 497 "perf: interrupt took too long (%lld > %lld), lowering " 498 "kernel.perf_event_max_sample_rate to %d\n", 499 __report_avg, __report_allowed, 500 sysctl_perf_event_sample_rate); 501 } 502 503 static DEFINE_IRQ_WORK(perf_duration_work, perf_duration_warn); 504 505 void perf_sample_event_took(u64 sample_len_ns) 506 { 507 u64 max_len = READ_ONCE(perf_sample_allowed_ns); 508 u64 running_len; 509 u64 avg_len; 510 u32 max; 511 512 if (max_len == 0) 513 return; 514 515 /* Decay the counter by 1 average sample. */ 516 running_len = __this_cpu_read(running_sample_length); 517 running_len -= running_len/NR_ACCUMULATED_SAMPLES; 518 running_len += sample_len_ns; 519 __this_cpu_write(running_sample_length, running_len); 520 521 /* 522 * Note: this will be biased artifically low until we have 523 * seen NR_ACCUMULATED_SAMPLES. Doing it this way keeps us 524 * from having to maintain a count. 525 */ 526 avg_len = running_len/NR_ACCUMULATED_SAMPLES; 527 if (avg_len <= max_len) 528 return; 529 530 __report_avg = avg_len; 531 __report_allowed = max_len; 532 533 /* 534 * Compute a throttle threshold 25% below the current duration. 535 */ 536 avg_len += avg_len / 4; 537 max = (TICK_NSEC / 100) * sysctl_perf_cpu_time_max_percent; 538 if (avg_len < max) 539 max /= (u32)avg_len; 540 else 541 max = 1; 542 543 WRITE_ONCE(perf_sample_allowed_ns, avg_len); 544 WRITE_ONCE(max_samples_per_tick, max); 545 546 sysctl_perf_event_sample_rate = max * HZ; 547 perf_sample_period_ns = NSEC_PER_SEC / sysctl_perf_event_sample_rate; 548 549 if (!irq_work_queue(&perf_duration_work)) { 550 early_printk("perf: interrupt took too long (%lld > %lld), lowering " 551 "kernel.perf_event_max_sample_rate to %d\n", 552 __report_avg, __report_allowed, 553 sysctl_perf_event_sample_rate); 554 } 555 } 556 557 static atomic64_t perf_event_id; 558 559 static void cpu_ctx_sched_out(struct perf_cpu_context *cpuctx, 560 enum event_type_t event_type); 561 562 static void cpu_ctx_sched_in(struct perf_cpu_context *cpuctx, 563 enum event_type_t event_type, 564 struct task_struct *task); 565 566 static void update_context_time(struct perf_event_context *ctx); 567 static u64 perf_event_time(struct perf_event *event); 568 569 void __weak perf_event_print_debug(void) { } 570 571 extern __weak const char *perf_pmu_name(void) 572 { 573 return "pmu"; 574 } 575 576 static inline u64 perf_clock(void) 577 { 578 return local_clock(); 579 } 580 581 static inline u64 perf_event_clock(struct perf_event *event) 582 { 583 return event->clock(); 584 } 585 586 /* 587 * State based event timekeeping... 588 * 589 * The basic idea is to use event->state to determine which (if any) time 590 * fields to increment with the current delta. This means we only need to 591 * update timestamps when we change state or when they are explicitly requested 592 * (read). 593 * 594 * Event groups make things a little more complicated, but not terribly so. The 595 * rules for a group are that if the group leader is OFF the entire group is 596 * OFF, irrespecive of what the group member states are. This results in 597 * __perf_effective_state(). 598 * 599 * A futher ramification is that when a group leader flips between OFF and 600 * !OFF, we need to update all group member times. 601 * 602 * 603 * NOTE: perf_event_time() is based on the (cgroup) context time, and thus we 604 * need to make sure the relevant context time is updated before we try and 605 * update our timestamps. 606 */ 607 608 static __always_inline enum perf_event_state 609 __perf_effective_state(struct perf_event *event) 610 { 611 struct perf_event *leader = event->group_leader; 612 613 if (leader->state <= PERF_EVENT_STATE_OFF) 614 return leader->state; 615 616 return event->state; 617 } 618 619 static __always_inline void 620 __perf_update_times(struct perf_event *event, u64 now, u64 *enabled, u64 *running) 621 { 622 enum perf_event_state state = __perf_effective_state(event); 623 u64 delta = now - event->tstamp; 624 625 *enabled = event->total_time_enabled; 626 if (state >= PERF_EVENT_STATE_INACTIVE) 627 *enabled += delta; 628 629 *running = event->total_time_running; 630 if (state >= PERF_EVENT_STATE_ACTIVE) 631 *running += delta; 632 } 633 634 static void perf_event_update_time(struct perf_event *event) 635 { 636 u64 now = perf_event_time(event); 637 638 __perf_update_times(event, now, &event->total_time_enabled, 639 &event->total_time_running); 640 event->tstamp = now; 641 } 642 643 static void perf_event_update_sibling_time(struct perf_event *leader) 644 { 645 struct perf_event *sibling; 646 647 for_each_sibling_event(sibling, leader) 648 perf_event_update_time(sibling); 649 } 650 651 static void 652 perf_event_set_state(struct perf_event *event, enum perf_event_state state) 653 { 654 if (event->state == state) 655 return; 656 657 perf_event_update_time(event); 658 /* 659 * If a group leader gets enabled/disabled all its siblings 660 * are affected too. 661 */ 662 if ((event->state < 0) ^ (state < 0)) 663 perf_event_update_sibling_time(event); 664 665 WRITE_ONCE(event->state, state); 666 } 667 668 #ifdef CONFIG_CGROUP_PERF 669 670 static inline bool 671 perf_cgroup_match(struct perf_event *event) 672 { 673 struct perf_event_context *ctx = event->ctx; 674 struct perf_cpu_context *cpuctx = __get_cpu_context(ctx); 675 676 /* @event doesn't care about cgroup */ 677 if (!event->cgrp) 678 return true; 679 680 /* wants specific cgroup scope but @cpuctx isn't associated with any */ 681 if (!cpuctx->cgrp) 682 return false; 683 684 /* 685 * Cgroup scoping is recursive. An event enabled for a cgroup is 686 * also enabled for all its descendant cgroups. If @cpuctx's 687 * cgroup is a descendant of @event's (the test covers identity 688 * case), it's a match. 689 */ 690 return cgroup_is_descendant(cpuctx->cgrp->css.cgroup, 691 event->cgrp->css.cgroup); 692 } 693 694 static inline void perf_detach_cgroup(struct perf_event *event) 695 { 696 css_put(&event->cgrp->css); 697 event->cgrp = NULL; 698 } 699 700 static inline int is_cgroup_event(struct perf_event *event) 701 { 702 return event->cgrp != NULL; 703 } 704 705 static inline u64 perf_cgroup_event_time(struct perf_event *event) 706 { 707 struct perf_cgroup_info *t; 708 709 t = per_cpu_ptr(event->cgrp->info, event->cpu); 710 return t->time; 711 } 712 713 static inline void __update_cgrp_time(struct perf_cgroup *cgrp) 714 { 715 struct perf_cgroup_info *info; 716 u64 now; 717 718 now = perf_clock(); 719 720 info = this_cpu_ptr(cgrp->info); 721 722 info->time += now - info->timestamp; 723 info->timestamp = now; 724 } 725 726 static inline void update_cgrp_time_from_cpuctx(struct perf_cpu_context *cpuctx) 727 { 728 struct perf_cgroup *cgrp = cpuctx->cgrp; 729 struct cgroup_subsys_state *css; 730 731 if (cgrp) { 732 for (css = &cgrp->css; css; css = css->parent) { 733 cgrp = container_of(css, struct perf_cgroup, css); 734 __update_cgrp_time(cgrp); 735 } 736 } 737 } 738 739 static inline void update_cgrp_time_from_event(struct perf_event *event) 740 { 741 struct perf_cgroup *cgrp; 742 743 /* 744 * ensure we access cgroup data only when needed and 745 * when we know the cgroup is pinned (css_get) 746 */ 747 if (!is_cgroup_event(event)) 748 return; 749 750 cgrp = perf_cgroup_from_task(current, event->ctx); 751 /* 752 * Do not update time when cgroup is not active 753 */ 754 if (cgroup_is_descendant(cgrp->css.cgroup, event->cgrp->css.cgroup)) 755 __update_cgrp_time(event->cgrp); 756 } 757 758 static inline void 759 perf_cgroup_set_timestamp(struct task_struct *task, 760 struct perf_event_context *ctx) 761 { 762 struct perf_cgroup *cgrp; 763 struct perf_cgroup_info *info; 764 struct cgroup_subsys_state *css; 765 766 /* 767 * ctx->lock held by caller 768 * ensure we do not access cgroup data 769 * unless we have the cgroup pinned (css_get) 770 */ 771 if (!task || !ctx->nr_cgroups) 772 return; 773 774 cgrp = perf_cgroup_from_task(task, ctx); 775 776 for (css = &cgrp->css; css; css = css->parent) { 777 cgrp = container_of(css, struct perf_cgroup, css); 778 info = this_cpu_ptr(cgrp->info); 779 info->timestamp = ctx->timestamp; 780 } 781 } 782 783 static DEFINE_PER_CPU(struct list_head, cgrp_cpuctx_list); 784 785 #define PERF_CGROUP_SWOUT 0x1 /* cgroup switch out every event */ 786 #define PERF_CGROUP_SWIN 0x2 /* cgroup switch in events based on task */ 787 788 /* 789 * reschedule events based on the cgroup constraint of task. 790 * 791 * mode SWOUT : schedule out everything 792 * mode SWIN : schedule in based on cgroup for next 793 */ 794 static void perf_cgroup_switch(struct task_struct *task, int mode) 795 { 796 struct perf_cpu_context *cpuctx; 797 struct list_head *list; 798 unsigned long flags; 799 800 /* 801 * Disable interrupts and preemption to avoid this CPU's 802 * cgrp_cpuctx_entry to change under us. 803 */ 804 local_irq_save(flags); 805 806 list = this_cpu_ptr(&cgrp_cpuctx_list); 807 list_for_each_entry(cpuctx, list, cgrp_cpuctx_entry) { 808 WARN_ON_ONCE(cpuctx->ctx.nr_cgroups == 0); 809 810 perf_ctx_lock(cpuctx, cpuctx->task_ctx); 811 perf_pmu_disable(cpuctx->ctx.pmu); 812 813 if (mode & PERF_CGROUP_SWOUT) { 814 cpu_ctx_sched_out(cpuctx, EVENT_ALL); 815 /* 816 * must not be done before ctxswout due 817 * to event_filter_match() in event_sched_out() 818 */ 819 cpuctx->cgrp = NULL; 820 } 821 822 if (mode & PERF_CGROUP_SWIN) { 823 WARN_ON_ONCE(cpuctx->cgrp); 824 /* 825 * set cgrp before ctxsw in to allow 826 * event_filter_match() to not have to pass 827 * task around 828 * we pass the cpuctx->ctx to perf_cgroup_from_task() 829 * because cgorup events are only per-cpu 830 */ 831 cpuctx->cgrp = perf_cgroup_from_task(task, 832 &cpuctx->ctx); 833 cpu_ctx_sched_in(cpuctx, EVENT_ALL, task); 834 } 835 perf_pmu_enable(cpuctx->ctx.pmu); 836 perf_ctx_unlock(cpuctx, cpuctx->task_ctx); 837 } 838 839 local_irq_restore(flags); 840 } 841 842 static inline void perf_cgroup_sched_out(struct task_struct *task, 843 struct task_struct *next) 844 { 845 struct perf_cgroup *cgrp1; 846 struct perf_cgroup *cgrp2 = NULL; 847 848 rcu_read_lock(); 849 /* 850 * we come here when we know perf_cgroup_events > 0 851 * we do not need to pass the ctx here because we know 852 * we are holding the rcu lock 853 */ 854 cgrp1 = perf_cgroup_from_task(task, NULL); 855 cgrp2 = perf_cgroup_from_task(next, NULL); 856 857 /* 858 * only schedule out current cgroup events if we know 859 * that we are switching to a different cgroup. Otherwise, 860 * do no touch the cgroup events. 861 */ 862 if (cgrp1 != cgrp2) 863 perf_cgroup_switch(task, PERF_CGROUP_SWOUT); 864 865 rcu_read_unlock(); 866 } 867 868 static inline void perf_cgroup_sched_in(struct task_struct *prev, 869 struct task_struct *task) 870 { 871 struct perf_cgroup *cgrp1; 872 struct perf_cgroup *cgrp2 = NULL; 873 874 rcu_read_lock(); 875 /* 876 * we come here when we know perf_cgroup_events > 0 877 * we do not need to pass the ctx here because we know 878 * we are holding the rcu lock 879 */ 880 cgrp1 = perf_cgroup_from_task(task, NULL); 881 cgrp2 = perf_cgroup_from_task(prev, NULL); 882 883 /* 884 * only need to schedule in cgroup events if we are changing 885 * cgroup during ctxsw. Cgroup events were not scheduled 886 * out of ctxsw out if that was not the case. 887 */ 888 if (cgrp1 != cgrp2) 889 perf_cgroup_switch(task, PERF_CGROUP_SWIN); 890 891 rcu_read_unlock(); 892 } 893 894 static inline int perf_cgroup_connect(int fd, struct perf_event *event, 895 struct perf_event_attr *attr, 896 struct perf_event *group_leader) 897 { 898 struct perf_cgroup *cgrp; 899 struct cgroup_subsys_state *css; 900 struct fd f = fdget(fd); 901 int ret = 0; 902 903 if (!f.file) 904 return -EBADF; 905 906 css = css_tryget_online_from_dir(f.file->f_path.dentry, 907 &perf_event_cgrp_subsys); 908 if (IS_ERR(css)) { 909 ret = PTR_ERR(css); 910 goto out; 911 } 912 913 cgrp = container_of(css, struct perf_cgroup, css); 914 event->cgrp = cgrp; 915 916 /* 917 * all events in a group must monitor 918 * the same cgroup because a task belongs 919 * to only one perf cgroup at a time 920 */ 921 if (group_leader && group_leader->cgrp != cgrp) { 922 perf_detach_cgroup(event); 923 ret = -EINVAL; 924 } 925 out: 926 fdput(f); 927 return ret; 928 } 929 930 static inline void 931 perf_cgroup_set_shadow_time(struct perf_event *event, u64 now) 932 { 933 struct perf_cgroup_info *t; 934 t = per_cpu_ptr(event->cgrp->info, event->cpu); 935 event->shadow_ctx_time = now - t->timestamp; 936 } 937 938 /* 939 * Update cpuctx->cgrp so that it is set when first cgroup event is added and 940 * cleared when last cgroup event is removed. 941 */ 942 static inline void 943 list_update_cgroup_event(struct perf_event *event, 944 struct perf_event_context *ctx, bool add) 945 { 946 struct perf_cpu_context *cpuctx; 947 struct list_head *cpuctx_entry; 948 949 if (!is_cgroup_event(event)) 950 return; 951 952 /* 953 * Because cgroup events are always per-cpu events, 954 * this will always be called from the right CPU. 955 */ 956 cpuctx = __get_cpu_context(ctx); 957 958 /* 959 * Since setting cpuctx->cgrp is conditional on the current @cgrp 960 * matching the event's cgroup, we must do this for every new event, 961 * because if the first would mismatch, the second would not try again 962 * and we would leave cpuctx->cgrp unset. 963 */ 964 if (add && !cpuctx->cgrp) { 965 struct perf_cgroup *cgrp = perf_cgroup_from_task(current, ctx); 966 967 if (cgroup_is_descendant(cgrp->css.cgroup, event->cgrp->css.cgroup)) 968 cpuctx->cgrp = cgrp; 969 } 970 971 if (add && ctx->nr_cgroups++) 972 return; 973 else if (!add && --ctx->nr_cgroups) 974 return; 975 976 /* no cgroup running */ 977 if (!add) 978 cpuctx->cgrp = NULL; 979 980 cpuctx_entry = &cpuctx->cgrp_cpuctx_entry; 981 if (add) 982 list_add(cpuctx_entry, this_cpu_ptr(&cgrp_cpuctx_list)); 983 else 984 list_del(cpuctx_entry); 985 } 986 987 #else /* !CONFIG_CGROUP_PERF */ 988 989 static inline bool 990 perf_cgroup_match(struct perf_event *event) 991 { 992 return true; 993 } 994 995 static inline void perf_detach_cgroup(struct perf_event *event) 996 {} 997 998 static inline int is_cgroup_event(struct perf_event *event) 999 { 1000 return 0; 1001 } 1002 1003 static inline void update_cgrp_time_from_event(struct perf_event *event) 1004 { 1005 } 1006 1007 static inline void update_cgrp_time_from_cpuctx(struct perf_cpu_context *cpuctx) 1008 { 1009 } 1010 1011 static inline void perf_cgroup_sched_out(struct task_struct *task, 1012 struct task_struct *next) 1013 { 1014 } 1015 1016 static inline void perf_cgroup_sched_in(struct task_struct *prev, 1017 struct task_struct *task) 1018 { 1019 } 1020 1021 static inline int perf_cgroup_connect(pid_t pid, struct perf_event *event, 1022 struct perf_event_attr *attr, 1023 struct perf_event *group_leader) 1024 { 1025 return -EINVAL; 1026 } 1027 1028 static inline void 1029 perf_cgroup_set_timestamp(struct task_struct *task, 1030 struct perf_event_context *ctx) 1031 { 1032 } 1033 1034 void 1035 perf_cgroup_switch(struct task_struct *task, struct task_struct *next) 1036 { 1037 } 1038 1039 static inline void 1040 perf_cgroup_set_shadow_time(struct perf_event *event, u64 now) 1041 { 1042 } 1043 1044 static inline u64 perf_cgroup_event_time(struct perf_event *event) 1045 { 1046 return 0; 1047 } 1048 1049 static inline void 1050 list_update_cgroup_event(struct perf_event *event, 1051 struct perf_event_context *ctx, bool add) 1052 { 1053 } 1054 1055 #endif 1056 1057 /* 1058 * set default to be dependent on timer tick just 1059 * like original code 1060 */ 1061 #define PERF_CPU_HRTIMER (1000 / HZ) 1062 /* 1063 * function must be called with interrupts disabled 1064 */ 1065 static enum hrtimer_restart perf_mux_hrtimer_handler(struct hrtimer *hr) 1066 { 1067 struct perf_cpu_context *cpuctx; 1068 bool rotations; 1069 1070 lockdep_assert_irqs_disabled(); 1071 1072 cpuctx = container_of(hr, struct perf_cpu_context, hrtimer); 1073 rotations = perf_rotate_context(cpuctx); 1074 1075 raw_spin_lock(&cpuctx->hrtimer_lock); 1076 if (rotations) 1077 hrtimer_forward_now(hr, cpuctx->hrtimer_interval); 1078 else 1079 cpuctx->hrtimer_active = 0; 1080 raw_spin_unlock(&cpuctx->hrtimer_lock); 1081 1082 return rotations ? HRTIMER_RESTART : HRTIMER_NORESTART; 1083 } 1084 1085 static void __perf_mux_hrtimer_init(struct perf_cpu_context *cpuctx, int cpu) 1086 { 1087 struct hrtimer *timer = &cpuctx->hrtimer; 1088 struct pmu *pmu = cpuctx->ctx.pmu; 1089 u64 interval; 1090 1091 /* no multiplexing needed for SW PMU */ 1092 if (pmu->task_ctx_nr == perf_sw_context) 1093 return; 1094 1095 /* 1096 * check default is sane, if not set then force to 1097 * default interval (1/tick) 1098 */ 1099 interval = pmu->hrtimer_interval_ms; 1100 if (interval < 1) 1101 interval = pmu->hrtimer_interval_ms = PERF_CPU_HRTIMER; 1102 1103 cpuctx->hrtimer_interval = ns_to_ktime(NSEC_PER_MSEC * interval); 1104 1105 raw_spin_lock_init(&cpuctx->hrtimer_lock); 1106 hrtimer_init(timer, CLOCK_MONOTONIC, HRTIMER_MODE_ABS_PINNED); 1107 timer->function = perf_mux_hrtimer_handler; 1108 } 1109 1110 static int perf_mux_hrtimer_restart(struct perf_cpu_context *cpuctx) 1111 { 1112 struct hrtimer *timer = &cpuctx->hrtimer; 1113 struct pmu *pmu = cpuctx->ctx.pmu; 1114 unsigned long flags; 1115 1116 /* not for SW PMU */ 1117 if (pmu->task_ctx_nr == perf_sw_context) 1118 return 0; 1119 1120 raw_spin_lock_irqsave(&cpuctx->hrtimer_lock, flags); 1121 if (!cpuctx->hrtimer_active) { 1122 cpuctx->hrtimer_active = 1; 1123 hrtimer_forward_now(timer, cpuctx->hrtimer_interval); 1124 hrtimer_start_expires(timer, HRTIMER_MODE_ABS_PINNED); 1125 } 1126 raw_spin_unlock_irqrestore(&cpuctx->hrtimer_lock, flags); 1127 1128 return 0; 1129 } 1130 1131 void perf_pmu_disable(struct pmu *pmu) 1132 { 1133 int *count = this_cpu_ptr(pmu->pmu_disable_count); 1134 if (!(*count)++) 1135 pmu->pmu_disable(pmu); 1136 } 1137 1138 void perf_pmu_enable(struct pmu *pmu) 1139 { 1140 int *count = this_cpu_ptr(pmu->pmu_disable_count); 1141 if (!--(*count)) 1142 pmu->pmu_enable(pmu); 1143 } 1144 1145 static DEFINE_PER_CPU(struct list_head, active_ctx_list); 1146 1147 /* 1148 * perf_event_ctx_activate(), perf_event_ctx_deactivate(), and 1149 * perf_event_task_tick() are fully serialized because they're strictly cpu 1150 * affine and perf_event_ctx{activate,deactivate} are called with IRQs 1151 * disabled, while perf_event_task_tick is called from IRQ context. 1152 */ 1153 static void perf_event_ctx_activate(struct perf_event_context *ctx) 1154 { 1155 struct list_head *head = this_cpu_ptr(&active_ctx_list); 1156 1157 lockdep_assert_irqs_disabled(); 1158 1159 WARN_ON(!list_empty(&ctx->active_ctx_list)); 1160 1161 list_add(&ctx->active_ctx_list, head); 1162 } 1163 1164 static void perf_event_ctx_deactivate(struct perf_event_context *ctx) 1165 { 1166 lockdep_assert_irqs_disabled(); 1167 1168 WARN_ON(list_empty(&ctx->active_ctx_list)); 1169 1170 list_del_init(&ctx->active_ctx_list); 1171 } 1172 1173 static void get_ctx(struct perf_event_context *ctx) 1174 { 1175 refcount_inc(&ctx->refcount); 1176 } 1177 1178 static void free_ctx(struct rcu_head *head) 1179 { 1180 struct perf_event_context *ctx; 1181 1182 ctx = container_of(head, struct perf_event_context, rcu_head); 1183 kfree(ctx->task_ctx_data); 1184 kfree(ctx); 1185 } 1186 1187 static void put_ctx(struct perf_event_context *ctx) 1188 { 1189 if (refcount_dec_and_test(&ctx->refcount)) { 1190 if (ctx->parent_ctx) 1191 put_ctx(ctx->parent_ctx); 1192 if (ctx->task && ctx->task != TASK_TOMBSTONE) 1193 put_task_struct(ctx->task); 1194 call_rcu(&ctx->rcu_head, free_ctx); 1195 } 1196 } 1197 1198 /* 1199 * Because of perf_event::ctx migration in sys_perf_event_open::move_group and 1200 * perf_pmu_migrate_context() we need some magic. 1201 * 1202 * Those places that change perf_event::ctx will hold both 1203 * perf_event_ctx::mutex of the 'old' and 'new' ctx value. 1204 * 1205 * Lock ordering is by mutex address. There are two other sites where 1206 * perf_event_context::mutex nests and those are: 1207 * 1208 * - perf_event_exit_task_context() [ child , 0 ] 1209 * perf_event_exit_event() 1210 * put_event() [ parent, 1 ] 1211 * 1212 * - perf_event_init_context() [ parent, 0 ] 1213 * inherit_task_group() 1214 * inherit_group() 1215 * inherit_event() 1216 * perf_event_alloc() 1217 * perf_init_event() 1218 * perf_try_init_event() [ child , 1 ] 1219 * 1220 * While it appears there is an obvious deadlock here -- the parent and child 1221 * nesting levels are inverted between the two. This is in fact safe because 1222 * life-time rules separate them. That is an exiting task cannot fork, and a 1223 * spawning task cannot (yet) exit. 1224 * 1225 * But remember that that these are parent<->child context relations, and 1226 * migration does not affect children, therefore these two orderings should not 1227 * interact. 1228 * 1229 * The change in perf_event::ctx does not affect children (as claimed above) 1230 * because the sys_perf_event_open() case will install a new event and break 1231 * the ctx parent<->child relation, and perf_pmu_migrate_context() is only 1232 * concerned with cpuctx and that doesn't have children. 1233 * 1234 * The places that change perf_event::ctx will issue: 1235 * 1236 * perf_remove_from_context(); 1237 * synchronize_rcu(); 1238 * perf_install_in_context(); 1239 * 1240 * to affect the change. The remove_from_context() + synchronize_rcu() should 1241 * quiesce the event, after which we can install it in the new location. This 1242 * means that only external vectors (perf_fops, prctl) can perturb the event 1243 * while in transit. Therefore all such accessors should also acquire 1244 * perf_event_context::mutex to serialize against this. 1245 * 1246 * However; because event->ctx can change while we're waiting to acquire 1247 * ctx->mutex we must be careful and use the below perf_event_ctx_lock() 1248 * function. 1249 * 1250 * Lock order: 1251 * cred_guard_mutex 1252 * task_struct::perf_event_mutex 1253 * perf_event_context::mutex 1254 * perf_event::child_mutex; 1255 * perf_event_context::lock 1256 * perf_event::mmap_mutex 1257 * mmap_sem 1258 * perf_addr_filters_head::lock 1259 * 1260 * cpu_hotplug_lock 1261 * pmus_lock 1262 * cpuctx->mutex / perf_event_context::mutex 1263 */ 1264 static struct perf_event_context * 1265 perf_event_ctx_lock_nested(struct perf_event *event, int nesting) 1266 { 1267 struct perf_event_context *ctx; 1268 1269 again: 1270 rcu_read_lock(); 1271 ctx = READ_ONCE(event->ctx); 1272 if (!refcount_inc_not_zero(&ctx->refcount)) { 1273 rcu_read_unlock(); 1274 goto again; 1275 } 1276 rcu_read_unlock(); 1277 1278 mutex_lock_nested(&ctx->mutex, nesting); 1279 if (event->ctx != ctx) { 1280 mutex_unlock(&ctx->mutex); 1281 put_ctx(ctx); 1282 goto again; 1283 } 1284 1285 return ctx; 1286 } 1287 1288 static inline struct perf_event_context * 1289 perf_event_ctx_lock(struct perf_event *event) 1290 { 1291 return perf_event_ctx_lock_nested(event, 0); 1292 } 1293 1294 static void perf_event_ctx_unlock(struct perf_event *event, 1295 struct perf_event_context *ctx) 1296 { 1297 mutex_unlock(&ctx->mutex); 1298 put_ctx(ctx); 1299 } 1300 1301 /* 1302 * This must be done under the ctx->lock, such as to serialize against 1303 * context_equiv(), therefore we cannot call put_ctx() since that might end up 1304 * calling scheduler related locks and ctx->lock nests inside those. 1305 */ 1306 static __must_check struct perf_event_context * 1307 unclone_ctx(struct perf_event_context *ctx) 1308 { 1309 struct perf_event_context *parent_ctx = ctx->parent_ctx; 1310 1311 lockdep_assert_held(&ctx->lock); 1312 1313 if (parent_ctx) 1314 ctx->parent_ctx = NULL; 1315 ctx->generation++; 1316 1317 return parent_ctx; 1318 } 1319 1320 static u32 perf_event_pid_type(struct perf_event *event, struct task_struct *p, 1321 enum pid_type type) 1322 { 1323 u32 nr; 1324 /* 1325 * only top level events have the pid namespace they were created in 1326 */ 1327 if (event->parent) 1328 event = event->parent; 1329 1330 nr = __task_pid_nr_ns(p, type, event->ns); 1331 /* avoid -1 if it is idle thread or runs in another ns */ 1332 if (!nr && !pid_alive(p)) 1333 nr = -1; 1334 return nr; 1335 } 1336 1337 static u32 perf_event_pid(struct perf_event *event, struct task_struct *p) 1338 { 1339 return perf_event_pid_type(event, p, PIDTYPE_TGID); 1340 } 1341 1342 static u32 perf_event_tid(struct perf_event *event, struct task_struct *p) 1343 { 1344 return perf_event_pid_type(event, p, PIDTYPE_PID); 1345 } 1346 1347 /* 1348 * If we inherit events we want to return the parent event id 1349 * to userspace. 1350 */ 1351 static u64 primary_event_id(struct perf_event *event) 1352 { 1353 u64 id = event->id; 1354 1355 if (event->parent) 1356 id = event->parent->id; 1357 1358 return id; 1359 } 1360 1361 /* 1362 * Get the perf_event_context for a task and lock it. 1363 * 1364 * This has to cope with with the fact that until it is locked, 1365 * the context could get moved to another task. 1366 */ 1367 static struct perf_event_context * 1368 perf_lock_task_context(struct task_struct *task, int ctxn, unsigned long *flags) 1369 { 1370 struct perf_event_context *ctx; 1371 1372 retry: 1373 /* 1374 * One of the few rules of preemptible RCU is that one cannot do 1375 * rcu_read_unlock() while holding a scheduler (or nested) lock when 1376 * part of the read side critical section was irqs-enabled -- see 1377 * rcu_read_unlock_special(). 1378 * 1379 * Since ctx->lock nests under rq->lock we must ensure the entire read 1380 * side critical section has interrupts disabled. 1381 */ 1382 local_irq_save(*flags); 1383 rcu_read_lock(); 1384 ctx = rcu_dereference(task->perf_event_ctxp[ctxn]); 1385 if (ctx) { 1386 /* 1387 * If this context is a clone of another, it might 1388 * get swapped for another underneath us by 1389 * perf_event_task_sched_out, though the 1390 * rcu_read_lock() protects us from any context 1391 * getting freed. Lock the context and check if it 1392 * got swapped before we could get the lock, and retry 1393 * if so. If we locked the right context, then it 1394 * can't get swapped on us any more. 1395 */ 1396 raw_spin_lock(&ctx->lock); 1397 if (ctx != rcu_dereference(task->perf_event_ctxp[ctxn])) { 1398 raw_spin_unlock(&ctx->lock); 1399 rcu_read_unlock(); 1400 local_irq_restore(*flags); 1401 goto retry; 1402 } 1403 1404 if (ctx->task == TASK_TOMBSTONE || 1405 !refcount_inc_not_zero(&ctx->refcount)) { 1406 raw_spin_unlock(&ctx->lock); 1407 ctx = NULL; 1408 } else { 1409 WARN_ON_ONCE(ctx->task != task); 1410 } 1411 } 1412 rcu_read_unlock(); 1413 if (!ctx) 1414 local_irq_restore(*flags); 1415 return ctx; 1416 } 1417 1418 /* 1419 * Get the context for a task and increment its pin_count so it 1420 * can't get swapped to another task. This also increments its 1421 * reference count so that the context can't get freed. 1422 */ 1423 static struct perf_event_context * 1424 perf_pin_task_context(struct task_struct *task, int ctxn) 1425 { 1426 struct perf_event_context *ctx; 1427 unsigned long flags; 1428 1429 ctx = perf_lock_task_context(task, ctxn, &flags); 1430 if (ctx) { 1431 ++ctx->pin_count; 1432 raw_spin_unlock_irqrestore(&ctx->lock, flags); 1433 } 1434 return ctx; 1435 } 1436 1437 static void perf_unpin_context(struct perf_event_context *ctx) 1438 { 1439 unsigned long flags; 1440 1441 raw_spin_lock_irqsave(&ctx->lock, flags); 1442 --ctx->pin_count; 1443 raw_spin_unlock_irqrestore(&ctx->lock, flags); 1444 } 1445 1446 /* 1447 * Update the record of the current time in a context. 1448 */ 1449 static void update_context_time(struct perf_event_context *ctx) 1450 { 1451 u64 now = perf_clock(); 1452 1453 ctx->time += now - ctx->timestamp; 1454 ctx->timestamp = now; 1455 } 1456 1457 static u64 perf_event_time(struct perf_event *event) 1458 { 1459 struct perf_event_context *ctx = event->ctx; 1460 1461 if (is_cgroup_event(event)) 1462 return perf_cgroup_event_time(event); 1463 1464 return ctx ? ctx->time : 0; 1465 } 1466 1467 static enum event_type_t get_event_type(struct perf_event *event) 1468 { 1469 struct perf_event_context *ctx = event->ctx; 1470 enum event_type_t event_type; 1471 1472 lockdep_assert_held(&ctx->lock); 1473 1474 /* 1475 * It's 'group type', really, because if our group leader is 1476 * pinned, so are we. 1477 */ 1478 if (event->group_leader != event) 1479 event = event->group_leader; 1480 1481 event_type = event->attr.pinned ? EVENT_PINNED : EVENT_FLEXIBLE; 1482 if (!ctx->task) 1483 event_type |= EVENT_CPU; 1484 1485 return event_type; 1486 } 1487 1488 /* 1489 * Helper function to initialize event group nodes. 1490 */ 1491 static void init_event_group(struct perf_event *event) 1492 { 1493 RB_CLEAR_NODE(&event->group_node); 1494 event->group_index = 0; 1495 } 1496 1497 /* 1498 * Extract pinned or flexible groups from the context 1499 * based on event attrs bits. 1500 */ 1501 static struct perf_event_groups * 1502 get_event_groups(struct perf_event *event, struct perf_event_context *ctx) 1503 { 1504 if (event->attr.pinned) 1505 return &ctx->pinned_groups; 1506 else 1507 return &ctx->flexible_groups; 1508 } 1509 1510 /* 1511 * Helper function to initializes perf_event_group trees. 1512 */ 1513 static void perf_event_groups_init(struct perf_event_groups *groups) 1514 { 1515 groups->tree = RB_ROOT; 1516 groups->index = 0; 1517 } 1518 1519 /* 1520 * Compare function for event groups; 1521 * 1522 * Implements complex key that first sorts by CPU and then by virtual index 1523 * which provides ordering when rotating groups for the same CPU. 1524 */ 1525 static bool 1526 perf_event_groups_less(struct perf_event *left, struct perf_event *right) 1527 { 1528 if (left->cpu < right->cpu) 1529 return true; 1530 if (left->cpu > right->cpu) 1531 return false; 1532 1533 if (left->group_index < right->group_index) 1534 return true; 1535 if (left->group_index > right->group_index) 1536 return false; 1537 1538 return false; 1539 } 1540 1541 /* 1542 * Insert @event into @groups' tree; using {@event->cpu, ++@groups->index} for 1543 * key (see perf_event_groups_less). This places it last inside the CPU 1544 * subtree. 1545 */ 1546 static void 1547 perf_event_groups_insert(struct perf_event_groups *groups, 1548 struct perf_event *event) 1549 { 1550 struct perf_event *node_event; 1551 struct rb_node *parent; 1552 struct rb_node **node; 1553 1554 event->group_index = ++groups->index; 1555 1556 node = &groups->tree.rb_node; 1557 parent = *node; 1558 1559 while (*node) { 1560 parent = *node; 1561 node_event = container_of(*node, struct perf_event, group_node); 1562 1563 if (perf_event_groups_less(event, node_event)) 1564 node = &parent->rb_left; 1565 else 1566 node = &parent->rb_right; 1567 } 1568 1569 rb_link_node(&event->group_node, parent, node); 1570 rb_insert_color(&event->group_node, &groups->tree); 1571 } 1572 1573 /* 1574 * Helper function to insert event into the pinned or flexible groups. 1575 */ 1576 static void 1577 add_event_to_groups(struct perf_event *event, struct perf_event_context *ctx) 1578 { 1579 struct perf_event_groups *groups; 1580 1581 groups = get_event_groups(event, ctx); 1582 perf_event_groups_insert(groups, event); 1583 } 1584 1585 /* 1586 * Delete a group from a tree. 1587 */ 1588 static void 1589 perf_event_groups_delete(struct perf_event_groups *groups, 1590 struct perf_event *event) 1591 { 1592 WARN_ON_ONCE(RB_EMPTY_NODE(&event->group_node) || 1593 RB_EMPTY_ROOT(&groups->tree)); 1594 1595 rb_erase(&event->group_node, &groups->tree); 1596 init_event_group(event); 1597 } 1598 1599 /* 1600 * Helper function to delete event from its groups. 1601 */ 1602 static void 1603 del_event_from_groups(struct perf_event *event, struct perf_event_context *ctx) 1604 { 1605 struct perf_event_groups *groups; 1606 1607 groups = get_event_groups(event, ctx); 1608 perf_event_groups_delete(groups, event); 1609 } 1610 1611 /* 1612 * Get the leftmost event in the @cpu subtree. 1613 */ 1614 static struct perf_event * 1615 perf_event_groups_first(struct perf_event_groups *groups, int cpu) 1616 { 1617 struct perf_event *node_event = NULL, *match = NULL; 1618 struct rb_node *node = groups->tree.rb_node; 1619 1620 while (node) { 1621 node_event = container_of(node, struct perf_event, group_node); 1622 1623 if (cpu < node_event->cpu) { 1624 node = node->rb_left; 1625 } else if (cpu > node_event->cpu) { 1626 node = node->rb_right; 1627 } else { 1628 match = node_event; 1629 node = node->rb_left; 1630 } 1631 } 1632 1633 return match; 1634 } 1635 1636 /* 1637 * Like rb_entry_next_safe() for the @cpu subtree. 1638 */ 1639 static struct perf_event * 1640 perf_event_groups_next(struct perf_event *event) 1641 { 1642 struct perf_event *next; 1643 1644 next = rb_entry_safe(rb_next(&event->group_node), typeof(*event), group_node); 1645 if (next && next->cpu == event->cpu) 1646 return next; 1647 1648 return NULL; 1649 } 1650 1651 /* 1652 * Iterate through the whole groups tree. 1653 */ 1654 #define perf_event_groups_for_each(event, groups) \ 1655 for (event = rb_entry_safe(rb_first(&((groups)->tree)), \ 1656 typeof(*event), group_node); event; \ 1657 event = rb_entry_safe(rb_next(&event->group_node), \ 1658 typeof(*event), group_node)) 1659 1660 /* 1661 * Add an event from the lists for its context. 1662 * Must be called with ctx->mutex and ctx->lock held. 1663 */ 1664 static void 1665 list_add_event(struct perf_event *event, struct perf_event_context *ctx) 1666 { 1667 lockdep_assert_held(&ctx->lock); 1668 1669 WARN_ON_ONCE(event->attach_state & PERF_ATTACH_CONTEXT); 1670 event->attach_state |= PERF_ATTACH_CONTEXT; 1671 1672 event->tstamp = perf_event_time(event); 1673 1674 /* 1675 * If we're a stand alone event or group leader, we go to the context 1676 * list, group events are kept attached to the group so that 1677 * perf_group_detach can, at all times, locate all siblings. 1678 */ 1679 if (event->group_leader == event) { 1680 event->group_caps = event->event_caps; 1681 add_event_to_groups(event, ctx); 1682 } 1683 1684 list_update_cgroup_event(event, ctx, true); 1685 1686 list_add_rcu(&event->event_entry, &ctx->event_list); 1687 ctx->nr_events++; 1688 if (event->attr.inherit_stat) 1689 ctx->nr_stat++; 1690 1691 ctx->generation++; 1692 } 1693 1694 /* 1695 * Initialize event state based on the perf_event_attr::disabled. 1696 */ 1697 static inline void perf_event__state_init(struct perf_event *event) 1698 { 1699 event->state = event->attr.disabled ? PERF_EVENT_STATE_OFF : 1700 PERF_EVENT_STATE_INACTIVE; 1701 } 1702 1703 static void __perf_event_read_size(struct perf_event *event, int nr_siblings) 1704 { 1705 int entry = sizeof(u64); /* value */ 1706 int size = 0; 1707 int nr = 1; 1708 1709 if (event->attr.read_format & PERF_FORMAT_TOTAL_TIME_ENABLED) 1710 size += sizeof(u64); 1711 1712 if (event->attr.read_format & PERF_FORMAT_TOTAL_TIME_RUNNING) 1713 size += sizeof(u64); 1714 1715 if (event->attr.read_format & PERF_FORMAT_ID) 1716 entry += sizeof(u64); 1717 1718 if (event->attr.read_format & PERF_FORMAT_GROUP) { 1719 nr += nr_siblings; 1720 size += sizeof(u64); 1721 } 1722 1723 size += entry * nr; 1724 event->read_size = size; 1725 } 1726 1727 static void __perf_event_header_size(struct perf_event *event, u64 sample_type) 1728 { 1729 struct perf_sample_data *data; 1730 u16 size = 0; 1731 1732 if (sample_type & PERF_SAMPLE_IP) 1733 size += sizeof(data->ip); 1734 1735 if (sample_type & PERF_SAMPLE_ADDR) 1736 size += sizeof(data->addr); 1737 1738 if (sample_type & PERF_SAMPLE_PERIOD) 1739 size += sizeof(data->period); 1740 1741 if (sample_type & PERF_SAMPLE_WEIGHT) 1742 size += sizeof(data->weight); 1743 1744 if (sample_type & PERF_SAMPLE_READ) 1745 size += event->read_size; 1746 1747 if (sample_type & PERF_SAMPLE_DATA_SRC) 1748 size += sizeof(data->data_src.val); 1749 1750 if (sample_type & PERF_SAMPLE_TRANSACTION) 1751 size += sizeof(data->txn); 1752 1753 if (sample_type & PERF_SAMPLE_PHYS_ADDR) 1754 size += sizeof(data->phys_addr); 1755 1756 event->header_size = size; 1757 } 1758 1759 /* 1760 * Called at perf_event creation and when events are attached/detached from a 1761 * group. 1762 */ 1763 static void perf_event__header_size(struct perf_event *event) 1764 { 1765 __perf_event_read_size(event, 1766 event->group_leader->nr_siblings); 1767 __perf_event_header_size(event, event->attr.sample_type); 1768 } 1769 1770 static void perf_event__id_header_size(struct perf_event *event) 1771 { 1772 struct perf_sample_data *data; 1773 u64 sample_type = event->attr.sample_type; 1774 u16 size = 0; 1775 1776 if (sample_type & PERF_SAMPLE_TID) 1777 size += sizeof(data->tid_entry); 1778 1779 if (sample_type & PERF_SAMPLE_TIME) 1780 size += sizeof(data->time); 1781 1782 if (sample_type & PERF_SAMPLE_IDENTIFIER) 1783 size += sizeof(data->id); 1784 1785 if (sample_type & PERF_SAMPLE_ID) 1786 size += sizeof(data->id); 1787 1788 if (sample_type & PERF_SAMPLE_STREAM_ID) 1789 size += sizeof(data->stream_id); 1790 1791 if (sample_type & PERF_SAMPLE_CPU) 1792 size += sizeof(data->cpu_entry); 1793 1794 event->id_header_size = size; 1795 } 1796 1797 static bool perf_event_validate_size(struct perf_event *event) 1798 { 1799 /* 1800 * The values computed here will be over-written when we actually 1801 * attach the event. 1802 */ 1803 __perf_event_read_size(event, event->group_leader->nr_siblings + 1); 1804 __perf_event_header_size(event, event->attr.sample_type & ~PERF_SAMPLE_READ); 1805 perf_event__id_header_size(event); 1806 1807 /* 1808 * Sum the lot; should not exceed the 64k limit we have on records. 1809 * Conservative limit to allow for callchains and other variable fields. 1810 */ 1811 if (event->read_size + event->header_size + 1812 event->id_header_size + sizeof(struct perf_event_header) >= 16*1024) 1813 return false; 1814 1815 return true; 1816 } 1817 1818 static void perf_group_attach(struct perf_event *event) 1819 { 1820 struct perf_event *group_leader = event->group_leader, *pos; 1821 1822 lockdep_assert_held(&event->ctx->lock); 1823 1824 /* 1825 * We can have double attach due to group movement in perf_event_open. 1826 */ 1827 if (event->attach_state & PERF_ATTACH_GROUP) 1828 return; 1829 1830 event->attach_state |= PERF_ATTACH_GROUP; 1831 1832 if (group_leader == event) 1833 return; 1834 1835 WARN_ON_ONCE(group_leader->ctx != event->ctx); 1836 1837 group_leader->group_caps &= event->event_caps; 1838 1839 list_add_tail(&event->sibling_list, &group_leader->sibling_list); 1840 group_leader->nr_siblings++; 1841 1842 perf_event__header_size(group_leader); 1843 1844 for_each_sibling_event(pos, group_leader) 1845 perf_event__header_size(pos); 1846 } 1847 1848 /* 1849 * Remove an event from the lists for its context. 1850 * Must be called with ctx->mutex and ctx->lock held. 1851 */ 1852 static void 1853 list_del_event(struct perf_event *event, struct perf_event_context *ctx) 1854 { 1855 WARN_ON_ONCE(event->ctx != ctx); 1856 lockdep_assert_held(&ctx->lock); 1857 1858 /* 1859 * We can have double detach due to exit/hot-unplug + close. 1860 */ 1861 if (!(event->attach_state & PERF_ATTACH_CONTEXT)) 1862 return; 1863 1864 event->attach_state &= ~PERF_ATTACH_CONTEXT; 1865 1866 list_update_cgroup_event(event, ctx, false); 1867 1868 ctx->nr_events--; 1869 if (event->attr.inherit_stat) 1870 ctx->nr_stat--; 1871 1872 list_del_rcu(&event->event_entry); 1873 1874 if (event->group_leader == event) 1875 del_event_from_groups(event, ctx); 1876 1877 /* 1878 * If event was in error state, then keep it 1879 * that way, otherwise bogus counts will be 1880 * returned on read(). The only way to get out 1881 * of error state is by explicit re-enabling 1882 * of the event 1883 */ 1884 if (event->state > PERF_EVENT_STATE_OFF) 1885 perf_event_set_state(event, PERF_EVENT_STATE_OFF); 1886 1887 ctx->generation++; 1888 } 1889 1890 static void perf_group_detach(struct perf_event *event) 1891 { 1892 struct perf_event *sibling, *tmp; 1893 struct perf_event_context *ctx = event->ctx; 1894 1895 lockdep_assert_held(&ctx->lock); 1896 1897 /* 1898 * We can have double detach due to exit/hot-unplug + close. 1899 */ 1900 if (!(event->attach_state & PERF_ATTACH_GROUP)) 1901 return; 1902 1903 event->attach_state &= ~PERF_ATTACH_GROUP; 1904 1905 /* 1906 * If this is a sibling, remove it from its group. 1907 */ 1908 if (event->group_leader != event) { 1909 list_del_init(&event->sibling_list); 1910 event->group_leader->nr_siblings--; 1911 goto out; 1912 } 1913 1914 /* 1915 * If this was a group event with sibling events then 1916 * upgrade the siblings to singleton events by adding them 1917 * to whatever list we are on. 1918 */ 1919 list_for_each_entry_safe(sibling, tmp, &event->sibling_list, sibling_list) { 1920 1921 sibling->group_leader = sibling; 1922 list_del_init(&sibling->sibling_list); 1923 1924 /* Inherit group flags from the previous leader */ 1925 sibling->group_caps = event->group_caps; 1926 1927 if (!RB_EMPTY_NODE(&event->group_node)) { 1928 add_event_to_groups(sibling, event->ctx); 1929 1930 if (sibling->state == PERF_EVENT_STATE_ACTIVE) { 1931 struct list_head *list = sibling->attr.pinned ? 1932 &ctx->pinned_active : &ctx->flexible_active; 1933 1934 list_add_tail(&sibling->active_list, list); 1935 } 1936 } 1937 1938 WARN_ON_ONCE(sibling->ctx != event->ctx); 1939 } 1940 1941 out: 1942 perf_event__header_size(event->group_leader); 1943 1944 for_each_sibling_event(tmp, event->group_leader) 1945 perf_event__header_size(tmp); 1946 } 1947 1948 static bool is_orphaned_event(struct perf_event *event) 1949 { 1950 return event->state == PERF_EVENT_STATE_DEAD; 1951 } 1952 1953 static inline int __pmu_filter_match(struct perf_event *event) 1954 { 1955 struct pmu *pmu = event->pmu; 1956 return pmu->filter_match ? pmu->filter_match(event) : 1; 1957 } 1958 1959 /* 1960 * Check whether we should attempt to schedule an event group based on 1961 * PMU-specific filtering. An event group can consist of HW and SW events, 1962 * potentially with a SW leader, so we must check all the filters, to 1963 * determine whether a group is schedulable: 1964 */ 1965 static inline int pmu_filter_match(struct perf_event *event) 1966 { 1967 struct perf_event *sibling; 1968 1969 if (!__pmu_filter_match(event)) 1970 return 0; 1971 1972 for_each_sibling_event(sibling, event) { 1973 if (!__pmu_filter_match(sibling)) 1974 return 0; 1975 } 1976 1977 return 1; 1978 } 1979 1980 static inline int 1981 event_filter_match(struct perf_event *event) 1982 { 1983 return (event->cpu == -1 || event->cpu == smp_processor_id()) && 1984 perf_cgroup_match(event) && pmu_filter_match(event); 1985 } 1986 1987 static void 1988 event_sched_out(struct perf_event *event, 1989 struct perf_cpu_context *cpuctx, 1990 struct perf_event_context *ctx) 1991 { 1992 enum perf_event_state state = PERF_EVENT_STATE_INACTIVE; 1993 1994 WARN_ON_ONCE(event->ctx != ctx); 1995 lockdep_assert_held(&ctx->lock); 1996 1997 if (event->state != PERF_EVENT_STATE_ACTIVE) 1998 return; 1999 2000 /* 2001 * Asymmetry; we only schedule events _IN_ through ctx_sched_in(), but 2002 * we can schedule events _OUT_ individually through things like 2003 * __perf_remove_from_context(). 2004 */ 2005 list_del_init(&event->active_list); 2006 2007 perf_pmu_disable(event->pmu); 2008 2009 event->pmu->del(event, 0); 2010 event->oncpu = -1; 2011 2012 if (READ_ONCE(event->pending_disable) >= 0) { 2013 WRITE_ONCE(event->pending_disable, -1); 2014 state = PERF_EVENT_STATE_OFF; 2015 } 2016 perf_event_set_state(event, state); 2017 2018 if (!is_software_event(event)) 2019 cpuctx->active_oncpu--; 2020 if (!--ctx->nr_active) 2021 perf_event_ctx_deactivate(ctx); 2022 if (event->attr.freq && event->attr.sample_freq) 2023 ctx->nr_freq--; 2024 if (event->attr.exclusive || !cpuctx->active_oncpu) 2025 cpuctx->exclusive = 0; 2026 2027 perf_pmu_enable(event->pmu); 2028 } 2029 2030 static void 2031 group_sched_out(struct perf_event *group_event, 2032 struct perf_cpu_context *cpuctx, 2033 struct perf_event_context *ctx) 2034 { 2035 struct perf_event *event; 2036 2037 if (group_event->state != PERF_EVENT_STATE_ACTIVE) 2038 return; 2039 2040 perf_pmu_disable(ctx->pmu); 2041 2042 event_sched_out(group_event, cpuctx, ctx); 2043 2044 /* 2045 * Schedule out siblings (if any): 2046 */ 2047 for_each_sibling_event(event, group_event) 2048 event_sched_out(event, cpuctx, ctx); 2049 2050 perf_pmu_enable(ctx->pmu); 2051 2052 if (group_event->attr.exclusive) 2053 cpuctx->exclusive = 0; 2054 } 2055 2056 #define DETACH_GROUP 0x01UL 2057 2058 /* 2059 * Cross CPU call to remove a performance event 2060 * 2061 * We disable the event on the hardware level first. After that we 2062 * remove it from the context list. 2063 */ 2064 static void 2065 __perf_remove_from_context(struct perf_event *event, 2066 struct perf_cpu_context *cpuctx, 2067 struct perf_event_context *ctx, 2068 void *info) 2069 { 2070 unsigned long flags = (unsigned long)info; 2071 2072 if (ctx->is_active & EVENT_TIME) { 2073 update_context_time(ctx); 2074 update_cgrp_time_from_cpuctx(cpuctx); 2075 } 2076 2077 event_sched_out(event, cpuctx, ctx); 2078 if (flags & DETACH_GROUP) 2079 perf_group_detach(event); 2080 list_del_event(event, ctx); 2081 2082 if (!ctx->nr_events && ctx->is_active) { 2083 ctx->is_active = 0; 2084 if (ctx->task) { 2085 WARN_ON_ONCE(cpuctx->task_ctx != ctx); 2086 cpuctx->task_ctx = NULL; 2087 } 2088 } 2089 } 2090 2091 /* 2092 * Remove the event from a task's (or a CPU's) list of events. 2093 * 2094 * If event->ctx is a cloned context, callers must make sure that 2095 * every task struct that event->ctx->task could possibly point to 2096 * remains valid. This is OK when called from perf_release since 2097 * that only calls us on the top-level context, which can't be a clone. 2098 * When called from perf_event_exit_task, it's OK because the 2099 * context has been detached from its task. 2100 */ 2101 static void perf_remove_from_context(struct perf_event *event, unsigned long flags) 2102 { 2103 struct perf_event_context *ctx = event->ctx; 2104 2105 lockdep_assert_held(&ctx->mutex); 2106 2107 event_function_call(event, __perf_remove_from_context, (void *)flags); 2108 2109 /* 2110 * The above event_function_call() can NO-OP when it hits 2111 * TASK_TOMBSTONE. In that case we must already have been detached 2112 * from the context (by perf_event_exit_event()) but the grouping 2113 * might still be in-tact. 2114 */ 2115 WARN_ON_ONCE(event->attach_state & PERF_ATTACH_CONTEXT); 2116 if ((flags & DETACH_GROUP) && 2117 (event->attach_state & PERF_ATTACH_GROUP)) { 2118 /* 2119 * Since in that case we cannot possibly be scheduled, simply 2120 * detach now. 2121 */ 2122 raw_spin_lock_irq(&ctx->lock); 2123 perf_group_detach(event); 2124 raw_spin_unlock_irq(&ctx->lock); 2125 } 2126 } 2127 2128 /* 2129 * Cross CPU call to disable a performance event 2130 */ 2131 static void __perf_event_disable(struct perf_event *event, 2132 struct perf_cpu_context *cpuctx, 2133 struct perf_event_context *ctx, 2134 void *info) 2135 { 2136 if (event->state < PERF_EVENT_STATE_INACTIVE) 2137 return; 2138 2139 if (ctx->is_active & EVENT_TIME) { 2140 update_context_time(ctx); 2141 update_cgrp_time_from_event(event); 2142 } 2143 2144 if (event == event->group_leader) 2145 group_sched_out(event, cpuctx, ctx); 2146 else 2147 event_sched_out(event, cpuctx, ctx); 2148 2149 perf_event_set_state(event, PERF_EVENT_STATE_OFF); 2150 } 2151 2152 /* 2153 * Disable an event. 2154 * 2155 * If event->ctx is a cloned context, callers must make sure that 2156 * every task struct that event->ctx->task could possibly point to 2157 * remains valid. This condition is satisifed when called through 2158 * perf_event_for_each_child or perf_event_for_each because they 2159 * hold the top-level event's child_mutex, so any descendant that 2160 * goes to exit will block in perf_event_exit_event(). 2161 * 2162 * When called from perf_pending_event it's OK because event->ctx 2163 * is the current context on this CPU and preemption is disabled, 2164 * hence we can't get into perf_event_task_sched_out for this context. 2165 */ 2166 static void _perf_event_disable(struct perf_event *event) 2167 { 2168 struct perf_event_context *ctx = event->ctx; 2169 2170 raw_spin_lock_irq(&ctx->lock); 2171 if (event->state <= PERF_EVENT_STATE_OFF) { 2172 raw_spin_unlock_irq(&ctx->lock); 2173 return; 2174 } 2175 raw_spin_unlock_irq(&ctx->lock); 2176 2177 event_function_call(event, __perf_event_disable, NULL); 2178 } 2179 2180 void perf_event_disable_local(struct perf_event *event) 2181 { 2182 event_function_local(event, __perf_event_disable, NULL); 2183 } 2184 2185 /* 2186 * Strictly speaking kernel users cannot create groups and therefore this 2187 * interface does not need the perf_event_ctx_lock() magic. 2188 */ 2189 void perf_event_disable(struct perf_event *event) 2190 { 2191 struct perf_event_context *ctx; 2192 2193 ctx = perf_event_ctx_lock(event); 2194 _perf_event_disable(event); 2195 perf_event_ctx_unlock(event, ctx); 2196 } 2197 EXPORT_SYMBOL_GPL(perf_event_disable); 2198 2199 void perf_event_disable_inatomic(struct perf_event *event) 2200 { 2201 WRITE_ONCE(event->pending_disable, smp_processor_id()); 2202 /* can fail, see perf_pending_event_disable() */ 2203 irq_work_queue(&event->pending); 2204 } 2205 2206 static void perf_set_shadow_time(struct perf_event *event, 2207 struct perf_event_context *ctx) 2208 { 2209 /* 2210 * use the correct time source for the time snapshot 2211 * 2212 * We could get by without this by leveraging the 2213 * fact that to get to this function, the caller 2214 * has most likely already called update_context_time() 2215 * and update_cgrp_time_xx() and thus both timestamp 2216 * are identical (or very close). Given that tstamp is, 2217 * already adjusted for cgroup, we could say that: 2218 * tstamp - ctx->timestamp 2219 * is equivalent to 2220 * tstamp - cgrp->timestamp. 2221 * 2222 * Then, in perf_output_read(), the calculation would 2223 * work with no changes because: 2224 * - event is guaranteed scheduled in 2225 * - no scheduled out in between 2226 * - thus the timestamp would be the same 2227 * 2228 * But this is a bit hairy. 2229 * 2230 * So instead, we have an explicit cgroup call to remain 2231 * within the time time source all along. We believe it 2232 * is cleaner and simpler to understand. 2233 */ 2234 if (is_cgroup_event(event)) 2235 perf_cgroup_set_shadow_time(event, event->tstamp); 2236 else 2237 event->shadow_ctx_time = event->tstamp - ctx->timestamp; 2238 } 2239 2240 #define MAX_INTERRUPTS (~0ULL) 2241 2242 static void perf_log_throttle(struct perf_event *event, int enable); 2243 static void perf_log_itrace_start(struct perf_event *event); 2244 2245 static int 2246 event_sched_in(struct perf_event *event, 2247 struct perf_cpu_context *cpuctx, 2248 struct perf_event_context *ctx) 2249 { 2250 int ret = 0; 2251 2252 lockdep_assert_held(&ctx->lock); 2253 2254 if (event->state <= PERF_EVENT_STATE_OFF) 2255 return 0; 2256 2257 WRITE_ONCE(event->oncpu, smp_processor_id()); 2258 /* 2259 * Order event::oncpu write to happen before the ACTIVE state is 2260 * visible. This allows perf_event_{stop,read}() to observe the correct 2261 * ->oncpu if it sees ACTIVE. 2262 */ 2263 smp_wmb(); 2264 perf_event_set_state(event, PERF_EVENT_STATE_ACTIVE); 2265 2266 /* 2267 * Unthrottle events, since we scheduled we might have missed several 2268 * ticks already, also for a heavily scheduling task there is little 2269 * guarantee it'll get a tick in a timely manner. 2270 */ 2271 if (unlikely(event->hw.interrupts == MAX_INTERRUPTS)) { 2272 perf_log_throttle(event, 1); 2273 event->hw.interrupts = 0; 2274 } 2275 2276 perf_pmu_disable(event->pmu); 2277 2278 perf_set_shadow_time(event, ctx); 2279 2280 perf_log_itrace_start(event); 2281 2282 if (event->pmu->add(event, PERF_EF_START)) { 2283 perf_event_set_state(event, PERF_EVENT_STATE_INACTIVE); 2284 event->oncpu = -1; 2285 ret = -EAGAIN; 2286 goto out; 2287 } 2288 2289 if (!is_software_event(event)) 2290 cpuctx->active_oncpu++; 2291 if (!ctx->nr_active++) 2292 perf_event_ctx_activate(ctx); 2293 if (event->attr.freq && event->attr.sample_freq) 2294 ctx->nr_freq++; 2295 2296 if (event->attr.exclusive) 2297 cpuctx->exclusive = 1; 2298 2299 out: 2300 perf_pmu_enable(event->pmu); 2301 2302 return ret; 2303 } 2304 2305 static int 2306 group_sched_in(struct perf_event *group_event, 2307 struct perf_cpu_context *cpuctx, 2308 struct perf_event_context *ctx) 2309 { 2310 struct perf_event *event, *partial_group = NULL; 2311 struct pmu *pmu = ctx->pmu; 2312 2313 if (group_event->state == PERF_EVENT_STATE_OFF) 2314 return 0; 2315 2316 pmu->start_txn(pmu, PERF_PMU_TXN_ADD); 2317 2318 if (event_sched_in(group_event, cpuctx, ctx)) { 2319 pmu->cancel_txn(pmu); 2320 perf_mux_hrtimer_restart(cpuctx); 2321 return -EAGAIN; 2322 } 2323 2324 /* 2325 * Schedule in siblings as one group (if any): 2326 */ 2327 for_each_sibling_event(event, group_event) { 2328 if (event_sched_in(event, cpuctx, ctx)) { 2329 partial_group = event; 2330 goto group_error; 2331 } 2332 } 2333 2334 if (!pmu->commit_txn(pmu)) 2335 return 0; 2336 2337 group_error: 2338 /* 2339 * Groups can be scheduled in as one unit only, so undo any 2340 * partial group before returning: 2341 * The events up to the failed event are scheduled out normally. 2342 */ 2343 for_each_sibling_event(event, group_event) { 2344 if (event == partial_group) 2345 break; 2346 2347 event_sched_out(event, cpuctx, ctx); 2348 } 2349 event_sched_out(group_event, cpuctx, ctx); 2350 2351 pmu->cancel_txn(pmu); 2352 2353 perf_mux_hrtimer_restart(cpuctx); 2354 2355 return -EAGAIN; 2356 } 2357 2358 /* 2359 * Work out whether we can put this event group on the CPU now. 2360 */ 2361 static int group_can_go_on(struct perf_event *event, 2362 struct perf_cpu_context *cpuctx, 2363 int can_add_hw) 2364 { 2365 /* 2366 * Groups consisting entirely of software events can always go on. 2367 */ 2368 if (event->group_caps & PERF_EV_CAP_SOFTWARE) 2369 return 1; 2370 /* 2371 * If an exclusive group is already on, no other hardware 2372 * events can go on. 2373 */ 2374 if (cpuctx->exclusive) 2375 return 0; 2376 /* 2377 * If this group is exclusive and there are already 2378 * events on the CPU, it can't go on. 2379 */ 2380 if (event->attr.exclusive && cpuctx->active_oncpu) 2381 return 0; 2382 /* 2383 * Otherwise, try to add it if all previous groups were able 2384 * to go on. 2385 */ 2386 return can_add_hw; 2387 } 2388 2389 static void add_event_to_ctx(struct perf_event *event, 2390 struct perf_event_context *ctx) 2391 { 2392 list_add_event(event, ctx); 2393 perf_group_attach(event); 2394 } 2395 2396 static void ctx_sched_out(struct perf_event_context *ctx, 2397 struct perf_cpu_context *cpuctx, 2398 enum event_type_t event_type); 2399 static void 2400 ctx_sched_in(struct perf_event_context *ctx, 2401 struct perf_cpu_context *cpuctx, 2402 enum event_type_t event_type, 2403 struct task_struct *task); 2404 2405 static void task_ctx_sched_out(struct perf_cpu_context *cpuctx, 2406 struct perf_event_context *ctx, 2407 enum event_type_t event_type) 2408 { 2409 if (!cpuctx->task_ctx) 2410 return; 2411 2412 if (WARN_ON_ONCE(ctx != cpuctx->task_ctx)) 2413 return; 2414 2415 ctx_sched_out(ctx, cpuctx, event_type); 2416 } 2417 2418 static void perf_event_sched_in(struct perf_cpu_context *cpuctx, 2419 struct perf_event_context *ctx, 2420 struct task_struct *task) 2421 { 2422 cpu_ctx_sched_in(cpuctx, EVENT_PINNED, task); 2423 if (ctx) 2424 ctx_sched_in(ctx, cpuctx, EVENT_PINNED, task); 2425 cpu_ctx_sched_in(cpuctx, EVENT_FLEXIBLE, task); 2426 if (ctx) 2427 ctx_sched_in(ctx, cpuctx, EVENT_FLEXIBLE, task); 2428 } 2429 2430 /* 2431 * We want to maintain the following priority of scheduling: 2432 * - CPU pinned (EVENT_CPU | EVENT_PINNED) 2433 * - task pinned (EVENT_PINNED) 2434 * - CPU flexible (EVENT_CPU | EVENT_FLEXIBLE) 2435 * - task flexible (EVENT_FLEXIBLE). 2436 * 2437 * In order to avoid unscheduling and scheduling back in everything every 2438 * time an event is added, only do it for the groups of equal priority and 2439 * below. 2440 * 2441 * This can be called after a batch operation on task events, in which case 2442 * event_type is a bit mask of the types of events involved. For CPU events, 2443 * event_type is only either EVENT_PINNED or EVENT_FLEXIBLE. 2444 */ 2445 static void ctx_resched(struct perf_cpu_context *cpuctx, 2446 struct perf_event_context *task_ctx, 2447 enum event_type_t event_type) 2448 { 2449 enum event_type_t ctx_event_type; 2450 bool cpu_event = !!(event_type & EVENT_CPU); 2451 2452 /* 2453 * If pinned groups are involved, flexible groups also need to be 2454 * scheduled out. 2455 */ 2456 if (event_type & EVENT_PINNED) 2457 event_type |= EVENT_FLEXIBLE; 2458 2459 ctx_event_type = event_type & EVENT_ALL; 2460 2461 perf_pmu_disable(cpuctx->ctx.pmu); 2462 if (task_ctx) 2463 task_ctx_sched_out(cpuctx, task_ctx, event_type); 2464 2465 /* 2466 * Decide which cpu ctx groups to schedule out based on the types 2467 * of events that caused rescheduling: 2468 * - EVENT_CPU: schedule out corresponding groups; 2469 * - EVENT_PINNED task events: schedule out EVENT_FLEXIBLE groups; 2470 * - otherwise, do nothing more. 2471 */ 2472 if (cpu_event) 2473 cpu_ctx_sched_out(cpuctx, ctx_event_type); 2474 else if (ctx_event_type & EVENT_PINNED) 2475 cpu_ctx_sched_out(cpuctx, EVENT_FLEXIBLE); 2476 2477 perf_event_sched_in(cpuctx, task_ctx, current); 2478 perf_pmu_enable(cpuctx->ctx.pmu); 2479 } 2480 2481 void perf_pmu_resched(struct pmu *pmu) 2482 { 2483 struct perf_cpu_context *cpuctx = this_cpu_ptr(pmu->pmu_cpu_context); 2484 struct perf_event_context *task_ctx = cpuctx->task_ctx; 2485 2486 perf_ctx_lock(cpuctx, task_ctx); 2487 ctx_resched(cpuctx, task_ctx, EVENT_ALL|EVENT_CPU); 2488 perf_ctx_unlock(cpuctx, task_ctx); 2489 } 2490 2491 /* 2492 * Cross CPU call to install and enable a performance event 2493 * 2494 * Very similar to remote_function() + event_function() but cannot assume that 2495 * things like ctx->is_active and cpuctx->task_ctx are set. 2496 */ 2497 static int __perf_install_in_context(void *info) 2498 { 2499 struct perf_event *event = info; 2500 struct perf_event_context *ctx = event->ctx; 2501 struct perf_cpu_context *cpuctx = __get_cpu_context(ctx); 2502 struct perf_event_context *task_ctx = cpuctx->task_ctx; 2503 bool reprogram = true; 2504 int ret = 0; 2505 2506 raw_spin_lock(&cpuctx->ctx.lock); 2507 if (ctx->task) { 2508 raw_spin_lock(&ctx->lock); 2509 task_ctx = ctx; 2510 2511 reprogram = (ctx->task == current); 2512 2513 /* 2514 * If the task is running, it must be running on this CPU, 2515 * otherwise we cannot reprogram things. 2516 * 2517 * If its not running, we don't care, ctx->lock will 2518 * serialize against it becoming runnable. 2519 */ 2520 if (task_curr(ctx->task) && !reprogram) { 2521 ret = -ESRCH; 2522 goto unlock; 2523 } 2524 2525 WARN_ON_ONCE(reprogram && cpuctx->task_ctx && cpuctx->task_ctx != ctx); 2526 } else if (task_ctx) { 2527 raw_spin_lock(&task_ctx->lock); 2528 } 2529 2530 #ifdef CONFIG_CGROUP_PERF 2531 if (is_cgroup_event(event)) { 2532 /* 2533 * If the current cgroup doesn't match the event's 2534 * cgroup, we should not try to schedule it. 2535 */ 2536 struct perf_cgroup *cgrp = perf_cgroup_from_task(current, ctx); 2537 reprogram = cgroup_is_descendant(cgrp->css.cgroup, 2538 event->cgrp->css.cgroup); 2539 } 2540 #endif 2541 2542 if (reprogram) { 2543 ctx_sched_out(ctx, cpuctx, EVENT_TIME); 2544 add_event_to_ctx(event, ctx); 2545 ctx_resched(cpuctx, task_ctx, get_event_type(event)); 2546 } else { 2547 add_event_to_ctx(event, ctx); 2548 } 2549 2550 unlock: 2551 perf_ctx_unlock(cpuctx, task_ctx); 2552 2553 return ret; 2554 } 2555 2556 /* 2557 * Attach a performance event to a context. 2558 * 2559 * Very similar to event_function_call, see comment there. 2560 */ 2561 static void 2562 perf_install_in_context(struct perf_event_context *ctx, 2563 struct perf_event *event, 2564 int cpu) 2565 { 2566 struct task_struct *task = READ_ONCE(ctx->task); 2567 2568 lockdep_assert_held(&ctx->mutex); 2569 2570 if (event->cpu != -1) 2571 event->cpu = cpu; 2572 2573 /* 2574 * Ensures that if we can observe event->ctx, both the event and ctx 2575 * will be 'complete'. See perf_iterate_sb_cpu(). 2576 */ 2577 smp_store_release(&event->ctx, ctx); 2578 2579 if (!task) { 2580 cpu_function_call(cpu, __perf_install_in_context, event); 2581 return; 2582 } 2583 2584 /* 2585 * Should not happen, we validate the ctx is still alive before calling. 2586 */ 2587 if (WARN_ON_ONCE(task == TASK_TOMBSTONE)) 2588 return; 2589 2590 /* 2591 * Installing events is tricky because we cannot rely on ctx->is_active 2592 * to be set in case this is the nr_events 0 -> 1 transition. 2593 * 2594 * Instead we use task_curr(), which tells us if the task is running. 2595 * However, since we use task_curr() outside of rq::lock, we can race 2596 * against the actual state. This means the result can be wrong. 2597 * 2598 * If we get a false positive, we retry, this is harmless. 2599 * 2600 * If we get a false negative, things are complicated. If we are after 2601 * perf_event_context_sched_in() ctx::lock will serialize us, and the 2602 * value must be correct. If we're before, it doesn't matter since 2603 * perf_event_context_sched_in() will program the counter. 2604 * 2605 * However, this hinges on the remote context switch having observed 2606 * our task->perf_event_ctxp[] store, such that it will in fact take 2607 * ctx::lock in perf_event_context_sched_in(). 2608 * 2609 * We do this by task_function_call(), if the IPI fails to hit the task 2610 * we know any future context switch of task must see the 2611 * perf_event_ctpx[] store. 2612 */ 2613 2614 /* 2615 * This smp_mb() orders the task->perf_event_ctxp[] store with the 2616 * task_cpu() load, such that if the IPI then does not find the task 2617 * running, a future context switch of that task must observe the 2618 * store. 2619 */ 2620 smp_mb(); 2621 again: 2622 if (!task_function_call(task, __perf_install_in_context, event)) 2623 return; 2624 2625 raw_spin_lock_irq(&ctx->lock); 2626 task = ctx->task; 2627 if (WARN_ON_ONCE(task == TASK_TOMBSTONE)) { 2628 /* 2629 * Cannot happen because we already checked above (which also 2630 * cannot happen), and we hold ctx->mutex, which serializes us 2631 * against perf_event_exit_task_context(). 2632 */ 2633 raw_spin_unlock_irq(&ctx->lock); 2634 return; 2635 } 2636 /* 2637 * If the task is not running, ctx->lock will avoid it becoming so, 2638 * thus we can safely install the event. 2639 */ 2640 if (task_curr(task)) { 2641 raw_spin_unlock_irq(&ctx->lock); 2642 goto again; 2643 } 2644 add_event_to_ctx(event, ctx); 2645 raw_spin_unlock_irq(&ctx->lock); 2646 } 2647 2648 /* 2649 * Cross CPU call to enable a performance event 2650 */ 2651 static void __perf_event_enable(struct perf_event *event, 2652 struct perf_cpu_context *cpuctx, 2653 struct perf_event_context *ctx, 2654 void *info) 2655 { 2656 struct perf_event *leader = event->group_leader; 2657 struct perf_event_context *task_ctx; 2658 2659 if (event->state >= PERF_EVENT_STATE_INACTIVE || 2660 event->state <= PERF_EVENT_STATE_ERROR) 2661 return; 2662 2663 if (ctx->is_active) 2664 ctx_sched_out(ctx, cpuctx, EVENT_TIME); 2665 2666 perf_event_set_state(event, PERF_EVENT_STATE_INACTIVE); 2667 2668 if (!ctx->is_active) 2669 return; 2670 2671 if (!event_filter_match(event)) { 2672 ctx_sched_in(ctx, cpuctx, EVENT_TIME, current); 2673 return; 2674 } 2675 2676 /* 2677 * If the event is in a group and isn't the group leader, 2678 * then don't put it on unless the group is on. 2679 */ 2680 if (leader != event && leader->state != PERF_EVENT_STATE_ACTIVE) { 2681 ctx_sched_in(ctx, cpuctx, EVENT_TIME, current); 2682 return; 2683 } 2684 2685 task_ctx = cpuctx->task_ctx; 2686 if (ctx->task) 2687 WARN_ON_ONCE(task_ctx != ctx); 2688 2689 ctx_resched(cpuctx, task_ctx, get_event_type(event)); 2690 } 2691 2692 /* 2693 * Enable an event. 2694 * 2695 * If event->ctx is a cloned context, callers must make sure that 2696 * every task struct that event->ctx->task could possibly point to 2697 * remains valid. This condition is satisfied when called through 2698 * perf_event_for_each_child or perf_event_for_each as described 2699 * for perf_event_disable. 2700 */ 2701 static void _perf_event_enable(struct perf_event *event) 2702 { 2703 struct perf_event_context *ctx = event->ctx; 2704 2705 raw_spin_lock_irq(&ctx->lock); 2706 if (event->state >= PERF_EVENT_STATE_INACTIVE || 2707 event->state < PERF_EVENT_STATE_ERROR) { 2708 raw_spin_unlock_irq(&ctx->lock); 2709 return; 2710 } 2711 2712 /* 2713 * If the event is in error state, clear that first. 2714 * 2715 * That way, if we see the event in error state below, we know that it 2716 * has gone back into error state, as distinct from the task having 2717 * been scheduled away before the cross-call arrived. 2718 */ 2719 if (event->state == PERF_EVENT_STATE_ERROR) 2720 event->state = PERF_EVENT_STATE_OFF; 2721 raw_spin_unlock_irq(&ctx->lock); 2722 2723 event_function_call(event, __perf_event_enable, NULL); 2724 } 2725 2726 /* 2727 * See perf_event_disable(); 2728 */ 2729 void perf_event_enable(struct perf_event *event) 2730 { 2731 struct perf_event_context *ctx; 2732 2733 ctx = perf_event_ctx_lock(event); 2734 _perf_event_enable(event); 2735 perf_event_ctx_unlock(event, ctx); 2736 } 2737 EXPORT_SYMBOL_GPL(perf_event_enable); 2738 2739 struct stop_event_data { 2740 struct perf_event *event; 2741 unsigned int restart; 2742 }; 2743 2744 static int __perf_event_stop(void *info) 2745 { 2746 struct stop_event_data *sd = info; 2747 struct perf_event *event = sd->event; 2748 2749 /* if it's already INACTIVE, do nothing */ 2750 if (READ_ONCE(event->state) != PERF_EVENT_STATE_ACTIVE) 2751 return 0; 2752 2753 /* matches smp_wmb() in event_sched_in() */ 2754 smp_rmb(); 2755 2756 /* 2757 * There is a window with interrupts enabled before we get here, 2758 * so we need to check again lest we try to stop another CPU's event. 2759 */ 2760 if (READ_ONCE(event->oncpu) != smp_processor_id()) 2761 return -EAGAIN; 2762 2763 event->pmu->stop(event, PERF_EF_UPDATE); 2764 2765 /* 2766 * May race with the actual stop (through perf_pmu_output_stop()), 2767 * but it is only used for events with AUX ring buffer, and such 2768 * events will refuse to restart because of rb::aux_mmap_count==0, 2769 * see comments in perf_aux_output_begin(). 2770 * 2771 * Since this is happening on an event-local CPU, no trace is lost 2772 * while restarting. 2773 */ 2774 if (sd->restart) 2775 event->pmu->start(event, 0); 2776 2777 return 0; 2778 } 2779 2780 static int perf_event_stop(struct perf_event *event, int restart) 2781 { 2782 struct stop_event_data sd = { 2783 .event = event, 2784 .restart = restart, 2785 }; 2786 int ret = 0; 2787 2788 do { 2789 if (READ_ONCE(event->state) != PERF_EVENT_STATE_ACTIVE) 2790 return 0; 2791 2792 /* matches smp_wmb() in event_sched_in() */ 2793 smp_rmb(); 2794 2795 /* 2796 * We only want to restart ACTIVE events, so if the event goes 2797 * inactive here (event->oncpu==-1), there's nothing more to do; 2798 * fall through with ret==-ENXIO. 2799 */ 2800 ret = cpu_function_call(READ_ONCE(event->oncpu), 2801 __perf_event_stop, &sd); 2802 } while (ret == -EAGAIN); 2803 2804 return ret; 2805 } 2806 2807 /* 2808 * In order to contain the amount of racy and tricky in the address filter 2809 * configuration management, it is a two part process: 2810 * 2811 * (p1) when userspace mappings change as a result of (1) or (2) or (3) below, 2812 * we update the addresses of corresponding vmas in 2813 * event::addr_filter_ranges array and bump the event::addr_filters_gen; 2814 * (p2) when an event is scheduled in (pmu::add), it calls 2815 * perf_event_addr_filters_sync() which calls pmu::addr_filters_sync() 2816 * if the generation has changed since the previous call. 2817 * 2818 * If (p1) happens while the event is active, we restart it to force (p2). 2819 * 2820 * (1) perf_addr_filters_apply(): adjusting filters' offsets based on 2821 * pre-existing mappings, called once when new filters arrive via SET_FILTER 2822 * ioctl; 2823 * (2) perf_addr_filters_adjust(): adjusting filters' offsets based on newly 2824 * registered mapping, called for every new mmap(), with mm::mmap_sem down 2825 * for reading; 2826 * (3) perf_event_addr_filters_exec(): clearing filters' offsets in the process 2827 * of exec. 2828 */ 2829 void perf_event_addr_filters_sync(struct perf_event *event) 2830 { 2831 struct perf_addr_filters_head *ifh = perf_event_addr_filters(event); 2832 2833 if (!has_addr_filter(event)) 2834 return; 2835 2836 raw_spin_lock(&ifh->lock); 2837 if (event->addr_filters_gen != event->hw.addr_filters_gen) { 2838 event->pmu->addr_filters_sync(event); 2839 event->hw.addr_filters_gen = event->addr_filters_gen; 2840 } 2841 raw_spin_unlock(&ifh->lock); 2842 } 2843 EXPORT_SYMBOL_GPL(perf_event_addr_filters_sync); 2844 2845 static int _perf_event_refresh(struct perf_event *event, int refresh) 2846 { 2847 /* 2848 * not supported on inherited events 2849 */ 2850 if (event->attr.inherit || !is_sampling_event(event)) 2851 return -EINVAL; 2852 2853 atomic_add(refresh, &event->event_limit); 2854 _perf_event_enable(event); 2855 2856 return 0; 2857 } 2858 2859 /* 2860 * See perf_event_disable() 2861 */ 2862 int perf_event_refresh(struct perf_event *event, int refresh) 2863 { 2864 struct perf_event_context *ctx; 2865 int ret; 2866 2867 ctx = perf_event_ctx_lock(event); 2868 ret = _perf_event_refresh(event, refresh); 2869 perf_event_ctx_unlock(event, ctx); 2870 2871 return ret; 2872 } 2873 EXPORT_SYMBOL_GPL(perf_event_refresh); 2874 2875 static int perf_event_modify_breakpoint(struct perf_event *bp, 2876 struct perf_event_attr *attr) 2877 { 2878 int err; 2879 2880 _perf_event_disable(bp); 2881 2882 err = modify_user_hw_breakpoint_check(bp, attr, true); 2883 2884 if (!bp->attr.disabled) 2885 _perf_event_enable(bp); 2886 2887 return err; 2888 } 2889 2890 static int perf_event_modify_attr(struct perf_event *event, 2891 struct perf_event_attr *attr) 2892 { 2893 if (event->attr.type != attr->type) 2894 return -EINVAL; 2895 2896 switch (event->attr.type) { 2897 case PERF_TYPE_BREAKPOINT: 2898 return perf_event_modify_breakpoint(event, attr); 2899 default: 2900 /* Place holder for future additions. */ 2901 return -EOPNOTSUPP; 2902 } 2903 } 2904 2905 static void ctx_sched_out(struct perf_event_context *ctx, 2906 struct perf_cpu_context *cpuctx, 2907 enum event_type_t event_type) 2908 { 2909 struct perf_event *event, *tmp; 2910 int is_active = ctx->is_active; 2911 2912 lockdep_assert_held(&ctx->lock); 2913 2914 if (likely(!ctx->nr_events)) { 2915 /* 2916 * See __perf_remove_from_context(). 2917 */ 2918 WARN_ON_ONCE(ctx->is_active); 2919 if (ctx->task) 2920 WARN_ON_ONCE(cpuctx->task_ctx); 2921 return; 2922 } 2923 2924 ctx->is_active &= ~event_type; 2925 if (!(ctx->is_active & EVENT_ALL)) 2926 ctx->is_active = 0; 2927 2928 if (ctx->task) { 2929 WARN_ON_ONCE(cpuctx->task_ctx != ctx); 2930 if (!ctx->is_active) 2931 cpuctx->task_ctx = NULL; 2932 } 2933 2934 /* 2935 * Always update time if it was set; not only when it changes. 2936 * Otherwise we can 'forget' to update time for any but the last 2937 * context we sched out. For example: 2938 * 2939 * ctx_sched_out(.event_type = EVENT_FLEXIBLE) 2940 * ctx_sched_out(.event_type = EVENT_PINNED) 2941 * 2942 * would only update time for the pinned events. 2943 */ 2944 if (is_active & EVENT_TIME) { 2945 /* update (and stop) ctx time */ 2946 update_context_time(ctx); 2947 update_cgrp_time_from_cpuctx(cpuctx); 2948 } 2949 2950 is_active ^= ctx->is_active; /* changed bits */ 2951 2952 if (!ctx->nr_active || !(is_active & EVENT_ALL)) 2953 return; 2954 2955 /* 2956 * If we had been multiplexing, no rotations are necessary, now no events 2957 * are active. 2958 */ 2959 ctx->rotate_necessary = 0; 2960 2961 perf_pmu_disable(ctx->pmu); 2962 if (is_active & EVENT_PINNED) { 2963 list_for_each_entry_safe(event, tmp, &ctx->pinned_active, active_list) 2964 group_sched_out(event, cpuctx, ctx); 2965 } 2966 2967 if (is_active & EVENT_FLEXIBLE) { 2968 list_for_each_entry_safe(event, tmp, &ctx->flexible_active, active_list) 2969 group_sched_out(event, cpuctx, ctx); 2970 } 2971 perf_pmu_enable(ctx->pmu); 2972 } 2973 2974 /* 2975 * Test whether two contexts are equivalent, i.e. whether they have both been 2976 * cloned from the same version of the same context. 2977 * 2978 * Equivalence is measured using a generation number in the context that is 2979 * incremented on each modification to it; see unclone_ctx(), list_add_event() 2980 * and list_del_event(). 2981 */ 2982 static int context_equiv(struct perf_event_context *ctx1, 2983 struct perf_event_context *ctx2) 2984 { 2985 lockdep_assert_held(&ctx1->lock); 2986 lockdep_assert_held(&ctx2->lock); 2987 2988 /* Pinning disables the swap optimization */ 2989 if (ctx1->pin_count || ctx2->pin_count) 2990 return 0; 2991 2992 /* If ctx1 is the parent of ctx2 */ 2993 if (ctx1 == ctx2->parent_ctx && ctx1->generation == ctx2->parent_gen) 2994 return 1; 2995 2996 /* If ctx2 is the parent of ctx1 */ 2997 if (ctx1->parent_ctx == ctx2 && ctx1->parent_gen == ctx2->generation) 2998 return 1; 2999 3000 /* 3001 * If ctx1 and ctx2 have the same parent; we flatten the parent 3002 * hierarchy, see perf_event_init_context(). 3003 */ 3004 if (ctx1->parent_ctx && ctx1->parent_ctx == ctx2->parent_ctx && 3005 ctx1->parent_gen == ctx2->parent_gen) 3006 return 1; 3007 3008 /* Unmatched */ 3009 return 0; 3010 } 3011 3012 static void __perf_event_sync_stat(struct perf_event *event, 3013 struct perf_event *next_event) 3014 { 3015 u64 value; 3016 3017 if (!event->attr.inherit_stat) 3018 return; 3019 3020 /* 3021 * Update the event value, we cannot use perf_event_read() 3022 * because we're in the middle of a context switch and have IRQs 3023 * disabled, which upsets smp_call_function_single(), however 3024 * we know the event must be on the current CPU, therefore we 3025 * don't need to use it. 3026 */ 3027 if (event->state == PERF_EVENT_STATE_ACTIVE) 3028 event->pmu->read(event); 3029 3030 perf_event_update_time(event); 3031 3032 /* 3033 * In order to keep per-task stats reliable we need to flip the event 3034 * values when we flip the contexts. 3035 */ 3036 value = local64_read(&next_event->count); 3037 value = local64_xchg(&event->count, value); 3038 local64_set(&next_event->count, value); 3039 3040 swap(event->total_time_enabled, next_event->total_time_enabled); 3041 swap(event->total_time_running, next_event->total_time_running); 3042 3043 /* 3044 * Since we swizzled the values, update the user visible data too. 3045 */ 3046 perf_event_update_userpage(event); 3047 perf_event_update_userpage(next_event); 3048 } 3049 3050 static void perf_event_sync_stat(struct perf_event_context *ctx, 3051 struct perf_event_context *next_ctx) 3052 { 3053 struct perf_event *event, *next_event; 3054 3055 if (!ctx->nr_stat) 3056 return; 3057 3058 update_context_time(ctx); 3059 3060 event = list_first_entry(&ctx->event_list, 3061 struct perf_event, event_entry); 3062 3063 next_event = list_first_entry(&next_ctx->event_list, 3064 struct perf_event, event_entry); 3065 3066 while (&event->event_entry != &ctx->event_list && 3067 &next_event->event_entry != &next_ctx->event_list) { 3068 3069 __perf_event_sync_stat(event, next_event); 3070 3071 event = list_next_entry(event, event_entry); 3072 next_event = list_next_entry(next_event, event_entry); 3073 } 3074 } 3075 3076 static void perf_event_context_sched_out(struct task_struct *task, int ctxn, 3077 struct task_struct *next) 3078 { 3079 struct perf_event_context *ctx = task->perf_event_ctxp[ctxn]; 3080 struct perf_event_context *next_ctx; 3081 struct perf_event_context *parent, *next_parent; 3082 struct perf_cpu_context *cpuctx; 3083 int do_switch = 1; 3084 3085 if (likely(!ctx)) 3086 return; 3087 3088 cpuctx = __get_cpu_context(ctx); 3089 if (!cpuctx->task_ctx) 3090 return; 3091 3092 rcu_read_lock(); 3093 next_ctx = next->perf_event_ctxp[ctxn]; 3094 if (!next_ctx) 3095 goto unlock; 3096 3097 parent = rcu_dereference(ctx->parent_ctx); 3098 next_parent = rcu_dereference(next_ctx->parent_ctx); 3099 3100 /* If neither context have a parent context; they cannot be clones. */ 3101 if (!parent && !next_parent) 3102 goto unlock; 3103 3104 if (next_parent == ctx || next_ctx == parent || next_parent == parent) { 3105 /* 3106 * Looks like the two contexts are clones, so we might be 3107 * able to optimize the context switch. We lock both 3108 * contexts and check that they are clones under the 3109 * lock (including re-checking that neither has been 3110 * uncloned in the meantime). It doesn't matter which 3111 * order we take the locks because no other cpu could 3112 * be trying to lock both of these tasks. 3113 */ 3114 raw_spin_lock(&ctx->lock); 3115 raw_spin_lock_nested(&next_ctx->lock, SINGLE_DEPTH_NESTING); 3116 if (context_equiv(ctx, next_ctx)) { 3117 WRITE_ONCE(ctx->task, next); 3118 WRITE_ONCE(next_ctx->task, task); 3119 3120 swap(ctx->task_ctx_data, next_ctx->task_ctx_data); 3121 3122 /* 3123 * RCU_INIT_POINTER here is safe because we've not 3124 * modified the ctx and the above modification of 3125 * ctx->task and ctx->task_ctx_data are immaterial 3126 * since those values are always verified under 3127 * ctx->lock which we're now holding. 3128 */ 3129 RCU_INIT_POINTER(task->perf_event_ctxp[ctxn], next_ctx); 3130 RCU_INIT_POINTER(next->perf_event_ctxp[ctxn], ctx); 3131 3132 do_switch = 0; 3133 3134 perf_event_sync_stat(ctx, next_ctx); 3135 } 3136 raw_spin_unlock(&next_ctx->lock); 3137 raw_spin_unlock(&ctx->lock); 3138 } 3139 unlock: 3140 rcu_read_unlock(); 3141 3142 if (do_switch) { 3143 raw_spin_lock(&ctx->lock); 3144 task_ctx_sched_out(cpuctx, ctx, EVENT_ALL); 3145 raw_spin_unlock(&ctx->lock); 3146 } 3147 } 3148 3149 static DEFINE_PER_CPU(struct list_head, sched_cb_list); 3150 3151 void perf_sched_cb_dec(struct pmu *pmu) 3152 { 3153 struct perf_cpu_context *cpuctx = this_cpu_ptr(pmu->pmu_cpu_context); 3154 3155 this_cpu_dec(perf_sched_cb_usages); 3156 3157 if (!--cpuctx->sched_cb_usage) 3158 list_del(&cpuctx->sched_cb_entry); 3159 } 3160 3161 3162 void perf_sched_cb_inc(struct pmu *pmu) 3163 { 3164 struct perf_cpu_context *cpuctx = this_cpu_ptr(pmu->pmu_cpu_context); 3165 3166 if (!cpuctx->sched_cb_usage++) 3167 list_add(&cpuctx->sched_cb_entry, this_cpu_ptr(&sched_cb_list)); 3168 3169 this_cpu_inc(perf_sched_cb_usages); 3170 } 3171 3172 /* 3173 * This function provides the context switch callback to the lower code 3174 * layer. It is invoked ONLY when the context switch callback is enabled. 3175 * 3176 * This callback is relevant even to per-cpu events; for example multi event 3177 * PEBS requires this to provide PID/TID information. This requires we flush 3178 * all queued PEBS records before we context switch to a new task. 3179 */ 3180 static void perf_pmu_sched_task(struct task_struct *prev, 3181 struct task_struct *next, 3182 bool sched_in) 3183 { 3184 struct perf_cpu_context *cpuctx; 3185 struct pmu *pmu; 3186 3187 if (prev == next) 3188 return; 3189 3190 list_for_each_entry(cpuctx, this_cpu_ptr(&sched_cb_list), sched_cb_entry) { 3191 pmu = cpuctx->ctx.pmu; /* software PMUs will not have sched_task */ 3192 3193 if (WARN_ON_ONCE(!pmu->sched_task)) 3194 continue; 3195 3196 perf_ctx_lock(cpuctx, cpuctx->task_ctx); 3197 perf_pmu_disable(pmu); 3198 3199 pmu->sched_task(cpuctx->task_ctx, sched_in); 3200 3201 perf_pmu_enable(pmu); 3202 perf_ctx_unlock(cpuctx, cpuctx->task_ctx); 3203 } 3204 } 3205 3206 static void perf_event_switch(struct task_struct *task, 3207 struct task_struct *next_prev, bool sched_in); 3208 3209 #define for_each_task_context_nr(ctxn) \ 3210 for ((ctxn) = 0; (ctxn) < perf_nr_task_contexts; (ctxn)++) 3211 3212 /* 3213 * Called from scheduler to remove the events of the current task, 3214 * with interrupts disabled. 3215 * 3216 * We stop each event and update the event value in event->count. 3217 * 3218 * This does not protect us against NMI, but disable() 3219 * sets the disabled bit in the control field of event _before_ 3220 * accessing the event control register. If a NMI hits, then it will 3221 * not restart the event. 3222 */ 3223 void __perf_event_task_sched_out(struct task_struct *task, 3224 struct task_struct *next) 3225 { 3226 int ctxn; 3227 3228 if (__this_cpu_read(perf_sched_cb_usages)) 3229 perf_pmu_sched_task(task, next, false); 3230 3231 if (atomic_read(&nr_switch_events)) 3232 perf_event_switch(task, next, false); 3233 3234 for_each_task_context_nr(ctxn) 3235 perf_event_context_sched_out(task, ctxn, next); 3236 3237 /* 3238 * if cgroup events exist on this CPU, then we need 3239 * to check if we have to switch out PMU state. 3240 * cgroup event are system-wide mode only 3241 */ 3242 if (atomic_read(this_cpu_ptr(&perf_cgroup_events))) 3243 perf_cgroup_sched_out(task, next); 3244 } 3245 3246 /* 3247 * Called with IRQs disabled 3248 */ 3249 static void cpu_ctx_sched_out(struct perf_cpu_context *cpuctx, 3250 enum event_type_t event_type) 3251 { 3252 ctx_sched_out(&cpuctx->ctx, cpuctx, event_type); 3253 } 3254 3255 static int visit_groups_merge(struct perf_event_groups *groups, int cpu, 3256 int (*func)(struct perf_event *, void *), void *data) 3257 { 3258 struct perf_event **evt, *evt1, *evt2; 3259 int ret; 3260 3261 evt1 = perf_event_groups_first(groups, -1); 3262 evt2 = perf_event_groups_first(groups, cpu); 3263 3264 while (evt1 || evt2) { 3265 if (evt1 && evt2) { 3266 if (evt1->group_index < evt2->group_index) 3267 evt = &evt1; 3268 else 3269 evt = &evt2; 3270 } else if (evt1) { 3271 evt = &evt1; 3272 } else { 3273 evt = &evt2; 3274 } 3275 3276 ret = func(*evt, data); 3277 if (ret) 3278 return ret; 3279 3280 *evt = perf_event_groups_next(*evt); 3281 } 3282 3283 return 0; 3284 } 3285 3286 struct sched_in_data { 3287 struct perf_event_context *ctx; 3288 struct perf_cpu_context *cpuctx; 3289 int can_add_hw; 3290 }; 3291 3292 static int pinned_sched_in(struct perf_event *event, void *data) 3293 { 3294 struct sched_in_data *sid = data; 3295 3296 if (event->state <= PERF_EVENT_STATE_OFF) 3297 return 0; 3298 3299 if (!event_filter_match(event)) 3300 return 0; 3301 3302 if (group_can_go_on(event, sid->cpuctx, sid->can_add_hw)) { 3303 if (!group_sched_in(event, sid->cpuctx, sid->ctx)) 3304 list_add_tail(&event->active_list, &sid->ctx->pinned_active); 3305 } 3306 3307 /* 3308 * If this pinned group hasn't been scheduled, 3309 * put it in error state. 3310 */ 3311 if (event->state == PERF_EVENT_STATE_INACTIVE) 3312 perf_event_set_state(event, PERF_EVENT_STATE_ERROR); 3313 3314 return 0; 3315 } 3316 3317 static int flexible_sched_in(struct perf_event *event, void *data) 3318 { 3319 struct sched_in_data *sid = data; 3320 3321 if (event->state <= PERF_EVENT_STATE_OFF) 3322 return 0; 3323 3324 if (!event_filter_match(event)) 3325 return 0; 3326 3327 if (group_can_go_on(event, sid->cpuctx, sid->can_add_hw)) { 3328 int ret = group_sched_in(event, sid->cpuctx, sid->ctx); 3329 if (ret) { 3330 sid->can_add_hw = 0; 3331 sid->ctx->rotate_necessary = 1; 3332 return 0; 3333 } 3334 list_add_tail(&event->active_list, &sid->ctx->flexible_active); 3335 } 3336 3337 return 0; 3338 } 3339 3340 static void 3341 ctx_pinned_sched_in(struct perf_event_context *ctx, 3342 struct perf_cpu_context *cpuctx) 3343 { 3344 struct sched_in_data sid = { 3345 .ctx = ctx, 3346 .cpuctx = cpuctx, 3347 .can_add_hw = 1, 3348 }; 3349 3350 visit_groups_merge(&ctx->pinned_groups, 3351 smp_processor_id(), 3352 pinned_sched_in, &sid); 3353 } 3354 3355 static void 3356 ctx_flexible_sched_in(struct perf_event_context *ctx, 3357 struct perf_cpu_context *cpuctx) 3358 { 3359 struct sched_in_data sid = { 3360 .ctx = ctx, 3361 .cpuctx = cpuctx, 3362 .can_add_hw = 1, 3363 }; 3364 3365 visit_groups_merge(&ctx->flexible_groups, 3366 smp_processor_id(), 3367 flexible_sched_in, &sid); 3368 } 3369 3370 static void 3371 ctx_sched_in(struct perf_event_context *ctx, 3372 struct perf_cpu_context *cpuctx, 3373 enum event_type_t event_type, 3374 struct task_struct *task) 3375 { 3376 int is_active = ctx->is_active; 3377 u64 now; 3378 3379 lockdep_assert_held(&ctx->lock); 3380 3381 if (likely(!ctx->nr_events)) 3382 return; 3383 3384 ctx->is_active |= (event_type | EVENT_TIME); 3385 if (ctx->task) { 3386 if (!is_active) 3387 cpuctx->task_ctx = ctx; 3388 else 3389 WARN_ON_ONCE(cpuctx->task_ctx != ctx); 3390 } 3391 3392 is_active ^= ctx->is_active; /* changed bits */ 3393 3394 if (is_active & EVENT_TIME) { 3395 /* start ctx time */ 3396 now = perf_clock(); 3397 ctx->timestamp = now; 3398 perf_cgroup_set_timestamp(task, ctx); 3399 } 3400 3401 /* 3402 * First go through the list and put on any pinned groups 3403 * in order to give them the best chance of going on. 3404 */ 3405 if (is_active & EVENT_PINNED) 3406 ctx_pinned_sched_in(ctx, cpuctx); 3407 3408 /* Then walk through the lower prio flexible groups */ 3409 if (is_active & EVENT_FLEXIBLE) 3410 ctx_flexible_sched_in(ctx, cpuctx); 3411 } 3412 3413 static void cpu_ctx_sched_in(struct perf_cpu_context *cpuctx, 3414 enum event_type_t event_type, 3415 struct task_struct *task) 3416 { 3417 struct perf_event_context *ctx = &cpuctx->ctx; 3418 3419 ctx_sched_in(ctx, cpuctx, event_type, task); 3420 } 3421 3422 static void perf_event_context_sched_in(struct perf_event_context *ctx, 3423 struct task_struct *task) 3424 { 3425 struct perf_cpu_context *cpuctx; 3426 3427 cpuctx = __get_cpu_context(ctx); 3428 if (cpuctx->task_ctx == ctx) 3429 return; 3430 3431 perf_ctx_lock(cpuctx, ctx); 3432 /* 3433 * We must check ctx->nr_events while holding ctx->lock, such 3434 * that we serialize against perf_install_in_context(). 3435 */ 3436 if (!ctx->nr_events) 3437 goto unlock; 3438 3439 perf_pmu_disable(ctx->pmu); 3440 /* 3441 * We want to keep the following priority order: 3442 * cpu pinned (that don't need to move), task pinned, 3443 * cpu flexible, task flexible. 3444 * 3445 * However, if task's ctx is not carrying any pinned 3446 * events, no need to flip the cpuctx's events around. 3447 */ 3448 if (!RB_EMPTY_ROOT(&ctx->pinned_groups.tree)) 3449 cpu_ctx_sched_out(cpuctx, EVENT_FLEXIBLE); 3450 perf_event_sched_in(cpuctx, ctx, task); 3451 perf_pmu_enable(ctx->pmu); 3452 3453 unlock: 3454 perf_ctx_unlock(cpuctx, ctx); 3455 } 3456 3457 /* 3458 * Called from scheduler to add the events of the current task 3459 * with interrupts disabled. 3460 * 3461 * We restore the event value and then enable it. 3462 * 3463 * This does not protect us against NMI, but enable() 3464 * sets the enabled bit in the control field of event _before_ 3465 * accessing the event control register. If a NMI hits, then it will 3466 * keep the event running. 3467 */ 3468 void __perf_event_task_sched_in(struct task_struct *prev, 3469 struct task_struct *task) 3470 { 3471 struct perf_event_context *ctx; 3472 int ctxn; 3473 3474 /* 3475 * If cgroup events exist on this CPU, then we need to check if we have 3476 * to switch in PMU state; cgroup event are system-wide mode only. 3477 * 3478 * Since cgroup events are CPU events, we must schedule these in before 3479 * we schedule in the task events. 3480 */ 3481 if (atomic_read(this_cpu_ptr(&perf_cgroup_events))) 3482 perf_cgroup_sched_in(prev, task); 3483 3484 for_each_task_context_nr(ctxn) { 3485 ctx = task->perf_event_ctxp[ctxn]; 3486 if (likely(!ctx)) 3487 continue; 3488 3489 perf_event_context_sched_in(ctx, task); 3490 } 3491 3492 if (atomic_read(&nr_switch_events)) 3493 perf_event_switch(task, prev, true); 3494 3495 if (__this_cpu_read(perf_sched_cb_usages)) 3496 perf_pmu_sched_task(prev, task, true); 3497 } 3498 3499 static u64 perf_calculate_period(struct perf_event *event, u64 nsec, u64 count) 3500 { 3501 u64 frequency = event->attr.sample_freq; 3502 u64 sec = NSEC_PER_SEC; 3503 u64 divisor, dividend; 3504 3505 int count_fls, nsec_fls, frequency_fls, sec_fls; 3506 3507 count_fls = fls64(count); 3508 nsec_fls = fls64(nsec); 3509 frequency_fls = fls64(frequency); 3510 sec_fls = 30; 3511 3512 /* 3513 * We got @count in @nsec, with a target of sample_freq HZ 3514 * the target period becomes: 3515 * 3516 * @count * 10^9 3517 * period = ------------------- 3518 * @nsec * sample_freq 3519 * 3520 */ 3521 3522 /* 3523 * Reduce accuracy by one bit such that @a and @b converge 3524 * to a similar magnitude. 3525 */ 3526 #define REDUCE_FLS(a, b) \ 3527 do { \ 3528 if (a##_fls > b##_fls) { \ 3529 a >>= 1; \ 3530 a##_fls--; \ 3531 } else { \ 3532 b >>= 1; \ 3533 b##_fls--; \ 3534 } \ 3535 } while (0) 3536 3537 /* 3538 * Reduce accuracy until either term fits in a u64, then proceed with 3539 * the other, so that finally we can do a u64/u64 division. 3540 */ 3541 while (count_fls + sec_fls > 64 && nsec_fls + frequency_fls > 64) { 3542 REDUCE_FLS(nsec, frequency); 3543 REDUCE_FLS(sec, count); 3544 } 3545 3546 if (count_fls + sec_fls > 64) { 3547 divisor = nsec * frequency; 3548 3549 while (count_fls + sec_fls > 64) { 3550 REDUCE_FLS(count, sec); 3551 divisor >>= 1; 3552 } 3553 3554 dividend = count * sec; 3555 } else { 3556 dividend = count * sec; 3557 3558 while (nsec_fls + frequency_fls > 64) { 3559 REDUCE_FLS(nsec, frequency); 3560 dividend >>= 1; 3561 } 3562 3563 divisor = nsec * frequency; 3564 } 3565 3566 if (!divisor) 3567 return dividend; 3568 3569 return div64_u64(dividend, divisor); 3570 } 3571 3572 static DEFINE_PER_CPU(int, perf_throttled_count); 3573 static DEFINE_PER_CPU(u64, perf_throttled_seq); 3574 3575 static void perf_adjust_period(struct perf_event *event, u64 nsec, u64 count, bool disable) 3576 { 3577 struct hw_perf_event *hwc = &event->hw; 3578 s64 period, sample_period; 3579 s64 delta; 3580 3581 period = perf_calculate_period(event, nsec, count); 3582 3583 delta = (s64)(period - hwc->sample_period); 3584 delta = (delta + 7) / 8; /* low pass filter */ 3585 3586 sample_period = hwc->sample_period + delta; 3587 3588 if (!sample_period) 3589 sample_period = 1; 3590 3591 hwc->sample_period = sample_period; 3592 3593 if (local64_read(&hwc->period_left) > 8*sample_period) { 3594 if (disable) 3595 event->pmu->stop(event, PERF_EF_UPDATE); 3596 3597 local64_set(&hwc->period_left, 0); 3598 3599 if (disable) 3600 event->pmu->start(event, PERF_EF_RELOAD); 3601 } 3602 } 3603 3604 /* 3605 * combine freq adjustment with unthrottling to avoid two passes over the 3606 * events. At the same time, make sure, having freq events does not change 3607 * the rate of unthrottling as that would introduce bias. 3608 */ 3609 static void perf_adjust_freq_unthr_context(struct perf_event_context *ctx, 3610 int needs_unthr) 3611 { 3612 struct perf_event *event; 3613 struct hw_perf_event *hwc; 3614 u64 now, period = TICK_NSEC; 3615 s64 delta; 3616 3617 /* 3618 * only need to iterate over all events iff: 3619 * - context have events in frequency mode (needs freq adjust) 3620 * - there are events to unthrottle on this cpu 3621 */ 3622 if (!(ctx->nr_freq || needs_unthr)) 3623 return; 3624 3625 raw_spin_lock(&ctx->lock); 3626 perf_pmu_disable(ctx->pmu); 3627 3628 list_for_each_entry_rcu(event, &ctx->event_list, event_entry) { 3629 if (event->state != PERF_EVENT_STATE_ACTIVE) 3630 continue; 3631 3632 if (!event_filter_match(event)) 3633 continue; 3634 3635 perf_pmu_disable(event->pmu); 3636 3637 hwc = &event->hw; 3638 3639 if (hwc->interrupts == MAX_INTERRUPTS) { 3640 hwc->interrupts = 0; 3641 perf_log_throttle(event, 1); 3642 event->pmu->start(event, 0); 3643 } 3644 3645 if (!event->attr.freq || !event->attr.sample_freq) 3646 goto next; 3647 3648 /* 3649 * stop the event and update event->count 3650 */ 3651 event->pmu->stop(event, PERF_EF_UPDATE); 3652 3653 now = local64_read(&event->count); 3654 delta = now - hwc->freq_count_stamp; 3655 hwc->freq_count_stamp = now; 3656 3657 /* 3658 * restart the event 3659 * reload only if value has changed 3660 * we have stopped the event so tell that 3661 * to perf_adjust_period() to avoid stopping it 3662 * twice. 3663 */ 3664 if (delta > 0) 3665 perf_adjust_period(event, period, delta, false); 3666 3667 event->pmu->start(event, delta > 0 ? PERF_EF_RELOAD : 0); 3668 next: 3669 perf_pmu_enable(event->pmu); 3670 } 3671 3672 perf_pmu_enable(ctx->pmu); 3673 raw_spin_unlock(&ctx->lock); 3674 } 3675 3676 /* 3677 * Move @event to the tail of the @ctx's elegible events. 3678 */ 3679 static void rotate_ctx(struct perf_event_context *ctx, struct perf_event *event) 3680 { 3681 /* 3682 * Rotate the first entry last of non-pinned groups. Rotation might be 3683 * disabled by the inheritance code. 3684 */ 3685 if (ctx->rotate_disable) 3686 return; 3687 3688 perf_event_groups_delete(&ctx->flexible_groups, event); 3689 perf_event_groups_insert(&ctx->flexible_groups, event); 3690 } 3691 3692 static inline struct perf_event * 3693 ctx_first_active(struct perf_event_context *ctx) 3694 { 3695 return list_first_entry_or_null(&ctx->flexible_active, 3696 struct perf_event, active_list); 3697 } 3698 3699 static bool perf_rotate_context(struct perf_cpu_context *cpuctx) 3700 { 3701 struct perf_event *cpu_event = NULL, *task_event = NULL; 3702 struct perf_event_context *task_ctx = NULL; 3703 int cpu_rotate, task_rotate; 3704 3705 /* 3706 * Since we run this from IRQ context, nobody can install new 3707 * events, thus the event count values are stable. 3708 */ 3709 3710 cpu_rotate = cpuctx->ctx.rotate_necessary; 3711 task_ctx = cpuctx->task_ctx; 3712 task_rotate = task_ctx ? task_ctx->rotate_necessary : 0; 3713 3714 if (!(cpu_rotate || task_rotate)) 3715 return false; 3716 3717 perf_ctx_lock(cpuctx, cpuctx->task_ctx); 3718 perf_pmu_disable(cpuctx->ctx.pmu); 3719 3720 if (task_rotate) 3721 task_event = ctx_first_active(task_ctx); 3722 if (cpu_rotate) 3723 cpu_event = ctx_first_active(&cpuctx->ctx); 3724 3725 /* 3726 * As per the order given at ctx_resched() first 'pop' task flexible 3727 * and then, if needed CPU flexible. 3728 */ 3729 if (task_event || (task_ctx && cpu_event)) 3730 ctx_sched_out(task_ctx, cpuctx, EVENT_FLEXIBLE); 3731 if (cpu_event) 3732 cpu_ctx_sched_out(cpuctx, EVENT_FLEXIBLE); 3733 3734 if (task_event) 3735 rotate_ctx(task_ctx, task_event); 3736 if (cpu_event) 3737 rotate_ctx(&cpuctx->ctx, cpu_event); 3738 3739 perf_event_sched_in(cpuctx, task_ctx, current); 3740 3741 perf_pmu_enable(cpuctx->ctx.pmu); 3742 perf_ctx_unlock(cpuctx, cpuctx->task_ctx); 3743 3744 return true; 3745 } 3746 3747 void perf_event_task_tick(void) 3748 { 3749 struct list_head *head = this_cpu_ptr(&active_ctx_list); 3750 struct perf_event_context *ctx, *tmp; 3751 int throttled; 3752 3753 lockdep_assert_irqs_disabled(); 3754 3755 __this_cpu_inc(perf_throttled_seq); 3756 throttled = __this_cpu_xchg(perf_throttled_count, 0); 3757 tick_dep_clear_cpu(smp_processor_id(), TICK_DEP_BIT_PERF_EVENTS); 3758 3759 list_for_each_entry_safe(ctx, tmp, head, active_ctx_list) 3760 perf_adjust_freq_unthr_context(ctx, throttled); 3761 } 3762 3763 static int event_enable_on_exec(struct perf_event *event, 3764 struct perf_event_context *ctx) 3765 { 3766 if (!event->attr.enable_on_exec) 3767 return 0; 3768 3769 event->attr.enable_on_exec = 0; 3770 if (event->state >= PERF_EVENT_STATE_INACTIVE) 3771 return 0; 3772 3773 perf_event_set_state(event, PERF_EVENT_STATE_INACTIVE); 3774 3775 return 1; 3776 } 3777 3778 /* 3779 * Enable all of a task's events that have been marked enable-on-exec. 3780 * This expects task == current. 3781 */ 3782 static void perf_event_enable_on_exec(int ctxn) 3783 { 3784 struct perf_event_context *ctx, *clone_ctx = NULL; 3785 enum event_type_t event_type = 0; 3786 struct perf_cpu_context *cpuctx; 3787 struct perf_event *event; 3788 unsigned long flags; 3789 int enabled = 0; 3790 3791 local_irq_save(flags); 3792 ctx = current->perf_event_ctxp[ctxn]; 3793 if (!ctx || !ctx->nr_events) 3794 goto out; 3795 3796 cpuctx = __get_cpu_context(ctx); 3797 perf_ctx_lock(cpuctx, ctx); 3798 ctx_sched_out(ctx, cpuctx, EVENT_TIME); 3799 list_for_each_entry(event, &ctx->event_list, event_entry) { 3800 enabled |= event_enable_on_exec(event, ctx); 3801 event_type |= get_event_type(event); 3802 } 3803 3804 /* 3805 * Unclone and reschedule this context if we enabled any event. 3806 */ 3807 if (enabled) { 3808 clone_ctx = unclone_ctx(ctx); 3809 ctx_resched(cpuctx, ctx, event_type); 3810 } else { 3811 ctx_sched_in(ctx, cpuctx, EVENT_TIME, current); 3812 } 3813 perf_ctx_unlock(cpuctx, ctx); 3814 3815 out: 3816 local_irq_restore(flags); 3817 3818 if (clone_ctx) 3819 put_ctx(clone_ctx); 3820 } 3821 3822 struct perf_read_data { 3823 struct perf_event *event; 3824 bool group; 3825 int ret; 3826 }; 3827 3828 static int __perf_event_read_cpu(struct perf_event *event, int event_cpu) 3829 { 3830 u16 local_pkg, event_pkg; 3831 3832 if (event->group_caps & PERF_EV_CAP_READ_ACTIVE_PKG) { 3833 int local_cpu = smp_processor_id(); 3834 3835 event_pkg = topology_physical_package_id(event_cpu); 3836 local_pkg = topology_physical_package_id(local_cpu); 3837 3838 if (event_pkg == local_pkg) 3839 return local_cpu; 3840 } 3841 3842 return event_cpu; 3843 } 3844 3845 /* 3846 * Cross CPU call to read the hardware event 3847 */ 3848 static void __perf_event_read(void *info) 3849 { 3850 struct perf_read_data *data = info; 3851 struct perf_event *sub, *event = data->event; 3852 struct perf_event_context *ctx = event->ctx; 3853 struct perf_cpu_context *cpuctx = __get_cpu_context(ctx); 3854 struct pmu *pmu = event->pmu; 3855 3856 /* 3857 * If this is a task context, we need to check whether it is 3858 * the current task context of this cpu. If not it has been 3859 * scheduled out before the smp call arrived. In that case 3860 * event->count would have been updated to a recent sample 3861 * when the event was scheduled out. 3862 */ 3863 if (ctx->task && cpuctx->task_ctx != ctx) 3864 return; 3865 3866 raw_spin_lock(&ctx->lock); 3867 if (ctx->is_active & EVENT_TIME) { 3868 update_context_time(ctx); 3869 update_cgrp_time_from_event(event); 3870 } 3871 3872 perf_event_update_time(event); 3873 if (data->group) 3874 perf_event_update_sibling_time(event); 3875 3876 if (event->state != PERF_EVENT_STATE_ACTIVE) 3877 goto unlock; 3878 3879 if (!data->group) { 3880 pmu->read(event); 3881 data->ret = 0; 3882 goto unlock; 3883 } 3884 3885 pmu->start_txn(pmu, PERF_PMU_TXN_READ); 3886 3887 pmu->read(event); 3888 3889 for_each_sibling_event(sub, event) { 3890 if (sub->state == PERF_EVENT_STATE_ACTIVE) { 3891 /* 3892 * Use sibling's PMU rather than @event's since 3893 * sibling could be on different (eg: software) PMU. 3894 */ 3895 sub->pmu->read(sub); 3896 } 3897 } 3898 3899 data->ret = pmu->commit_txn(pmu); 3900 3901 unlock: 3902 raw_spin_unlock(&ctx->lock); 3903 } 3904 3905 static inline u64 perf_event_count(struct perf_event *event) 3906 { 3907 return local64_read(&event->count) + atomic64_read(&event->child_count); 3908 } 3909 3910 /* 3911 * NMI-safe method to read a local event, that is an event that 3912 * is: 3913 * - either for the current task, or for this CPU 3914 * - does not have inherit set, for inherited task events 3915 * will not be local and we cannot read them atomically 3916 * - must not have a pmu::count method 3917 */ 3918 int perf_event_read_local(struct perf_event *event, u64 *value, 3919 u64 *enabled, u64 *running) 3920 { 3921 unsigned long flags; 3922 int ret = 0; 3923 3924 /* 3925 * Disabling interrupts avoids all counter scheduling (context 3926 * switches, timer based rotation and IPIs). 3927 */ 3928 local_irq_save(flags); 3929 3930 /* 3931 * It must not be an event with inherit set, we cannot read 3932 * all child counters from atomic context. 3933 */ 3934 if (event->attr.inherit) { 3935 ret = -EOPNOTSUPP; 3936 goto out; 3937 } 3938 3939 /* If this is a per-task event, it must be for current */ 3940 if ((event->attach_state & PERF_ATTACH_TASK) && 3941 event->hw.target != current) { 3942 ret = -EINVAL; 3943 goto out; 3944 } 3945 3946 /* If this is a per-CPU event, it must be for this CPU */ 3947 if (!(event->attach_state & PERF_ATTACH_TASK) && 3948 event->cpu != smp_processor_id()) { 3949 ret = -EINVAL; 3950 goto out; 3951 } 3952 3953 /* If this is a pinned event it must be running on this CPU */ 3954 if (event->attr.pinned && event->oncpu != smp_processor_id()) { 3955 ret = -EBUSY; 3956 goto out; 3957 } 3958 3959 /* 3960 * If the event is currently on this CPU, its either a per-task event, 3961 * or local to this CPU. Furthermore it means its ACTIVE (otherwise 3962 * oncpu == -1). 3963 */ 3964 if (event->oncpu == smp_processor_id()) 3965 event->pmu->read(event); 3966 3967 *value = local64_read(&event->count); 3968 if (enabled || running) { 3969 u64 now = event->shadow_ctx_time + perf_clock(); 3970 u64 __enabled, __running; 3971 3972 __perf_update_times(event, now, &__enabled, &__running); 3973 if (enabled) 3974 *enabled = __enabled; 3975 if (running) 3976 *running = __running; 3977 } 3978 out: 3979 local_irq_restore(flags); 3980 3981 return ret; 3982 } 3983 3984 static int perf_event_read(struct perf_event *event, bool group) 3985 { 3986 enum perf_event_state state = READ_ONCE(event->state); 3987 int event_cpu, ret = 0; 3988 3989 /* 3990 * If event is enabled and currently active on a CPU, update the 3991 * value in the event structure: 3992 */ 3993 again: 3994 if (state == PERF_EVENT_STATE_ACTIVE) { 3995 struct perf_read_data data; 3996 3997 /* 3998 * Orders the ->state and ->oncpu loads such that if we see 3999 * ACTIVE we must also see the right ->oncpu. 4000 * 4001 * Matches the smp_wmb() from event_sched_in(). 4002 */ 4003 smp_rmb(); 4004 4005 event_cpu = READ_ONCE(event->oncpu); 4006 if ((unsigned)event_cpu >= nr_cpu_ids) 4007 return 0; 4008 4009 data = (struct perf_read_data){ 4010 .event = event, 4011 .group = group, 4012 .ret = 0, 4013 }; 4014 4015 preempt_disable(); 4016 event_cpu = __perf_event_read_cpu(event, event_cpu); 4017 4018 /* 4019 * Purposely ignore the smp_call_function_single() return 4020 * value. 4021 * 4022 * If event_cpu isn't a valid CPU it means the event got 4023 * scheduled out and that will have updated the event count. 4024 * 4025 * Therefore, either way, we'll have an up-to-date event count 4026 * after this. 4027 */ 4028 (void)smp_call_function_single(event_cpu, __perf_event_read, &data, 1); 4029 preempt_enable(); 4030 ret = data.ret; 4031 4032 } else if (state == PERF_EVENT_STATE_INACTIVE) { 4033 struct perf_event_context *ctx = event->ctx; 4034 unsigned long flags; 4035 4036 raw_spin_lock_irqsave(&ctx->lock, flags); 4037 state = event->state; 4038 if (state != PERF_EVENT_STATE_INACTIVE) { 4039 raw_spin_unlock_irqrestore(&ctx->lock, flags); 4040 goto again; 4041 } 4042 4043 /* 4044 * May read while context is not active (e.g., thread is 4045 * blocked), in that case we cannot update context time 4046 */ 4047 if (ctx->is_active & EVENT_TIME) { 4048 update_context_time(ctx); 4049 update_cgrp_time_from_event(event); 4050 } 4051 4052 perf_event_update_time(event); 4053 if (group) 4054 perf_event_update_sibling_time(event); 4055 raw_spin_unlock_irqrestore(&ctx->lock, flags); 4056 } 4057 4058 return ret; 4059 } 4060 4061 /* 4062 * Initialize the perf_event context in a task_struct: 4063 */ 4064 static void __perf_event_init_context(struct perf_event_context *ctx) 4065 { 4066 raw_spin_lock_init(&ctx->lock); 4067 mutex_init(&ctx->mutex); 4068 INIT_LIST_HEAD(&ctx->active_ctx_list); 4069 perf_event_groups_init(&ctx->pinned_groups); 4070 perf_event_groups_init(&ctx->flexible_groups); 4071 INIT_LIST_HEAD(&ctx->event_list); 4072 INIT_LIST_HEAD(&ctx->pinned_active); 4073 INIT_LIST_HEAD(&ctx->flexible_active); 4074 refcount_set(&ctx->refcount, 1); 4075 } 4076 4077 static struct perf_event_context * 4078 alloc_perf_context(struct pmu *pmu, struct task_struct *task) 4079 { 4080 struct perf_event_context *ctx; 4081 4082 ctx = kzalloc(sizeof(struct perf_event_context), GFP_KERNEL); 4083 if (!ctx) 4084 return NULL; 4085 4086 __perf_event_init_context(ctx); 4087 if (task) { 4088 ctx->task = task; 4089 get_task_struct(task); 4090 } 4091 ctx->pmu = pmu; 4092 4093 return ctx; 4094 } 4095 4096 static struct task_struct * 4097 find_lively_task_by_vpid(pid_t vpid) 4098 { 4099 struct task_struct *task; 4100 4101 rcu_read_lock(); 4102 if (!vpid) 4103 task = current; 4104 else 4105 task = find_task_by_vpid(vpid); 4106 if (task) 4107 get_task_struct(task); 4108 rcu_read_unlock(); 4109 4110 if (!task) 4111 return ERR_PTR(-ESRCH); 4112 4113 return task; 4114 } 4115 4116 /* 4117 * Returns a matching context with refcount and pincount. 4118 */ 4119 static struct perf_event_context * 4120 find_get_context(struct pmu *pmu, struct task_struct *task, 4121 struct perf_event *event) 4122 { 4123 struct perf_event_context *ctx, *clone_ctx = NULL; 4124 struct perf_cpu_context *cpuctx; 4125 void *task_ctx_data = NULL; 4126 unsigned long flags; 4127 int ctxn, err; 4128 int cpu = event->cpu; 4129 4130 if (!task) { 4131 /* Must be root to operate on a CPU event: */ 4132 if (perf_paranoid_cpu() && !capable(CAP_SYS_ADMIN)) 4133 return ERR_PTR(-EACCES); 4134 4135 cpuctx = per_cpu_ptr(pmu->pmu_cpu_context, cpu); 4136 ctx = &cpuctx->ctx; 4137 get_ctx(ctx); 4138 ++ctx->pin_count; 4139 4140 return ctx; 4141 } 4142 4143 err = -EINVAL; 4144 ctxn = pmu->task_ctx_nr; 4145 if (ctxn < 0) 4146 goto errout; 4147 4148 if (event->attach_state & PERF_ATTACH_TASK_DATA) { 4149 task_ctx_data = kzalloc(pmu->task_ctx_size, GFP_KERNEL); 4150 if (!task_ctx_data) { 4151 err = -ENOMEM; 4152 goto errout; 4153 } 4154 } 4155 4156 retry: 4157 ctx = perf_lock_task_context(task, ctxn, &flags); 4158 if (ctx) { 4159 clone_ctx = unclone_ctx(ctx); 4160 ++ctx->pin_count; 4161 4162 if (task_ctx_data && !ctx->task_ctx_data) { 4163 ctx->task_ctx_data = task_ctx_data; 4164 task_ctx_data = NULL; 4165 } 4166 raw_spin_unlock_irqrestore(&ctx->lock, flags); 4167 4168 if (clone_ctx) 4169 put_ctx(clone_ctx); 4170 } else { 4171 ctx = alloc_perf_context(pmu, task); 4172 err = -ENOMEM; 4173 if (!ctx) 4174 goto errout; 4175 4176 if (task_ctx_data) { 4177 ctx->task_ctx_data = task_ctx_data; 4178 task_ctx_data = NULL; 4179 } 4180 4181 err = 0; 4182 mutex_lock(&task->perf_event_mutex); 4183 /* 4184 * If it has already passed perf_event_exit_task(). 4185 * we must see PF_EXITING, it takes this mutex too. 4186 */ 4187 if (task->flags & PF_EXITING) 4188 err = -ESRCH; 4189 else if (task->perf_event_ctxp[ctxn]) 4190 err = -EAGAIN; 4191 else { 4192 get_ctx(ctx); 4193 ++ctx->pin_count; 4194 rcu_assign_pointer(task->perf_event_ctxp[ctxn], ctx); 4195 } 4196 mutex_unlock(&task->perf_event_mutex); 4197 4198 if (unlikely(err)) { 4199 put_ctx(ctx); 4200 4201 if (err == -EAGAIN) 4202 goto retry; 4203 goto errout; 4204 } 4205 } 4206 4207 kfree(task_ctx_data); 4208 return ctx; 4209 4210 errout: 4211 kfree(task_ctx_data); 4212 return ERR_PTR(err); 4213 } 4214 4215 static void perf_event_free_filter(struct perf_event *event); 4216 static void perf_event_free_bpf_prog(struct perf_event *event); 4217 4218 static void free_event_rcu(struct rcu_head *head) 4219 { 4220 struct perf_event *event; 4221 4222 event = container_of(head, struct perf_event, rcu_head); 4223 if (event->ns) 4224 put_pid_ns(event->ns); 4225 perf_event_free_filter(event); 4226 kfree(event); 4227 } 4228 4229 static void ring_buffer_attach(struct perf_event *event, 4230 struct ring_buffer *rb); 4231 4232 static void detach_sb_event(struct perf_event *event) 4233 { 4234 struct pmu_event_list *pel = per_cpu_ptr(&pmu_sb_events, event->cpu); 4235 4236 raw_spin_lock(&pel->lock); 4237 list_del_rcu(&event->sb_list); 4238 raw_spin_unlock(&pel->lock); 4239 } 4240 4241 static bool is_sb_event(struct perf_event *event) 4242 { 4243 struct perf_event_attr *attr = &event->attr; 4244 4245 if (event->parent) 4246 return false; 4247 4248 if (event->attach_state & PERF_ATTACH_TASK) 4249 return false; 4250 4251 if (attr->mmap || attr->mmap_data || attr->mmap2 || 4252 attr->comm || attr->comm_exec || 4253 attr->task || attr->ksymbol || 4254 attr->context_switch || 4255 attr->bpf_event) 4256 return true; 4257 return false; 4258 } 4259 4260 static void unaccount_pmu_sb_event(struct perf_event *event) 4261 { 4262 if (is_sb_event(event)) 4263 detach_sb_event(event); 4264 } 4265 4266 static void unaccount_event_cpu(struct perf_event *event, int cpu) 4267 { 4268 if (event->parent) 4269 return; 4270 4271 if (is_cgroup_event(event)) 4272 atomic_dec(&per_cpu(perf_cgroup_events, cpu)); 4273 } 4274 4275 #ifdef CONFIG_NO_HZ_FULL 4276 static DEFINE_SPINLOCK(nr_freq_lock); 4277 #endif 4278 4279 static void unaccount_freq_event_nohz(void) 4280 { 4281 #ifdef CONFIG_NO_HZ_FULL 4282 spin_lock(&nr_freq_lock); 4283 if (atomic_dec_and_test(&nr_freq_events)) 4284 tick_nohz_dep_clear(TICK_DEP_BIT_PERF_EVENTS); 4285 spin_unlock(&nr_freq_lock); 4286 #endif 4287 } 4288 4289 static void unaccount_freq_event(void) 4290 { 4291 if (tick_nohz_full_enabled()) 4292 unaccount_freq_event_nohz(); 4293 else 4294 atomic_dec(&nr_freq_events); 4295 } 4296 4297 static void unaccount_event(struct perf_event *event) 4298 { 4299 bool dec = false; 4300 4301 if (event->parent) 4302 return; 4303 4304 if (event->attach_state & PERF_ATTACH_TASK) 4305 dec = true; 4306 if (event->attr.mmap || event->attr.mmap_data) 4307 atomic_dec(&nr_mmap_events); 4308 if (event->attr.comm) 4309 atomic_dec(&nr_comm_events); 4310 if (event->attr.namespaces) 4311 atomic_dec(&nr_namespaces_events); 4312 if (event->attr.task) 4313 atomic_dec(&nr_task_events); 4314 if (event->attr.freq) 4315 unaccount_freq_event(); 4316 if (event->attr.context_switch) { 4317 dec = true; 4318 atomic_dec(&nr_switch_events); 4319 } 4320 if (is_cgroup_event(event)) 4321 dec = true; 4322 if (has_branch_stack(event)) 4323 dec = true; 4324 if (event->attr.ksymbol) 4325 atomic_dec(&nr_ksymbol_events); 4326 if (event->attr.bpf_event) 4327 atomic_dec(&nr_bpf_events); 4328 4329 if (dec) { 4330 if (!atomic_add_unless(&perf_sched_count, -1, 1)) 4331 schedule_delayed_work(&perf_sched_work, HZ); 4332 } 4333 4334 unaccount_event_cpu(event, event->cpu); 4335 4336 unaccount_pmu_sb_event(event); 4337 } 4338 4339 static void perf_sched_delayed(struct work_struct *work) 4340 { 4341 mutex_lock(&perf_sched_mutex); 4342 if (atomic_dec_and_test(&perf_sched_count)) 4343 static_branch_disable(&perf_sched_events); 4344 mutex_unlock(&perf_sched_mutex); 4345 } 4346 4347 /* 4348 * The following implement mutual exclusion of events on "exclusive" pmus 4349 * (PERF_PMU_CAP_EXCLUSIVE). Such pmus can only have one event scheduled 4350 * at a time, so we disallow creating events that might conflict, namely: 4351 * 4352 * 1) cpu-wide events in the presence of per-task events, 4353 * 2) per-task events in the presence of cpu-wide events, 4354 * 3) two matching events on the same context. 4355 * 4356 * The former two cases are handled in the allocation path (perf_event_alloc(), 4357 * _free_event()), the latter -- before the first perf_install_in_context(). 4358 */ 4359 static int exclusive_event_init(struct perf_event *event) 4360 { 4361 struct pmu *pmu = event->pmu; 4362 4363 if (!(pmu->capabilities & PERF_PMU_CAP_EXCLUSIVE)) 4364 return 0; 4365 4366 /* 4367 * Prevent co-existence of per-task and cpu-wide events on the 4368 * same exclusive pmu. 4369 * 4370 * Negative pmu::exclusive_cnt means there are cpu-wide 4371 * events on this "exclusive" pmu, positive means there are 4372 * per-task events. 4373 * 4374 * Since this is called in perf_event_alloc() path, event::ctx 4375 * doesn't exist yet; it is, however, safe to use PERF_ATTACH_TASK 4376 * to mean "per-task event", because unlike other attach states it 4377 * never gets cleared. 4378 */ 4379 if (event->attach_state & PERF_ATTACH_TASK) { 4380 if (!atomic_inc_unless_negative(&pmu->exclusive_cnt)) 4381 return -EBUSY; 4382 } else { 4383 if (!atomic_dec_unless_positive(&pmu->exclusive_cnt)) 4384 return -EBUSY; 4385 } 4386 4387 return 0; 4388 } 4389 4390 static void exclusive_event_destroy(struct perf_event *event) 4391 { 4392 struct pmu *pmu = event->pmu; 4393 4394 if (!(pmu->capabilities & PERF_PMU_CAP_EXCLUSIVE)) 4395 return; 4396 4397 /* see comment in exclusive_event_init() */ 4398 if (event->attach_state & PERF_ATTACH_TASK) 4399 atomic_dec(&pmu->exclusive_cnt); 4400 else 4401 atomic_inc(&pmu->exclusive_cnt); 4402 } 4403 4404 static bool exclusive_event_match(struct perf_event *e1, struct perf_event *e2) 4405 { 4406 if ((e1->pmu == e2->pmu) && 4407 (e1->cpu == e2->cpu || 4408 e1->cpu == -1 || 4409 e2->cpu == -1)) 4410 return true; 4411 return false; 4412 } 4413 4414 /* Called under the same ctx::mutex as perf_install_in_context() */ 4415 static bool exclusive_event_installable(struct perf_event *event, 4416 struct perf_event_context *ctx) 4417 { 4418 struct perf_event *iter_event; 4419 struct pmu *pmu = event->pmu; 4420 4421 if (!(pmu->capabilities & PERF_PMU_CAP_EXCLUSIVE)) 4422 return true; 4423 4424 list_for_each_entry(iter_event, &ctx->event_list, event_entry) { 4425 if (exclusive_event_match(iter_event, event)) 4426 return false; 4427 } 4428 4429 return true; 4430 } 4431 4432 static void perf_addr_filters_splice(struct perf_event *event, 4433 struct list_head *head); 4434 4435 static void _free_event(struct perf_event *event) 4436 { 4437 irq_work_sync(&event->pending); 4438 4439 unaccount_event(event); 4440 4441 if (event->rb) { 4442 /* 4443 * Can happen when we close an event with re-directed output. 4444 * 4445 * Since we have a 0 refcount, perf_mmap_close() will skip 4446 * over us; possibly making our ring_buffer_put() the last. 4447 */ 4448 mutex_lock(&event->mmap_mutex); 4449 ring_buffer_attach(event, NULL); 4450 mutex_unlock(&event->mmap_mutex); 4451 } 4452 4453 if (is_cgroup_event(event)) 4454 perf_detach_cgroup(event); 4455 4456 if (!event->parent) { 4457 if (event->attr.sample_type & PERF_SAMPLE_CALLCHAIN) 4458 put_callchain_buffers(); 4459 } 4460 4461 perf_event_free_bpf_prog(event); 4462 perf_addr_filters_splice(event, NULL); 4463 kfree(event->addr_filter_ranges); 4464 4465 if (event->destroy) 4466 event->destroy(event); 4467 4468 if (event->ctx) 4469 put_ctx(event->ctx); 4470 4471 if (event->hw.target) 4472 put_task_struct(event->hw.target); 4473 4474 exclusive_event_destroy(event); 4475 module_put(event->pmu->module); 4476 4477 call_rcu(&event->rcu_head, free_event_rcu); 4478 } 4479 4480 /* 4481 * Used to free events which have a known refcount of 1, such as in error paths 4482 * where the event isn't exposed yet and inherited events. 4483 */ 4484 static void free_event(struct perf_event *event) 4485 { 4486 if (WARN(atomic_long_cmpxchg(&event->refcount, 1, 0) != 1, 4487 "unexpected event refcount: %ld; ptr=%p\n", 4488 atomic_long_read(&event->refcount), event)) { 4489 /* leak to avoid use-after-free */ 4490 return; 4491 } 4492 4493 _free_event(event); 4494 } 4495 4496 /* 4497 * Remove user event from the owner task. 4498 */ 4499 static void perf_remove_from_owner(struct perf_event *event) 4500 { 4501 struct task_struct *owner; 4502 4503 rcu_read_lock(); 4504 /* 4505 * Matches the smp_store_release() in perf_event_exit_task(). If we 4506 * observe !owner it means the list deletion is complete and we can 4507 * indeed free this event, otherwise we need to serialize on 4508 * owner->perf_event_mutex. 4509 */ 4510 owner = READ_ONCE(event->owner); 4511 if (owner) { 4512 /* 4513 * Since delayed_put_task_struct() also drops the last 4514 * task reference we can safely take a new reference 4515 * while holding the rcu_read_lock(). 4516 */ 4517 get_task_struct(owner); 4518 } 4519 rcu_read_unlock(); 4520 4521 if (owner) { 4522 /* 4523 * If we're here through perf_event_exit_task() we're already 4524 * holding ctx->mutex which would be an inversion wrt. the 4525 * normal lock order. 4526 * 4527 * However we can safely take this lock because its the child 4528 * ctx->mutex. 4529 */ 4530 mutex_lock_nested(&owner->perf_event_mutex, SINGLE_DEPTH_NESTING); 4531 4532 /* 4533 * We have to re-check the event->owner field, if it is cleared 4534 * we raced with perf_event_exit_task(), acquiring the mutex 4535 * ensured they're done, and we can proceed with freeing the 4536 * event. 4537 */ 4538 if (event->owner) { 4539 list_del_init(&event->owner_entry); 4540 smp_store_release(&event->owner, NULL); 4541 } 4542 mutex_unlock(&owner->perf_event_mutex); 4543 put_task_struct(owner); 4544 } 4545 } 4546 4547 static void put_event(struct perf_event *event) 4548 { 4549 if (!atomic_long_dec_and_test(&event->refcount)) 4550 return; 4551 4552 _free_event(event); 4553 } 4554 4555 /* 4556 * Kill an event dead; while event:refcount will preserve the event 4557 * object, it will not preserve its functionality. Once the last 'user' 4558 * gives up the object, we'll destroy the thing. 4559 */ 4560 int perf_event_release_kernel(struct perf_event *event) 4561 { 4562 struct perf_event_context *ctx = event->ctx; 4563 struct perf_event *child, *tmp; 4564 LIST_HEAD(free_list); 4565 4566 /* 4567 * If we got here through err_file: fput(event_file); we will not have 4568 * attached to a context yet. 4569 */ 4570 if (!ctx) { 4571 WARN_ON_ONCE(event->attach_state & 4572 (PERF_ATTACH_CONTEXT|PERF_ATTACH_GROUP)); 4573 goto no_ctx; 4574 } 4575 4576 if (!is_kernel_event(event)) 4577 perf_remove_from_owner(event); 4578 4579 ctx = perf_event_ctx_lock(event); 4580 WARN_ON_ONCE(ctx->parent_ctx); 4581 perf_remove_from_context(event, DETACH_GROUP); 4582 4583 raw_spin_lock_irq(&ctx->lock); 4584 /* 4585 * Mark this event as STATE_DEAD, there is no external reference to it 4586 * anymore. 4587 * 4588 * Anybody acquiring event->child_mutex after the below loop _must_ 4589 * also see this, most importantly inherit_event() which will avoid 4590 * placing more children on the list. 4591 * 4592 * Thus this guarantees that we will in fact observe and kill _ALL_ 4593 * child events. 4594 */ 4595 event->state = PERF_EVENT_STATE_DEAD; 4596 raw_spin_unlock_irq(&ctx->lock); 4597 4598 perf_event_ctx_unlock(event, ctx); 4599 4600 again: 4601 mutex_lock(&event->child_mutex); 4602 list_for_each_entry(child, &event->child_list, child_list) { 4603 4604 /* 4605 * Cannot change, child events are not migrated, see the 4606 * comment with perf_event_ctx_lock_nested(). 4607 */ 4608 ctx = READ_ONCE(child->ctx); 4609 /* 4610 * Since child_mutex nests inside ctx::mutex, we must jump 4611 * through hoops. We start by grabbing a reference on the ctx. 4612 * 4613 * Since the event cannot get freed while we hold the 4614 * child_mutex, the context must also exist and have a !0 4615 * reference count. 4616 */ 4617 get_ctx(ctx); 4618 4619 /* 4620 * Now that we have a ctx ref, we can drop child_mutex, and 4621 * acquire ctx::mutex without fear of it going away. Then we 4622 * can re-acquire child_mutex. 4623 */ 4624 mutex_unlock(&event->child_mutex); 4625 mutex_lock(&ctx->mutex); 4626 mutex_lock(&event->child_mutex); 4627 4628 /* 4629 * Now that we hold ctx::mutex and child_mutex, revalidate our 4630 * state, if child is still the first entry, it didn't get freed 4631 * and we can continue doing so. 4632 */ 4633 tmp = list_first_entry_or_null(&event->child_list, 4634 struct perf_event, child_list); 4635 if (tmp == child) { 4636 perf_remove_from_context(child, DETACH_GROUP); 4637 list_move(&child->child_list, &free_list); 4638 /* 4639 * This matches the refcount bump in inherit_event(); 4640 * this can't be the last reference. 4641 */ 4642 put_event(event); 4643 } 4644 4645 mutex_unlock(&event->child_mutex); 4646 mutex_unlock(&ctx->mutex); 4647 put_ctx(ctx); 4648 goto again; 4649 } 4650 mutex_unlock(&event->child_mutex); 4651 4652 list_for_each_entry_safe(child, tmp, &free_list, child_list) { 4653 list_del(&child->child_list); 4654 free_event(child); 4655 } 4656 4657 no_ctx: 4658 put_event(event); /* Must be the 'last' reference */ 4659 return 0; 4660 } 4661 EXPORT_SYMBOL_GPL(perf_event_release_kernel); 4662 4663 /* 4664 * Called when the last reference to the file is gone. 4665 */ 4666 static int perf_release(struct inode *inode, struct file *file) 4667 { 4668 perf_event_release_kernel(file->private_data); 4669 return 0; 4670 } 4671 4672 static u64 __perf_event_read_value(struct perf_event *event, u64 *enabled, u64 *running) 4673 { 4674 struct perf_event *child; 4675 u64 total = 0; 4676 4677 *enabled = 0; 4678 *running = 0; 4679 4680 mutex_lock(&event->child_mutex); 4681 4682 (void)perf_event_read(event, false); 4683 total += perf_event_count(event); 4684 4685 *enabled += event->total_time_enabled + 4686 atomic64_read(&event->child_total_time_enabled); 4687 *running += event->total_time_running + 4688 atomic64_read(&event->child_total_time_running); 4689 4690 list_for_each_entry(child, &event->child_list, child_list) { 4691 (void)perf_event_read(child, false); 4692 total += perf_event_count(child); 4693 *enabled += child->total_time_enabled; 4694 *running += child->total_time_running; 4695 } 4696 mutex_unlock(&event->child_mutex); 4697 4698 return total; 4699 } 4700 4701 u64 perf_event_read_value(struct perf_event *event, u64 *enabled, u64 *running) 4702 { 4703 struct perf_event_context *ctx; 4704 u64 count; 4705 4706 ctx = perf_event_ctx_lock(event); 4707 count = __perf_event_read_value(event, enabled, running); 4708 perf_event_ctx_unlock(event, ctx); 4709 4710 return count; 4711 } 4712 EXPORT_SYMBOL_GPL(perf_event_read_value); 4713 4714 static int __perf_read_group_add(struct perf_event *leader, 4715 u64 read_format, u64 *values) 4716 { 4717 struct perf_event_context *ctx = leader->ctx; 4718 struct perf_event *sub; 4719 unsigned long flags; 4720 int n = 1; /* skip @nr */ 4721 int ret; 4722 4723 ret = perf_event_read(leader, true); 4724 if (ret) 4725 return ret; 4726 4727 raw_spin_lock_irqsave(&ctx->lock, flags); 4728 4729 /* 4730 * Since we co-schedule groups, {enabled,running} times of siblings 4731 * will be identical to those of the leader, so we only publish one 4732 * set. 4733 */ 4734 if (read_format & PERF_FORMAT_TOTAL_TIME_ENABLED) { 4735 values[n++] += leader->total_time_enabled + 4736 atomic64_read(&leader->child_total_time_enabled); 4737 } 4738 4739 if (read_format & PERF_FORMAT_TOTAL_TIME_RUNNING) { 4740 values[n++] += leader->total_time_running + 4741 atomic64_read(&leader->child_total_time_running); 4742 } 4743 4744 /* 4745 * Write {count,id} tuples for every sibling. 4746 */ 4747 values[n++] += perf_event_count(leader); 4748 if (read_format & PERF_FORMAT_ID) 4749 values[n++] = primary_event_id(leader); 4750 4751 for_each_sibling_event(sub, leader) { 4752 values[n++] += perf_event_count(sub); 4753 if (read_format & PERF_FORMAT_ID) 4754 values[n++] = primary_event_id(sub); 4755 } 4756 4757 raw_spin_unlock_irqrestore(&ctx->lock, flags); 4758 return 0; 4759 } 4760 4761 static int perf_read_group(struct perf_event *event, 4762 u64 read_format, char __user *buf) 4763 { 4764 struct perf_event *leader = event->group_leader, *child; 4765 struct perf_event_context *ctx = leader->ctx; 4766 int ret; 4767 u64 *values; 4768 4769 lockdep_assert_held(&ctx->mutex); 4770 4771 values = kzalloc(event->read_size, GFP_KERNEL); 4772 if (!values) 4773 return -ENOMEM; 4774 4775 values[0] = 1 + leader->nr_siblings; 4776 4777 /* 4778 * By locking the child_mutex of the leader we effectively 4779 * lock the child list of all siblings.. XXX explain how. 4780 */ 4781 mutex_lock(&leader->child_mutex); 4782 4783 ret = __perf_read_group_add(leader, read_format, values); 4784 if (ret) 4785 goto unlock; 4786 4787 list_for_each_entry(child, &leader->child_list, child_list) { 4788 ret = __perf_read_group_add(child, read_format, values); 4789 if (ret) 4790 goto unlock; 4791 } 4792 4793 mutex_unlock(&leader->child_mutex); 4794 4795 ret = event->read_size; 4796 if (copy_to_user(buf, values, event->read_size)) 4797 ret = -EFAULT; 4798 goto out; 4799 4800 unlock: 4801 mutex_unlock(&leader->child_mutex); 4802 out: 4803 kfree(values); 4804 return ret; 4805 } 4806 4807 static int perf_read_one(struct perf_event *event, 4808 u64 read_format, char __user *buf) 4809 { 4810 u64 enabled, running; 4811 u64 values[4]; 4812 int n = 0; 4813 4814 values[n++] = __perf_event_read_value(event, &enabled, &running); 4815 if (read_format & PERF_FORMAT_TOTAL_TIME_ENABLED) 4816 values[n++] = enabled; 4817 if (read_format & PERF_FORMAT_TOTAL_TIME_RUNNING) 4818 values[n++] = running; 4819 if (read_format & PERF_FORMAT_ID) 4820 values[n++] = primary_event_id(event); 4821 4822 if (copy_to_user(buf, values, n * sizeof(u64))) 4823 return -EFAULT; 4824 4825 return n * sizeof(u64); 4826 } 4827 4828 static bool is_event_hup(struct perf_event *event) 4829 { 4830 bool no_children; 4831 4832 if (event->state > PERF_EVENT_STATE_EXIT) 4833 return false; 4834 4835 mutex_lock(&event->child_mutex); 4836 no_children = list_empty(&event->child_list); 4837 mutex_unlock(&event->child_mutex); 4838 return no_children; 4839 } 4840 4841 /* 4842 * Read the performance event - simple non blocking version for now 4843 */ 4844 static ssize_t 4845 __perf_read(struct perf_event *event, char __user *buf, size_t count) 4846 { 4847 u64 read_format = event->attr.read_format; 4848 int ret; 4849 4850 /* 4851 * Return end-of-file for a read on an event that is in 4852 * error state (i.e. because it was pinned but it couldn't be 4853 * scheduled on to the CPU at some point). 4854 */ 4855 if (event->state == PERF_EVENT_STATE_ERROR) 4856 return 0; 4857 4858 if (count < event->read_size) 4859 return -ENOSPC; 4860 4861 WARN_ON_ONCE(event->ctx->parent_ctx); 4862 if (read_format & PERF_FORMAT_GROUP) 4863 ret = perf_read_group(event, read_format, buf); 4864 else 4865 ret = perf_read_one(event, read_format, buf); 4866 4867 return ret; 4868 } 4869 4870 static ssize_t 4871 perf_read(struct file *file, char __user *buf, size_t count, loff_t *ppos) 4872 { 4873 struct perf_event *event = file->private_data; 4874 struct perf_event_context *ctx; 4875 int ret; 4876 4877 ctx = perf_event_ctx_lock(event); 4878 ret = __perf_read(event, buf, count); 4879 perf_event_ctx_unlock(event, ctx); 4880 4881 return ret; 4882 } 4883 4884 static __poll_t perf_poll(struct file *file, poll_table *wait) 4885 { 4886 struct perf_event *event = file->private_data; 4887 struct ring_buffer *rb; 4888 __poll_t events = EPOLLHUP; 4889 4890 poll_wait(file, &event->waitq, wait); 4891 4892 if (is_event_hup(event)) 4893 return events; 4894 4895 /* 4896 * Pin the event->rb by taking event->mmap_mutex; otherwise 4897 * perf_event_set_output() can swizzle our rb and make us miss wakeups. 4898 */ 4899 mutex_lock(&event->mmap_mutex); 4900 rb = event->rb; 4901 if (rb) 4902 events = atomic_xchg(&rb->poll, 0); 4903 mutex_unlock(&event->mmap_mutex); 4904 return events; 4905 } 4906 4907 static void _perf_event_reset(struct perf_event *event) 4908 { 4909 (void)perf_event_read(event, false); 4910 local64_set(&event->count, 0); 4911 perf_event_update_userpage(event); 4912 } 4913 4914 /* 4915 * Holding the top-level event's child_mutex means that any 4916 * descendant process that has inherited this event will block 4917 * in perf_event_exit_event() if it goes to exit, thus satisfying the 4918 * task existence requirements of perf_event_enable/disable. 4919 */ 4920 static void perf_event_for_each_child(struct perf_event *event, 4921 void (*func)(struct perf_event *)) 4922 { 4923 struct perf_event *child; 4924 4925 WARN_ON_ONCE(event->ctx->parent_ctx); 4926 4927 mutex_lock(&event->child_mutex); 4928 func(event); 4929 list_for_each_entry(child, &event->child_list, child_list) 4930 func(child); 4931 mutex_unlock(&event->child_mutex); 4932 } 4933 4934 static void perf_event_for_each(struct perf_event *event, 4935 void (*func)(struct perf_event *)) 4936 { 4937 struct perf_event_context *ctx = event->ctx; 4938 struct perf_event *sibling; 4939 4940 lockdep_assert_held(&ctx->mutex); 4941 4942 event = event->group_leader; 4943 4944 perf_event_for_each_child(event, func); 4945 for_each_sibling_event(sibling, event) 4946 perf_event_for_each_child(sibling, func); 4947 } 4948 4949 static void __perf_event_period(struct perf_event *event, 4950 struct perf_cpu_context *cpuctx, 4951 struct perf_event_context *ctx, 4952 void *info) 4953 { 4954 u64 value = *((u64 *)info); 4955 bool active; 4956 4957 if (event->attr.freq) { 4958 event->attr.sample_freq = value; 4959 } else { 4960 event->attr.sample_period = value; 4961 event->hw.sample_period = value; 4962 } 4963 4964 active = (event->state == PERF_EVENT_STATE_ACTIVE); 4965 if (active) { 4966 perf_pmu_disable(ctx->pmu); 4967 /* 4968 * We could be throttled; unthrottle now to avoid the tick 4969 * trying to unthrottle while we already re-started the event. 4970 */ 4971 if (event->hw.interrupts == MAX_INTERRUPTS) { 4972 event->hw.interrupts = 0; 4973 perf_log_throttle(event, 1); 4974 } 4975 event->pmu->stop(event, PERF_EF_UPDATE); 4976 } 4977 4978 local64_set(&event->hw.period_left, 0); 4979 4980 if (active) { 4981 event->pmu->start(event, PERF_EF_RELOAD); 4982 perf_pmu_enable(ctx->pmu); 4983 } 4984 } 4985 4986 static int perf_event_check_period(struct perf_event *event, u64 value) 4987 { 4988 return event->pmu->check_period(event, value); 4989 } 4990 4991 static int perf_event_period(struct perf_event *event, u64 __user *arg) 4992 { 4993 u64 value; 4994 4995 if (!is_sampling_event(event)) 4996 return -EINVAL; 4997 4998 if (copy_from_user(&value, arg, sizeof(value))) 4999 return -EFAULT; 5000 5001 if (!value) 5002 return -EINVAL; 5003 5004 if (event->attr.freq && value > sysctl_perf_event_sample_rate) 5005 return -EINVAL; 5006 5007 if (perf_event_check_period(event, value)) 5008 return -EINVAL; 5009 5010 event_function_call(event, __perf_event_period, &value); 5011 5012 return 0; 5013 } 5014 5015 static const struct file_operations perf_fops; 5016 5017 static inline int perf_fget_light(int fd, struct fd *p) 5018 { 5019 struct fd f = fdget(fd); 5020 if (!f.file) 5021 return -EBADF; 5022 5023 if (f.file->f_op != &perf_fops) { 5024 fdput(f); 5025 return -EBADF; 5026 } 5027 *p = f; 5028 return 0; 5029 } 5030 5031 static int perf_event_set_output(struct perf_event *event, 5032 struct perf_event *output_event); 5033 static int perf_event_set_filter(struct perf_event *event, void __user *arg); 5034 static int perf_event_set_bpf_prog(struct perf_event *event, u32 prog_fd); 5035 static int perf_copy_attr(struct perf_event_attr __user *uattr, 5036 struct perf_event_attr *attr); 5037 5038 static long _perf_ioctl(struct perf_event *event, unsigned int cmd, unsigned long arg) 5039 { 5040 void (*func)(struct perf_event *); 5041 u32 flags = arg; 5042 5043 switch (cmd) { 5044 case PERF_EVENT_IOC_ENABLE: 5045 func = _perf_event_enable; 5046 break; 5047 case PERF_EVENT_IOC_DISABLE: 5048 func = _perf_event_disable; 5049 break; 5050 case PERF_EVENT_IOC_RESET: 5051 func = _perf_event_reset; 5052 break; 5053 5054 case PERF_EVENT_IOC_REFRESH: 5055 return _perf_event_refresh(event, arg); 5056 5057 case PERF_EVENT_IOC_PERIOD: 5058 return perf_event_period(event, (u64 __user *)arg); 5059 5060 case PERF_EVENT_IOC_ID: 5061 { 5062 u64 id = primary_event_id(event); 5063 5064 if (copy_to_user((void __user *)arg, &id, sizeof(id))) 5065 return -EFAULT; 5066 return 0; 5067 } 5068 5069 case PERF_EVENT_IOC_SET_OUTPUT: 5070 { 5071 int ret; 5072 if (arg != -1) { 5073 struct perf_event *output_event; 5074 struct fd output; 5075 ret = perf_fget_light(arg, &output); 5076 if (ret) 5077 return ret; 5078 output_event = output.file->private_data; 5079 ret = perf_event_set_output(event, output_event); 5080 fdput(output); 5081 } else { 5082 ret = perf_event_set_output(event, NULL); 5083 } 5084 return ret; 5085 } 5086 5087 case PERF_EVENT_IOC_SET_FILTER: 5088 return perf_event_set_filter(event, (void __user *)arg); 5089 5090 case PERF_EVENT_IOC_SET_BPF: 5091 return perf_event_set_bpf_prog(event, arg); 5092 5093 case PERF_EVENT_IOC_PAUSE_OUTPUT: { 5094 struct ring_buffer *rb; 5095 5096 rcu_read_lock(); 5097 rb = rcu_dereference(event->rb); 5098 if (!rb || !rb->nr_pages) { 5099 rcu_read_unlock(); 5100 return -EINVAL; 5101 } 5102 rb_toggle_paused(rb, !!arg); 5103 rcu_read_unlock(); 5104 return 0; 5105 } 5106 5107 case PERF_EVENT_IOC_QUERY_BPF: 5108 return perf_event_query_prog_array(event, (void __user *)arg); 5109 5110 case PERF_EVENT_IOC_MODIFY_ATTRIBUTES: { 5111 struct perf_event_attr new_attr; 5112 int err = perf_copy_attr((struct perf_event_attr __user *)arg, 5113 &new_attr); 5114 5115 if (err) 5116 return err; 5117 5118 return perf_event_modify_attr(event, &new_attr); 5119 } 5120 default: 5121 return -ENOTTY; 5122 } 5123 5124 if (flags & PERF_IOC_FLAG_GROUP) 5125 perf_event_for_each(event, func); 5126 else 5127 perf_event_for_each_child(event, func); 5128 5129 return 0; 5130 } 5131 5132 static long perf_ioctl(struct file *file, unsigned int cmd, unsigned long arg) 5133 { 5134 struct perf_event *event = file->private_data; 5135 struct perf_event_context *ctx; 5136 long ret; 5137 5138 ctx = perf_event_ctx_lock(event); 5139 ret = _perf_ioctl(event, cmd, arg); 5140 perf_event_ctx_unlock(event, ctx); 5141 5142 return ret; 5143 } 5144 5145 #ifdef CONFIG_COMPAT 5146 static long perf_compat_ioctl(struct file *file, unsigned int cmd, 5147 unsigned long arg) 5148 { 5149 switch (_IOC_NR(cmd)) { 5150 case _IOC_NR(PERF_EVENT_IOC_SET_FILTER): 5151 case _IOC_NR(PERF_EVENT_IOC_ID): 5152 case _IOC_NR(PERF_EVENT_IOC_QUERY_BPF): 5153 case _IOC_NR(PERF_EVENT_IOC_MODIFY_ATTRIBUTES): 5154 /* Fix up pointer size (usually 4 -> 8 in 32-on-64-bit case */ 5155 if (_IOC_SIZE(cmd) == sizeof(compat_uptr_t)) { 5156 cmd &= ~IOCSIZE_MASK; 5157 cmd |= sizeof(void *) << IOCSIZE_SHIFT; 5158 } 5159 break; 5160 } 5161 return perf_ioctl(file, cmd, arg); 5162 } 5163 #else 5164 # define perf_compat_ioctl NULL 5165 #endif 5166 5167 int perf_event_task_enable(void) 5168 { 5169 struct perf_event_context *ctx; 5170 struct perf_event *event; 5171 5172 mutex_lock(¤t->perf_event_mutex); 5173 list_for_each_entry(event, ¤t->perf_event_list, owner_entry) { 5174 ctx = perf_event_ctx_lock(event); 5175 perf_event_for_each_child(event, _perf_event_enable); 5176 perf_event_ctx_unlock(event, ctx); 5177 } 5178 mutex_unlock(¤t->perf_event_mutex); 5179 5180 return 0; 5181 } 5182 5183 int perf_event_task_disable(void) 5184 { 5185 struct perf_event_context *ctx; 5186 struct perf_event *event; 5187 5188 mutex_lock(¤t->perf_event_mutex); 5189 list_for_each_entry(event, ¤t->perf_event_list, owner_entry) { 5190 ctx = perf_event_ctx_lock(event); 5191 perf_event_for_each_child(event, _perf_event_disable); 5192 perf_event_ctx_unlock(event, ctx); 5193 } 5194 mutex_unlock(¤t->perf_event_mutex); 5195 5196 return 0; 5197 } 5198 5199 static int perf_event_index(struct perf_event *event) 5200 { 5201 if (event->hw.state & PERF_HES_STOPPED) 5202 return 0; 5203 5204 if (event->state != PERF_EVENT_STATE_ACTIVE) 5205 return 0; 5206 5207 return event->pmu->event_idx(event); 5208 } 5209 5210 static void calc_timer_values(struct perf_event *event, 5211 u64 *now, 5212 u64 *enabled, 5213 u64 *running) 5214 { 5215 u64 ctx_time; 5216 5217 *now = perf_clock(); 5218 ctx_time = event->shadow_ctx_time + *now; 5219 __perf_update_times(event, ctx_time, enabled, running); 5220 } 5221 5222 static void perf_event_init_userpage(struct perf_event *event) 5223 { 5224 struct perf_event_mmap_page *userpg; 5225 struct ring_buffer *rb; 5226 5227 rcu_read_lock(); 5228 rb = rcu_dereference(event->rb); 5229 if (!rb) 5230 goto unlock; 5231 5232 userpg = rb->user_page; 5233 5234 /* Allow new userspace to detect that bit 0 is deprecated */ 5235 userpg->cap_bit0_is_deprecated = 1; 5236 userpg->size = offsetof(struct perf_event_mmap_page, __reserved); 5237 userpg->data_offset = PAGE_SIZE; 5238 userpg->data_size = perf_data_size(rb); 5239 5240 unlock: 5241 rcu_read_unlock(); 5242 } 5243 5244 void __weak arch_perf_update_userpage( 5245 struct perf_event *event, struct perf_event_mmap_page *userpg, u64 now) 5246 { 5247 } 5248 5249 /* 5250 * Callers need to ensure there can be no nesting of this function, otherwise 5251 * the seqlock logic goes bad. We can not serialize this because the arch 5252 * code calls this from NMI context. 5253 */ 5254 void perf_event_update_userpage(struct perf_event *event) 5255 { 5256 struct perf_event_mmap_page *userpg; 5257 struct ring_buffer *rb; 5258 u64 enabled, running, now; 5259 5260 rcu_read_lock(); 5261 rb = rcu_dereference(event->rb); 5262 if (!rb) 5263 goto unlock; 5264 5265 /* 5266 * compute total_time_enabled, total_time_running 5267 * based on snapshot values taken when the event 5268 * was last scheduled in. 5269 * 5270 * we cannot simply called update_context_time() 5271 * because of locking issue as we can be called in 5272 * NMI context 5273 */ 5274 calc_timer_values(event, &now, &enabled, &running); 5275 5276 userpg = rb->user_page; 5277 /* 5278 * Disable preemption to guarantee consistent time stamps are stored to 5279 * the user page. 5280 */ 5281 preempt_disable(); 5282 ++userpg->lock; 5283 barrier(); 5284 userpg->index = perf_event_index(event); 5285 userpg->offset = perf_event_count(event); 5286 if (userpg->index) 5287 userpg->offset -= local64_read(&event->hw.prev_count); 5288 5289 userpg->time_enabled = enabled + 5290 atomic64_read(&event->child_total_time_enabled); 5291 5292 userpg->time_running = running + 5293 atomic64_read(&event->child_total_time_running); 5294 5295 arch_perf_update_userpage(event, userpg, now); 5296 5297 barrier(); 5298 ++userpg->lock; 5299 preempt_enable(); 5300 unlock: 5301 rcu_read_unlock(); 5302 } 5303 EXPORT_SYMBOL_GPL(perf_event_update_userpage); 5304 5305 static vm_fault_t perf_mmap_fault(struct vm_fault *vmf) 5306 { 5307 struct perf_event *event = vmf->vma->vm_file->private_data; 5308 struct ring_buffer *rb; 5309 vm_fault_t ret = VM_FAULT_SIGBUS; 5310 5311 if (vmf->flags & FAULT_FLAG_MKWRITE) { 5312 if (vmf->pgoff == 0) 5313 ret = 0; 5314 return ret; 5315 } 5316 5317 rcu_read_lock(); 5318 rb = rcu_dereference(event->rb); 5319 if (!rb) 5320 goto unlock; 5321 5322 if (vmf->pgoff && (vmf->flags & FAULT_FLAG_WRITE)) 5323 goto unlock; 5324 5325 vmf->page = perf_mmap_to_page(rb, vmf->pgoff); 5326 if (!vmf->page) 5327 goto unlock; 5328 5329 get_page(vmf->page); 5330 vmf->page->mapping = vmf->vma->vm_file->f_mapping; 5331 vmf->page->index = vmf->pgoff; 5332 5333 ret = 0; 5334 unlock: 5335 rcu_read_unlock(); 5336 5337 return ret; 5338 } 5339 5340 static void ring_buffer_attach(struct perf_event *event, 5341 struct ring_buffer *rb) 5342 { 5343 struct ring_buffer *old_rb = NULL; 5344 unsigned long flags; 5345 5346 if (event->rb) { 5347 /* 5348 * Should be impossible, we set this when removing 5349 * event->rb_entry and wait/clear when adding event->rb_entry. 5350 */ 5351 WARN_ON_ONCE(event->rcu_pending); 5352 5353 old_rb = event->rb; 5354 spin_lock_irqsave(&old_rb->event_lock, flags); 5355 list_del_rcu(&event->rb_entry); 5356 spin_unlock_irqrestore(&old_rb->event_lock, flags); 5357 5358 event->rcu_batches = get_state_synchronize_rcu(); 5359 event->rcu_pending = 1; 5360 } 5361 5362 if (rb) { 5363 if (event->rcu_pending) { 5364 cond_synchronize_rcu(event->rcu_batches); 5365 event->rcu_pending = 0; 5366 } 5367 5368 spin_lock_irqsave(&rb->event_lock, flags); 5369 list_add_rcu(&event->rb_entry, &rb->event_list); 5370 spin_unlock_irqrestore(&rb->event_lock, flags); 5371 } 5372 5373 /* 5374 * Avoid racing with perf_mmap_close(AUX): stop the event 5375 * before swizzling the event::rb pointer; if it's getting 5376 * unmapped, its aux_mmap_count will be 0 and it won't 5377 * restart. See the comment in __perf_pmu_output_stop(). 5378 * 5379 * Data will inevitably be lost when set_output is done in 5380 * mid-air, but then again, whoever does it like this is 5381 * not in for the data anyway. 5382 */ 5383 if (has_aux(event)) 5384 perf_event_stop(event, 0); 5385 5386 rcu_assign_pointer(event->rb, rb); 5387 5388 if (old_rb) { 5389 ring_buffer_put(old_rb); 5390 /* 5391 * Since we detached before setting the new rb, so that we 5392 * could attach the new rb, we could have missed a wakeup. 5393 * Provide it now. 5394 */ 5395 wake_up_all(&event->waitq); 5396 } 5397 } 5398 5399 static void ring_buffer_wakeup(struct perf_event *event) 5400 { 5401 struct ring_buffer *rb; 5402 5403 rcu_read_lock(); 5404 rb = rcu_dereference(event->rb); 5405 if (rb) { 5406 list_for_each_entry_rcu(event, &rb->event_list, rb_entry) 5407 wake_up_all(&event->waitq); 5408 } 5409 rcu_read_unlock(); 5410 } 5411 5412 struct ring_buffer *ring_buffer_get(struct perf_event *event) 5413 { 5414 struct ring_buffer *rb; 5415 5416 rcu_read_lock(); 5417 rb = rcu_dereference(event->rb); 5418 if (rb) { 5419 if (!refcount_inc_not_zero(&rb->refcount)) 5420 rb = NULL; 5421 } 5422 rcu_read_unlock(); 5423 5424 return rb; 5425 } 5426 5427 void ring_buffer_put(struct ring_buffer *rb) 5428 { 5429 if (!refcount_dec_and_test(&rb->refcount)) 5430 return; 5431 5432 WARN_ON_ONCE(!list_empty(&rb->event_list)); 5433 5434 call_rcu(&rb->rcu_head, rb_free_rcu); 5435 } 5436 5437 static void perf_mmap_open(struct vm_area_struct *vma) 5438 { 5439 struct perf_event *event = vma->vm_file->private_data; 5440 5441 atomic_inc(&event->mmap_count); 5442 atomic_inc(&event->rb->mmap_count); 5443 5444 if (vma->vm_pgoff) 5445 atomic_inc(&event->rb->aux_mmap_count); 5446 5447 if (event->pmu->event_mapped) 5448 event->pmu->event_mapped(event, vma->vm_mm); 5449 } 5450 5451 static void perf_pmu_output_stop(struct perf_event *event); 5452 5453 /* 5454 * A buffer can be mmap()ed multiple times; either directly through the same 5455 * event, or through other events by use of perf_event_set_output(). 5456 * 5457 * In order to undo the VM accounting done by perf_mmap() we need to destroy 5458 * the buffer here, where we still have a VM context. This means we need 5459 * to detach all events redirecting to us. 5460 */ 5461 static void perf_mmap_close(struct vm_area_struct *vma) 5462 { 5463 struct perf_event *event = vma->vm_file->private_data; 5464 5465 struct ring_buffer *rb = ring_buffer_get(event); 5466 struct user_struct *mmap_user = rb->mmap_user; 5467 int mmap_locked = rb->mmap_locked; 5468 unsigned long size = perf_data_size(rb); 5469 5470 if (event->pmu->event_unmapped) 5471 event->pmu->event_unmapped(event, vma->vm_mm); 5472 5473 /* 5474 * rb->aux_mmap_count will always drop before rb->mmap_count and 5475 * event->mmap_count, so it is ok to use event->mmap_mutex to 5476 * serialize with perf_mmap here. 5477 */ 5478 if (rb_has_aux(rb) && vma->vm_pgoff == rb->aux_pgoff && 5479 atomic_dec_and_mutex_lock(&rb->aux_mmap_count, &event->mmap_mutex)) { 5480 /* 5481 * Stop all AUX events that are writing to this buffer, 5482 * so that we can free its AUX pages and corresponding PMU 5483 * data. Note that after rb::aux_mmap_count dropped to zero, 5484 * they won't start any more (see perf_aux_output_begin()). 5485 */ 5486 perf_pmu_output_stop(event); 5487 5488 /* now it's safe to free the pages */ 5489 atomic_long_sub(rb->aux_nr_pages, &mmap_user->locked_vm); 5490 atomic64_sub(rb->aux_mmap_locked, &vma->vm_mm->pinned_vm); 5491 5492 /* this has to be the last one */ 5493 rb_free_aux(rb); 5494 WARN_ON_ONCE(refcount_read(&rb->aux_refcount)); 5495 5496 mutex_unlock(&event->mmap_mutex); 5497 } 5498 5499 atomic_dec(&rb->mmap_count); 5500 5501 if (!atomic_dec_and_mutex_lock(&event->mmap_count, &event->mmap_mutex)) 5502 goto out_put; 5503 5504 ring_buffer_attach(event, NULL); 5505 mutex_unlock(&event->mmap_mutex); 5506 5507 /* If there's still other mmap()s of this buffer, we're done. */ 5508 if (atomic_read(&rb->mmap_count)) 5509 goto out_put; 5510 5511 /* 5512 * No other mmap()s, detach from all other events that might redirect 5513 * into the now unreachable buffer. Somewhat complicated by the 5514 * fact that rb::event_lock otherwise nests inside mmap_mutex. 5515 */ 5516 again: 5517 rcu_read_lock(); 5518 list_for_each_entry_rcu(event, &rb->event_list, rb_entry) { 5519 if (!atomic_long_inc_not_zero(&event->refcount)) { 5520 /* 5521 * This event is en-route to free_event() which will 5522 * detach it and remove it from the list. 5523 */ 5524 continue; 5525 } 5526 rcu_read_unlock(); 5527 5528 mutex_lock(&event->mmap_mutex); 5529 /* 5530 * Check we didn't race with perf_event_set_output() which can 5531 * swizzle the rb from under us while we were waiting to 5532 * acquire mmap_mutex. 5533 * 5534 * If we find a different rb; ignore this event, a next 5535 * iteration will no longer find it on the list. We have to 5536 * still restart the iteration to make sure we're not now 5537 * iterating the wrong list. 5538 */ 5539 if (event->rb == rb) 5540 ring_buffer_attach(event, NULL); 5541 5542 mutex_unlock(&event->mmap_mutex); 5543 put_event(event); 5544 5545 /* 5546 * Restart the iteration; either we're on the wrong list or 5547 * destroyed its integrity by doing a deletion. 5548 */ 5549 goto again; 5550 } 5551 rcu_read_unlock(); 5552 5553 /* 5554 * It could be there's still a few 0-ref events on the list; they'll 5555 * get cleaned up by free_event() -- they'll also still have their 5556 * ref on the rb and will free it whenever they are done with it. 5557 * 5558 * Aside from that, this buffer is 'fully' detached and unmapped, 5559 * undo the VM accounting. 5560 */ 5561 5562 atomic_long_sub((size >> PAGE_SHIFT) + 1, &mmap_user->locked_vm); 5563 atomic64_sub(mmap_locked, &vma->vm_mm->pinned_vm); 5564 free_uid(mmap_user); 5565 5566 out_put: 5567 ring_buffer_put(rb); /* could be last */ 5568 } 5569 5570 static const struct vm_operations_struct perf_mmap_vmops = { 5571 .open = perf_mmap_open, 5572 .close = perf_mmap_close, /* non mergeable */ 5573 .fault = perf_mmap_fault, 5574 .page_mkwrite = perf_mmap_fault, 5575 }; 5576 5577 static int perf_mmap(struct file *file, struct vm_area_struct *vma) 5578 { 5579 struct perf_event *event = file->private_data; 5580 unsigned long user_locked, user_lock_limit; 5581 struct user_struct *user = current_user(); 5582 unsigned long locked, lock_limit; 5583 struct ring_buffer *rb = NULL; 5584 unsigned long vma_size; 5585 unsigned long nr_pages; 5586 long user_extra = 0, extra = 0; 5587 int ret = 0, flags = 0; 5588 5589 /* 5590 * Don't allow mmap() of inherited per-task counters. This would 5591 * create a performance issue due to all children writing to the 5592 * same rb. 5593 */ 5594 if (event->cpu == -1 && event->attr.inherit) 5595 return -EINVAL; 5596 5597 if (!(vma->vm_flags & VM_SHARED)) 5598 return -EINVAL; 5599 5600 vma_size = vma->vm_end - vma->vm_start; 5601 5602 if (vma->vm_pgoff == 0) { 5603 nr_pages = (vma_size / PAGE_SIZE) - 1; 5604 } else { 5605 /* 5606 * AUX area mapping: if rb->aux_nr_pages != 0, it's already 5607 * mapped, all subsequent mappings should have the same size 5608 * and offset. Must be above the normal perf buffer. 5609 */ 5610 u64 aux_offset, aux_size; 5611 5612 if (!event->rb) 5613 return -EINVAL; 5614 5615 nr_pages = vma_size / PAGE_SIZE; 5616 5617 mutex_lock(&event->mmap_mutex); 5618 ret = -EINVAL; 5619 5620 rb = event->rb; 5621 if (!rb) 5622 goto aux_unlock; 5623 5624 aux_offset = READ_ONCE(rb->user_page->aux_offset); 5625 aux_size = READ_ONCE(rb->user_page->aux_size); 5626 5627 if (aux_offset < perf_data_size(rb) + PAGE_SIZE) 5628 goto aux_unlock; 5629 5630 if (aux_offset != vma->vm_pgoff << PAGE_SHIFT) 5631 goto aux_unlock; 5632 5633 /* already mapped with a different offset */ 5634 if (rb_has_aux(rb) && rb->aux_pgoff != vma->vm_pgoff) 5635 goto aux_unlock; 5636 5637 if (aux_size != vma_size || aux_size != nr_pages * PAGE_SIZE) 5638 goto aux_unlock; 5639 5640 /* already mapped with a different size */ 5641 if (rb_has_aux(rb) && rb->aux_nr_pages != nr_pages) 5642 goto aux_unlock; 5643 5644 if (!is_power_of_2(nr_pages)) 5645 goto aux_unlock; 5646 5647 if (!atomic_inc_not_zero(&rb->mmap_count)) 5648 goto aux_unlock; 5649 5650 if (rb_has_aux(rb)) { 5651 atomic_inc(&rb->aux_mmap_count); 5652 ret = 0; 5653 goto unlock; 5654 } 5655 5656 atomic_set(&rb->aux_mmap_count, 1); 5657 user_extra = nr_pages; 5658 5659 goto accounting; 5660 } 5661 5662 /* 5663 * If we have rb pages ensure they're a power-of-two number, so we 5664 * can do bitmasks instead of modulo. 5665 */ 5666 if (nr_pages != 0 && !is_power_of_2(nr_pages)) 5667 return -EINVAL; 5668 5669 if (vma_size != PAGE_SIZE * (1 + nr_pages)) 5670 return -EINVAL; 5671 5672 WARN_ON_ONCE(event->ctx->parent_ctx); 5673 again: 5674 mutex_lock(&event->mmap_mutex); 5675 if (event->rb) { 5676 if (event->rb->nr_pages != nr_pages) { 5677 ret = -EINVAL; 5678 goto unlock; 5679 } 5680 5681 if (!atomic_inc_not_zero(&event->rb->mmap_count)) { 5682 /* 5683 * Raced against perf_mmap_close() through 5684 * perf_event_set_output(). Try again, hope for better 5685 * luck. 5686 */ 5687 mutex_unlock(&event->mmap_mutex); 5688 goto again; 5689 } 5690 5691 goto unlock; 5692 } 5693 5694 user_extra = nr_pages + 1; 5695 5696 accounting: 5697 user_lock_limit = sysctl_perf_event_mlock >> (PAGE_SHIFT - 10); 5698 5699 /* 5700 * Increase the limit linearly with more CPUs: 5701 */ 5702 user_lock_limit *= num_online_cpus(); 5703 5704 user_locked = atomic_long_read(&user->locked_vm) + user_extra; 5705 5706 if (user_locked > user_lock_limit) 5707 extra = user_locked - user_lock_limit; 5708 5709 lock_limit = rlimit(RLIMIT_MEMLOCK); 5710 lock_limit >>= PAGE_SHIFT; 5711 locked = atomic64_read(&vma->vm_mm->pinned_vm) + extra; 5712 5713 if ((locked > lock_limit) && perf_paranoid_tracepoint_raw() && 5714 !capable(CAP_IPC_LOCK)) { 5715 ret = -EPERM; 5716 goto unlock; 5717 } 5718 5719 WARN_ON(!rb && event->rb); 5720 5721 if (vma->vm_flags & VM_WRITE) 5722 flags |= RING_BUFFER_WRITABLE; 5723 5724 if (!rb) { 5725 rb = rb_alloc(nr_pages, 5726 event->attr.watermark ? event->attr.wakeup_watermark : 0, 5727 event->cpu, flags); 5728 5729 if (!rb) { 5730 ret = -ENOMEM; 5731 goto unlock; 5732 } 5733 5734 atomic_set(&rb->mmap_count, 1); 5735 rb->mmap_user = get_current_user(); 5736 rb->mmap_locked = extra; 5737 5738 ring_buffer_attach(event, rb); 5739 5740 perf_event_init_userpage(event); 5741 perf_event_update_userpage(event); 5742 } else { 5743 ret = rb_alloc_aux(rb, event, vma->vm_pgoff, nr_pages, 5744 event->attr.aux_watermark, flags); 5745 if (!ret) 5746 rb->aux_mmap_locked = extra; 5747 } 5748 5749 unlock: 5750 if (!ret) { 5751 atomic_long_add(user_extra, &user->locked_vm); 5752 atomic64_add(extra, &vma->vm_mm->pinned_vm); 5753 5754 atomic_inc(&event->mmap_count); 5755 } else if (rb) { 5756 atomic_dec(&rb->mmap_count); 5757 } 5758 aux_unlock: 5759 mutex_unlock(&event->mmap_mutex); 5760 5761 /* 5762 * Since pinned accounting is per vm we cannot allow fork() to copy our 5763 * vma. 5764 */ 5765 vma->vm_flags |= VM_DONTCOPY | VM_DONTEXPAND | VM_DONTDUMP; 5766 vma->vm_ops = &perf_mmap_vmops; 5767 5768 if (event->pmu->event_mapped) 5769 event->pmu->event_mapped(event, vma->vm_mm); 5770 5771 return ret; 5772 } 5773 5774 static int perf_fasync(int fd, struct file *filp, int on) 5775 { 5776 struct inode *inode = file_inode(filp); 5777 struct perf_event *event = filp->private_data; 5778 int retval; 5779 5780 inode_lock(inode); 5781 retval = fasync_helper(fd, filp, on, &event->fasync); 5782 inode_unlock(inode); 5783 5784 if (retval < 0) 5785 return retval; 5786 5787 return 0; 5788 } 5789 5790 static const struct file_operations perf_fops = { 5791 .llseek = no_llseek, 5792 .release = perf_release, 5793 .read = perf_read, 5794 .poll = perf_poll, 5795 .unlocked_ioctl = perf_ioctl, 5796 .compat_ioctl = perf_compat_ioctl, 5797 .mmap = perf_mmap, 5798 .fasync = perf_fasync, 5799 }; 5800 5801 /* 5802 * Perf event wakeup 5803 * 5804 * If there's data, ensure we set the poll() state and publish everything 5805 * to user-space before waking everybody up. 5806 */ 5807 5808 static inline struct fasync_struct **perf_event_fasync(struct perf_event *event) 5809 { 5810 /* only the parent has fasync state */ 5811 if (event->parent) 5812 event = event->parent; 5813 return &event->fasync; 5814 } 5815 5816 void perf_event_wakeup(struct perf_event *event) 5817 { 5818 ring_buffer_wakeup(event); 5819 5820 if (event->pending_kill) { 5821 kill_fasync(perf_event_fasync(event), SIGIO, event->pending_kill); 5822 event->pending_kill = 0; 5823 } 5824 } 5825 5826 static void perf_pending_event_disable(struct perf_event *event) 5827 { 5828 int cpu = READ_ONCE(event->pending_disable); 5829 5830 if (cpu < 0) 5831 return; 5832 5833 if (cpu == smp_processor_id()) { 5834 WRITE_ONCE(event->pending_disable, -1); 5835 perf_event_disable_local(event); 5836 return; 5837 } 5838 5839 /* 5840 * CPU-A CPU-B 5841 * 5842 * perf_event_disable_inatomic() 5843 * @pending_disable = CPU-A; 5844 * irq_work_queue(); 5845 * 5846 * sched-out 5847 * @pending_disable = -1; 5848 * 5849 * sched-in 5850 * perf_event_disable_inatomic() 5851 * @pending_disable = CPU-B; 5852 * irq_work_queue(); // FAILS 5853 * 5854 * irq_work_run() 5855 * perf_pending_event() 5856 * 5857 * But the event runs on CPU-B and wants disabling there. 5858 */ 5859 irq_work_queue_on(&event->pending, cpu); 5860 } 5861 5862 static void perf_pending_event(struct irq_work *entry) 5863 { 5864 struct perf_event *event = container_of(entry, struct perf_event, pending); 5865 int rctx; 5866 5867 rctx = perf_swevent_get_recursion_context(); 5868 /* 5869 * If we 'fail' here, that's OK, it means recursion is already disabled 5870 * and we won't recurse 'further'. 5871 */ 5872 5873 perf_pending_event_disable(event); 5874 5875 if (event->pending_wakeup) { 5876 event->pending_wakeup = 0; 5877 perf_event_wakeup(event); 5878 } 5879 5880 if (rctx >= 0) 5881 perf_swevent_put_recursion_context(rctx); 5882 } 5883 5884 /* 5885 * We assume there is only KVM supporting the callbacks. 5886 * Later on, we might change it to a list if there is 5887 * another virtualization implementation supporting the callbacks. 5888 */ 5889 struct perf_guest_info_callbacks *perf_guest_cbs; 5890 5891 int perf_register_guest_info_callbacks(struct perf_guest_info_callbacks *cbs) 5892 { 5893 perf_guest_cbs = cbs; 5894 return 0; 5895 } 5896 EXPORT_SYMBOL_GPL(perf_register_guest_info_callbacks); 5897 5898 int perf_unregister_guest_info_callbacks(struct perf_guest_info_callbacks *cbs) 5899 { 5900 perf_guest_cbs = NULL; 5901 return 0; 5902 } 5903 EXPORT_SYMBOL_GPL(perf_unregister_guest_info_callbacks); 5904 5905 static void 5906 perf_output_sample_regs(struct perf_output_handle *handle, 5907 struct pt_regs *regs, u64 mask) 5908 { 5909 int bit; 5910 DECLARE_BITMAP(_mask, 64); 5911 5912 bitmap_from_u64(_mask, mask); 5913 for_each_set_bit(bit, _mask, sizeof(mask) * BITS_PER_BYTE) { 5914 u64 val; 5915 5916 val = perf_reg_value(regs, bit); 5917 perf_output_put(handle, val); 5918 } 5919 } 5920 5921 static void perf_sample_regs_user(struct perf_regs *regs_user, 5922 struct pt_regs *regs, 5923 struct pt_regs *regs_user_copy) 5924 { 5925 if (user_mode(regs)) { 5926 regs_user->abi = perf_reg_abi(current); 5927 regs_user->regs = regs; 5928 } else if (current->mm) { 5929 perf_get_regs_user(regs_user, regs, regs_user_copy); 5930 } else { 5931 regs_user->abi = PERF_SAMPLE_REGS_ABI_NONE; 5932 regs_user->regs = NULL; 5933 } 5934 } 5935 5936 static void perf_sample_regs_intr(struct perf_regs *regs_intr, 5937 struct pt_regs *regs) 5938 { 5939 regs_intr->regs = regs; 5940 regs_intr->abi = perf_reg_abi(current); 5941 } 5942 5943 5944 /* 5945 * Get remaining task size from user stack pointer. 5946 * 5947 * It'd be better to take stack vma map and limit this more 5948 * precisly, but there's no way to get it safely under interrupt, 5949 * so using TASK_SIZE as limit. 5950 */ 5951 static u64 perf_ustack_task_size(struct pt_regs *regs) 5952 { 5953 unsigned long addr = perf_user_stack_pointer(regs); 5954 5955 if (!addr || addr >= TASK_SIZE) 5956 return 0; 5957 5958 return TASK_SIZE - addr; 5959 } 5960 5961 static u16 5962 perf_sample_ustack_size(u16 stack_size, u16 header_size, 5963 struct pt_regs *regs) 5964 { 5965 u64 task_size; 5966 5967 /* No regs, no stack pointer, no dump. */ 5968 if (!regs) 5969 return 0; 5970 5971 /* 5972 * Check if we fit in with the requested stack size into the: 5973 * - TASK_SIZE 5974 * If we don't, we limit the size to the TASK_SIZE. 5975 * 5976 * - remaining sample size 5977 * If we don't, we customize the stack size to 5978 * fit in to the remaining sample size. 5979 */ 5980 5981 task_size = min((u64) USHRT_MAX, perf_ustack_task_size(regs)); 5982 stack_size = min(stack_size, (u16) task_size); 5983 5984 /* Current header size plus static size and dynamic size. */ 5985 header_size += 2 * sizeof(u64); 5986 5987 /* Do we fit in with the current stack dump size? */ 5988 if ((u16) (header_size + stack_size) < header_size) { 5989 /* 5990 * If we overflow the maximum size for the sample, 5991 * we customize the stack dump size to fit in. 5992 */ 5993 stack_size = USHRT_MAX - header_size - sizeof(u64); 5994 stack_size = round_up(stack_size, sizeof(u64)); 5995 } 5996 5997 return stack_size; 5998 } 5999 6000 static void 6001 perf_output_sample_ustack(struct perf_output_handle *handle, u64 dump_size, 6002 struct pt_regs *regs) 6003 { 6004 /* Case of a kernel thread, nothing to dump */ 6005 if (!regs) { 6006 u64 size = 0; 6007 perf_output_put(handle, size); 6008 } else { 6009 unsigned long sp; 6010 unsigned int rem; 6011 u64 dyn_size; 6012 mm_segment_t fs; 6013 6014 /* 6015 * We dump: 6016 * static size 6017 * - the size requested by user or the best one we can fit 6018 * in to the sample max size 6019 * data 6020 * - user stack dump data 6021 * dynamic size 6022 * - the actual dumped size 6023 */ 6024 6025 /* Static size. */ 6026 perf_output_put(handle, dump_size); 6027 6028 /* Data. */ 6029 sp = perf_user_stack_pointer(regs); 6030 fs = get_fs(); 6031 set_fs(USER_DS); 6032 rem = __output_copy_user(handle, (void *) sp, dump_size); 6033 set_fs(fs); 6034 dyn_size = dump_size - rem; 6035 6036 perf_output_skip(handle, rem); 6037 6038 /* Dynamic size. */ 6039 perf_output_put(handle, dyn_size); 6040 } 6041 } 6042 6043 static void __perf_event_header__init_id(struct perf_event_header *header, 6044 struct perf_sample_data *data, 6045 struct perf_event *event) 6046 { 6047 u64 sample_type = event->attr.sample_type; 6048 6049 data->type = sample_type; 6050 header->size += event->id_header_size; 6051 6052 if (sample_type & PERF_SAMPLE_TID) { 6053 /* namespace issues */ 6054 data->tid_entry.pid = perf_event_pid(event, current); 6055 data->tid_entry.tid = perf_event_tid(event, current); 6056 } 6057 6058 if (sample_type & PERF_SAMPLE_TIME) 6059 data->time = perf_event_clock(event); 6060 6061 if (sample_type & (PERF_SAMPLE_ID | PERF_SAMPLE_IDENTIFIER)) 6062 data->id = primary_event_id(event); 6063 6064 if (sample_type & PERF_SAMPLE_STREAM_ID) 6065 data->stream_id = event->id; 6066 6067 if (sample_type & PERF_SAMPLE_CPU) { 6068 data->cpu_entry.cpu = raw_smp_processor_id(); 6069 data->cpu_entry.reserved = 0; 6070 } 6071 } 6072 6073 void perf_event_header__init_id(struct perf_event_header *header, 6074 struct perf_sample_data *data, 6075 struct perf_event *event) 6076 { 6077 if (event->attr.sample_id_all) 6078 __perf_event_header__init_id(header, data, event); 6079 } 6080 6081 static void __perf_event__output_id_sample(struct perf_output_handle *handle, 6082 struct perf_sample_data *data) 6083 { 6084 u64 sample_type = data->type; 6085 6086 if (sample_type & PERF_SAMPLE_TID) 6087 perf_output_put(handle, data->tid_entry); 6088 6089 if (sample_type & PERF_SAMPLE_TIME) 6090 perf_output_put(handle, data->time); 6091 6092 if (sample_type & PERF_SAMPLE_ID) 6093 perf_output_put(handle, data->id); 6094 6095 if (sample_type & PERF_SAMPLE_STREAM_ID) 6096 perf_output_put(handle, data->stream_id); 6097 6098 if (sample_type & PERF_SAMPLE_CPU) 6099 perf_output_put(handle, data->cpu_entry); 6100 6101 if (sample_type & PERF_SAMPLE_IDENTIFIER) 6102 perf_output_put(handle, data->id); 6103 } 6104 6105 void perf_event__output_id_sample(struct perf_event *event, 6106 struct perf_output_handle *handle, 6107 struct perf_sample_data *sample) 6108 { 6109 if (event->attr.sample_id_all) 6110 __perf_event__output_id_sample(handle, sample); 6111 } 6112 6113 static void perf_output_read_one(struct perf_output_handle *handle, 6114 struct perf_event *event, 6115 u64 enabled, u64 running) 6116 { 6117 u64 read_format = event->attr.read_format; 6118 u64 values[4]; 6119 int n = 0; 6120 6121 values[n++] = perf_event_count(event); 6122 if (read_format & PERF_FORMAT_TOTAL_TIME_ENABLED) { 6123 values[n++] = enabled + 6124 atomic64_read(&event->child_total_time_enabled); 6125 } 6126 if (read_format & PERF_FORMAT_TOTAL_TIME_RUNNING) { 6127 values[n++] = running + 6128 atomic64_read(&event->child_total_time_running); 6129 } 6130 if (read_format & PERF_FORMAT_ID) 6131 values[n++] = primary_event_id(event); 6132 6133 __output_copy(handle, values, n * sizeof(u64)); 6134 } 6135 6136 static void perf_output_read_group(struct perf_output_handle *handle, 6137 struct perf_event *event, 6138 u64 enabled, u64 running) 6139 { 6140 struct perf_event *leader = event->group_leader, *sub; 6141 u64 read_format = event->attr.read_format; 6142 u64 values[5]; 6143 int n = 0; 6144 6145 values[n++] = 1 + leader->nr_siblings; 6146 6147 if (read_format & PERF_FORMAT_TOTAL_TIME_ENABLED) 6148 values[n++] = enabled; 6149 6150 if (read_format & PERF_FORMAT_TOTAL_TIME_RUNNING) 6151 values[n++] = running; 6152 6153 if ((leader != event) && 6154 (leader->state == PERF_EVENT_STATE_ACTIVE)) 6155 leader->pmu->read(leader); 6156 6157 values[n++] = perf_event_count(leader); 6158 if (read_format & PERF_FORMAT_ID) 6159 values[n++] = primary_event_id(leader); 6160 6161 __output_copy(handle, values, n * sizeof(u64)); 6162 6163 for_each_sibling_event(sub, leader) { 6164 n = 0; 6165 6166 if ((sub != event) && 6167 (sub->state == PERF_EVENT_STATE_ACTIVE)) 6168 sub->pmu->read(sub); 6169 6170 values[n++] = perf_event_count(sub); 6171 if (read_format & PERF_FORMAT_ID) 6172 values[n++] = primary_event_id(sub); 6173 6174 __output_copy(handle, values, n * sizeof(u64)); 6175 } 6176 } 6177 6178 #define PERF_FORMAT_TOTAL_TIMES (PERF_FORMAT_TOTAL_TIME_ENABLED|\ 6179 PERF_FORMAT_TOTAL_TIME_RUNNING) 6180 6181 /* 6182 * XXX PERF_SAMPLE_READ vs inherited events seems difficult. 6183 * 6184 * The problem is that its both hard and excessively expensive to iterate the 6185 * child list, not to mention that its impossible to IPI the children running 6186 * on another CPU, from interrupt/NMI context. 6187 */ 6188 static void perf_output_read(struct perf_output_handle *handle, 6189 struct perf_event *event) 6190 { 6191 u64 enabled = 0, running = 0, now; 6192 u64 read_format = event->attr.read_format; 6193 6194 /* 6195 * compute total_time_enabled, total_time_running 6196 * based on snapshot values taken when the event 6197 * was last scheduled in. 6198 * 6199 * we cannot simply called update_context_time() 6200 * because of locking issue as we are called in 6201 * NMI context 6202 */ 6203 if (read_format & PERF_FORMAT_TOTAL_TIMES) 6204 calc_timer_values(event, &now, &enabled, &running); 6205 6206 if (event->attr.read_format & PERF_FORMAT_GROUP) 6207 perf_output_read_group(handle, event, enabled, running); 6208 else 6209 perf_output_read_one(handle, event, enabled, running); 6210 } 6211 6212 void perf_output_sample(struct perf_output_handle *handle, 6213 struct perf_event_header *header, 6214 struct perf_sample_data *data, 6215 struct perf_event *event) 6216 { 6217 u64 sample_type = data->type; 6218 6219 perf_output_put(handle, *header); 6220 6221 if (sample_type & PERF_SAMPLE_IDENTIFIER) 6222 perf_output_put(handle, data->id); 6223 6224 if (sample_type & PERF_SAMPLE_IP) 6225 perf_output_put(handle, data->ip); 6226 6227 if (sample_type & PERF_SAMPLE_TID) 6228 perf_output_put(handle, data->tid_entry); 6229 6230 if (sample_type & PERF_SAMPLE_TIME) 6231 perf_output_put(handle, data->time); 6232 6233 if (sample_type & PERF_SAMPLE_ADDR) 6234 perf_output_put(handle, data->addr); 6235 6236 if (sample_type & PERF_SAMPLE_ID) 6237 perf_output_put(handle, data->id); 6238 6239 if (sample_type & PERF_SAMPLE_STREAM_ID) 6240 perf_output_put(handle, data->stream_id); 6241 6242 if (sample_type & PERF_SAMPLE_CPU) 6243 perf_output_put(handle, data->cpu_entry); 6244 6245 if (sample_type & PERF_SAMPLE_PERIOD) 6246 perf_output_put(handle, data->period); 6247 6248 if (sample_type & PERF_SAMPLE_READ) 6249 perf_output_read(handle, event); 6250 6251 if (sample_type & PERF_SAMPLE_CALLCHAIN) { 6252 int size = 1; 6253 6254 size += data->callchain->nr; 6255 size *= sizeof(u64); 6256 __output_copy(handle, data->callchain, size); 6257 } 6258 6259 if (sample_type & PERF_SAMPLE_RAW) { 6260 struct perf_raw_record *raw = data->raw; 6261 6262 if (raw) { 6263 struct perf_raw_frag *frag = &raw->frag; 6264 6265 perf_output_put(handle, raw->size); 6266 do { 6267 if (frag->copy) { 6268 __output_custom(handle, frag->copy, 6269 frag->data, frag->size); 6270 } else { 6271 __output_copy(handle, frag->data, 6272 frag->size); 6273 } 6274 if (perf_raw_frag_last(frag)) 6275 break; 6276 frag = frag->next; 6277 } while (1); 6278 if (frag->pad) 6279 __output_skip(handle, NULL, frag->pad); 6280 } else { 6281 struct { 6282 u32 size; 6283 u32 data; 6284 } raw = { 6285 .size = sizeof(u32), 6286 .data = 0, 6287 }; 6288 perf_output_put(handle, raw); 6289 } 6290 } 6291 6292 if (sample_type & PERF_SAMPLE_BRANCH_STACK) { 6293 if (data->br_stack) { 6294 size_t size; 6295 6296 size = data->br_stack->nr 6297 * sizeof(struct perf_branch_entry); 6298 6299 perf_output_put(handle, data->br_stack->nr); 6300 perf_output_copy(handle, data->br_stack->entries, size); 6301 } else { 6302 /* 6303 * we always store at least the value of nr 6304 */ 6305 u64 nr = 0; 6306 perf_output_put(handle, nr); 6307 } 6308 } 6309 6310 if (sample_type & PERF_SAMPLE_REGS_USER) { 6311 u64 abi = data->regs_user.abi; 6312 6313 /* 6314 * If there are no regs to dump, notice it through 6315 * first u64 being zero (PERF_SAMPLE_REGS_ABI_NONE). 6316 */ 6317 perf_output_put(handle, abi); 6318 6319 if (abi) { 6320 u64 mask = event->attr.sample_regs_user; 6321 perf_output_sample_regs(handle, 6322 data->regs_user.regs, 6323 mask); 6324 } 6325 } 6326 6327 if (sample_type & PERF_SAMPLE_STACK_USER) { 6328 perf_output_sample_ustack(handle, 6329 data->stack_user_size, 6330 data->regs_user.regs); 6331 } 6332 6333 if (sample_type & PERF_SAMPLE_WEIGHT) 6334 perf_output_put(handle, data->weight); 6335 6336 if (sample_type & PERF_SAMPLE_DATA_SRC) 6337 perf_output_put(handle, data->data_src.val); 6338 6339 if (sample_type & PERF_SAMPLE_TRANSACTION) 6340 perf_output_put(handle, data->txn); 6341 6342 if (sample_type & PERF_SAMPLE_REGS_INTR) { 6343 u64 abi = data->regs_intr.abi; 6344 /* 6345 * If there are no regs to dump, notice it through 6346 * first u64 being zero (PERF_SAMPLE_REGS_ABI_NONE). 6347 */ 6348 perf_output_put(handle, abi); 6349 6350 if (abi) { 6351 u64 mask = event->attr.sample_regs_intr; 6352 6353 perf_output_sample_regs(handle, 6354 data->regs_intr.regs, 6355 mask); 6356 } 6357 } 6358 6359 if (sample_type & PERF_SAMPLE_PHYS_ADDR) 6360 perf_output_put(handle, data->phys_addr); 6361 6362 if (!event->attr.watermark) { 6363 int wakeup_events = event->attr.wakeup_events; 6364 6365 if (wakeup_events) { 6366 struct ring_buffer *rb = handle->rb; 6367 int events = local_inc_return(&rb->events); 6368 6369 if (events >= wakeup_events) { 6370 local_sub(wakeup_events, &rb->events); 6371 local_inc(&rb->wakeup); 6372 } 6373 } 6374 } 6375 } 6376 6377 static u64 perf_virt_to_phys(u64 virt) 6378 { 6379 u64 phys_addr = 0; 6380 struct page *p = NULL; 6381 6382 if (!virt) 6383 return 0; 6384 6385 if (virt >= TASK_SIZE) { 6386 /* If it's vmalloc()d memory, leave phys_addr as 0 */ 6387 if (virt_addr_valid((void *)(uintptr_t)virt) && 6388 !(virt >= VMALLOC_START && virt < VMALLOC_END)) 6389 phys_addr = (u64)virt_to_phys((void *)(uintptr_t)virt); 6390 } else { 6391 /* 6392 * Walking the pages tables for user address. 6393 * Interrupts are disabled, so it prevents any tear down 6394 * of the page tables. 6395 * Try IRQ-safe __get_user_pages_fast first. 6396 * If failed, leave phys_addr as 0. 6397 */ 6398 if ((current->mm != NULL) && 6399 (__get_user_pages_fast(virt, 1, 0, &p) == 1)) 6400 phys_addr = page_to_phys(p) + virt % PAGE_SIZE; 6401 6402 if (p) 6403 put_page(p); 6404 } 6405 6406 return phys_addr; 6407 } 6408 6409 static struct perf_callchain_entry __empty_callchain = { .nr = 0, }; 6410 6411 struct perf_callchain_entry * 6412 perf_callchain(struct perf_event *event, struct pt_regs *regs) 6413 { 6414 bool kernel = !event->attr.exclude_callchain_kernel; 6415 bool user = !event->attr.exclude_callchain_user; 6416 /* Disallow cross-task user callchains. */ 6417 bool crosstask = event->ctx->task && event->ctx->task != current; 6418 const u32 max_stack = event->attr.sample_max_stack; 6419 struct perf_callchain_entry *callchain; 6420 6421 if (!kernel && !user) 6422 return &__empty_callchain; 6423 6424 callchain = get_perf_callchain(regs, 0, kernel, user, 6425 max_stack, crosstask, true); 6426 return callchain ?: &__empty_callchain; 6427 } 6428 6429 void perf_prepare_sample(struct perf_event_header *header, 6430 struct perf_sample_data *data, 6431 struct perf_event *event, 6432 struct pt_regs *regs) 6433 { 6434 u64 sample_type = event->attr.sample_type; 6435 6436 header->type = PERF_RECORD_SAMPLE; 6437 header->size = sizeof(*header) + event->header_size; 6438 6439 header->misc = 0; 6440 header->misc |= perf_misc_flags(regs); 6441 6442 __perf_event_header__init_id(header, data, event); 6443 6444 if (sample_type & PERF_SAMPLE_IP) 6445 data->ip = perf_instruction_pointer(regs); 6446 6447 if (sample_type & PERF_SAMPLE_CALLCHAIN) { 6448 int size = 1; 6449 6450 if (!(sample_type & __PERF_SAMPLE_CALLCHAIN_EARLY)) 6451 data->callchain = perf_callchain(event, regs); 6452 6453 size += data->callchain->nr; 6454 6455 header->size += size * sizeof(u64); 6456 } 6457 6458 if (sample_type & PERF_SAMPLE_RAW) { 6459 struct perf_raw_record *raw = data->raw; 6460 int size; 6461 6462 if (raw) { 6463 struct perf_raw_frag *frag = &raw->frag; 6464 u32 sum = 0; 6465 6466 do { 6467 sum += frag->size; 6468 if (perf_raw_frag_last(frag)) 6469 break; 6470 frag = frag->next; 6471 } while (1); 6472 6473 size = round_up(sum + sizeof(u32), sizeof(u64)); 6474 raw->size = size - sizeof(u32); 6475 frag->pad = raw->size - sum; 6476 } else { 6477 size = sizeof(u64); 6478 } 6479 6480 header->size += size; 6481 } 6482 6483 if (sample_type & PERF_SAMPLE_BRANCH_STACK) { 6484 int size = sizeof(u64); /* nr */ 6485 if (data->br_stack) { 6486 size += data->br_stack->nr 6487 * sizeof(struct perf_branch_entry); 6488 } 6489 header->size += size; 6490 } 6491 6492 if (sample_type & (PERF_SAMPLE_REGS_USER | PERF_SAMPLE_STACK_USER)) 6493 perf_sample_regs_user(&data->regs_user, regs, 6494 &data->regs_user_copy); 6495 6496 if (sample_type & PERF_SAMPLE_REGS_USER) { 6497 /* regs dump ABI info */ 6498 int size = sizeof(u64); 6499 6500 if (data->regs_user.regs) { 6501 u64 mask = event->attr.sample_regs_user; 6502 size += hweight64(mask) * sizeof(u64); 6503 } 6504 6505 header->size += size; 6506 } 6507 6508 if (sample_type & PERF_SAMPLE_STACK_USER) { 6509 /* 6510 * Either we need PERF_SAMPLE_STACK_USER bit to be allways 6511 * processed as the last one or have additional check added 6512 * in case new sample type is added, because we could eat 6513 * up the rest of the sample size. 6514 */ 6515 u16 stack_size = event->attr.sample_stack_user; 6516 u16 size = sizeof(u64); 6517 6518 stack_size = perf_sample_ustack_size(stack_size, header->size, 6519 data->regs_user.regs); 6520 6521 /* 6522 * If there is something to dump, add space for the dump 6523 * itself and for the field that tells the dynamic size, 6524 * which is how many have been actually dumped. 6525 */ 6526 if (stack_size) 6527 size += sizeof(u64) + stack_size; 6528 6529 data->stack_user_size = stack_size; 6530 header->size += size; 6531 } 6532 6533 if (sample_type & PERF_SAMPLE_REGS_INTR) { 6534 /* regs dump ABI info */ 6535 int size = sizeof(u64); 6536 6537 perf_sample_regs_intr(&data->regs_intr, regs); 6538 6539 if (data->regs_intr.regs) { 6540 u64 mask = event->attr.sample_regs_intr; 6541 6542 size += hweight64(mask) * sizeof(u64); 6543 } 6544 6545 header->size += size; 6546 } 6547 6548 if (sample_type & PERF_SAMPLE_PHYS_ADDR) 6549 data->phys_addr = perf_virt_to_phys(data->addr); 6550 } 6551 6552 static __always_inline int 6553 __perf_event_output(struct perf_event *event, 6554 struct perf_sample_data *data, 6555 struct pt_regs *regs, 6556 int (*output_begin)(struct perf_output_handle *, 6557 struct perf_event *, 6558 unsigned int)) 6559 { 6560 struct perf_output_handle handle; 6561 struct perf_event_header header; 6562 int err; 6563 6564 /* protect the callchain buffers */ 6565 rcu_read_lock(); 6566 6567 perf_prepare_sample(&header, data, event, regs); 6568 6569 err = output_begin(&handle, event, header.size); 6570 if (err) 6571 goto exit; 6572 6573 perf_output_sample(&handle, &header, data, event); 6574 6575 perf_output_end(&handle); 6576 6577 exit: 6578 rcu_read_unlock(); 6579 return err; 6580 } 6581 6582 void 6583 perf_event_output_forward(struct perf_event *event, 6584 struct perf_sample_data *data, 6585 struct pt_regs *regs) 6586 { 6587 __perf_event_output(event, data, regs, perf_output_begin_forward); 6588 } 6589 6590 void 6591 perf_event_output_backward(struct perf_event *event, 6592 struct perf_sample_data *data, 6593 struct pt_regs *regs) 6594 { 6595 __perf_event_output(event, data, regs, perf_output_begin_backward); 6596 } 6597 6598 int 6599 perf_event_output(struct perf_event *event, 6600 struct perf_sample_data *data, 6601 struct pt_regs *regs) 6602 { 6603 return __perf_event_output(event, data, regs, perf_output_begin); 6604 } 6605 6606 /* 6607 * read event_id 6608 */ 6609 6610 struct perf_read_event { 6611 struct perf_event_header header; 6612 6613 u32 pid; 6614 u32 tid; 6615 }; 6616 6617 static void 6618 perf_event_read_event(struct perf_event *event, 6619 struct task_struct *task) 6620 { 6621 struct perf_output_handle handle; 6622 struct perf_sample_data sample; 6623 struct perf_read_event read_event = { 6624 .header = { 6625 .type = PERF_RECORD_READ, 6626 .misc = 0, 6627 .size = sizeof(read_event) + event->read_size, 6628 }, 6629 .pid = perf_event_pid(event, task), 6630 .tid = perf_event_tid(event, task), 6631 }; 6632 int ret; 6633 6634 perf_event_header__init_id(&read_event.header, &sample, event); 6635 ret = perf_output_begin(&handle, event, read_event.header.size); 6636 if (ret) 6637 return; 6638 6639 perf_output_put(&handle, read_event); 6640 perf_output_read(&handle, event); 6641 perf_event__output_id_sample(event, &handle, &sample); 6642 6643 perf_output_end(&handle); 6644 } 6645 6646 typedef void (perf_iterate_f)(struct perf_event *event, void *data); 6647 6648 static void 6649 perf_iterate_ctx(struct perf_event_context *ctx, 6650 perf_iterate_f output, 6651 void *data, bool all) 6652 { 6653 struct perf_event *event; 6654 6655 list_for_each_entry_rcu(event, &ctx->event_list, event_entry) { 6656 if (!all) { 6657 if (event->state < PERF_EVENT_STATE_INACTIVE) 6658 continue; 6659 if (!event_filter_match(event)) 6660 continue; 6661 } 6662 6663 output(event, data); 6664 } 6665 } 6666 6667 static void perf_iterate_sb_cpu(perf_iterate_f output, void *data) 6668 { 6669 struct pmu_event_list *pel = this_cpu_ptr(&pmu_sb_events); 6670 struct perf_event *event; 6671 6672 list_for_each_entry_rcu(event, &pel->list, sb_list) { 6673 /* 6674 * Skip events that are not fully formed yet; ensure that 6675 * if we observe event->ctx, both event and ctx will be 6676 * complete enough. See perf_install_in_context(). 6677 */ 6678 if (!smp_load_acquire(&event->ctx)) 6679 continue; 6680 6681 if (event->state < PERF_EVENT_STATE_INACTIVE) 6682 continue; 6683 if (!event_filter_match(event)) 6684 continue; 6685 output(event, data); 6686 } 6687 } 6688 6689 /* 6690 * Iterate all events that need to receive side-band events. 6691 * 6692 * For new callers; ensure that account_pmu_sb_event() includes 6693 * your event, otherwise it might not get delivered. 6694 */ 6695 static void 6696 perf_iterate_sb(perf_iterate_f output, void *data, 6697 struct perf_event_context *task_ctx) 6698 { 6699 struct perf_event_context *ctx; 6700 int ctxn; 6701 6702 rcu_read_lock(); 6703 preempt_disable(); 6704 6705 /* 6706 * If we have task_ctx != NULL we only notify the task context itself. 6707 * The task_ctx is set only for EXIT events before releasing task 6708 * context. 6709 */ 6710 if (task_ctx) { 6711 perf_iterate_ctx(task_ctx, output, data, false); 6712 goto done; 6713 } 6714 6715 perf_iterate_sb_cpu(output, data); 6716 6717 for_each_task_context_nr(ctxn) { 6718 ctx = rcu_dereference(current->perf_event_ctxp[ctxn]); 6719 if (ctx) 6720 perf_iterate_ctx(ctx, output, data, false); 6721 } 6722 done: 6723 preempt_enable(); 6724 rcu_read_unlock(); 6725 } 6726 6727 /* 6728 * Clear all file-based filters at exec, they'll have to be 6729 * re-instated when/if these objects are mmapped again. 6730 */ 6731 static void perf_event_addr_filters_exec(struct perf_event *event, void *data) 6732 { 6733 struct perf_addr_filters_head *ifh = perf_event_addr_filters(event); 6734 struct perf_addr_filter *filter; 6735 unsigned int restart = 0, count = 0; 6736 unsigned long flags; 6737 6738 if (!has_addr_filter(event)) 6739 return; 6740 6741 raw_spin_lock_irqsave(&ifh->lock, flags); 6742 list_for_each_entry(filter, &ifh->list, entry) { 6743 if (filter->path.dentry) { 6744 event->addr_filter_ranges[count].start = 0; 6745 event->addr_filter_ranges[count].size = 0; 6746 restart++; 6747 } 6748 6749 count++; 6750 } 6751 6752 if (restart) 6753 event->addr_filters_gen++; 6754 raw_spin_unlock_irqrestore(&ifh->lock, flags); 6755 6756 if (restart) 6757 perf_event_stop(event, 1); 6758 } 6759 6760 void perf_event_exec(void) 6761 { 6762 struct perf_event_context *ctx; 6763 int ctxn; 6764 6765 rcu_read_lock(); 6766 for_each_task_context_nr(ctxn) { 6767 ctx = current->perf_event_ctxp[ctxn]; 6768 if (!ctx) 6769 continue; 6770 6771 perf_event_enable_on_exec(ctxn); 6772 6773 perf_iterate_ctx(ctx, perf_event_addr_filters_exec, NULL, 6774 true); 6775 } 6776 rcu_read_unlock(); 6777 } 6778 6779 struct remote_output { 6780 struct ring_buffer *rb; 6781 int err; 6782 }; 6783 6784 static void __perf_event_output_stop(struct perf_event *event, void *data) 6785 { 6786 struct perf_event *parent = event->parent; 6787 struct remote_output *ro = data; 6788 struct ring_buffer *rb = ro->rb; 6789 struct stop_event_data sd = { 6790 .event = event, 6791 }; 6792 6793 if (!has_aux(event)) 6794 return; 6795 6796 if (!parent) 6797 parent = event; 6798 6799 /* 6800 * In case of inheritance, it will be the parent that links to the 6801 * ring-buffer, but it will be the child that's actually using it. 6802 * 6803 * We are using event::rb to determine if the event should be stopped, 6804 * however this may race with ring_buffer_attach() (through set_output), 6805 * which will make us skip the event that actually needs to be stopped. 6806 * So ring_buffer_attach() has to stop an aux event before re-assigning 6807 * its rb pointer. 6808 */ 6809 if (rcu_dereference(parent->rb) == rb) 6810 ro->err = __perf_event_stop(&sd); 6811 } 6812 6813 static int __perf_pmu_output_stop(void *info) 6814 { 6815 struct perf_event *event = info; 6816 struct pmu *pmu = event->pmu; 6817 struct perf_cpu_context *cpuctx = this_cpu_ptr(pmu->pmu_cpu_context); 6818 struct remote_output ro = { 6819 .rb = event->rb, 6820 }; 6821 6822 rcu_read_lock(); 6823 perf_iterate_ctx(&cpuctx->ctx, __perf_event_output_stop, &ro, false); 6824 if (cpuctx->task_ctx) 6825 perf_iterate_ctx(cpuctx->task_ctx, __perf_event_output_stop, 6826 &ro, false); 6827 rcu_read_unlock(); 6828 6829 return ro.err; 6830 } 6831 6832 static void perf_pmu_output_stop(struct perf_event *event) 6833 { 6834 struct perf_event *iter; 6835 int err, cpu; 6836 6837 restart: 6838 rcu_read_lock(); 6839 list_for_each_entry_rcu(iter, &event->rb->event_list, rb_entry) { 6840 /* 6841 * For per-CPU events, we need to make sure that neither they 6842 * nor their children are running; for cpu==-1 events it's 6843 * sufficient to stop the event itself if it's active, since 6844 * it can't have children. 6845 */ 6846 cpu = iter->cpu; 6847 if (cpu == -1) 6848 cpu = READ_ONCE(iter->oncpu); 6849 6850 if (cpu == -1) 6851 continue; 6852 6853 err = cpu_function_call(cpu, __perf_pmu_output_stop, event); 6854 if (err == -EAGAIN) { 6855 rcu_read_unlock(); 6856 goto restart; 6857 } 6858 } 6859 rcu_read_unlock(); 6860 } 6861 6862 /* 6863 * task tracking -- fork/exit 6864 * 6865 * enabled by: attr.comm | attr.mmap | attr.mmap2 | attr.mmap_data | attr.task 6866 */ 6867 6868 struct perf_task_event { 6869 struct task_struct *task; 6870 struct perf_event_context *task_ctx; 6871 6872 struct { 6873 struct perf_event_header header; 6874 6875 u32 pid; 6876 u32 ppid; 6877 u32 tid; 6878 u32 ptid; 6879 u64 time; 6880 } event_id; 6881 }; 6882 6883 static int perf_event_task_match(struct perf_event *event) 6884 { 6885 return event->attr.comm || event->attr.mmap || 6886 event->attr.mmap2 || event->attr.mmap_data || 6887 event->attr.task; 6888 } 6889 6890 static void perf_event_task_output(struct perf_event *event, 6891 void *data) 6892 { 6893 struct perf_task_event *task_event = data; 6894 struct perf_output_handle handle; 6895 struct perf_sample_data sample; 6896 struct task_struct *task = task_event->task; 6897 int ret, size = task_event->event_id.header.size; 6898 6899 if (!perf_event_task_match(event)) 6900 return; 6901 6902 perf_event_header__init_id(&task_event->event_id.header, &sample, event); 6903 6904 ret = perf_output_begin(&handle, event, 6905 task_event->event_id.header.size); 6906 if (ret) 6907 goto out; 6908 6909 task_event->event_id.pid = perf_event_pid(event, task); 6910 task_event->event_id.ppid = perf_event_pid(event, current); 6911 6912 task_event->event_id.tid = perf_event_tid(event, task); 6913 task_event->event_id.ptid = perf_event_tid(event, current); 6914 6915 task_event->event_id.time = perf_event_clock(event); 6916 6917 perf_output_put(&handle, task_event->event_id); 6918 6919 perf_event__output_id_sample(event, &handle, &sample); 6920 6921 perf_output_end(&handle); 6922 out: 6923 task_event->event_id.header.size = size; 6924 } 6925 6926 static void perf_event_task(struct task_struct *task, 6927 struct perf_event_context *task_ctx, 6928 int new) 6929 { 6930 struct perf_task_event task_event; 6931 6932 if (!atomic_read(&nr_comm_events) && 6933 !atomic_read(&nr_mmap_events) && 6934 !atomic_read(&nr_task_events)) 6935 return; 6936 6937 task_event = (struct perf_task_event){ 6938 .task = task, 6939 .task_ctx = task_ctx, 6940 .event_id = { 6941 .header = { 6942 .type = new ? PERF_RECORD_FORK : PERF_RECORD_EXIT, 6943 .misc = 0, 6944 .size = sizeof(task_event.event_id), 6945 }, 6946 /* .pid */ 6947 /* .ppid */ 6948 /* .tid */ 6949 /* .ptid */ 6950 /* .time */ 6951 }, 6952 }; 6953 6954 perf_iterate_sb(perf_event_task_output, 6955 &task_event, 6956 task_ctx); 6957 } 6958 6959 void perf_event_fork(struct task_struct *task) 6960 { 6961 perf_event_task(task, NULL, 1); 6962 perf_event_namespaces(task); 6963 } 6964 6965 /* 6966 * comm tracking 6967 */ 6968 6969 struct perf_comm_event { 6970 struct task_struct *task; 6971 char *comm; 6972 int comm_size; 6973 6974 struct { 6975 struct perf_event_header header; 6976 6977 u32 pid; 6978 u32 tid; 6979 } event_id; 6980 }; 6981 6982 static int perf_event_comm_match(struct perf_event *event) 6983 { 6984 return event->attr.comm; 6985 } 6986 6987 static void perf_event_comm_output(struct perf_event *event, 6988 void *data) 6989 { 6990 struct perf_comm_event *comm_event = data; 6991 struct perf_output_handle handle; 6992 struct perf_sample_data sample; 6993 int size = comm_event->event_id.header.size; 6994 int ret; 6995 6996 if (!perf_event_comm_match(event)) 6997 return; 6998 6999 perf_event_header__init_id(&comm_event->event_id.header, &sample, event); 7000 ret = perf_output_begin(&handle, event, 7001 comm_event->event_id.header.size); 7002 7003 if (ret) 7004 goto out; 7005 7006 comm_event->event_id.pid = perf_event_pid(event, comm_event->task); 7007 comm_event->event_id.tid = perf_event_tid(event, comm_event->task); 7008 7009 perf_output_put(&handle, comm_event->event_id); 7010 __output_copy(&handle, comm_event->comm, 7011 comm_event->comm_size); 7012 7013 perf_event__output_id_sample(event, &handle, &sample); 7014 7015 perf_output_end(&handle); 7016 out: 7017 comm_event->event_id.header.size = size; 7018 } 7019 7020 static void perf_event_comm_event(struct perf_comm_event *comm_event) 7021 { 7022 char comm[TASK_COMM_LEN]; 7023 unsigned int size; 7024 7025 memset(comm, 0, sizeof(comm)); 7026 strlcpy(comm, comm_event->task->comm, sizeof(comm)); 7027 size = ALIGN(strlen(comm)+1, sizeof(u64)); 7028 7029 comm_event->comm = comm; 7030 comm_event->comm_size = size; 7031 7032 comm_event->event_id.header.size = sizeof(comm_event->event_id) + size; 7033 7034 perf_iterate_sb(perf_event_comm_output, 7035 comm_event, 7036 NULL); 7037 } 7038 7039 void perf_event_comm(struct task_struct *task, bool exec) 7040 { 7041 struct perf_comm_event comm_event; 7042 7043 if (!atomic_read(&nr_comm_events)) 7044 return; 7045 7046 comm_event = (struct perf_comm_event){ 7047 .task = task, 7048 /* .comm */ 7049 /* .comm_size */ 7050 .event_id = { 7051 .header = { 7052 .type = PERF_RECORD_COMM, 7053 .misc = exec ? PERF_RECORD_MISC_COMM_EXEC : 0, 7054 /* .size */ 7055 }, 7056 /* .pid */ 7057 /* .tid */ 7058 }, 7059 }; 7060 7061 perf_event_comm_event(&comm_event); 7062 } 7063 7064 /* 7065 * namespaces tracking 7066 */ 7067 7068 struct perf_namespaces_event { 7069 struct task_struct *task; 7070 7071 struct { 7072 struct perf_event_header header; 7073 7074 u32 pid; 7075 u32 tid; 7076 u64 nr_namespaces; 7077 struct perf_ns_link_info link_info[NR_NAMESPACES]; 7078 } event_id; 7079 }; 7080 7081 static int perf_event_namespaces_match(struct perf_event *event) 7082 { 7083 return event->attr.namespaces; 7084 } 7085 7086 static void perf_event_namespaces_output(struct perf_event *event, 7087 void *data) 7088 { 7089 struct perf_namespaces_event *namespaces_event = data; 7090 struct perf_output_handle handle; 7091 struct perf_sample_data sample; 7092 u16 header_size = namespaces_event->event_id.header.size; 7093 int ret; 7094 7095 if (!perf_event_namespaces_match(event)) 7096 return; 7097 7098 perf_event_header__init_id(&namespaces_event->event_id.header, 7099 &sample, event); 7100 ret = perf_output_begin(&handle, event, 7101 namespaces_event->event_id.header.size); 7102 if (ret) 7103 goto out; 7104 7105 namespaces_event->event_id.pid = perf_event_pid(event, 7106 namespaces_event->task); 7107 namespaces_event->event_id.tid = perf_event_tid(event, 7108 namespaces_event->task); 7109 7110 perf_output_put(&handle, namespaces_event->event_id); 7111 7112 perf_event__output_id_sample(event, &handle, &sample); 7113 7114 perf_output_end(&handle); 7115 out: 7116 namespaces_event->event_id.header.size = header_size; 7117 } 7118 7119 static void perf_fill_ns_link_info(struct perf_ns_link_info *ns_link_info, 7120 struct task_struct *task, 7121 const struct proc_ns_operations *ns_ops) 7122 { 7123 struct path ns_path; 7124 struct inode *ns_inode; 7125 void *error; 7126 7127 error = ns_get_path(&ns_path, task, ns_ops); 7128 if (!error) { 7129 ns_inode = ns_path.dentry->d_inode; 7130 ns_link_info->dev = new_encode_dev(ns_inode->i_sb->s_dev); 7131 ns_link_info->ino = ns_inode->i_ino; 7132 path_put(&ns_path); 7133 } 7134 } 7135 7136 void perf_event_namespaces(struct task_struct *task) 7137 { 7138 struct perf_namespaces_event namespaces_event; 7139 struct perf_ns_link_info *ns_link_info; 7140 7141 if (!atomic_read(&nr_namespaces_events)) 7142 return; 7143 7144 namespaces_event = (struct perf_namespaces_event){ 7145 .task = task, 7146 .event_id = { 7147 .header = { 7148 .type = PERF_RECORD_NAMESPACES, 7149 .misc = 0, 7150 .size = sizeof(namespaces_event.event_id), 7151 }, 7152 /* .pid */ 7153 /* .tid */ 7154 .nr_namespaces = NR_NAMESPACES, 7155 /* .link_info[NR_NAMESPACES] */ 7156 }, 7157 }; 7158 7159 ns_link_info = namespaces_event.event_id.link_info; 7160 7161 perf_fill_ns_link_info(&ns_link_info[MNT_NS_INDEX], 7162 task, &mntns_operations); 7163 7164 #ifdef CONFIG_USER_NS 7165 perf_fill_ns_link_info(&ns_link_info[USER_NS_INDEX], 7166 task, &userns_operations); 7167 #endif 7168 #ifdef CONFIG_NET_NS 7169 perf_fill_ns_link_info(&ns_link_info[NET_NS_INDEX], 7170 task, &netns_operations); 7171 #endif 7172 #ifdef CONFIG_UTS_NS 7173 perf_fill_ns_link_info(&ns_link_info[UTS_NS_INDEX], 7174 task, &utsns_operations); 7175 #endif 7176 #ifdef CONFIG_IPC_NS 7177 perf_fill_ns_link_info(&ns_link_info[IPC_NS_INDEX], 7178 task, &ipcns_operations); 7179 #endif 7180 #ifdef CONFIG_PID_NS 7181 perf_fill_ns_link_info(&ns_link_info[PID_NS_INDEX], 7182 task, &pidns_operations); 7183 #endif 7184 #ifdef CONFIG_CGROUPS 7185 perf_fill_ns_link_info(&ns_link_info[CGROUP_NS_INDEX], 7186 task, &cgroupns_operations); 7187 #endif 7188 7189 perf_iterate_sb(perf_event_namespaces_output, 7190 &namespaces_event, 7191 NULL); 7192 } 7193 7194 /* 7195 * mmap tracking 7196 */ 7197 7198 struct perf_mmap_event { 7199 struct vm_area_struct *vma; 7200 7201 const char *file_name; 7202 int file_size; 7203 int maj, min; 7204 u64 ino; 7205 u64 ino_generation; 7206 u32 prot, flags; 7207 7208 struct { 7209 struct perf_event_header header; 7210 7211 u32 pid; 7212 u32 tid; 7213 u64 start; 7214 u64 len; 7215 u64 pgoff; 7216 } event_id; 7217 }; 7218 7219 static int perf_event_mmap_match(struct perf_event *event, 7220 void *data) 7221 { 7222 struct perf_mmap_event *mmap_event = data; 7223 struct vm_area_struct *vma = mmap_event->vma; 7224 int executable = vma->vm_flags & VM_EXEC; 7225 7226 return (!executable && event->attr.mmap_data) || 7227 (executable && (event->attr.mmap || event->attr.mmap2)); 7228 } 7229 7230 static void perf_event_mmap_output(struct perf_event *event, 7231 void *data) 7232 { 7233 struct perf_mmap_event *mmap_event = data; 7234 struct perf_output_handle handle; 7235 struct perf_sample_data sample; 7236 int size = mmap_event->event_id.header.size; 7237 u32 type = mmap_event->event_id.header.type; 7238 int ret; 7239 7240 if (!perf_event_mmap_match(event, data)) 7241 return; 7242 7243 if (event->attr.mmap2) { 7244 mmap_event->event_id.header.type = PERF_RECORD_MMAP2; 7245 mmap_event->event_id.header.size += sizeof(mmap_event->maj); 7246 mmap_event->event_id.header.size += sizeof(mmap_event->min); 7247 mmap_event->event_id.header.size += sizeof(mmap_event->ino); 7248 mmap_event->event_id.header.size += sizeof(mmap_event->ino_generation); 7249 mmap_event->event_id.header.size += sizeof(mmap_event->prot); 7250 mmap_event->event_id.header.size += sizeof(mmap_event->flags); 7251 } 7252 7253 perf_event_header__init_id(&mmap_event->event_id.header, &sample, event); 7254 ret = perf_output_begin(&handle, event, 7255 mmap_event->event_id.header.size); 7256 if (ret) 7257 goto out; 7258 7259 mmap_event->event_id.pid = perf_event_pid(event, current); 7260 mmap_event->event_id.tid = perf_event_tid(event, current); 7261 7262 perf_output_put(&handle, mmap_event->event_id); 7263 7264 if (event->attr.mmap2) { 7265 perf_output_put(&handle, mmap_event->maj); 7266 perf_output_put(&handle, mmap_event->min); 7267 perf_output_put(&handle, mmap_event->ino); 7268 perf_output_put(&handle, mmap_event->ino_generation); 7269 perf_output_put(&handle, mmap_event->prot); 7270 perf_output_put(&handle, mmap_event->flags); 7271 } 7272 7273 __output_copy(&handle, mmap_event->file_name, 7274 mmap_event->file_size); 7275 7276 perf_event__output_id_sample(event, &handle, &sample); 7277 7278 perf_output_end(&handle); 7279 out: 7280 mmap_event->event_id.header.size = size; 7281 mmap_event->event_id.header.type = type; 7282 } 7283 7284 static void perf_event_mmap_event(struct perf_mmap_event *mmap_event) 7285 { 7286 struct vm_area_struct *vma = mmap_event->vma; 7287 struct file *file = vma->vm_file; 7288 int maj = 0, min = 0; 7289 u64 ino = 0, gen = 0; 7290 u32 prot = 0, flags = 0; 7291 unsigned int size; 7292 char tmp[16]; 7293 char *buf = NULL; 7294 char *name; 7295 7296 if (vma->vm_flags & VM_READ) 7297 prot |= PROT_READ; 7298 if (vma->vm_flags & VM_WRITE) 7299 prot |= PROT_WRITE; 7300 if (vma->vm_flags & VM_EXEC) 7301 prot |= PROT_EXEC; 7302 7303 if (vma->vm_flags & VM_MAYSHARE) 7304 flags = MAP_SHARED; 7305 else 7306 flags = MAP_PRIVATE; 7307 7308 if (vma->vm_flags & VM_DENYWRITE) 7309 flags |= MAP_DENYWRITE; 7310 if (vma->vm_flags & VM_MAYEXEC) 7311 flags |= MAP_EXECUTABLE; 7312 if (vma->vm_flags & VM_LOCKED) 7313 flags |= MAP_LOCKED; 7314 if (vma->vm_flags & VM_HUGETLB) 7315 flags |= MAP_HUGETLB; 7316 7317 if (file) { 7318 struct inode *inode; 7319 dev_t dev; 7320 7321 buf = kmalloc(PATH_MAX, GFP_KERNEL); 7322 if (!buf) { 7323 name = "//enomem"; 7324 goto cpy_name; 7325 } 7326 /* 7327 * d_path() works from the end of the rb backwards, so we 7328 * need to add enough zero bytes after the string to handle 7329 * the 64bit alignment we do later. 7330 */ 7331 name = file_path(file, buf, PATH_MAX - sizeof(u64)); 7332 if (IS_ERR(name)) { 7333 name = "//toolong"; 7334 goto cpy_name; 7335 } 7336 inode = file_inode(vma->vm_file); 7337 dev = inode->i_sb->s_dev; 7338 ino = inode->i_ino; 7339 gen = inode->i_generation; 7340 maj = MAJOR(dev); 7341 min = MINOR(dev); 7342 7343 goto got_name; 7344 } else { 7345 if (vma->vm_ops && vma->vm_ops->name) { 7346 name = (char *) vma->vm_ops->name(vma); 7347 if (name) 7348 goto cpy_name; 7349 } 7350 7351 name = (char *)arch_vma_name(vma); 7352 if (name) 7353 goto cpy_name; 7354 7355 if (vma->vm_start <= vma->vm_mm->start_brk && 7356 vma->vm_end >= vma->vm_mm->brk) { 7357 name = "[heap]"; 7358 goto cpy_name; 7359 } 7360 if (vma->vm_start <= vma->vm_mm->start_stack && 7361 vma->vm_end >= vma->vm_mm->start_stack) { 7362 name = "[stack]"; 7363 goto cpy_name; 7364 } 7365 7366 name = "//anon"; 7367 goto cpy_name; 7368 } 7369 7370 cpy_name: 7371 strlcpy(tmp, name, sizeof(tmp)); 7372 name = tmp; 7373 got_name: 7374 /* 7375 * Since our buffer works in 8 byte units we need to align our string 7376 * size to a multiple of 8. However, we must guarantee the tail end is 7377 * zero'd out to avoid leaking random bits to userspace. 7378 */ 7379 size = strlen(name)+1; 7380 while (!IS_ALIGNED(size, sizeof(u64))) 7381 name[size++] = '\0'; 7382 7383 mmap_event->file_name = name; 7384 mmap_event->file_size = size; 7385 mmap_event->maj = maj; 7386 mmap_event->min = min; 7387 mmap_event->ino = ino; 7388 mmap_event->ino_generation = gen; 7389 mmap_event->prot = prot; 7390 mmap_event->flags = flags; 7391 7392 if (!(vma->vm_flags & VM_EXEC)) 7393 mmap_event->event_id.header.misc |= PERF_RECORD_MISC_MMAP_DATA; 7394 7395 mmap_event->event_id.header.size = sizeof(mmap_event->event_id) + size; 7396 7397 perf_iterate_sb(perf_event_mmap_output, 7398 mmap_event, 7399 NULL); 7400 7401 kfree(buf); 7402 } 7403 7404 /* 7405 * Check whether inode and address range match filter criteria. 7406 */ 7407 static bool perf_addr_filter_match(struct perf_addr_filter *filter, 7408 struct file *file, unsigned long offset, 7409 unsigned long size) 7410 { 7411 /* d_inode(NULL) won't be equal to any mapped user-space file */ 7412 if (!filter->path.dentry) 7413 return false; 7414 7415 if (d_inode(filter->path.dentry) != file_inode(file)) 7416 return false; 7417 7418 if (filter->offset > offset + size) 7419 return false; 7420 7421 if (filter->offset + filter->size < offset) 7422 return false; 7423 7424 return true; 7425 } 7426 7427 static bool perf_addr_filter_vma_adjust(struct perf_addr_filter *filter, 7428 struct vm_area_struct *vma, 7429 struct perf_addr_filter_range *fr) 7430 { 7431 unsigned long vma_size = vma->vm_end - vma->vm_start; 7432 unsigned long off = vma->vm_pgoff << PAGE_SHIFT; 7433 struct file *file = vma->vm_file; 7434 7435 if (!perf_addr_filter_match(filter, file, off, vma_size)) 7436 return false; 7437 7438 if (filter->offset < off) { 7439 fr->start = vma->vm_start; 7440 fr->size = min(vma_size, filter->size - (off - filter->offset)); 7441 } else { 7442 fr->start = vma->vm_start + filter->offset - off; 7443 fr->size = min(vma->vm_end - fr->start, filter->size); 7444 } 7445 7446 return true; 7447 } 7448 7449 static void __perf_addr_filters_adjust(struct perf_event *event, void *data) 7450 { 7451 struct perf_addr_filters_head *ifh = perf_event_addr_filters(event); 7452 struct vm_area_struct *vma = data; 7453 struct perf_addr_filter *filter; 7454 unsigned int restart = 0, count = 0; 7455 unsigned long flags; 7456 7457 if (!has_addr_filter(event)) 7458 return; 7459 7460 if (!vma->vm_file) 7461 return; 7462 7463 raw_spin_lock_irqsave(&ifh->lock, flags); 7464 list_for_each_entry(filter, &ifh->list, entry) { 7465 if (perf_addr_filter_vma_adjust(filter, vma, 7466 &event->addr_filter_ranges[count])) 7467 restart++; 7468 7469 count++; 7470 } 7471 7472 if (restart) 7473 event->addr_filters_gen++; 7474 raw_spin_unlock_irqrestore(&ifh->lock, flags); 7475 7476 if (restart) 7477 perf_event_stop(event, 1); 7478 } 7479 7480 /* 7481 * Adjust all task's events' filters to the new vma 7482 */ 7483 static void perf_addr_filters_adjust(struct vm_area_struct *vma) 7484 { 7485 struct perf_event_context *ctx; 7486 int ctxn; 7487 7488 /* 7489 * Data tracing isn't supported yet and as such there is no need 7490 * to keep track of anything that isn't related to executable code: 7491 */ 7492 if (!(vma->vm_flags & VM_EXEC)) 7493 return; 7494 7495 rcu_read_lock(); 7496 for_each_task_context_nr(ctxn) { 7497 ctx = rcu_dereference(current->perf_event_ctxp[ctxn]); 7498 if (!ctx) 7499 continue; 7500 7501 perf_iterate_ctx(ctx, __perf_addr_filters_adjust, vma, true); 7502 } 7503 rcu_read_unlock(); 7504 } 7505 7506 void perf_event_mmap(struct vm_area_struct *vma) 7507 { 7508 struct perf_mmap_event mmap_event; 7509 7510 if (!atomic_read(&nr_mmap_events)) 7511 return; 7512 7513 mmap_event = (struct perf_mmap_event){ 7514 .vma = vma, 7515 /* .file_name */ 7516 /* .file_size */ 7517 .event_id = { 7518 .header = { 7519 .type = PERF_RECORD_MMAP, 7520 .misc = PERF_RECORD_MISC_USER, 7521 /* .size */ 7522 }, 7523 /* .pid */ 7524 /* .tid */ 7525 .start = vma->vm_start, 7526 .len = vma->vm_end - vma->vm_start, 7527 .pgoff = (u64)vma->vm_pgoff << PAGE_SHIFT, 7528 }, 7529 /* .maj (attr_mmap2 only) */ 7530 /* .min (attr_mmap2 only) */ 7531 /* .ino (attr_mmap2 only) */ 7532 /* .ino_generation (attr_mmap2 only) */ 7533 /* .prot (attr_mmap2 only) */ 7534 /* .flags (attr_mmap2 only) */ 7535 }; 7536 7537 perf_addr_filters_adjust(vma); 7538 perf_event_mmap_event(&mmap_event); 7539 } 7540 7541 void perf_event_aux_event(struct perf_event *event, unsigned long head, 7542 unsigned long size, u64 flags) 7543 { 7544 struct perf_output_handle handle; 7545 struct perf_sample_data sample; 7546 struct perf_aux_event { 7547 struct perf_event_header header; 7548 u64 offset; 7549 u64 size; 7550 u64 flags; 7551 } rec = { 7552 .header = { 7553 .type = PERF_RECORD_AUX, 7554 .misc = 0, 7555 .size = sizeof(rec), 7556 }, 7557 .offset = head, 7558 .size = size, 7559 .flags = flags, 7560 }; 7561 int ret; 7562 7563 perf_event_header__init_id(&rec.header, &sample, event); 7564 ret = perf_output_begin(&handle, event, rec.header.size); 7565 7566 if (ret) 7567 return; 7568 7569 perf_output_put(&handle, rec); 7570 perf_event__output_id_sample(event, &handle, &sample); 7571 7572 perf_output_end(&handle); 7573 } 7574 7575 /* 7576 * Lost/dropped samples logging 7577 */ 7578 void perf_log_lost_samples(struct perf_event *event, u64 lost) 7579 { 7580 struct perf_output_handle handle; 7581 struct perf_sample_data sample; 7582 int ret; 7583 7584 struct { 7585 struct perf_event_header header; 7586 u64 lost; 7587 } lost_samples_event = { 7588 .header = { 7589 .type = PERF_RECORD_LOST_SAMPLES, 7590 .misc = 0, 7591 .size = sizeof(lost_samples_event), 7592 }, 7593 .lost = lost, 7594 }; 7595 7596 perf_event_header__init_id(&lost_samples_event.header, &sample, event); 7597 7598 ret = perf_output_begin(&handle, event, 7599 lost_samples_event.header.size); 7600 if (ret) 7601 return; 7602 7603 perf_output_put(&handle, lost_samples_event); 7604 perf_event__output_id_sample(event, &handle, &sample); 7605 perf_output_end(&handle); 7606 } 7607 7608 /* 7609 * context_switch tracking 7610 */ 7611 7612 struct perf_switch_event { 7613 struct task_struct *task; 7614 struct task_struct *next_prev; 7615 7616 struct { 7617 struct perf_event_header header; 7618 u32 next_prev_pid; 7619 u32 next_prev_tid; 7620 } event_id; 7621 }; 7622 7623 static int perf_event_switch_match(struct perf_event *event) 7624 { 7625 return event->attr.context_switch; 7626 } 7627 7628 static void perf_event_switch_output(struct perf_event *event, void *data) 7629 { 7630 struct perf_switch_event *se = data; 7631 struct perf_output_handle handle; 7632 struct perf_sample_data sample; 7633 int ret; 7634 7635 if (!perf_event_switch_match(event)) 7636 return; 7637 7638 /* Only CPU-wide events are allowed to see next/prev pid/tid */ 7639 if (event->ctx->task) { 7640 se->event_id.header.type = PERF_RECORD_SWITCH; 7641 se->event_id.header.size = sizeof(se->event_id.header); 7642 } else { 7643 se->event_id.header.type = PERF_RECORD_SWITCH_CPU_WIDE; 7644 se->event_id.header.size = sizeof(se->event_id); 7645 se->event_id.next_prev_pid = 7646 perf_event_pid(event, se->next_prev); 7647 se->event_id.next_prev_tid = 7648 perf_event_tid(event, se->next_prev); 7649 } 7650 7651 perf_event_header__init_id(&se->event_id.header, &sample, event); 7652 7653 ret = perf_output_begin(&handle, event, se->event_id.header.size); 7654 if (ret) 7655 return; 7656 7657 if (event->ctx->task) 7658 perf_output_put(&handle, se->event_id.header); 7659 else 7660 perf_output_put(&handle, se->event_id); 7661 7662 perf_event__output_id_sample(event, &handle, &sample); 7663 7664 perf_output_end(&handle); 7665 } 7666 7667 static void perf_event_switch(struct task_struct *task, 7668 struct task_struct *next_prev, bool sched_in) 7669 { 7670 struct perf_switch_event switch_event; 7671 7672 /* N.B. caller checks nr_switch_events != 0 */ 7673 7674 switch_event = (struct perf_switch_event){ 7675 .task = task, 7676 .next_prev = next_prev, 7677 .event_id = { 7678 .header = { 7679 /* .type */ 7680 .misc = sched_in ? 0 : PERF_RECORD_MISC_SWITCH_OUT, 7681 /* .size */ 7682 }, 7683 /* .next_prev_pid */ 7684 /* .next_prev_tid */ 7685 }, 7686 }; 7687 7688 if (!sched_in && task->state == TASK_RUNNING) 7689 switch_event.event_id.header.misc |= 7690 PERF_RECORD_MISC_SWITCH_OUT_PREEMPT; 7691 7692 perf_iterate_sb(perf_event_switch_output, 7693 &switch_event, 7694 NULL); 7695 } 7696 7697 /* 7698 * IRQ throttle logging 7699 */ 7700 7701 static void perf_log_throttle(struct perf_event *event, int enable) 7702 { 7703 struct perf_output_handle handle; 7704 struct perf_sample_data sample; 7705 int ret; 7706 7707 struct { 7708 struct perf_event_header header; 7709 u64 time; 7710 u64 id; 7711 u64 stream_id; 7712 } throttle_event = { 7713 .header = { 7714 .type = PERF_RECORD_THROTTLE, 7715 .misc = 0, 7716 .size = sizeof(throttle_event), 7717 }, 7718 .time = perf_event_clock(event), 7719 .id = primary_event_id(event), 7720 .stream_id = event->id, 7721 }; 7722 7723 if (enable) 7724 throttle_event.header.type = PERF_RECORD_UNTHROTTLE; 7725 7726 perf_event_header__init_id(&throttle_event.header, &sample, event); 7727 7728 ret = perf_output_begin(&handle, event, 7729 throttle_event.header.size); 7730 if (ret) 7731 return; 7732 7733 perf_output_put(&handle, throttle_event); 7734 perf_event__output_id_sample(event, &handle, &sample); 7735 perf_output_end(&handle); 7736 } 7737 7738 /* 7739 * ksymbol register/unregister tracking 7740 */ 7741 7742 struct perf_ksymbol_event { 7743 const char *name; 7744 int name_len; 7745 struct { 7746 struct perf_event_header header; 7747 u64 addr; 7748 u32 len; 7749 u16 ksym_type; 7750 u16 flags; 7751 } event_id; 7752 }; 7753 7754 static int perf_event_ksymbol_match(struct perf_event *event) 7755 { 7756 return event->attr.ksymbol; 7757 } 7758 7759 static void perf_event_ksymbol_output(struct perf_event *event, void *data) 7760 { 7761 struct perf_ksymbol_event *ksymbol_event = data; 7762 struct perf_output_handle handle; 7763 struct perf_sample_data sample; 7764 int ret; 7765 7766 if (!perf_event_ksymbol_match(event)) 7767 return; 7768 7769 perf_event_header__init_id(&ksymbol_event->event_id.header, 7770 &sample, event); 7771 ret = perf_output_begin(&handle, event, 7772 ksymbol_event->event_id.header.size); 7773 if (ret) 7774 return; 7775 7776 perf_output_put(&handle, ksymbol_event->event_id); 7777 __output_copy(&handle, ksymbol_event->name, ksymbol_event->name_len); 7778 perf_event__output_id_sample(event, &handle, &sample); 7779 7780 perf_output_end(&handle); 7781 } 7782 7783 void perf_event_ksymbol(u16 ksym_type, u64 addr, u32 len, bool unregister, 7784 const char *sym) 7785 { 7786 struct perf_ksymbol_event ksymbol_event; 7787 char name[KSYM_NAME_LEN]; 7788 u16 flags = 0; 7789 int name_len; 7790 7791 if (!atomic_read(&nr_ksymbol_events)) 7792 return; 7793 7794 if (ksym_type >= PERF_RECORD_KSYMBOL_TYPE_MAX || 7795 ksym_type == PERF_RECORD_KSYMBOL_TYPE_UNKNOWN) 7796 goto err; 7797 7798 strlcpy(name, sym, KSYM_NAME_LEN); 7799 name_len = strlen(name) + 1; 7800 while (!IS_ALIGNED(name_len, sizeof(u64))) 7801 name[name_len++] = '\0'; 7802 BUILD_BUG_ON(KSYM_NAME_LEN % sizeof(u64)); 7803 7804 if (unregister) 7805 flags |= PERF_RECORD_KSYMBOL_FLAGS_UNREGISTER; 7806 7807 ksymbol_event = (struct perf_ksymbol_event){ 7808 .name = name, 7809 .name_len = name_len, 7810 .event_id = { 7811 .header = { 7812 .type = PERF_RECORD_KSYMBOL, 7813 .size = sizeof(ksymbol_event.event_id) + 7814 name_len, 7815 }, 7816 .addr = addr, 7817 .len = len, 7818 .ksym_type = ksym_type, 7819 .flags = flags, 7820 }, 7821 }; 7822 7823 perf_iterate_sb(perf_event_ksymbol_output, &ksymbol_event, NULL); 7824 return; 7825 err: 7826 WARN_ONCE(1, "%s: Invalid KSYMBOL type 0x%x\n", __func__, ksym_type); 7827 } 7828 7829 /* 7830 * bpf program load/unload tracking 7831 */ 7832 7833 struct perf_bpf_event { 7834 struct bpf_prog *prog; 7835 struct { 7836 struct perf_event_header header; 7837 u16 type; 7838 u16 flags; 7839 u32 id; 7840 u8 tag[BPF_TAG_SIZE]; 7841 } event_id; 7842 }; 7843 7844 static int perf_event_bpf_match(struct perf_event *event) 7845 { 7846 return event->attr.bpf_event; 7847 } 7848 7849 static void perf_event_bpf_output(struct perf_event *event, void *data) 7850 { 7851 struct perf_bpf_event *bpf_event = data; 7852 struct perf_output_handle handle; 7853 struct perf_sample_data sample; 7854 int ret; 7855 7856 if (!perf_event_bpf_match(event)) 7857 return; 7858 7859 perf_event_header__init_id(&bpf_event->event_id.header, 7860 &sample, event); 7861 ret = perf_output_begin(&handle, event, 7862 bpf_event->event_id.header.size); 7863 if (ret) 7864 return; 7865 7866 perf_output_put(&handle, bpf_event->event_id); 7867 perf_event__output_id_sample(event, &handle, &sample); 7868 7869 perf_output_end(&handle); 7870 } 7871 7872 static void perf_event_bpf_emit_ksymbols(struct bpf_prog *prog, 7873 enum perf_bpf_event_type type) 7874 { 7875 bool unregister = type == PERF_BPF_EVENT_PROG_UNLOAD; 7876 char sym[KSYM_NAME_LEN]; 7877 int i; 7878 7879 if (prog->aux->func_cnt == 0) { 7880 bpf_get_prog_name(prog, sym); 7881 perf_event_ksymbol(PERF_RECORD_KSYMBOL_TYPE_BPF, 7882 (u64)(unsigned long)prog->bpf_func, 7883 prog->jited_len, unregister, sym); 7884 } else { 7885 for (i = 0; i < prog->aux->func_cnt; i++) { 7886 struct bpf_prog *subprog = prog->aux->func[i]; 7887 7888 bpf_get_prog_name(subprog, sym); 7889 perf_event_ksymbol( 7890 PERF_RECORD_KSYMBOL_TYPE_BPF, 7891 (u64)(unsigned long)subprog->bpf_func, 7892 subprog->jited_len, unregister, sym); 7893 } 7894 } 7895 } 7896 7897 void perf_event_bpf_event(struct bpf_prog *prog, 7898 enum perf_bpf_event_type type, 7899 u16 flags) 7900 { 7901 struct perf_bpf_event bpf_event; 7902 7903 if (type <= PERF_BPF_EVENT_UNKNOWN || 7904 type >= PERF_BPF_EVENT_MAX) 7905 return; 7906 7907 switch (type) { 7908 case PERF_BPF_EVENT_PROG_LOAD: 7909 case PERF_BPF_EVENT_PROG_UNLOAD: 7910 if (atomic_read(&nr_ksymbol_events)) 7911 perf_event_bpf_emit_ksymbols(prog, type); 7912 break; 7913 default: 7914 break; 7915 } 7916 7917 if (!atomic_read(&nr_bpf_events)) 7918 return; 7919 7920 bpf_event = (struct perf_bpf_event){ 7921 .prog = prog, 7922 .event_id = { 7923 .header = { 7924 .type = PERF_RECORD_BPF_EVENT, 7925 .size = sizeof(bpf_event.event_id), 7926 }, 7927 .type = type, 7928 .flags = flags, 7929 .id = prog->aux->id, 7930 }, 7931 }; 7932 7933 BUILD_BUG_ON(BPF_TAG_SIZE % sizeof(u64)); 7934 7935 memcpy(bpf_event.event_id.tag, prog->tag, BPF_TAG_SIZE); 7936 perf_iterate_sb(perf_event_bpf_output, &bpf_event, NULL); 7937 } 7938 7939 void perf_event_itrace_started(struct perf_event *event) 7940 { 7941 event->attach_state |= PERF_ATTACH_ITRACE; 7942 } 7943 7944 static void perf_log_itrace_start(struct perf_event *event) 7945 { 7946 struct perf_output_handle handle; 7947 struct perf_sample_data sample; 7948 struct perf_aux_event { 7949 struct perf_event_header header; 7950 u32 pid; 7951 u32 tid; 7952 } rec; 7953 int ret; 7954 7955 if (event->parent) 7956 event = event->parent; 7957 7958 if (!(event->pmu->capabilities & PERF_PMU_CAP_ITRACE) || 7959 event->attach_state & PERF_ATTACH_ITRACE) 7960 return; 7961 7962 rec.header.type = PERF_RECORD_ITRACE_START; 7963 rec.header.misc = 0; 7964 rec.header.size = sizeof(rec); 7965 rec.pid = perf_event_pid(event, current); 7966 rec.tid = perf_event_tid(event, current); 7967 7968 perf_event_header__init_id(&rec.header, &sample, event); 7969 ret = perf_output_begin(&handle, event, rec.header.size); 7970 7971 if (ret) 7972 return; 7973 7974 perf_output_put(&handle, rec); 7975 perf_event__output_id_sample(event, &handle, &sample); 7976 7977 perf_output_end(&handle); 7978 } 7979 7980 static int 7981 __perf_event_account_interrupt(struct perf_event *event, int throttle) 7982 { 7983 struct hw_perf_event *hwc = &event->hw; 7984 int ret = 0; 7985 u64 seq; 7986 7987 seq = __this_cpu_read(perf_throttled_seq); 7988 if (seq != hwc->interrupts_seq) { 7989 hwc->interrupts_seq = seq; 7990 hwc->interrupts = 1; 7991 } else { 7992 hwc->interrupts++; 7993 if (unlikely(throttle 7994 && hwc->interrupts >= max_samples_per_tick)) { 7995 __this_cpu_inc(perf_throttled_count); 7996 tick_dep_set_cpu(smp_processor_id(), TICK_DEP_BIT_PERF_EVENTS); 7997 hwc->interrupts = MAX_INTERRUPTS; 7998 perf_log_throttle(event, 0); 7999 ret = 1; 8000 } 8001 } 8002 8003 if (event->attr.freq) { 8004 u64 now = perf_clock(); 8005 s64 delta = now - hwc->freq_time_stamp; 8006 8007 hwc->freq_time_stamp = now; 8008 8009 if (delta > 0 && delta < 2*TICK_NSEC) 8010 perf_adjust_period(event, delta, hwc->last_period, true); 8011 } 8012 8013 return ret; 8014 } 8015 8016 int perf_event_account_interrupt(struct perf_event *event) 8017 { 8018 return __perf_event_account_interrupt(event, 1); 8019 } 8020 8021 /* 8022 * Generic event overflow handling, sampling. 8023 */ 8024 8025 static int __perf_event_overflow(struct perf_event *event, 8026 int throttle, struct perf_sample_data *data, 8027 struct pt_regs *regs) 8028 { 8029 int events = atomic_read(&event->event_limit); 8030 int ret = 0; 8031 8032 /* 8033 * Non-sampling counters might still use the PMI to fold short 8034 * hardware counters, ignore those. 8035 */ 8036 if (unlikely(!is_sampling_event(event))) 8037 return 0; 8038 8039 ret = __perf_event_account_interrupt(event, throttle); 8040 8041 /* 8042 * XXX event_limit might not quite work as expected on inherited 8043 * events 8044 */ 8045 8046 event->pending_kill = POLL_IN; 8047 if (events && atomic_dec_and_test(&event->event_limit)) { 8048 ret = 1; 8049 event->pending_kill = POLL_HUP; 8050 8051 perf_event_disable_inatomic(event); 8052 } 8053 8054 READ_ONCE(event->overflow_handler)(event, data, regs); 8055 8056 if (*perf_event_fasync(event) && event->pending_kill) { 8057 event->pending_wakeup = 1; 8058 irq_work_queue(&event->pending); 8059 } 8060 8061 return ret; 8062 } 8063 8064 int perf_event_overflow(struct perf_event *event, 8065 struct perf_sample_data *data, 8066 struct pt_regs *regs) 8067 { 8068 return __perf_event_overflow(event, 1, data, regs); 8069 } 8070 8071 /* 8072 * Generic software event infrastructure 8073 */ 8074 8075 struct swevent_htable { 8076 struct swevent_hlist *swevent_hlist; 8077 struct mutex hlist_mutex; 8078 int hlist_refcount; 8079 8080 /* Recursion avoidance in each contexts */ 8081 int recursion[PERF_NR_CONTEXTS]; 8082 }; 8083 8084 static DEFINE_PER_CPU(struct swevent_htable, swevent_htable); 8085 8086 /* 8087 * We directly increment event->count and keep a second value in 8088 * event->hw.period_left to count intervals. This period event 8089 * is kept in the range [-sample_period, 0] so that we can use the 8090 * sign as trigger. 8091 */ 8092 8093 u64 perf_swevent_set_period(struct perf_event *event) 8094 { 8095 struct hw_perf_event *hwc = &event->hw; 8096 u64 period = hwc->last_period; 8097 u64 nr, offset; 8098 s64 old, val; 8099 8100 hwc->last_period = hwc->sample_period; 8101 8102 again: 8103 old = val = local64_read(&hwc->period_left); 8104 if (val < 0) 8105 return 0; 8106 8107 nr = div64_u64(period + val, period); 8108 offset = nr * period; 8109 val -= offset; 8110 if (local64_cmpxchg(&hwc->period_left, old, val) != old) 8111 goto again; 8112 8113 return nr; 8114 } 8115 8116 static void perf_swevent_overflow(struct perf_event *event, u64 overflow, 8117 struct perf_sample_data *data, 8118 struct pt_regs *regs) 8119 { 8120 struct hw_perf_event *hwc = &event->hw; 8121 int throttle = 0; 8122 8123 if (!overflow) 8124 overflow = perf_swevent_set_period(event); 8125 8126 if (hwc->interrupts == MAX_INTERRUPTS) 8127 return; 8128 8129 for (; overflow; overflow--) { 8130 if (__perf_event_overflow(event, throttle, 8131 data, regs)) { 8132 /* 8133 * We inhibit the overflow from happening when 8134 * hwc->interrupts == MAX_INTERRUPTS. 8135 */ 8136 break; 8137 } 8138 throttle = 1; 8139 } 8140 } 8141 8142 static void perf_swevent_event(struct perf_event *event, u64 nr, 8143 struct perf_sample_data *data, 8144 struct pt_regs *regs) 8145 { 8146 struct hw_perf_event *hwc = &event->hw; 8147 8148 local64_add(nr, &event->count); 8149 8150 if (!regs) 8151 return; 8152 8153 if (!is_sampling_event(event)) 8154 return; 8155 8156 if ((event->attr.sample_type & PERF_SAMPLE_PERIOD) && !event->attr.freq) { 8157 data->period = nr; 8158 return perf_swevent_overflow(event, 1, data, regs); 8159 } else 8160 data->period = event->hw.last_period; 8161 8162 if (nr == 1 && hwc->sample_period == 1 && !event->attr.freq) 8163 return perf_swevent_overflow(event, 1, data, regs); 8164 8165 if (local64_add_negative(nr, &hwc->period_left)) 8166 return; 8167 8168 perf_swevent_overflow(event, 0, data, regs); 8169 } 8170 8171 static int perf_exclude_event(struct perf_event *event, 8172 struct pt_regs *regs) 8173 { 8174 if (event->hw.state & PERF_HES_STOPPED) 8175 return 1; 8176 8177 if (regs) { 8178 if (event->attr.exclude_user && user_mode(regs)) 8179 return 1; 8180 8181 if (event->attr.exclude_kernel && !user_mode(regs)) 8182 return 1; 8183 } 8184 8185 return 0; 8186 } 8187 8188 static int perf_swevent_match(struct perf_event *event, 8189 enum perf_type_id type, 8190 u32 event_id, 8191 struct perf_sample_data *data, 8192 struct pt_regs *regs) 8193 { 8194 if (event->attr.type != type) 8195 return 0; 8196 8197 if (event->attr.config != event_id) 8198 return 0; 8199 8200 if (perf_exclude_event(event, regs)) 8201 return 0; 8202 8203 return 1; 8204 } 8205 8206 static inline u64 swevent_hash(u64 type, u32 event_id) 8207 { 8208 u64 val = event_id | (type << 32); 8209 8210 return hash_64(val, SWEVENT_HLIST_BITS); 8211 } 8212 8213 static inline struct hlist_head * 8214 __find_swevent_head(struct swevent_hlist *hlist, u64 type, u32 event_id) 8215 { 8216 u64 hash = swevent_hash(type, event_id); 8217 8218 return &hlist->heads[hash]; 8219 } 8220 8221 /* For the read side: events when they trigger */ 8222 static inline struct hlist_head * 8223 find_swevent_head_rcu(struct swevent_htable *swhash, u64 type, u32 event_id) 8224 { 8225 struct swevent_hlist *hlist; 8226 8227 hlist = rcu_dereference(swhash->swevent_hlist); 8228 if (!hlist) 8229 return NULL; 8230 8231 return __find_swevent_head(hlist, type, event_id); 8232 } 8233 8234 /* For the event head insertion and removal in the hlist */ 8235 static inline struct hlist_head * 8236 find_swevent_head(struct swevent_htable *swhash, struct perf_event *event) 8237 { 8238 struct swevent_hlist *hlist; 8239 u32 event_id = event->attr.config; 8240 u64 type = event->attr.type; 8241 8242 /* 8243 * Event scheduling is always serialized against hlist allocation 8244 * and release. Which makes the protected version suitable here. 8245 * The context lock guarantees that. 8246 */ 8247 hlist = rcu_dereference_protected(swhash->swevent_hlist, 8248 lockdep_is_held(&event->ctx->lock)); 8249 if (!hlist) 8250 return NULL; 8251 8252 return __find_swevent_head(hlist, type, event_id); 8253 } 8254 8255 static void do_perf_sw_event(enum perf_type_id type, u32 event_id, 8256 u64 nr, 8257 struct perf_sample_data *data, 8258 struct pt_regs *regs) 8259 { 8260 struct swevent_htable *swhash = this_cpu_ptr(&swevent_htable); 8261 struct perf_event *event; 8262 struct hlist_head *head; 8263 8264 rcu_read_lock(); 8265 head = find_swevent_head_rcu(swhash, type, event_id); 8266 if (!head) 8267 goto end; 8268 8269 hlist_for_each_entry_rcu(event, head, hlist_entry) { 8270 if (perf_swevent_match(event, type, event_id, data, regs)) 8271 perf_swevent_event(event, nr, data, regs); 8272 } 8273 end: 8274 rcu_read_unlock(); 8275 } 8276 8277 DEFINE_PER_CPU(struct pt_regs, __perf_regs[4]); 8278 8279 int perf_swevent_get_recursion_context(void) 8280 { 8281 struct swevent_htable *swhash = this_cpu_ptr(&swevent_htable); 8282 8283 return get_recursion_context(swhash->recursion); 8284 } 8285 EXPORT_SYMBOL_GPL(perf_swevent_get_recursion_context); 8286 8287 void perf_swevent_put_recursion_context(int rctx) 8288 { 8289 struct swevent_htable *swhash = this_cpu_ptr(&swevent_htable); 8290 8291 put_recursion_context(swhash->recursion, rctx); 8292 } 8293 8294 void ___perf_sw_event(u32 event_id, u64 nr, struct pt_regs *regs, u64 addr) 8295 { 8296 struct perf_sample_data data; 8297 8298 if (WARN_ON_ONCE(!regs)) 8299 return; 8300 8301 perf_sample_data_init(&data, addr, 0); 8302 do_perf_sw_event(PERF_TYPE_SOFTWARE, event_id, nr, &data, regs); 8303 } 8304 8305 void __perf_sw_event(u32 event_id, u64 nr, struct pt_regs *regs, u64 addr) 8306 { 8307 int rctx; 8308 8309 preempt_disable_notrace(); 8310 rctx = perf_swevent_get_recursion_context(); 8311 if (unlikely(rctx < 0)) 8312 goto fail; 8313 8314 ___perf_sw_event(event_id, nr, regs, addr); 8315 8316 perf_swevent_put_recursion_context(rctx); 8317 fail: 8318 preempt_enable_notrace(); 8319 } 8320 8321 static void perf_swevent_read(struct perf_event *event) 8322 { 8323 } 8324 8325 static int perf_swevent_add(struct perf_event *event, int flags) 8326 { 8327 struct swevent_htable *swhash = this_cpu_ptr(&swevent_htable); 8328 struct hw_perf_event *hwc = &event->hw; 8329 struct hlist_head *head; 8330 8331 if (is_sampling_event(event)) { 8332 hwc->last_period = hwc->sample_period; 8333 perf_swevent_set_period(event); 8334 } 8335 8336 hwc->state = !(flags & PERF_EF_START); 8337 8338 head = find_swevent_head(swhash, event); 8339 if (WARN_ON_ONCE(!head)) 8340 return -EINVAL; 8341 8342 hlist_add_head_rcu(&event->hlist_entry, head); 8343 perf_event_update_userpage(event); 8344 8345 return 0; 8346 } 8347 8348 static void perf_swevent_del(struct perf_event *event, int flags) 8349 { 8350 hlist_del_rcu(&event->hlist_entry); 8351 } 8352 8353 static void perf_swevent_start(struct perf_event *event, int flags) 8354 { 8355 event->hw.state = 0; 8356 } 8357 8358 static void perf_swevent_stop(struct perf_event *event, int flags) 8359 { 8360 event->hw.state = PERF_HES_STOPPED; 8361 } 8362 8363 /* Deref the hlist from the update side */ 8364 static inline struct swevent_hlist * 8365 swevent_hlist_deref(struct swevent_htable *swhash) 8366 { 8367 return rcu_dereference_protected(swhash->swevent_hlist, 8368 lockdep_is_held(&swhash->hlist_mutex)); 8369 } 8370 8371 static void swevent_hlist_release(struct swevent_htable *swhash) 8372 { 8373 struct swevent_hlist *hlist = swevent_hlist_deref(swhash); 8374 8375 if (!hlist) 8376 return; 8377 8378 RCU_INIT_POINTER(swhash->swevent_hlist, NULL); 8379 kfree_rcu(hlist, rcu_head); 8380 } 8381 8382 static void swevent_hlist_put_cpu(int cpu) 8383 { 8384 struct swevent_htable *swhash = &per_cpu(swevent_htable, cpu); 8385 8386 mutex_lock(&swhash->hlist_mutex); 8387 8388 if (!--swhash->hlist_refcount) 8389 swevent_hlist_release(swhash); 8390 8391 mutex_unlock(&swhash->hlist_mutex); 8392 } 8393 8394 static void swevent_hlist_put(void) 8395 { 8396 int cpu; 8397 8398 for_each_possible_cpu(cpu) 8399 swevent_hlist_put_cpu(cpu); 8400 } 8401 8402 static int swevent_hlist_get_cpu(int cpu) 8403 { 8404 struct swevent_htable *swhash = &per_cpu(swevent_htable, cpu); 8405 int err = 0; 8406 8407 mutex_lock(&swhash->hlist_mutex); 8408 if (!swevent_hlist_deref(swhash) && 8409 cpumask_test_cpu(cpu, perf_online_mask)) { 8410 struct swevent_hlist *hlist; 8411 8412 hlist = kzalloc(sizeof(*hlist), GFP_KERNEL); 8413 if (!hlist) { 8414 err = -ENOMEM; 8415 goto exit; 8416 } 8417 rcu_assign_pointer(swhash->swevent_hlist, hlist); 8418 } 8419 swhash->hlist_refcount++; 8420 exit: 8421 mutex_unlock(&swhash->hlist_mutex); 8422 8423 return err; 8424 } 8425 8426 static int swevent_hlist_get(void) 8427 { 8428 int err, cpu, failed_cpu; 8429 8430 mutex_lock(&pmus_lock); 8431 for_each_possible_cpu(cpu) { 8432 err = swevent_hlist_get_cpu(cpu); 8433 if (err) { 8434 failed_cpu = cpu; 8435 goto fail; 8436 } 8437 } 8438 mutex_unlock(&pmus_lock); 8439 return 0; 8440 fail: 8441 for_each_possible_cpu(cpu) { 8442 if (cpu == failed_cpu) 8443 break; 8444 swevent_hlist_put_cpu(cpu); 8445 } 8446 mutex_unlock(&pmus_lock); 8447 return err; 8448 } 8449 8450 struct static_key perf_swevent_enabled[PERF_COUNT_SW_MAX]; 8451 8452 static void sw_perf_event_destroy(struct perf_event *event) 8453 { 8454 u64 event_id = event->attr.config; 8455 8456 WARN_ON(event->parent); 8457 8458 static_key_slow_dec(&perf_swevent_enabled[event_id]); 8459 swevent_hlist_put(); 8460 } 8461 8462 static int perf_swevent_init(struct perf_event *event) 8463 { 8464 u64 event_id = event->attr.config; 8465 8466 if (event->attr.type != PERF_TYPE_SOFTWARE) 8467 return -ENOENT; 8468 8469 /* 8470 * no branch sampling for software events 8471 */ 8472 if (has_branch_stack(event)) 8473 return -EOPNOTSUPP; 8474 8475 switch (event_id) { 8476 case PERF_COUNT_SW_CPU_CLOCK: 8477 case PERF_COUNT_SW_TASK_CLOCK: 8478 return -ENOENT; 8479 8480 default: 8481 break; 8482 } 8483 8484 if (event_id >= PERF_COUNT_SW_MAX) 8485 return -ENOENT; 8486 8487 if (!event->parent) { 8488 int err; 8489 8490 err = swevent_hlist_get(); 8491 if (err) 8492 return err; 8493 8494 static_key_slow_inc(&perf_swevent_enabled[event_id]); 8495 event->destroy = sw_perf_event_destroy; 8496 } 8497 8498 return 0; 8499 } 8500 8501 static struct pmu perf_swevent = { 8502 .task_ctx_nr = perf_sw_context, 8503 8504 .capabilities = PERF_PMU_CAP_NO_NMI, 8505 8506 .event_init = perf_swevent_init, 8507 .add = perf_swevent_add, 8508 .del = perf_swevent_del, 8509 .start = perf_swevent_start, 8510 .stop = perf_swevent_stop, 8511 .read = perf_swevent_read, 8512 }; 8513 8514 #ifdef CONFIG_EVENT_TRACING 8515 8516 static int perf_tp_filter_match(struct perf_event *event, 8517 struct perf_sample_data *data) 8518 { 8519 void *record = data->raw->frag.data; 8520 8521 /* only top level events have filters set */ 8522 if (event->parent) 8523 event = event->parent; 8524 8525 if (likely(!event->filter) || filter_match_preds(event->filter, record)) 8526 return 1; 8527 return 0; 8528 } 8529 8530 static int perf_tp_event_match(struct perf_event *event, 8531 struct perf_sample_data *data, 8532 struct pt_regs *regs) 8533 { 8534 if (event->hw.state & PERF_HES_STOPPED) 8535 return 0; 8536 /* 8537 * If exclude_kernel, only trace user-space tracepoints (uprobes) 8538 */ 8539 if (event->attr.exclude_kernel && !user_mode(regs)) 8540 return 0; 8541 8542 if (!perf_tp_filter_match(event, data)) 8543 return 0; 8544 8545 return 1; 8546 } 8547 8548 void perf_trace_run_bpf_submit(void *raw_data, int size, int rctx, 8549 struct trace_event_call *call, u64 count, 8550 struct pt_regs *regs, struct hlist_head *head, 8551 struct task_struct *task) 8552 { 8553 if (bpf_prog_array_valid(call)) { 8554 *(struct pt_regs **)raw_data = regs; 8555 if (!trace_call_bpf(call, raw_data) || hlist_empty(head)) { 8556 perf_swevent_put_recursion_context(rctx); 8557 return; 8558 } 8559 } 8560 perf_tp_event(call->event.type, count, raw_data, size, regs, head, 8561 rctx, task); 8562 } 8563 EXPORT_SYMBOL_GPL(perf_trace_run_bpf_submit); 8564 8565 void perf_tp_event(u16 event_type, u64 count, void *record, int entry_size, 8566 struct pt_regs *regs, struct hlist_head *head, int rctx, 8567 struct task_struct *task) 8568 { 8569 struct perf_sample_data data; 8570 struct perf_event *event; 8571 8572 struct perf_raw_record raw = { 8573 .frag = { 8574 .size = entry_size, 8575 .data = record, 8576 }, 8577 }; 8578 8579 perf_sample_data_init(&data, 0, 0); 8580 data.raw = &raw; 8581 8582 perf_trace_buf_update(record, event_type); 8583 8584 hlist_for_each_entry_rcu(event, head, hlist_entry) { 8585 if (perf_tp_event_match(event, &data, regs)) 8586 perf_swevent_event(event, count, &data, regs); 8587 } 8588 8589 /* 8590 * If we got specified a target task, also iterate its context and 8591 * deliver this event there too. 8592 */ 8593 if (task && task != current) { 8594 struct perf_event_context *ctx; 8595 struct trace_entry *entry = record; 8596 8597 rcu_read_lock(); 8598 ctx = rcu_dereference(task->perf_event_ctxp[perf_sw_context]); 8599 if (!ctx) 8600 goto unlock; 8601 8602 list_for_each_entry_rcu(event, &ctx->event_list, event_entry) { 8603 if (event->cpu != smp_processor_id()) 8604 continue; 8605 if (event->attr.type != PERF_TYPE_TRACEPOINT) 8606 continue; 8607 if (event->attr.config != entry->type) 8608 continue; 8609 if (perf_tp_event_match(event, &data, regs)) 8610 perf_swevent_event(event, count, &data, regs); 8611 } 8612 unlock: 8613 rcu_read_unlock(); 8614 } 8615 8616 perf_swevent_put_recursion_context(rctx); 8617 } 8618 EXPORT_SYMBOL_GPL(perf_tp_event); 8619 8620 static void tp_perf_event_destroy(struct perf_event *event) 8621 { 8622 perf_trace_destroy(event); 8623 } 8624 8625 static int perf_tp_event_init(struct perf_event *event) 8626 { 8627 int err; 8628 8629 if (event->attr.type != PERF_TYPE_TRACEPOINT) 8630 return -ENOENT; 8631 8632 /* 8633 * no branch sampling for tracepoint events 8634 */ 8635 if (has_branch_stack(event)) 8636 return -EOPNOTSUPP; 8637 8638 err = perf_trace_init(event); 8639 if (err) 8640 return err; 8641 8642 event->destroy = tp_perf_event_destroy; 8643 8644 return 0; 8645 } 8646 8647 static struct pmu perf_tracepoint = { 8648 .task_ctx_nr = perf_sw_context, 8649 8650 .event_init = perf_tp_event_init, 8651 .add = perf_trace_add, 8652 .del = perf_trace_del, 8653 .start = perf_swevent_start, 8654 .stop = perf_swevent_stop, 8655 .read = perf_swevent_read, 8656 }; 8657 8658 #if defined(CONFIG_KPROBE_EVENTS) || defined(CONFIG_UPROBE_EVENTS) 8659 /* 8660 * Flags in config, used by dynamic PMU kprobe and uprobe 8661 * The flags should match following PMU_FORMAT_ATTR(). 8662 * 8663 * PERF_PROBE_CONFIG_IS_RETPROBE if set, create kretprobe/uretprobe 8664 * if not set, create kprobe/uprobe 8665 * 8666 * The following values specify a reference counter (or semaphore in the 8667 * terminology of tools like dtrace, systemtap, etc.) Userspace Statically 8668 * Defined Tracepoints (USDT). Currently, we use 40 bit for the offset. 8669 * 8670 * PERF_UPROBE_REF_CTR_OFFSET_BITS # of bits in config as th offset 8671 * PERF_UPROBE_REF_CTR_OFFSET_SHIFT # of bits to shift left 8672 */ 8673 enum perf_probe_config { 8674 PERF_PROBE_CONFIG_IS_RETPROBE = 1U << 0, /* [k,u]retprobe */ 8675 PERF_UPROBE_REF_CTR_OFFSET_BITS = 32, 8676 PERF_UPROBE_REF_CTR_OFFSET_SHIFT = 64 - PERF_UPROBE_REF_CTR_OFFSET_BITS, 8677 }; 8678 8679 PMU_FORMAT_ATTR(retprobe, "config:0"); 8680 #endif 8681 8682 #ifdef CONFIG_KPROBE_EVENTS 8683 static struct attribute *kprobe_attrs[] = { 8684 &format_attr_retprobe.attr, 8685 NULL, 8686 }; 8687 8688 static struct attribute_group kprobe_format_group = { 8689 .name = "format", 8690 .attrs = kprobe_attrs, 8691 }; 8692 8693 static const struct attribute_group *kprobe_attr_groups[] = { 8694 &kprobe_format_group, 8695 NULL, 8696 }; 8697 8698 static int perf_kprobe_event_init(struct perf_event *event); 8699 static struct pmu perf_kprobe = { 8700 .task_ctx_nr = perf_sw_context, 8701 .event_init = perf_kprobe_event_init, 8702 .add = perf_trace_add, 8703 .del = perf_trace_del, 8704 .start = perf_swevent_start, 8705 .stop = perf_swevent_stop, 8706 .read = perf_swevent_read, 8707 .attr_groups = kprobe_attr_groups, 8708 }; 8709 8710 static int perf_kprobe_event_init(struct perf_event *event) 8711 { 8712 int err; 8713 bool is_retprobe; 8714 8715 if (event->attr.type != perf_kprobe.type) 8716 return -ENOENT; 8717 8718 if (!capable(CAP_SYS_ADMIN)) 8719 return -EACCES; 8720 8721 /* 8722 * no branch sampling for probe events 8723 */ 8724 if (has_branch_stack(event)) 8725 return -EOPNOTSUPP; 8726 8727 is_retprobe = event->attr.config & PERF_PROBE_CONFIG_IS_RETPROBE; 8728 err = perf_kprobe_init(event, is_retprobe); 8729 if (err) 8730 return err; 8731 8732 event->destroy = perf_kprobe_destroy; 8733 8734 return 0; 8735 } 8736 #endif /* CONFIG_KPROBE_EVENTS */ 8737 8738 #ifdef CONFIG_UPROBE_EVENTS 8739 PMU_FORMAT_ATTR(ref_ctr_offset, "config:32-63"); 8740 8741 static struct attribute *uprobe_attrs[] = { 8742 &format_attr_retprobe.attr, 8743 &format_attr_ref_ctr_offset.attr, 8744 NULL, 8745 }; 8746 8747 static struct attribute_group uprobe_format_group = { 8748 .name = "format", 8749 .attrs = uprobe_attrs, 8750 }; 8751 8752 static const struct attribute_group *uprobe_attr_groups[] = { 8753 &uprobe_format_group, 8754 NULL, 8755 }; 8756 8757 static int perf_uprobe_event_init(struct perf_event *event); 8758 static struct pmu perf_uprobe = { 8759 .task_ctx_nr = perf_sw_context, 8760 .event_init = perf_uprobe_event_init, 8761 .add = perf_trace_add, 8762 .del = perf_trace_del, 8763 .start = perf_swevent_start, 8764 .stop = perf_swevent_stop, 8765 .read = perf_swevent_read, 8766 .attr_groups = uprobe_attr_groups, 8767 }; 8768 8769 static int perf_uprobe_event_init(struct perf_event *event) 8770 { 8771 int err; 8772 unsigned long ref_ctr_offset; 8773 bool is_retprobe; 8774 8775 if (event->attr.type != perf_uprobe.type) 8776 return -ENOENT; 8777 8778 if (!capable(CAP_SYS_ADMIN)) 8779 return -EACCES; 8780 8781 /* 8782 * no branch sampling for probe events 8783 */ 8784 if (has_branch_stack(event)) 8785 return -EOPNOTSUPP; 8786 8787 is_retprobe = event->attr.config & PERF_PROBE_CONFIG_IS_RETPROBE; 8788 ref_ctr_offset = event->attr.config >> PERF_UPROBE_REF_CTR_OFFSET_SHIFT; 8789 err = perf_uprobe_init(event, ref_ctr_offset, is_retprobe); 8790 if (err) 8791 return err; 8792 8793 event->destroy = perf_uprobe_destroy; 8794 8795 return 0; 8796 } 8797 #endif /* CONFIG_UPROBE_EVENTS */ 8798 8799 static inline void perf_tp_register(void) 8800 { 8801 perf_pmu_register(&perf_tracepoint, "tracepoint", PERF_TYPE_TRACEPOINT); 8802 #ifdef CONFIG_KPROBE_EVENTS 8803 perf_pmu_register(&perf_kprobe, "kprobe", -1); 8804 #endif 8805 #ifdef CONFIG_UPROBE_EVENTS 8806 perf_pmu_register(&perf_uprobe, "uprobe", -1); 8807 #endif 8808 } 8809 8810 static void perf_event_free_filter(struct perf_event *event) 8811 { 8812 ftrace_profile_free_filter(event); 8813 } 8814 8815 #ifdef CONFIG_BPF_SYSCALL 8816 static void bpf_overflow_handler(struct perf_event *event, 8817 struct perf_sample_data *data, 8818 struct pt_regs *regs) 8819 { 8820 struct bpf_perf_event_data_kern ctx = { 8821 .data = data, 8822 .event = event, 8823 }; 8824 int ret = 0; 8825 8826 ctx.regs = perf_arch_bpf_user_pt_regs(regs); 8827 preempt_disable(); 8828 if (unlikely(__this_cpu_inc_return(bpf_prog_active) != 1)) 8829 goto out; 8830 rcu_read_lock(); 8831 ret = BPF_PROG_RUN(event->prog, &ctx); 8832 rcu_read_unlock(); 8833 out: 8834 __this_cpu_dec(bpf_prog_active); 8835 preempt_enable(); 8836 if (!ret) 8837 return; 8838 8839 event->orig_overflow_handler(event, data, regs); 8840 } 8841 8842 static int perf_event_set_bpf_handler(struct perf_event *event, u32 prog_fd) 8843 { 8844 struct bpf_prog *prog; 8845 8846 if (event->overflow_handler_context) 8847 /* hw breakpoint or kernel counter */ 8848 return -EINVAL; 8849 8850 if (event->prog) 8851 return -EEXIST; 8852 8853 prog = bpf_prog_get_type(prog_fd, BPF_PROG_TYPE_PERF_EVENT); 8854 if (IS_ERR(prog)) 8855 return PTR_ERR(prog); 8856 8857 event->prog = prog; 8858 event->orig_overflow_handler = READ_ONCE(event->overflow_handler); 8859 WRITE_ONCE(event->overflow_handler, bpf_overflow_handler); 8860 return 0; 8861 } 8862 8863 static void perf_event_free_bpf_handler(struct perf_event *event) 8864 { 8865 struct bpf_prog *prog = event->prog; 8866 8867 if (!prog) 8868 return; 8869 8870 WRITE_ONCE(event->overflow_handler, event->orig_overflow_handler); 8871 event->prog = NULL; 8872 bpf_prog_put(prog); 8873 } 8874 #else 8875 static int perf_event_set_bpf_handler(struct perf_event *event, u32 prog_fd) 8876 { 8877 return -EOPNOTSUPP; 8878 } 8879 static void perf_event_free_bpf_handler(struct perf_event *event) 8880 { 8881 } 8882 #endif 8883 8884 /* 8885 * returns true if the event is a tracepoint, or a kprobe/upprobe created 8886 * with perf_event_open() 8887 */ 8888 static inline bool perf_event_is_tracing(struct perf_event *event) 8889 { 8890 if (event->pmu == &perf_tracepoint) 8891 return true; 8892 #ifdef CONFIG_KPROBE_EVENTS 8893 if (event->pmu == &perf_kprobe) 8894 return true; 8895 #endif 8896 #ifdef CONFIG_UPROBE_EVENTS 8897 if (event->pmu == &perf_uprobe) 8898 return true; 8899 #endif 8900 return false; 8901 } 8902 8903 static int perf_event_set_bpf_prog(struct perf_event *event, u32 prog_fd) 8904 { 8905 bool is_kprobe, is_tracepoint, is_syscall_tp; 8906 struct bpf_prog *prog; 8907 int ret; 8908 8909 if (!perf_event_is_tracing(event)) 8910 return perf_event_set_bpf_handler(event, prog_fd); 8911 8912 is_kprobe = event->tp_event->flags & TRACE_EVENT_FL_UKPROBE; 8913 is_tracepoint = event->tp_event->flags & TRACE_EVENT_FL_TRACEPOINT; 8914 is_syscall_tp = is_syscall_trace_event(event->tp_event); 8915 if (!is_kprobe && !is_tracepoint && !is_syscall_tp) 8916 /* bpf programs can only be attached to u/kprobe or tracepoint */ 8917 return -EINVAL; 8918 8919 prog = bpf_prog_get(prog_fd); 8920 if (IS_ERR(prog)) 8921 return PTR_ERR(prog); 8922 8923 if ((is_kprobe && prog->type != BPF_PROG_TYPE_KPROBE) || 8924 (is_tracepoint && prog->type != BPF_PROG_TYPE_TRACEPOINT) || 8925 (is_syscall_tp && prog->type != BPF_PROG_TYPE_TRACEPOINT)) { 8926 /* valid fd, but invalid bpf program type */ 8927 bpf_prog_put(prog); 8928 return -EINVAL; 8929 } 8930 8931 /* Kprobe override only works for kprobes, not uprobes. */ 8932 if (prog->kprobe_override && 8933 !(event->tp_event->flags & TRACE_EVENT_FL_KPROBE)) { 8934 bpf_prog_put(prog); 8935 return -EINVAL; 8936 } 8937 8938 if (is_tracepoint || is_syscall_tp) { 8939 int off = trace_event_get_offsets(event->tp_event); 8940 8941 if (prog->aux->max_ctx_offset > off) { 8942 bpf_prog_put(prog); 8943 return -EACCES; 8944 } 8945 } 8946 8947 ret = perf_event_attach_bpf_prog(event, prog); 8948 if (ret) 8949 bpf_prog_put(prog); 8950 return ret; 8951 } 8952 8953 static void perf_event_free_bpf_prog(struct perf_event *event) 8954 { 8955 if (!perf_event_is_tracing(event)) { 8956 perf_event_free_bpf_handler(event); 8957 return; 8958 } 8959 perf_event_detach_bpf_prog(event); 8960 } 8961 8962 #else 8963 8964 static inline void perf_tp_register(void) 8965 { 8966 } 8967 8968 static void perf_event_free_filter(struct perf_event *event) 8969 { 8970 } 8971 8972 static int perf_event_set_bpf_prog(struct perf_event *event, u32 prog_fd) 8973 { 8974 return -ENOENT; 8975 } 8976 8977 static void perf_event_free_bpf_prog(struct perf_event *event) 8978 { 8979 } 8980 #endif /* CONFIG_EVENT_TRACING */ 8981 8982 #ifdef CONFIG_HAVE_HW_BREAKPOINT 8983 void perf_bp_event(struct perf_event *bp, void *data) 8984 { 8985 struct perf_sample_data sample; 8986 struct pt_regs *regs = data; 8987 8988 perf_sample_data_init(&sample, bp->attr.bp_addr, 0); 8989 8990 if (!bp->hw.state && !perf_exclude_event(bp, regs)) 8991 perf_swevent_event(bp, 1, &sample, regs); 8992 } 8993 #endif 8994 8995 /* 8996 * Allocate a new address filter 8997 */ 8998 static struct perf_addr_filter * 8999 perf_addr_filter_new(struct perf_event *event, struct list_head *filters) 9000 { 9001 int node = cpu_to_node(event->cpu == -1 ? 0 : event->cpu); 9002 struct perf_addr_filter *filter; 9003 9004 filter = kzalloc_node(sizeof(*filter), GFP_KERNEL, node); 9005 if (!filter) 9006 return NULL; 9007 9008 INIT_LIST_HEAD(&filter->entry); 9009 list_add_tail(&filter->entry, filters); 9010 9011 return filter; 9012 } 9013 9014 static void free_filters_list(struct list_head *filters) 9015 { 9016 struct perf_addr_filter *filter, *iter; 9017 9018 list_for_each_entry_safe(filter, iter, filters, entry) { 9019 path_put(&filter->path); 9020 list_del(&filter->entry); 9021 kfree(filter); 9022 } 9023 } 9024 9025 /* 9026 * Free existing address filters and optionally install new ones 9027 */ 9028 static void perf_addr_filters_splice(struct perf_event *event, 9029 struct list_head *head) 9030 { 9031 unsigned long flags; 9032 LIST_HEAD(list); 9033 9034 if (!has_addr_filter(event)) 9035 return; 9036 9037 /* don't bother with children, they don't have their own filters */ 9038 if (event->parent) 9039 return; 9040 9041 raw_spin_lock_irqsave(&event->addr_filters.lock, flags); 9042 9043 list_splice_init(&event->addr_filters.list, &list); 9044 if (head) 9045 list_splice(head, &event->addr_filters.list); 9046 9047 raw_spin_unlock_irqrestore(&event->addr_filters.lock, flags); 9048 9049 free_filters_list(&list); 9050 } 9051 9052 /* 9053 * Scan through mm's vmas and see if one of them matches the 9054 * @filter; if so, adjust filter's address range. 9055 * Called with mm::mmap_sem down for reading. 9056 */ 9057 static void perf_addr_filter_apply(struct perf_addr_filter *filter, 9058 struct mm_struct *mm, 9059 struct perf_addr_filter_range *fr) 9060 { 9061 struct vm_area_struct *vma; 9062 9063 for (vma = mm->mmap; vma; vma = vma->vm_next) { 9064 if (!vma->vm_file) 9065 continue; 9066 9067 if (perf_addr_filter_vma_adjust(filter, vma, fr)) 9068 return; 9069 } 9070 } 9071 9072 /* 9073 * Update event's address range filters based on the 9074 * task's existing mappings, if any. 9075 */ 9076 static void perf_event_addr_filters_apply(struct perf_event *event) 9077 { 9078 struct perf_addr_filters_head *ifh = perf_event_addr_filters(event); 9079 struct task_struct *task = READ_ONCE(event->ctx->task); 9080 struct perf_addr_filter *filter; 9081 struct mm_struct *mm = NULL; 9082 unsigned int count = 0; 9083 unsigned long flags; 9084 9085 /* 9086 * We may observe TASK_TOMBSTONE, which means that the event tear-down 9087 * will stop on the parent's child_mutex that our caller is also holding 9088 */ 9089 if (task == TASK_TOMBSTONE) 9090 return; 9091 9092 if (ifh->nr_file_filters) { 9093 mm = get_task_mm(event->ctx->task); 9094 if (!mm) 9095 goto restart; 9096 9097 down_read(&mm->mmap_sem); 9098 } 9099 9100 raw_spin_lock_irqsave(&ifh->lock, flags); 9101 list_for_each_entry(filter, &ifh->list, entry) { 9102 if (filter->path.dentry) { 9103 /* 9104 * Adjust base offset if the filter is associated to a 9105 * binary that needs to be mapped: 9106 */ 9107 event->addr_filter_ranges[count].start = 0; 9108 event->addr_filter_ranges[count].size = 0; 9109 9110 perf_addr_filter_apply(filter, mm, &event->addr_filter_ranges[count]); 9111 } else { 9112 event->addr_filter_ranges[count].start = filter->offset; 9113 event->addr_filter_ranges[count].size = filter->size; 9114 } 9115 9116 count++; 9117 } 9118 9119 event->addr_filters_gen++; 9120 raw_spin_unlock_irqrestore(&ifh->lock, flags); 9121 9122 if (ifh->nr_file_filters) { 9123 up_read(&mm->mmap_sem); 9124 9125 mmput(mm); 9126 } 9127 9128 restart: 9129 perf_event_stop(event, 1); 9130 } 9131 9132 /* 9133 * Address range filtering: limiting the data to certain 9134 * instruction address ranges. Filters are ioctl()ed to us from 9135 * userspace as ascii strings. 9136 * 9137 * Filter string format: 9138 * 9139 * ACTION RANGE_SPEC 9140 * where ACTION is one of the 9141 * * "filter": limit the trace to this region 9142 * * "start": start tracing from this address 9143 * * "stop": stop tracing at this address/region; 9144 * RANGE_SPEC is 9145 * * for kernel addresses: <start address>[/<size>] 9146 * * for object files: <start address>[/<size>]@</path/to/object/file> 9147 * 9148 * if <size> is not specified or is zero, the range is treated as a single 9149 * address; not valid for ACTION=="filter". 9150 */ 9151 enum { 9152 IF_ACT_NONE = -1, 9153 IF_ACT_FILTER, 9154 IF_ACT_START, 9155 IF_ACT_STOP, 9156 IF_SRC_FILE, 9157 IF_SRC_KERNEL, 9158 IF_SRC_FILEADDR, 9159 IF_SRC_KERNELADDR, 9160 }; 9161 9162 enum { 9163 IF_STATE_ACTION = 0, 9164 IF_STATE_SOURCE, 9165 IF_STATE_END, 9166 }; 9167 9168 static const match_table_t if_tokens = { 9169 { IF_ACT_FILTER, "filter" }, 9170 { IF_ACT_START, "start" }, 9171 { IF_ACT_STOP, "stop" }, 9172 { IF_SRC_FILE, "%u/%u@%s" }, 9173 { IF_SRC_KERNEL, "%u/%u" }, 9174 { IF_SRC_FILEADDR, "%u@%s" }, 9175 { IF_SRC_KERNELADDR, "%u" }, 9176 { IF_ACT_NONE, NULL }, 9177 }; 9178 9179 /* 9180 * Address filter string parser 9181 */ 9182 static int 9183 perf_event_parse_addr_filter(struct perf_event *event, char *fstr, 9184 struct list_head *filters) 9185 { 9186 struct perf_addr_filter *filter = NULL; 9187 char *start, *orig, *filename = NULL; 9188 substring_t args[MAX_OPT_ARGS]; 9189 int state = IF_STATE_ACTION, token; 9190 unsigned int kernel = 0; 9191 int ret = -EINVAL; 9192 9193 orig = fstr = kstrdup(fstr, GFP_KERNEL); 9194 if (!fstr) 9195 return -ENOMEM; 9196 9197 while ((start = strsep(&fstr, " ,\n")) != NULL) { 9198 static const enum perf_addr_filter_action_t actions[] = { 9199 [IF_ACT_FILTER] = PERF_ADDR_FILTER_ACTION_FILTER, 9200 [IF_ACT_START] = PERF_ADDR_FILTER_ACTION_START, 9201 [IF_ACT_STOP] = PERF_ADDR_FILTER_ACTION_STOP, 9202 }; 9203 ret = -EINVAL; 9204 9205 if (!*start) 9206 continue; 9207 9208 /* filter definition begins */ 9209 if (state == IF_STATE_ACTION) { 9210 filter = perf_addr_filter_new(event, filters); 9211 if (!filter) 9212 goto fail; 9213 } 9214 9215 token = match_token(start, if_tokens, args); 9216 switch (token) { 9217 case IF_ACT_FILTER: 9218 case IF_ACT_START: 9219 case IF_ACT_STOP: 9220 if (state != IF_STATE_ACTION) 9221 goto fail; 9222 9223 filter->action = actions[token]; 9224 state = IF_STATE_SOURCE; 9225 break; 9226 9227 case IF_SRC_KERNELADDR: 9228 case IF_SRC_KERNEL: 9229 kernel = 1; 9230 /* fall through */ 9231 9232 case IF_SRC_FILEADDR: 9233 case IF_SRC_FILE: 9234 if (state != IF_STATE_SOURCE) 9235 goto fail; 9236 9237 *args[0].to = 0; 9238 ret = kstrtoul(args[0].from, 0, &filter->offset); 9239 if (ret) 9240 goto fail; 9241 9242 if (token == IF_SRC_KERNEL || token == IF_SRC_FILE) { 9243 *args[1].to = 0; 9244 ret = kstrtoul(args[1].from, 0, &filter->size); 9245 if (ret) 9246 goto fail; 9247 } 9248 9249 if (token == IF_SRC_FILE || token == IF_SRC_FILEADDR) { 9250 int fpos = token == IF_SRC_FILE ? 2 : 1; 9251 9252 filename = match_strdup(&args[fpos]); 9253 if (!filename) { 9254 ret = -ENOMEM; 9255 goto fail; 9256 } 9257 } 9258 9259 state = IF_STATE_END; 9260 break; 9261 9262 default: 9263 goto fail; 9264 } 9265 9266 /* 9267 * Filter definition is fully parsed, validate and install it. 9268 * Make sure that it doesn't contradict itself or the event's 9269 * attribute. 9270 */ 9271 if (state == IF_STATE_END) { 9272 ret = -EINVAL; 9273 if (kernel && event->attr.exclude_kernel) 9274 goto fail; 9275 9276 /* 9277 * ACTION "filter" must have a non-zero length region 9278 * specified. 9279 */ 9280 if (filter->action == PERF_ADDR_FILTER_ACTION_FILTER && 9281 !filter->size) 9282 goto fail; 9283 9284 if (!kernel) { 9285 if (!filename) 9286 goto fail; 9287 9288 /* 9289 * For now, we only support file-based filters 9290 * in per-task events; doing so for CPU-wide 9291 * events requires additional context switching 9292 * trickery, since same object code will be 9293 * mapped at different virtual addresses in 9294 * different processes. 9295 */ 9296 ret = -EOPNOTSUPP; 9297 if (!event->ctx->task) 9298 goto fail_free_name; 9299 9300 /* look up the path and grab its inode */ 9301 ret = kern_path(filename, LOOKUP_FOLLOW, 9302 &filter->path); 9303 if (ret) 9304 goto fail_free_name; 9305 9306 kfree(filename); 9307 filename = NULL; 9308 9309 ret = -EINVAL; 9310 if (!filter->path.dentry || 9311 !S_ISREG(d_inode(filter->path.dentry) 9312 ->i_mode)) 9313 goto fail; 9314 9315 event->addr_filters.nr_file_filters++; 9316 } 9317 9318 /* ready to consume more filters */ 9319 state = IF_STATE_ACTION; 9320 filter = NULL; 9321 } 9322 } 9323 9324 if (state != IF_STATE_ACTION) 9325 goto fail; 9326 9327 kfree(orig); 9328 9329 return 0; 9330 9331 fail_free_name: 9332 kfree(filename); 9333 fail: 9334 free_filters_list(filters); 9335 kfree(orig); 9336 9337 return ret; 9338 } 9339 9340 static int 9341 perf_event_set_addr_filter(struct perf_event *event, char *filter_str) 9342 { 9343 LIST_HEAD(filters); 9344 int ret; 9345 9346 /* 9347 * Since this is called in perf_ioctl() path, we're already holding 9348 * ctx::mutex. 9349 */ 9350 lockdep_assert_held(&event->ctx->mutex); 9351 9352 if (WARN_ON_ONCE(event->parent)) 9353 return -EINVAL; 9354 9355 ret = perf_event_parse_addr_filter(event, filter_str, &filters); 9356 if (ret) 9357 goto fail_clear_files; 9358 9359 ret = event->pmu->addr_filters_validate(&filters); 9360 if (ret) 9361 goto fail_free_filters; 9362 9363 /* remove existing filters, if any */ 9364 perf_addr_filters_splice(event, &filters); 9365 9366 /* install new filters */ 9367 perf_event_for_each_child(event, perf_event_addr_filters_apply); 9368 9369 return ret; 9370 9371 fail_free_filters: 9372 free_filters_list(&filters); 9373 9374 fail_clear_files: 9375 event->addr_filters.nr_file_filters = 0; 9376 9377 return ret; 9378 } 9379 9380 static int perf_event_set_filter(struct perf_event *event, void __user *arg) 9381 { 9382 int ret = -EINVAL; 9383 char *filter_str; 9384 9385 filter_str = strndup_user(arg, PAGE_SIZE); 9386 if (IS_ERR(filter_str)) 9387 return PTR_ERR(filter_str); 9388 9389 #ifdef CONFIG_EVENT_TRACING 9390 if (perf_event_is_tracing(event)) { 9391 struct perf_event_context *ctx = event->ctx; 9392 9393 /* 9394 * Beware, here be dragons!! 9395 * 9396 * the tracepoint muck will deadlock against ctx->mutex, but 9397 * the tracepoint stuff does not actually need it. So 9398 * temporarily drop ctx->mutex. As per perf_event_ctx_lock() we 9399 * already have a reference on ctx. 9400 * 9401 * This can result in event getting moved to a different ctx, 9402 * but that does not affect the tracepoint state. 9403 */ 9404 mutex_unlock(&ctx->mutex); 9405 ret = ftrace_profile_set_filter(event, event->attr.config, filter_str); 9406 mutex_lock(&ctx->mutex); 9407 } else 9408 #endif 9409 if (has_addr_filter(event)) 9410 ret = perf_event_set_addr_filter(event, filter_str); 9411 9412 kfree(filter_str); 9413 return ret; 9414 } 9415 9416 /* 9417 * hrtimer based swevent callback 9418 */ 9419 9420 static enum hrtimer_restart perf_swevent_hrtimer(struct hrtimer *hrtimer) 9421 { 9422 enum hrtimer_restart ret = HRTIMER_RESTART; 9423 struct perf_sample_data data; 9424 struct pt_regs *regs; 9425 struct perf_event *event; 9426 u64 period; 9427 9428 event = container_of(hrtimer, struct perf_event, hw.hrtimer); 9429 9430 if (event->state != PERF_EVENT_STATE_ACTIVE) 9431 return HRTIMER_NORESTART; 9432 9433 event->pmu->read(event); 9434 9435 perf_sample_data_init(&data, 0, event->hw.last_period); 9436 regs = get_irq_regs(); 9437 9438 if (regs && !perf_exclude_event(event, regs)) { 9439 if (!(event->attr.exclude_idle && is_idle_task(current))) 9440 if (__perf_event_overflow(event, 1, &data, regs)) 9441 ret = HRTIMER_NORESTART; 9442 } 9443 9444 period = max_t(u64, 10000, event->hw.sample_period); 9445 hrtimer_forward_now(hrtimer, ns_to_ktime(period)); 9446 9447 return ret; 9448 } 9449 9450 static void perf_swevent_start_hrtimer(struct perf_event *event) 9451 { 9452 struct hw_perf_event *hwc = &event->hw; 9453 s64 period; 9454 9455 if (!is_sampling_event(event)) 9456 return; 9457 9458 period = local64_read(&hwc->period_left); 9459 if (period) { 9460 if (period < 0) 9461 period = 10000; 9462 9463 local64_set(&hwc->period_left, 0); 9464 } else { 9465 period = max_t(u64, 10000, hwc->sample_period); 9466 } 9467 hrtimer_start(&hwc->hrtimer, ns_to_ktime(period), 9468 HRTIMER_MODE_REL_PINNED); 9469 } 9470 9471 static void perf_swevent_cancel_hrtimer(struct perf_event *event) 9472 { 9473 struct hw_perf_event *hwc = &event->hw; 9474 9475 if (is_sampling_event(event)) { 9476 ktime_t remaining = hrtimer_get_remaining(&hwc->hrtimer); 9477 local64_set(&hwc->period_left, ktime_to_ns(remaining)); 9478 9479 hrtimer_cancel(&hwc->hrtimer); 9480 } 9481 } 9482 9483 static void perf_swevent_init_hrtimer(struct perf_event *event) 9484 { 9485 struct hw_perf_event *hwc = &event->hw; 9486 9487 if (!is_sampling_event(event)) 9488 return; 9489 9490 hrtimer_init(&hwc->hrtimer, CLOCK_MONOTONIC, HRTIMER_MODE_REL); 9491 hwc->hrtimer.function = perf_swevent_hrtimer; 9492 9493 /* 9494 * Since hrtimers have a fixed rate, we can do a static freq->period 9495 * mapping and avoid the whole period adjust feedback stuff. 9496 */ 9497 if (event->attr.freq) { 9498 long freq = event->attr.sample_freq; 9499 9500 event->attr.sample_period = NSEC_PER_SEC / freq; 9501 hwc->sample_period = event->attr.sample_period; 9502 local64_set(&hwc->period_left, hwc->sample_period); 9503 hwc->last_period = hwc->sample_period; 9504 event->attr.freq = 0; 9505 } 9506 } 9507 9508 /* 9509 * Software event: cpu wall time clock 9510 */ 9511 9512 static void cpu_clock_event_update(struct perf_event *event) 9513 { 9514 s64 prev; 9515 u64 now; 9516 9517 now = local_clock(); 9518 prev = local64_xchg(&event->hw.prev_count, now); 9519 local64_add(now - prev, &event->count); 9520 } 9521 9522 static void cpu_clock_event_start(struct perf_event *event, int flags) 9523 { 9524 local64_set(&event->hw.prev_count, local_clock()); 9525 perf_swevent_start_hrtimer(event); 9526 } 9527 9528 static void cpu_clock_event_stop(struct perf_event *event, int flags) 9529 { 9530 perf_swevent_cancel_hrtimer(event); 9531 cpu_clock_event_update(event); 9532 } 9533 9534 static int cpu_clock_event_add(struct perf_event *event, int flags) 9535 { 9536 if (flags & PERF_EF_START) 9537 cpu_clock_event_start(event, flags); 9538 perf_event_update_userpage(event); 9539 9540 return 0; 9541 } 9542 9543 static void cpu_clock_event_del(struct perf_event *event, int flags) 9544 { 9545 cpu_clock_event_stop(event, flags); 9546 } 9547 9548 static void cpu_clock_event_read(struct perf_event *event) 9549 { 9550 cpu_clock_event_update(event); 9551 } 9552 9553 static int cpu_clock_event_init(struct perf_event *event) 9554 { 9555 if (event->attr.type != PERF_TYPE_SOFTWARE) 9556 return -ENOENT; 9557 9558 if (event->attr.config != PERF_COUNT_SW_CPU_CLOCK) 9559 return -ENOENT; 9560 9561 /* 9562 * no branch sampling for software events 9563 */ 9564 if (has_branch_stack(event)) 9565 return -EOPNOTSUPP; 9566 9567 perf_swevent_init_hrtimer(event); 9568 9569 return 0; 9570 } 9571 9572 static struct pmu perf_cpu_clock = { 9573 .task_ctx_nr = perf_sw_context, 9574 9575 .capabilities = PERF_PMU_CAP_NO_NMI, 9576 9577 .event_init = cpu_clock_event_init, 9578 .add = cpu_clock_event_add, 9579 .del = cpu_clock_event_del, 9580 .start = cpu_clock_event_start, 9581 .stop = cpu_clock_event_stop, 9582 .read = cpu_clock_event_read, 9583 }; 9584 9585 /* 9586 * Software event: task time clock 9587 */ 9588 9589 static void task_clock_event_update(struct perf_event *event, u64 now) 9590 { 9591 u64 prev; 9592 s64 delta; 9593 9594 prev = local64_xchg(&event->hw.prev_count, now); 9595 delta = now - prev; 9596 local64_add(delta, &event->count); 9597 } 9598 9599 static void task_clock_event_start(struct perf_event *event, int flags) 9600 { 9601 local64_set(&event->hw.prev_count, event->ctx->time); 9602 perf_swevent_start_hrtimer(event); 9603 } 9604 9605 static void task_clock_event_stop(struct perf_event *event, int flags) 9606 { 9607 perf_swevent_cancel_hrtimer(event); 9608 task_clock_event_update(event, event->ctx->time); 9609 } 9610 9611 static int task_clock_event_add(struct perf_event *event, int flags) 9612 { 9613 if (flags & PERF_EF_START) 9614 task_clock_event_start(event, flags); 9615 perf_event_update_userpage(event); 9616 9617 return 0; 9618 } 9619 9620 static void task_clock_event_del(struct perf_event *event, int flags) 9621 { 9622 task_clock_event_stop(event, PERF_EF_UPDATE); 9623 } 9624 9625 static void task_clock_event_read(struct perf_event *event) 9626 { 9627 u64 now = perf_clock(); 9628 u64 delta = now - event->ctx->timestamp; 9629 u64 time = event->ctx->time + delta; 9630 9631 task_clock_event_update(event, time); 9632 } 9633 9634 static int task_clock_event_init(struct perf_event *event) 9635 { 9636 if (event->attr.type != PERF_TYPE_SOFTWARE) 9637 return -ENOENT; 9638 9639 if (event->attr.config != PERF_COUNT_SW_TASK_CLOCK) 9640 return -ENOENT; 9641 9642 /* 9643 * no branch sampling for software events 9644 */ 9645 if (has_branch_stack(event)) 9646 return -EOPNOTSUPP; 9647 9648 perf_swevent_init_hrtimer(event); 9649 9650 return 0; 9651 } 9652 9653 static struct pmu perf_task_clock = { 9654 .task_ctx_nr = perf_sw_context, 9655 9656 .capabilities = PERF_PMU_CAP_NO_NMI, 9657 9658 .event_init = task_clock_event_init, 9659 .add = task_clock_event_add, 9660 .del = task_clock_event_del, 9661 .start = task_clock_event_start, 9662 .stop = task_clock_event_stop, 9663 .read = task_clock_event_read, 9664 }; 9665 9666 static void perf_pmu_nop_void(struct pmu *pmu) 9667 { 9668 } 9669 9670 static void perf_pmu_nop_txn(struct pmu *pmu, unsigned int flags) 9671 { 9672 } 9673 9674 static int perf_pmu_nop_int(struct pmu *pmu) 9675 { 9676 return 0; 9677 } 9678 9679 static int perf_event_nop_int(struct perf_event *event, u64 value) 9680 { 9681 return 0; 9682 } 9683 9684 static DEFINE_PER_CPU(unsigned int, nop_txn_flags); 9685 9686 static void perf_pmu_start_txn(struct pmu *pmu, unsigned int flags) 9687 { 9688 __this_cpu_write(nop_txn_flags, flags); 9689 9690 if (flags & ~PERF_PMU_TXN_ADD) 9691 return; 9692 9693 perf_pmu_disable(pmu); 9694 } 9695 9696 static int perf_pmu_commit_txn(struct pmu *pmu) 9697 { 9698 unsigned int flags = __this_cpu_read(nop_txn_flags); 9699 9700 __this_cpu_write(nop_txn_flags, 0); 9701 9702 if (flags & ~PERF_PMU_TXN_ADD) 9703 return 0; 9704 9705 perf_pmu_enable(pmu); 9706 return 0; 9707 } 9708 9709 static void perf_pmu_cancel_txn(struct pmu *pmu) 9710 { 9711 unsigned int flags = __this_cpu_read(nop_txn_flags); 9712 9713 __this_cpu_write(nop_txn_flags, 0); 9714 9715 if (flags & ~PERF_PMU_TXN_ADD) 9716 return; 9717 9718 perf_pmu_enable(pmu); 9719 } 9720 9721 static int perf_event_idx_default(struct perf_event *event) 9722 { 9723 return 0; 9724 } 9725 9726 /* 9727 * Ensures all contexts with the same task_ctx_nr have the same 9728 * pmu_cpu_context too. 9729 */ 9730 static struct perf_cpu_context __percpu *find_pmu_context(int ctxn) 9731 { 9732 struct pmu *pmu; 9733 9734 if (ctxn < 0) 9735 return NULL; 9736 9737 list_for_each_entry(pmu, &pmus, entry) { 9738 if (pmu->task_ctx_nr == ctxn) 9739 return pmu->pmu_cpu_context; 9740 } 9741 9742 return NULL; 9743 } 9744 9745 static void free_pmu_context(struct pmu *pmu) 9746 { 9747 /* 9748 * Static contexts such as perf_sw_context have a global lifetime 9749 * and may be shared between different PMUs. Avoid freeing them 9750 * when a single PMU is going away. 9751 */ 9752 if (pmu->task_ctx_nr > perf_invalid_context) 9753 return; 9754 9755 free_percpu(pmu->pmu_cpu_context); 9756 } 9757 9758 /* 9759 * Let userspace know that this PMU supports address range filtering: 9760 */ 9761 static ssize_t nr_addr_filters_show(struct device *dev, 9762 struct device_attribute *attr, 9763 char *page) 9764 { 9765 struct pmu *pmu = dev_get_drvdata(dev); 9766 9767 return snprintf(page, PAGE_SIZE - 1, "%d\n", pmu->nr_addr_filters); 9768 } 9769 DEVICE_ATTR_RO(nr_addr_filters); 9770 9771 static struct idr pmu_idr; 9772 9773 static ssize_t 9774 type_show(struct device *dev, struct device_attribute *attr, char *page) 9775 { 9776 struct pmu *pmu = dev_get_drvdata(dev); 9777 9778 return snprintf(page, PAGE_SIZE-1, "%d\n", pmu->type); 9779 } 9780 static DEVICE_ATTR_RO(type); 9781 9782 static ssize_t 9783 perf_event_mux_interval_ms_show(struct device *dev, 9784 struct device_attribute *attr, 9785 char *page) 9786 { 9787 struct pmu *pmu = dev_get_drvdata(dev); 9788 9789 return snprintf(page, PAGE_SIZE-1, "%d\n", pmu->hrtimer_interval_ms); 9790 } 9791 9792 static DEFINE_MUTEX(mux_interval_mutex); 9793 9794 static ssize_t 9795 perf_event_mux_interval_ms_store(struct device *dev, 9796 struct device_attribute *attr, 9797 const char *buf, size_t count) 9798 { 9799 struct pmu *pmu = dev_get_drvdata(dev); 9800 int timer, cpu, ret; 9801 9802 ret = kstrtoint(buf, 0, &timer); 9803 if (ret) 9804 return ret; 9805 9806 if (timer < 1) 9807 return -EINVAL; 9808 9809 /* same value, noting to do */ 9810 if (timer == pmu->hrtimer_interval_ms) 9811 return count; 9812 9813 mutex_lock(&mux_interval_mutex); 9814 pmu->hrtimer_interval_ms = timer; 9815 9816 /* update all cpuctx for this PMU */ 9817 cpus_read_lock(); 9818 for_each_online_cpu(cpu) { 9819 struct perf_cpu_context *cpuctx; 9820 cpuctx = per_cpu_ptr(pmu->pmu_cpu_context, cpu); 9821 cpuctx->hrtimer_interval = ns_to_ktime(NSEC_PER_MSEC * timer); 9822 9823 cpu_function_call(cpu, 9824 (remote_function_f)perf_mux_hrtimer_restart, cpuctx); 9825 } 9826 cpus_read_unlock(); 9827 mutex_unlock(&mux_interval_mutex); 9828 9829 return count; 9830 } 9831 static DEVICE_ATTR_RW(perf_event_mux_interval_ms); 9832 9833 static struct attribute *pmu_dev_attrs[] = { 9834 &dev_attr_type.attr, 9835 &dev_attr_perf_event_mux_interval_ms.attr, 9836 NULL, 9837 }; 9838 ATTRIBUTE_GROUPS(pmu_dev); 9839 9840 static int pmu_bus_running; 9841 static struct bus_type pmu_bus = { 9842 .name = "event_source", 9843 .dev_groups = pmu_dev_groups, 9844 }; 9845 9846 static void pmu_dev_release(struct device *dev) 9847 { 9848 kfree(dev); 9849 } 9850 9851 static int pmu_dev_alloc(struct pmu *pmu) 9852 { 9853 int ret = -ENOMEM; 9854 9855 pmu->dev = kzalloc(sizeof(struct device), GFP_KERNEL); 9856 if (!pmu->dev) 9857 goto out; 9858 9859 pmu->dev->groups = pmu->attr_groups; 9860 device_initialize(pmu->dev); 9861 ret = dev_set_name(pmu->dev, "%s", pmu->name); 9862 if (ret) 9863 goto free_dev; 9864 9865 dev_set_drvdata(pmu->dev, pmu); 9866 pmu->dev->bus = &pmu_bus; 9867 pmu->dev->release = pmu_dev_release; 9868 ret = device_add(pmu->dev); 9869 if (ret) 9870 goto free_dev; 9871 9872 /* For PMUs with address filters, throw in an extra attribute: */ 9873 if (pmu->nr_addr_filters) 9874 ret = device_create_file(pmu->dev, &dev_attr_nr_addr_filters); 9875 9876 if (ret) 9877 goto del_dev; 9878 9879 if (pmu->attr_update) 9880 ret = sysfs_update_groups(&pmu->dev->kobj, pmu->attr_update); 9881 9882 if (ret) 9883 goto del_dev; 9884 9885 out: 9886 return ret; 9887 9888 del_dev: 9889 device_del(pmu->dev); 9890 9891 free_dev: 9892 put_device(pmu->dev); 9893 goto out; 9894 } 9895 9896 static struct lock_class_key cpuctx_mutex; 9897 static struct lock_class_key cpuctx_lock; 9898 9899 int perf_pmu_register(struct pmu *pmu, const char *name, int type) 9900 { 9901 int cpu, ret; 9902 9903 mutex_lock(&pmus_lock); 9904 ret = -ENOMEM; 9905 pmu->pmu_disable_count = alloc_percpu(int); 9906 if (!pmu->pmu_disable_count) 9907 goto unlock; 9908 9909 pmu->type = -1; 9910 if (!name) 9911 goto skip_type; 9912 pmu->name = name; 9913 9914 if (type < 0) { 9915 type = idr_alloc(&pmu_idr, pmu, PERF_TYPE_MAX, 0, GFP_KERNEL); 9916 if (type < 0) { 9917 ret = type; 9918 goto free_pdc; 9919 } 9920 } 9921 pmu->type = type; 9922 9923 if (pmu_bus_running) { 9924 ret = pmu_dev_alloc(pmu); 9925 if (ret) 9926 goto free_idr; 9927 } 9928 9929 skip_type: 9930 if (pmu->task_ctx_nr == perf_hw_context) { 9931 static int hw_context_taken = 0; 9932 9933 /* 9934 * Other than systems with heterogeneous CPUs, it never makes 9935 * sense for two PMUs to share perf_hw_context. PMUs which are 9936 * uncore must use perf_invalid_context. 9937 */ 9938 if (WARN_ON_ONCE(hw_context_taken && 9939 !(pmu->capabilities & PERF_PMU_CAP_HETEROGENEOUS_CPUS))) 9940 pmu->task_ctx_nr = perf_invalid_context; 9941 9942 hw_context_taken = 1; 9943 } 9944 9945 pmu->pmu_cpu_context = find_pmu_context(pmu->task_ctx_nr); 9946 if (pmu->pmu_cpu_context) 9947 goto got_cpu_context; 9948 9949 ret = -ENOMEM; 9950 pmu->pmu_cpu_context = alloc_percpu(struct perf_cpu_context); 9951 if (!pmu->pmu_cpu_context) 9952 goto free_dev; 9953 9954 for_each_possible_cpu(cpu) { 9955 struct perf_cpu_context *cpuctx; 9956 9957 cpuctx = per_cpu_ptr(pmu->pmu_cpu_context, cpu); 9958 __perf_event_init_context(&cpuctx->ctx); 9959 lockdep_set_class(&cpuctx->ctx.mutex, &cpuctx_mutex); 9960 lockdep_set_class(&cpuctx->ctx.lock, &cpuctx_lock); 9961 cpuctx->ctx.pmu = pmu; 9962 cpuctx->online = cpumask_test_cpu(cpu, perf_online_mask); 9963 9964 __perf_mux_hrtimer_init(cpuctx, cpu); 9965 } 9966 9967 got_cpu_context: 9968 if (!pmu->start_txn) { 9969 if (pmu->pmu_enable) { 9970 /* 9971 * If we have pmu_enable/pmu_disable calls, install 9972 * transaction stubs that use that to try and batch 9973 * hardware accesses. 9974 */ 9975 pmu->start_txn = perf_pmu_start_txn; 9976 pmu->commit_txn = perf_pmu_commit_txn; 9977 pmu->cancel_txn = perf_pmu_cancel_txn; 9978 } else { 9979 pmu->start_txn = perf_pmu_nop_txn; 9980 pmu->commit_txn = perf_pmu_nop_int; 9981 pmu->cancel_txn = perf_pmu_nop_void; 9982 } 9983 } 9984 9985 if (!pmu->pmu_enable) { 9986 pmu->pmu_enable = perf_pmu_nop_void; 9987 pmu->pmu_disable = perf_pmu_nop_void; 9988 } 9989 9990 if (!pmu->check_period) 9991 pmu->check_period = perf_event_nop_int; 9992 9993 if (!pmu->event_idx) 9994 pmu->event_idx = perf_event_idx_default; 9995 9996 list_add_rcu(&pmu->entry, &pmus); 9997 atomic_set(&pmu->exclusive_cnt, 0); 9998 ret = 0; 9999 unlock: 10000 mutex_unlock(&pmus_lock); 10001 10002 return ret; 10003 10004 free_dev: 10005 device_del(pmu->dev); 10006 put_device(pmu->dev); 10007 10008 free_idr: 10009 if (pmu->type >= PERF_TYPE_MAX) 10010 idr_remove(&pmu_idr, pmu->type); 10011 10012 free_pdc: 10013 free_percpu(pmu->pmu_disable_count); 10014 goto unlock; 10015 } 10016 EXPORT_SYMBOL_GPL(perf_pmu_register); 10017 10018 void perf_pmu_unregister(struct pmu *pmu) 10019 { 10020 mutex_lock(&pmus_lock); 10021 list_del_rcu(&pmu->entry); 10022 10023 /* 10024 * We dereference the pmu list under both SRCU and regular RCU, so 10025 * synchronize against both of those. 10026 */ 10027 synchronize_srcu(&pmus_srcu); 10028 synchronize_rcu(); 10029 10030 free_percpu(pmu->pmu_disable_count); 10031 if (pmu->type >= PERF_TYPE_MAX) 10032 idr_remove(&pmu_idr, pmu->type); 10033 if (pmu_bus_running) { 10034 if (pmu->nr_addr_filters) 10035 device_remove_file(pmu->dev, &dev_attr_nr_addr_filters); 10036 device_del(pmu->dev); 10037 put_device(pmu->dev); 10038 } 10039 free_pmu_context(pmu); 10040 mutex_unlock(&pmus_lock); 10041 } 10042 EXPORT_SYMBOL_GPL(perf_pmu_unregister); 10043 10044 static int perf_try_init_event(struct pmu *pmu, struct perf_event *event) 10045 { 10046 struct perf_event_context *ctx = NULL; 10047 int ret; 10048 10049 if (!try_module_get(pmu->module)) 10050 return -ENODEV; 10051 10052 /* 10053 * A number of pmu->event_init() methods iterate the sibling_list to, 10054 * for example, validate if the group fits on the PMU. Therefore, 10055 * if this is a sibling event, acquire the ctx->mutex to protect 10056 * the sibling_list. 10057 */ 10058 if (event->group_leader != event && pmu->task_ctx_nr != perf_sw_context) { 10059 /* 10060 * This ctx->mutex can nest when we're called through 10061 * inheritance. See the perf_event_ctx_lock_nested() comment. 10062 */ 10063 ctx = perf_event_ctx_lock_nested(event->group_leader, 10064 SINGLE_DEPTH_NESTING); 10065 BUG_ON(!ctx); 10066 } 10067 10068 event->pmu = pmu; 10069 ret = pmu->event_init(event); 10070 10071 if (ctx) 10072 perf_event_ctx_unlock(event->group_leader, ctx); 10073 10074 if (!ret) { 10075 if (pmu->capabilities & PERF_PMU_CAP_NO_EXCLUDE && 10076 event_has_any_exclude_flag(event)) { 10077 if (event->destroy) 10078 event->destroy(event); 10079 ret = -EINVAL; 10080 } 10081 } 10082 10083 if (ret) 10084 module_put(pmu->module); 10085 10086 return ret; 10087 } 10088 10089 static struct pmu *perf_init_event(struct perf_event *event) 10090 { 10091 struct pmu *pmu; 10092 int idx; 10093 int ret; 10094 10095 idx = srcu_read_lock(&pmus_srcu); 10096 10097 /* Try parent's PMU first: */ 10098 if (event->parent && event->parent->pmu) { 10099 pmu = event->parent->pmu; 10100 ret = perf_try_init_event(pmu, event); 10101 if (!ret) 10102 goto unlock; 10103 } 10104 10105 rcu_read_lock(); 10106 pmu = idr_find(&pmu_idr, event->attr.type); 10107 rcu_read_unlock(); 10108 if (pmu) { 10109 ret = perf_try_init_event(pmu, event); 10110 if (ret) 10111 pmu = ERR_PTR(ret); 10112 goto unlock; 10113 } 10114 10115 list_for_each_entry_rcu(pmu, &pmus, entry) { 10116 ret = perf_try_init_event(pmu, event); 10117 if (!ret) 10118 goto unlock; 10119 10120 if (ret != -ENOENT) { 10121 pmu = ERR_PTR(ret); 10122 goto unlock; 10123 } 10124 } 10125 pmu = ERR_PTR(-ENOENT); 10126 unlock: 10127 srcu_read_unlock(&pmus_srcu, idx); 10128 10129 return pmu; 10130 } 10131 10132 static void attach_sb_event(struct perf_event *event) 10133 { 10134 struct pmu_event_list *pel = per_cpu_ptr(&pmu_sb_events, event->cpu); 10135 10136 raw_spin_lock(&pel->lock); 10137 list_add_rcu(&event->sb_list, &pel->list); 10138 raw_spin_unlock(&pel->lock); 10139 } 10140 10141 /* 10142 * We keep a list of all !task (and therefore per-cpu) events 10143 * that need to receive side-band records. 10144 * 10145 * This avoids having to scan all the various PMU per-cpu contexts 10146 * looking for them. 10147 */ 10148 static void account_pmu_sb_event(struct perf_event *event) 10149 { 10150 if (is_sb_event(event)) 10151 attach_sb_event(event); 10152 } 10153 10154 static void account_event_cpu(struct perf_event *event, int cpu) 10155 { 10156 if (event->parent) 10157 return; 10158 10159 if (is_cgroup_event(event)) 10160 atomic_inc(&per_cpu(perf_cgroup_events, cpu)); 10161 } 10162 10163 /* Freq events need the tick to stay alive (see perf_event_task_tick). */ 10164 static void account_freq_event_nohz(void) 10165 { 10166 #ifdef CONFIG_NO_HZ_FULL 10167 /* Lock so we don't race with concurrent unaccount */ 10168 spin_lock(&nr_freq_lock); 10169 if (atomic_inc_return(&nr_freq_events) == 1) 10170 tick_nohz_dep_set(TICK_DEP_BIT_PERF_EVENTS); 10171 spin_unlock(&nr_freq_lock); 10172 #endif 10173 } 10174 10175 static void account_freq_event(void) 10176 { 10177 if (tick_nohz_full_enabled()) 10178 account_freq_event_nohz(); 10179 else 10180 atomic_inc(&nr_freq_events); 10181 } 10182 10183 10184 static void account_event(struct perf_event *event) 10185 { 10186 bool inc = false; 10187 10188 if (event->parent) 10189 return; 10190 10191 if (event->attach_state & PERF_ATTACH_TASK) 10192 inc = true; 10193 if (event->attr.mmap || event->attr.mmap_data) 10194 atomic_inc(&nr_mmap_events); 10195 if (event->attr.comm) 10196 atomic_inc(&nr_comm_events); 10197 if (event->attr.namespaces) 10198 atomic_inc(&nr_namespaces_events); 10199 if (event->attr.task) 10200 atomic_inc(&nr_task_events); 10201 if (event->attr.freq) 10202 account_freq_event(); 10203 if (event->attr.context_switch) { 10204 atomic_inc(&nr_switch_events); 10205 inc = true; 10206 } 10207 if (has_branch_stack(event)) 10208 inc = true; 10209 if (is_cgroup_event(event)) 10210 inc = true; 10211 if (event->attr.ksymbol) 10212 atomic_inc(&nr_ksymbol_events); 10213 if (event->attr.bpf_event) 10214 atomic_inc(&nr_bpf_events); 10215 10216 if (inc) { 10217 /* 10218 * We need the mutex here because static_branch_enable() 10219 * must complete *before* the perf_sched_count increment 10220 * becomes visible. 10221 */ 10222 if (atomic_inc_not_zero(&perf_sched_count)) 10223 goto enabled; 10224 10225 mutex_lock(&perf_sched_mutex); 10226 if (!atomic_read(&perf_sched_count)) { 10227 static_branch_enable(&perf_sched_events); 10228 /* 10229 * Guarantee that all CPUs observe they key change and 10230 * call the perf scheduling hooks before proceeding to 10231 * install events that need them. 10232 */ 10233 synchronize_rcu(); 10234 } 10235 /* 10236 * Now that we have waited for the sync_sched(), allow further 10237 * increments to by-pass the mutex. 10238 */ 10239 atomic_inc(&perf_sched_count); 10240 mutex_unlock(&perf_sched_mutex); 10241 } 10242 enabled: 10243 10244 account_event_cpu(event, event->cpu); 10245 10246 account_pmu_sb_event(event); 10247 } 10248 10249 /* 10250 * Allocate and initialize an event structure 10251 */ 10252 static struct perf_event * 10253 perf_event_alloc(struct perf_event_attr *attr, int cpu, 10254 struct task_struct *task, 10255 struct perf_event *group_leader, 10256 struct perf_event *parent_event, 10257 perf_overflow_handler_t overflow_handler, 10258 void *context, int cgroup_fd) 10259 { 10260 struct pmu *pmu; 10261 struct perf_event *event; 10262 struct hw_perf_event *hwc; 10263 long err = -EINVAL; 10264 10265 if ((unsigned)cpu >= nr_cpu_ids) { 10266 if (!task || cpu != -1) 10267 return ERR_PTR(-EINVAL); 10268 } 10269 10270 event = kzalloc(sizeof(*event), GFP_KERNEL); 10271 if (!event) 10272 return ERR_PTR(-ENOMEM); 10273 10274 /* 10275 * Single events are their own group leaders, with an 10276 * empty sibling list: 10277 */ 10278 if (!group_leader) 10279 group_leader = event; 10280 10281 mutex_init(&event->child_mutex); 10282 INIT_LIST_HEAD(&event->child_list); 10283 10284 INIT_LIST_HEAD(&event->event_entry); 10285 INIT_LIST_HEAD(&event->sibling_list); 10286 INIT_LIST_HEAD(&event->active_list); 10287 init_event_group(event); 10288 INIT_LIST_HEAD(&event->rb_entry); 10289 INIT_LIST_HEAD(&event->active_entry); 10290 INIT_LIST_HEAD(&event->addr_filters.list); 10291 INIT_HLIST_NODE(&event->hlist_entry); 10292 10293 10294 init_waitqueue_head(&event->waitq); 10295 event->pending_disable = -1; 10296 init_irq_work(&event->pending, perf_pending_event); 10297 10298 mutex_init(&event->mmap_mutex); 10299 raw_spin_lock_init(&event->addr_filters.lock); 10300 10301 atomic_long_set(&event->refcount, 1); 10302 event->cpu = cpu; 10303 event->attr = *attr; 10304 event->group_leader = group_leader; 10305 event->pmu = NULL; 10306 event->oncpu = -1; 10307 10308 event->parent = parent_event; 10309 10310 event->ns = get_pid_ns(task_active_pid_ns(current)); 10311 event->id = atomic64_inc_return(&perf_event_id); 10312 10313 event->state = PERF_EVENT_STATE_INACTIVE; 10314 10315 if (task) { 10316 event->attach_state = PERF_ATTACH_TASK; 10317 /* 10318 * XXX pmu::event_init needs to know what task to account to 10319 * and we cannot use the ctx information because we need the 10320 * pmu before we get a ctx. 10321 */ 10322 get_task_struct(task); 10323 event->hw.target = task; 10324 } 10325 10326 event->clock = &local_clock; 10327 if (parent_event) 10328 event->clock = parent_event->clock; 10329 10330 if (!overflow_handler && parent_event) { 10331 overflow_handler = parent_event->overflow_handler; 10332 context = parent_event->overflow_handler_context; 10333 #if defined(CONFIG_BPF_SYSCALL) && defined(CONFIG_EVENT_TRACING) 10334 if (overflow_handler == bpf_overflow_handler) { 10335 struct bpf_prog *prog = bpf_prog_inc(parent_event->prog); 10336 10337 if (IS_ERR(prog)) { 10338 err = PTR_ERR(prog); 10339 goto err_ns; 10340 } 10341 event->prog = prog; 10342 event->orig_overflow_handler = 10343 parent_event->orig_overflow_handler; 10344 } 10345 #endif 10346 } 10347 10348 if (overflow_handler) { 10349 event->overflow_handler = overflow_handler; 10350 event->overflow_handler_context = context; 10351 } else if (is_write_backward(event)){ 10352 event->overflow_handler = perf_event_output_backward; 10353 event->overflow_handler_context = NULL; 10354 } else { 10355 event->overflow_handler = perf_event_output_forward; 10356 event->overflow_handler_context = NULL; 10357 } 10358 10359 perf_event__state_init(event); 10360 10361 pmu = NULL; 10362 10363 hwc = &event->hw; 10364 hwc->sample_period = attr->sample_period; 10365 if (attr->freq && attr->sample_freq) 10366 hwc->sample_period = 1; 10367 hwc->last_period = hwc->sample_period; 10368 10369 local64_set(&hwc->period_left, hwc->sample_period); 10370 10371 /* 10372 * We currently do not support PERF_SAMPLE_READ on inherited events. 10373 * See perf_output_read(). 10374 */ 10375 if (attr->inherit && (attr->sample_type & PERF_SAMPLE_READ)) 10376 goto err_ns; 10377 10378 if (!has_branch_stack(event)) 10379 event->attr.branch_sample_type = 0; 10380 10381 if (cgroup_fd != -1) { 10382 err = perf_cgroup_connect(cgroup_fd, event, attr, group_leader); 10383 if (err) 10384 goto err_ns; 10385 } 10386 10387 pmu = perf_init_event(event); 10388 if (IS_ERR(pmu)) { 10389 err = PTR_ERR(pmu); 10390 goto err_ns; 10391 } 10392 10393 err = exclusive_event_init(event); 10394 if (err) 10395 goto err_pmu; 10396 10397 if (has_addr_filter(event)) { 10398 event->addr_filter_ranges = kcalloc(pmu->nr_addr_filters, 10399 sizeof(struct perf_addr_filter_range), 10400 GFP_KERNEL); 10401 if (!event->addr_filter_ranges) { 10402 err = -ENOMEM; 10403 goto err_per_task; 10404 } 10405 10406 /* 10407 * Clone the parent's vma offsets: they are valid until exec() 10408 * even if the mm is not shared with the parent. 10409 */ 10410 if (event->parent) { 10411 struct perf_addr_filters_head *ifh = perf_event_addr_filters(event); 10412 10413 raw_spin_lock_irq(&ifh->lock); 10414 memcpy(event->addr_filter_ranges, 10415 event->parent->addr_filter_ranges, 10416 pmu->nr_addr_filters * sizeof(struct perf_addr_filter_range)); 10417 raw_spin_unlock_irq(&ifh->lock); 10418 } 10419 10420 /* force hw sync on the address filters */ 10421 event->addr_filters_gen = 1; 10422 } 10423 10424 if (!event->parent) { 10425 if (event->attr.sample_type & PERF_SAMPLE_CALLCHAIN) { 10426 err = get_callchain_buffers(attr->sample_max_stack); 10427 if (err) 10428 goto err_addr_filters; 10429 } 10430 } 10431 10432 /* symmetric to unaccount_event() in _free_event() */ 10433 account_event(event); 10434 10435 return event; 10436 10437 err_addr_filters: 10438 kfree(event->addr_filter_ranges); 10439 10440 err_per_task: 10441 exclusive_event_destroy(event); 10442 10443 err_pmu: 10444 if (event->destroy) 10445 event->destroy(event); 10446 module_put(pmu->module); 10447 err_ns: 10448 if (is_cgroup_event(event)) 10449 perf_detach_cgroup(event); 10450 if (event->ns) 10451 put_pid_ns(event->ns); 10452 if (event->hw.target) 10453 put_task_struct(event->hw.target); 10454 kfree(event); 10455 10456 return ERR_PTR(err); 10457 } 10458 10459 static int perf_copy_attr(struct perf_event_attr __user *uattr, 10460 struct perf_event_attr *attr) 10461 { 10462 u32 size; 10463 int ret; 10464 10465 if (!access_ok(uattr, PERF_ATTR_SIZE_VER0)) 10466 return -EFAULT; 10467 10468 /* 10469 * zero the full structure, so that a short copy will be nice. 10470 */ 10471 memset(attr, 0, sizeof(*attr)); 10472 10473 ret = get_user(size, &uattr->size); 10474 if (ret) 10475 return ret; 10476 10477 if (size > PAGE_SIZE) /* silly large */ 10478 goto err_size; 10479 10480 if (!size) /* abi compat */ 10481 size = PERF_ATTR_SIZE_VER0; 10482 10483 if (size < PERF_ATTR_SIZE_VER0) 10484 goto err_size; 10485 10486 /* 10487 * If we're handed a bigger struct than we know of, 10488 * ensure all the unknown bits are 0 - i.e. new 10489 * user-space does not rely on any kernel feature 10490 * extensions we dont know about yet. 10491 */ 10492 if (size > sizeof(*attr)) { 10493 unsigned char __user *addr; 10494 unsigned char __user *end; 10495 unsigned char val; 10496 10497 addr = (void __user *)uattr + sizeof(*attr); 10498 end = (void __user *)uattr + size; 10499 10500 for (; addr < end; addr++) { 10501 ret = get_user(val, addr); 10502 if (ret) 10503 return ret; 10504 if (val) 10505 goto err_size; 10506 } 10507 size = sizeof(*attr); 10508 } 10509 10510 ret = copy_from_user(attr, uattr, size); 10511 if (ret) 10512 return -EFAULT; 10513 10514 attr->size = size; 10515 10516 if (attr->__reserved_1) 10517 return -EINVAL; 10518 10519 if (attr->sample_type & ~(PERF_SAMPLE_MAX-1)) 10520 return -EINVAL; 10521 10522 if (attr->read_format & ~(PERF_FORMAT_MAX-1)) 10523 return -EINVAL; 10524 10525 if (attr->sample_type & PERF_SAMPLE_BRANCH_STACK) { 10526 u64 mask = attr->branch_sample_type; 10527 10528 /* only using defined bits */ 10529 if (mask & ~(PERF_SAMPLE_BRANCH_MAX-1)) 10530 return -EINVAL; 10531 10532 /* at least one branch bit must be set */ 10533 if (!(mask & ~PERF_SAMPLE_BRANCH_PLM_ALL)) 10534 return -EINVAL; 10535 10536 /* propagate priv level, when not set for branch */ 10537 if (!(mask & PERF_SAMPLE_BRANCH_PLM_ALL)) { 10538 10539 /* exclude_kernel checked on syscall entry */ 10540 if (!attr->exclude_kernel) 10541 mask |= PERF_SAMPLE_BRANCH_KERNEL; 10542 10543 if (!attr->exclude_user) 10544 mask |= PERF_SAMPLE_BRANCH_USER; 10545 10546 if (!attr->exclude_hv) 10547 mask |= PERF_SAMPLE_BRANCH_HV; 10548 /* 10549 * adjust user setting (for HW filter setup) 10550 */ 10551 attr->branch_sample_type = mask; 10552 } 10553 /* privileged levels capture (kernel, hv): check permissions */ 10554 if ((mask & PERF_SAMPLE_BRANCH_PERM_PLM) 10555 && perf_paranoid_kernel() && !capable(CAP_SYS_ADMIN)) 10556 return -EACCES; 10557 } 10558 10559 if (attr->sample_type & PERF_SAMPLE_REGS_USER) { 10560 ret = perf_reg_validate(attr->sample_regs_user); 10561 if (ret) 10562 return ret; 10563 } 10564 10565 if (attr->sample_type & PERF_SAMPLE_STACK_USER) { 10566 if (!arch_perf_have_user_stack_dump()) 10567 return -ENOSYS; 10568 10569 /* 10570 * We have __u32 type for the size, but so far 10571 * we can only use __u16 as maximum due to the 10572 * __u16 sample size limit. 10573 */ 10574 if (attr->sample_stack_user >= USHRT_MAX) 10575 return -EINVAL; 10576 else if (!IS_ALIGNED(attr->sample_stack_user, sizeof(u64))) 10577 return -EINVAL; 10578 } 10579 10580 if (!attr->sample_max_stack) 10581 attr->sample_max_stack = sysctl_perf_event_max_stack; 10582 10583 if (attr->sample_type & PERF_SAMPLE_REGS_INTR) 10584 ret = perf_reg_validate(attr->sample_regs_intr); 10585 out: 10586 return ret; 10587 10588 err_size: 10589 put_user(sizeof(*attr), &uattr->size); 10590 ret = -E2BIG; 10591 goto out; 10592 } 10593 10594 static int 10595 perf_event_set_output(struct perf_event *event, struct perf_event *output_event) 10596 { 10597 struct ring_buffer *rb = NULL; 10598 int ret = -EINVAL; 10599 10600 if (!output_event) 10601 goto set; 10602 10603 /* don't allow circular references */ 10604 if (event == output_event) 10605 goto out; 10606 10607 /* 10608 * Don't allow cross-cpu buffers 10609 */ 10610 if (output_event->cpu != event->cpu) 10611 goto out; 10612 10613 /* 10614 * If its not a per-cpu rb, it must be the same task. 10615 */ 10616 if (output_event->cpu == -1 && output_event->ctx != event->ctx) 10617 goto out; 10618 10619 /* 10620 * Mixing clocks in the same buffer is trouble you don't need. 10621 */ 10622 if (output_event->clock != event->clock) 10623 goto out; 10624 10625 /* 10626 * Either writing ring buffer from beginning or from end. 10627 * Mixing is not allowed. 10628 */ 10629 if (is_write_backward(output_event) != is_write_backward(event)) 10630 goto out; 10631 10632 /* 10633 * If both events generate aux data, they must be on the same PMU 10634 */ 10635 if (has_aux(event) && has_aux(output_event) && 10636 event->pmu != output_event->pmu) 10637 goto out; 10638 10639 set: 10640 mutex_lock(&event->mmap_mutex); 10641 /* Can't redirect output if we've got an active mmap() */ 10642 if (atomic_read(&event->mmap_count)) 10643 goto unlock; 10644 10645 if (output_event) { 10646 /* get the rb we want to redirect to */ 10647 rb = ring_buffer_get(output_event); 10648 if (!rb) 10649 goto unlock; 10650 } 10651 10652 ring_buffer_attach(event, rb); 10653 10654 ret = 0; 10655 unlock: 10656 mutex_unlock(&event->mmap_mutex); 10657 10658 out: 10659 return ret; 10660 } 10661 10662 static void mutex_lock_double(struct mutex *a, struct mutex *b) 10663 { 10664 if (b < a) 10665 swap(a, b); 10666 10667 mutex_lock(a); 10668 mutex_lock_nested(b, SINGLE_DEPTH_NESTING); 10669 } 10670 10671 static int perf_event_set_clock(struct perf_event *event, clockid_t clk_id) 10672 { 10673 bool nmi_safe = false; 10674 10675 switch (clk_id) { 10676 case CLOCK_MONOTONIC: 10677 event->clock = &ktime_get_mono_fast_ns; 10678 nmi_safe = true; 10679 break; 10680 10681 case CLOCK_MONOTONIC_RAW: 10682 event->clock = &ktime_get_raw_fast_ns; 10683 nmi_safe = true; 10684 break; 10685 10686 case CLOCK_REALTIME: 10687 event->clock = &ktime_get_real_ns; 10688 break; 10689 10690 case CLOCK_BOOTTIME: 10691 event->clock = &ktime_get_boot_ns; 10692 break; 10693 10694 case CLOCK_TAI: 10695 event->clock = &ktime_get_tai_ns; 10696 break; 10697 10698 default: 10699 return -EINVAL; 10700 } 10701 10702 if (!nmi_safe && !(event->pmu->capabilities & PERF_PMU_CAP_NO_NMI)) 10703 return -EINVAL; 10704 10705 return 0; 10706 } 10707 10708 /* 10709 * Variation on perf_event_ctx_lock_nested(), except we take two context 10710 * mutexes. 10711 */ 10712 static struct perf_event_context * 10713 __perf_event_ctx_lock_double(struct perf_event *group_leader, 10714 struct perf_event_context *ctx) 10715 { 10716 struct perf_event_context *gctx; 10717 10718 again: 10719 rcu_read_lock(); 10720 gctx = READ_ONCE(group_leader->ctx); 10721 if (!refcount_inc_not_zero(&gctx->refcount)) { 10722 rcu_read_unlock(); 10723 goto again; 10724 } 10725 rcu_read_unlock(); 10726 10727 mutex_lock_double(&gctx->mutex, &ctx->mutex); 10728 10729 if (group_leader->ctx != gctx) { 10730 mutex_unlock(&ctx->mutex); 10731 mutex_unlock(&gctx->mutex); 10732 put_ctx(gctx); 10733 goto again; 10734 } 10735 10736 return gctx; 10737 } 10738 10739 /** 10740 * sys_perf_event_open - open a performance event, associate it to a task/cpu 10741 * 10742 * @attr_uptr: event_id type attributes for monitoring/sampling 10743 * @pid: target pid 10744 * @cpu: target cpu 10745 * @group_fd: group leader event fd 10746 */ 10747 SYSCALL_DEFINE5(perf_event_open, 10748 struct perf_event_attr __user *, attr_uptr, 10749 pid_t, pid, int, cpu, int, group_fd, unsigned long, flags) 10750 { 10751 struct perf_event *group_leader = NULL, *output_event = NULL; 10752 struct perf_event *event, *sibling; 10753 struct perf_event_attr attr; 10754 struct perf_event_context *ctx, *uninitialized_var(gctx); 10755 struct file *event_file = NULL; 10756 struct fd group = {NULL, 0}; 10757 struct task_struct *task = NULL; 10758 struct pmu *pmu; 10759 int event_fd; 10760 int move_group = 0; 10761 int err; 10762 int f_flags = O_RDWR; 10763 int cgroup_fd = -1; 10764 10765 /* for future expandability... */ 10766 if (flags & ~PERF_FLAG_ALL) 10767 return -EINVAL; 10768 10769 err = perf_copy_attr(attr_uptr, &attr); 10770 if (err) 10771 return err; 10772 10773 if (!attr.exclude_kernel) { 10774 if (perf_paranoid_kernel() && !capable(CAP_SYS_ADMIN)) 10775 return -EACCES; 10776 } 10777 10778 if (attr.namespaces) { 10779 if (!capable(CAP_SYS_ADMIN)) 10780 return -EACCES; 10781 } 10782 10783 if (attr.freq) { 10784 if (attr.sample_freq > sysctl_perf_event_sample_rate) 10785 return -EINVAL; 10786 } else { 10787 if (attr.sample_period & (1ULL << 63)) 10788 return -EINVAL; 10789 } 10790 10791 /* Only privileged users can get physical addresses */ 10792 if ((attr.sample_type & PERF_SAMPLE_PHYS_ADDR) && 10793 perf_paranoid_kernel() && !capable(CAP_SYS_ADMIN)) 10794 return -EACCES; 10795 10796 /* 10797 * In cgroup mode, the pid argument is used to pass the fd 10798 * opened to the cgroup directory in cgroupfs. The cpu argument 10799 * designates the cpu on which to monitor threads from that 10800 * cgroup. 10801 */ 10802 if ((flags & PERF_FLAG_PID_CGROUP) && (pid == -1 || cpu == -1)) 10803 return -EINVAL; 10804 10805 if (flags & PERF_FLAG_FD_CLOEXEC) 10806 f_flags |= O_CLOEXEC; 10807 10808 event_fd = get_unused_fd_flags(f_flags); 10809 if (event_fd < 0) 10810 return event_fd; 10811 10812 if (group_fd != -1) { 10813 err = perf_fget_light(group_fd, &group); 10814 if (err) 10815 goto err_fd; 10816 group_leader = group.file->private_data; 10817 if (flags & PERF_FLAG_FD_OUTPUT) 10818 output_event = group_leader; 10819 if (flags & PERF_FLAG_FD_NO_GROUP) 10820 group_leader = NULL; 10821 } 10822 10823 if (pid != -1 && !(flags & PERF_FLAG_PID_CGROUP)) { 10824 task = find_lively_task_by_vpid(pid); 10825 if (IS_ERR(task)) { 10826 err = PTR_ERR(task); 10827 goto err_group_fd; 10828 } 10829 } 10830 10831 if (task && group_leader && 10832 group_leader->attr.inherit != attr.inherit) { 10833 err = -EINVAL; 10834 goto err_task; 10835 } 10836 10837 if (task) { 10838 err = mutex_lock_interruptible(&task->signal->cred_guard_mutex); 10839 if (err) 10840 goto err_task; 10841 10842 /* 10843 * Reuse ptrace permission checks for now. 10844 * 10845 * We must hold cred_guard_mutex across this and any potential 10846 * perf_install_in_context() call for this new event to 10847 * serialize against exec() altering our credentials (and the 10848 * perf_event_exit_task() that could imply). 10849 */ 10850 err = -EACCES; 10851 if (!ptrace_may_access(task, PTRACE_MODE_READ_REALCREDS)) 10852 goto err_cred; 10853 } 10854 10855 if (flags & PERF_FLAG_PID_CGROUP) 10856 cgroup_fd = pid; 10857 10858 event = perf_event_alloc(&attr, cpu, task, group_leader, NULL, 10859 NULL, NULL, cgroup_fd); 10860 if (IS_ERR(event)) { 10861 err = PTR_ERR(event); 10862 goto err_cred; 10863 } 10864 10865 if (is_sampling_event(event)) { 10866 if (event->pmu->capabilities & PERF_PMU_CAP_NO_INTERRUPT) { 10867 err = -EOPNOTSUPP; 10868 goto err_alloc; 10869 } 10870 } 10871 10872 /* 10873 * Special case software events and allow them to be part of 10874 * any hardware group. 10875 */ 10876 pmu = event->pmu; 10877 10878 if (attr.use_clockid) { 10879 err = perf_event_set_clock(event, attr.clockid); 10880 if (err) 10881 goto err_alloc; 10882 } 10883 10884 if (pmu->task_ctx_nr == perf_sw_context) 10885 event->event_caps |= PERF_EV_CAP_SOFTWARE; 10886 10887 if (group_leader) { 10888 if (is_software_event(event) && 10889 !in_software_context(group_leader)) { 10890 /* 10891 * If the event is a sw event, but the group_leader 10892 * is on hw context. 10893 * 10894 * Allow the addition of software events to hw 10895 * groups, this is safe because software events 10896 * never fail to schedule. 10897 */ 10898 pmu = group_leader->ctx->pmu; 10899 } else if (!is_software_event(event) && 10900 is_software_event(group_leader) && 10901 (group_leader->group_caps & PERF_EV_CAP_SOFTWARE)) { 10902 /* 10903 * In case the group is a pure software group, and we 10904 * try to add a hardware event, move the whole group to 10905 * the hardware context. 10906 */ 10907 move_group = 1; 10908 } 10909 } 10910 10911 /* 10912 * Get the target context (task or percpu): 10913 */ 10914 ctx = find_get_context(pmu, task, event); 10915 if (IS_ERR(ctx)) { 10916 err = PTR_ERR(ctx); 10917 goto err_alloc; 10918 } 10919 10920 if ((pmu->capabilities & PERF_PMU_CAP_EXCLUSIVE) && group_leader) { 10921 err = -EBUSY; 10922 goto err_context; 10923 } 10924 10925 /* 10926 * Look up the group leader (we will attach this event to it): 10927 */ 10928 if (group_leader) { 10929 err = -EINVAL; 10930 10931 /* 10932 * Do not allow a recursive hierarchy (this new sibling 10933 * becoming part of another group-sibling): 10934 */ 10935 if (group_leader->group_leader != group_leader) 10936 goto err_context; 10937 10938 /* All events in a group should have the same clock */ 10939 if (group_leader->clock != event->clock) 10940 goto err_context; 10941 10942 /* 10943 * Make sure we're both events for the same CPU; 10944 * grouping events for different CPUs is broken; since 10945 * you can never concurrently schedule them anyhow. 10946 */ 10947 if (group_leader->cpu != event->cpu) 10948 goto err_context; 10949 10950 /* 10951 * Make sure we're both on the same task, or both 10952 * per-CPU events. 10953 */ 10954 if (group_leader->ctx->task != ctx->task) 10955 goto err_context; 10956 10957 /* 10958 * Do not allow to attach to a group in a different task 10959 * or CPU context. If we're moving SW events, we'll fix 10960 * this up later, so allow that. 10961 */ 10962 if (!move_group && group_leader->ctx != ctx) 10963 goto err_context; 10964 10965 /* 10966 * Only a group leader can be exclusive or pinned 10967 */ 10968 if (attr.exclusive || attr.pinned) 10969 goto err_context; 10970 } 10971 10972 if (output_event) { 10973 err = perf_event_set_output(event, output_event); 10974 if (err) 10975 goto err_context; 10976 } 10977 10978 event_file = anon_inode_getfile("[perf_event]", &perf_fops, event, 10979 f_flags); 10980 if (IS_ERR(event_file)) { 10981 err = PTR_ERR(event_file); 10982 event_file = NULL; 10983 goto err_context; 10984 } 10985 10986 if (move_group) { 10987 gctx = __perf_event_ctx_lock_double(group_leader, ctx); 10988 10989 if (gctx->task == TASK_TOMBSTONE) { 10990 err = -ESRCH; 10991 goto err_locked; 10992 } 10993 10994 /* 10995 * Check if we raced against another sys_perf_event_open() call 10996 * moving the software group underneath us. 10997 */ 10998 if (!(group_leader->group_caps & PERF_EV_CAP_SOFTWARE)) { 10999 /* 11000 * If someone moved the group out from under us, check 11001 * if this new event wound up on the same ctx, if so 11002 * its the regular !move_group case, otherwise fail. 11003 */ 11004 if (gctx != ctx) { 11005 err = -EINVAL; 11006 goto err_locked; 11007 } else { 11008 perf_event_ctx_unlock(group_leader, gctx); 11009 move_group = 0; 11010 } 11011 } 11012 } else { 11013 mutex_lock(&ctx->mutex); 11014 } 11015 11016 if (ctx->task == TASK_TOMBSTONE) { 11017 err = -ESRCH; 11018 goto err_locked; 11019 } 11020 11021 if (!perf_event_validate_size(event)) { 11022 err = -E2BIG; 11023 goto err_locked; 11024 } 11025 11026 if (!task) { 11027 /* 11028 * Check if the @cpu we're creating an event for is online. 11029 * 11030 * We use the perf_cpu_context::ctx::mutex to serialize against 11031 * the hotplug notifiers. See perf_event_{init,exit}_cpu(). 11032 */ 11033 struct perf_cpu_context *cpuctx = 11034 container_of(ctx, struct perf_cpu_context, ctx); 11035 11036 if (!cpuctx->online) { 11037 err = -ENODEV; 11038 goto err_locked; 11039 } 11040 } 11041 11042 11043 /* 11044 * Must be under the same ctx::mutex as perf_install_in_context(), 11045 * because we need to serialize with concurrent event creation. 11046 */ 11047 if (!exclusive_event_installable(event, ctx)) { 11048 /* exclusive and group stuff are assumed mutually exclusive */ 11049 WARN_ON_ONCE(move_group); 11050 11051 err = -EBUSY; 11052 goto err_locked; 11053 } 11054 11055 WARN_ON_ONCE(ctx->parent_ctx); 11056 11057 /* 11058 * This is the point on no return; we cannot fail hereafter. This is 11059 * where we start modifying current state. 11060 */ 11061 11062 if (move_group) { 11063 /* 11064 * See perf_event_ctx_lock() for comments on the details 11065 * of swizzling perf_event::ctx. 11066 */ 11067 perf_remove_from_context(group_leader, 0); 11068 put_ctx(gctx); 11069 11070 for_each_sibling_event(sibling, group_leader) { 11071 perf_remove_from_context(sibling, 0); 11072 put_ctx(gctx); 11073 } 11074 11075 /* 11076 * Wait for everybody to stop referencing the events through 11077 * the old lists, before installing it on new lists. 11078 */ 11079 synchronize_rcu(); 11080 11081 /* 11082 * Install the group siblings before the group leader. 11083 * 11084 * Because a group leader will try and install the entire group 11085 * (through the sibling list, which is still in-tact), we can 11086 * end up with siblings installed in the wrong context. 11087 * 11088 * By installing siblings first we NO-OP because they're not 11089 * reachable through the group lists. 11090 */ 11091 for_each_sibling_event(sibling, group_leader) { 11092 perf_event__state_init(sibling); 11093 perf_install_in_context(ctx, sibling, sibling->cpu); 11094 get_ctx(ctx); 11095 } 11096 11097 /* 11098 * Removing from the context ends up with disabled 11099 * event. What we want here is event in the initial 11100 * startup state, ready to be add into new context. 11101 */ 11102 perf_event__state_init(group_leader); 11103 perf_install_in_context(ctx, group_leader, group_leader->cpu); 11104 get_ctx(ctx); 11105 } 11106 11107 /* 11108 * Precalculate sample_data sizes; do while holding ctx::mutex such 11109 * that we're serialized against further additions and before 11110 * perf_install_in_context() which is the point the event is active and 11111 * can use these values. 11112 */ 11113 perf_event__header_size(event); 11114 perf_event__id_header_size(event); 11115 11116 event->owner = current; 11117 11118 perf_install_in_context(ctx, event, event->cpu); 11119 perf_unpin_context(ctx); 11120 11121 if (move_group) 11122 perf_event_ctx_unlock(group_leader, gctx); 11123 mutex_unlock(&ctx->mutex); 11124 11125 if (task) { 11126 mutex_unlock(&task->signal->cred_guard_mutex); 11127 put_task_struct(task); 11128 } 11129 11130 mutex_lock(¤t->perf_event_mutex); 11131 list_add_tail(&event->owner_entry, ¤t->perf_event_list); 11132 mutex_unlock(¤t->perf_event_mutex); 11133 11134 /* 11135 * Drop the reference on the group_event after placing the 11136 * new event on the sibling_list. This ensures destruction 11137 * of the group leader will find the pointer to itself in 11138 * perf_group_detach(). 11139 */ 11140 fdput(group); 11141 fd_install(event_fd, event_file); 11142 return event_fd; 11143 11144 err_locked: 11145 if (move_group) 11146 perf_event_ctx_unlock(group_leader, gctx); 11147 mutex_unlock(&ctx->mutex); 11148 /* err_file: */ 11149 fput(event_file); 11150 err_context: 11151 perf_unpin_context(ctx); 11152 put_ctx(ctx); 11153 err_alloc: 11154 /* 11155 * If event_file is set, the fput() above will have called ->release() 11156 * and that will take care of freeing the event. 11157 */ 11158 if (!event_file) 11159 free_event(event); 11160 err_cred: 11161 if (task) 11162 mutex_unlock(&task->signal->cred_guard_mutex); 11163 err_task: 11164 if (task) 11165 put_task_struct(task); 11166 err_group_fd: 11167 fdput(group); 11168 err_fd: 11169 put_unused_fd(event_fd); 11170 return err; 11171 } 11172 11173 /** 11174 * perf_event_create_kernel_counter 11175 * 11176 * @attr: attributes of the counter to create 11177 * @cpu: cpu in which the counter is bound 11178 * @task: task to profile (NULL for percpu) 11179 */ 11180 struct perf_event * 11181 perf_event_create_kernel_counter(struct perf_event_attr *attr, int cpu, 11182 struct task_struct *task, 11183 perf_overflow_handler_t overflow_handler, 11184 void *context) 11185 { 11186 struct perf_event_context *ctx; 11187 struct perf_event *event; 11188 int err; 11189 11190 /* 11191 * Get the target context (task or percpu): 11192 */ 11193 11194 event = perf_event_alloc(attr, cpu, task, NULL, NULL, 11195 overflow_handler, context, -1); 11196 if (IS_ERR(event)) { 11197 err = PTR_ERR(event); 11198 goto err; 11199 } 11200 11201 /* Mark owner so we could distinguish it from user events. */ 11202 event->owner = TASK_TOMBSTONE; 11203 11204 ctx = find_get_context(event->pmu, task, event); 11205 if (IS_ERR(ctx)) { 11206 err = PTR_ERR(ctx); 11207 goto err_free; 11208 } 11209 11210 WARN_ON_ONCE(ctx->parent_ctx); 11211 mutex_lock(&ctx->mutex); 11212 if (ctx->task == TASK_TOMBSTONE) { 11213 err = -ESRCH; 11214 goto err_unlock; 11215 } 11216 11217 if (!task) { 11218 /* 11219 * Check if the @cpu we're creating an event for is online. 11220 * 11221 * We use the perf_cpu_context::ctx::mutex to serialize against 11222 * the hotplug notifiers. See perf_event_{init,exit}_cpu(). 11223 */ 11224 struct perf_cpu_context *cpuctx = 11225 container_of(ctx, struct perf_cpu_context, ctx); 11226 if (!cpuctx->online) { 11227 err = -ENODEV; 11228 goto err_unlock; 11229 } 11230 } 11231 11232 if (!exclusive_event_installable(event, ctx)) { 11233 err = -EBUSY; 11234 goto err_unlock; 11235 } 11236 11237 perf_install_in_context(ctx, event, cpu); 11238 perf_unpin_context(ctx); 11239 mutex_unlock(&ctx->mutex); 11240 11241 return event; 11242 11243 err_unlock: 11244 mutex_unlock(&ctx->mutex); 11245 perf_unpin_context(ctx); 11246 put_ctx(ctx); 11247 err_free: 11248 free_event(event); 11249 err: 11250 return ERR_PTR(err); 11251 } 11252 EXPORT_SYMBOL_GPL(perf_event_create_kernel_counter); 11253 11254 void perf_pmu_migrate_context(struct pmu *pmu, int src_cpu, int dst_cpu) 11255 { 11256 struct perf_event_context *src_ctx; 11257 struct perf_event_context *dst_ctx; 11258 struct perf_event *event, *tmp; 11259 LIST_HEAD(events); 11260 11261 src_ctx = &per_cpu_ptr(pmu->pmu_cpu_context, src_cpu)->ctx; 11262 dst_ctx = &per_cpu_ptr(pmu->pmu_cpu_context, dst_cpu)->ctx; 11263 11264 /* 11265 * See perf_event_ctx_lock() for comments on the details 11266 * of swizzling perf_event::ctx. 11267 */ 11268 mutex_lock_double(&src_ctx->mutex, &dst_ctx->mutex); 11269 list_for_each_entry_safe(event, tmp, &src_ctx->event_list, 11270 event_entry) { 11271 perf_remove_from_context(event, 0); 11272 unaccount_event_cpu(event, src_cpu); 11273 put_ctx(src_ctx); 11274 list_add(&event->migrate_entry, &events); 11275 } 11276 11277 /* 11278 * Wait for the events to quiesce before re-instating them. 11279 */ 11280 synchronize_rcu(); 11281 11282 /* 11283 * Re-instate events in 2 passes. 11284 * 11285 * Skip over group leaders and only install siblings on this first 11286 * pass, siblings will not get enabled without a leader, however a 11287 * leader will enable its siblings, even if those are still on the old 11288 * context. 11289 */ 11290 list_for_each_entry_safe(event, tmp, &events, migrate_entry) { 11291 if (event->group_leader == event) 11292 continue; 11293 11294 list_del(&event->migrate_entry); 11295 if (event->state >= PERF_EVENT_STATE_OFF) 11296 event->state = PERF_EVENT_STATE_INACTIVE; 11297 account_event_cpu(event, dst_cpu); 11298 perf_install_in_context(dst_ctx, event, dst_cpu); 11299 get_ctx(dst_ctx); 11300 } 11301 11302 /* 11303 * Once all the siblings are setup properly, install the group leaders 11304 * to make it go. 11305 */ 11306 list_for_each_entry_safe(event, tmp, &events, migrate_entry) { 11307 list_del(&event->migrate_entry); 11308 if (event->state >= PERF_EVENT_STATE_OFF) 11309 event->state = PERF_EVENT_STATE_INACTIVE; 11310 account_event_cpu(event, dst_cpu); 11311 perf_install_in_context(dst_ctx, event, dst_cpu); 11312 get_ctx(dst_ctx); 11313 } 11314 mutex_unlock(&dst_ctx->mutex); 11315 mutex_unlock(&src_ctx->mutex); 11316 } 11317 EXPORT_SYMBOL_GPL(perf_pmu_migrate_context); 11318 11319 static void sync_child_event(struct perf_event *child_event, 11320 struct task_struct *child) 11321 { 11322 struct perf_event *parent_event = child_event->parent; 11323 u64 child_val; 11324 11325 if (child_event->attr.inherit_stat) 11326 perf_event_read_event(child_event, child); 11327 11328 child_val = perf_event_count(child_event); 11329 11330 /* 11331 * Add back the child's count to the parent's count: 11332 */ 11333 atomic64_add(child_val, &parent_event->child_count); 11334 atomic64_add(child_event->total_time_enabled, 11335 &parent_event->child_total_time_enabled); 11336 atomic64_add(child_event->total_time_running, 11337 &parent_event->child_total_time_running); 11338 } 11339 11340 static void 11341 perf_event_exit_event(struct perf_event *child_event, 11342 struct perf_event_context *child_ctx, 11343 struct task_struct *child) 11344 { 11345 struct perf_event *parent_event = child_event->parent; 11346 11347 /* 11348 * Do not destroy the 'original' grouping; because of the context 11349 * switch optimization the original events could've ended up in a 11350 * random child task. 11351 * 11352 * If we were to destroy the original group, all group related 11353 * operations would cease to function properly after this random 11354 * child dies. 11355 * 11356 * Do destroy all inherited groups, we don't care about those 11357 * and being thorough is better. 11358 */ 11359 raw_spin_lock_irq(&child_ctx->lock); 11360 WARN_ON_ONCE(child_ctx->is_active); 11361 11362 if (parent_event) 11363 perf_group_detach(child_event); 11364 list_del_event(child_event, child_ctx); 11365 perf_event_set_state(child_event, PERF_EVENT_STATE_EXIT); /* is_event_hup() */ 11366 raw_spin_unlock_irq(&child_ctx->lock); 11367 11368 /* 11369 * Parent events are governed by their filedesc, retain them. 11370 */ 11371 if (!parent_event) { 11372 perf_event_wakeup(child_event); 11373 return; 11374 } 11375 /* 11376 * Child events can be cleaned up. 11377 */ 11378 11379 sync_child_event(child_event, child); 11380 11381 /* 11382 * Remove this event from the parent's list 11383 */ 11384 WARN_ON_ONCE(parent_event->ctx->parent_ctx); 11385 mutex_lock(&parent_event->child_mutex); 11386 list_del_init(&child_event->child_list); 11387 mutex_unlock(&parent_event->child_mutex); 11388 11389 /* 11390 * Kick perf_poll() for is_event_hup(). 11391 */ 11392 perf_event_wakeup(parent_event); 11393 free_event(child_event); 11394 put_event(parent_event); 11395 } 11396 11397 static void perf_event_exit_task_context(struct task_struct *child, int ctxn) 11398 { 11399 struct perf_event_context *child_ctx, *clone_ctx = NULL; 11400 struct perf_event *child_event, *next; 11401 11402 WARN_ON_ONCE(child != current); 11403 11404 child_ctx = perf_pin_task_context(child, ctxn); 11405 if (!child_ctx) 11406 return; 11407 11408 /* 11409 * In order to reduce the amount of tricky in ctx tear-down, we hold 11410 * ctx::mutex over the entire thing. This serializes against almost 11411 * everything that wants to access the ctx. 11412 * 11413 * The exception is sys_perf_event_open() / 11414 * perf_event_create_kernel_count() which does find_get_context() 11415 * without ctx::mutex (it cannot because of the move_group double mutex 11416 * lock thing). See the comments in perf_install_in_context(). 11417 */ 11418 mutex_lock(&child_ctx->mutex); 11419 11420 /* 11421 * In a single ctx::lock section, de-schedule the events and detach the 11422 * context from the task such that we cannot ever get it scheduled back 11423 * in. 11424 */ 11425 raw_spin_lock_irq(&child_ctx->lock); 11426 task_ctx_sched_out(__get_cpu_context(child_ctx), child_ctx, EVENT_ALL); 11427 11428 /* 11429 * Now that the context is inactive, destroy the task <-> ctx relation 11430 * and mark the context dead. 11431 */ 11432 RCU_INIT_POINTER(child->perf_event_ctxp[ctxn], NULL); 11433 put_ctx(child_ctx); /* cannot be last */ 11434 WRITE_ONCE(child_ctx->task, TASK_TOMBSTONE); 11435 put_task_struct(current); /* cannot be last */ 11436 11437 clone_ctx = unclone_ctx(child_ctx); 11438 raw_spin_unlock_irq(&child_ctx->lock); 11439 11440 if (clone_ctx) 11441 put_ctx(clone_ctx); 11442 11443 /* 11444 * Report the task dead after unscheduling the events so that we 11445 * won't get any samples after PERF_RECORD_EXIT. We can however still 11446 * get a few PERF_RECORD_READ events. 11447 */ 11448 perf_event_task(child, child_ctx, 0); 11449 11450 list_for_each_entry_safe(child_event, next, &child_ctx->event_list, event_entry) 11451 perf_event_exit_event(child_event, child_ctx, child); 11452 11453 mutex_unlock(&child_ctx->mutex); 11454 11455 put_ctx(child_ctx); 11456 } 11457 11458 /* 11459 * When a child task exits, feed back event values to parent events. 11460 * 11461 * Can be called with cred_guard_mutex held when called from 11462 * install_exec_creds(). 11463 */ 11464 void perf_event_exit_task(struct task_struct *child) 11465 { 11466 struct perf_event *event, *tmp; 11467 int ctxn; 11468 11469 mutex_lock(&child->perf_event_mutex); 11470 list_for_each_entry_safe(event, tmp, &child->perf_event_list, 11471 owner_entry) { 11472 list_del_init(&event->owner_entry); 11473 11474 /* 11475 * Ensure the list deletion is visible before we clear 11476 * the owner, closes a race against perf_release() where 11477 * we need to serialize on the owner->perf_event_mutex. 11478 */ 11479 smp_store_release(&event->owner, NULL); 11480 } 11481 mutex_unlock(&child->perf_event_mutex); 11482 11483 for_each_task_context_nr(ctxn) 11484 perf_event_exit_task_context(child, ctxn); 11485 11486 /* 11487 * The perf_event_exit_task_context calls perf_event_task 11488 * with child's task_ctx, which generates EXIT events for 11489 * child contexts and sets child->perf_event_ctxp[] to NULL. 11490 * At this point we need to send EXIT events to cpu contexts. 11491 */ 11492 perf_event_task(child, NULL, 0); 11493 } 11494 11495 static void perf_free_event(struct perf_event *event, 11496 struct perf_event_context *ctx) 11497 { 11498 struct perf_event *parent = event->parent; 11499 11500 if (WARN_ON_ONCE(!parent)) 11501 return; 11502 11503 mutex_lock(&parent->child_mutex); 11504 list_del_init(&event->child_list); 11505 mutex_unlock(&parent->child_mutex); 11506 11507 put_event(parent); 11508 11509 raw_spin_lock_irq(&ctx->lock); 11510 perf_group_detach(event); 11511 list_del_event(event, ctx); 11512 raw_spin_unlock_irq(&ctx->lock); 11513 free_event(event); 11514 } 11515 11516 /* 11517 * Free an unexposed, unused context as created by inheritance by 11518 * perf_event_init_task below, used by fork() in case of fail. 11519 * 11520 * Not all locks are strictly required, but take them anyway to be nice and 11521 * help out with the lockdep assertions. 11522 */ 11523 void perf_event_free_task(struct task_struct *task) 11524 { 11525 struct perf_event_context *ctx; 11526 struct perf_event *event, *tmp; 11527 int ctxn; 11528 11529 for_each_task_context_nr(ctxn) { 11530 ctx = task->perf_event_ctxp[ctxn]; 11531 if (!ctx) 11532 continue; 11533 11534 mutex_lock(&ctx->mutex); 11535 raw_spin_lock_irq(&ctx->lock); 11536 /* 11537 * Destroy the task <-> ctx relation and mark the context dead. 11538 * 11539 * This is important because even though the task hasn't been 11540 * exposed yet the context has been (through child_list). 11541 */ 11542 RCU_INIT_POINTER(task->perf_event_ctxp[ctxn], NULL); 11543 WRITE_ONCE(ctx->task, TASK_TOMBSTONE); 11544 put_task_struct(task); /* cannot be last */ 11545 raw_spin_unlock_irq(&ctx->lock); 11546 11547 list_for_each_entry_safe(event, tmp, &ctx->event_list, event_entry) 11548 perf_free_event(event, ctx); 11549 11550 mutex_unlock(&ctx->mutex); 11551 put_ctx(ctx); 11552 } 11553 } 11554 11555 void perf_event_delayed_put(struct task_struct *task) 11556 { 11557 int ctxn; 11558 11559 for_each_task_context_nr(ctxn) 11560 WARN_ON_ONCE(task->perf_event_ctxp[ctxn]); 11561 } 11562 11563 struct file *perf_event_get(unsigned int fd) 11564 { 11565 struct file *file; 11566 11567 file = fget_raw(fd); 11568 if (!file) 11569 return ERR_PTR(-EBADF); 11570 11571 if (file->f_op != &perf_fops) { 11572 fput(file); 11573 return ERR_PTR(-EBADF); 11574 } 11575 11576 return file; 11577 } 11578 11579 const struct perf_event *perf_get_event(struct file *file) 11580 { 11581 if (file->f_op != &perf_fops) 11582 return ERR_PTR(-EINVAL); 11583 11584 return file->private_data; 11585 } 11586 11587 const struct perf_event_attr *perf_event_attrs(struct perf_event *event) 11588 { 11589 if (!event) 11590 return ERR_PTR(-EINVAL); 11591 11592 return &event->attr; 11593 } 11594 11595 /* 11596 * Inherit an event from parent task to child task. 11597 * 11598 * Returns: 11599 * - valid pointer on success 11600 * - NULL for orphaned events 11601 * - IS_ERR() on error 11602 */ 11603 static struct perf_event * 11604 inherit_event(struct perf_event *parent_event, 11605 struct task_struct *parent, 11606 struct perf_event_context *parent_ctx, 11607 struct task_struct *child, 11608 struct perf_event *group_leader, 11609 struct perf_event_context *child_ctx) 11610 { 11611 enum perf_event_state parent_state = parent_event->state; 11612 struct perf_event *child_event; 11613 unsigned long flags; 11614 11615 /* 11616 * Instead of creating recursive hierarchies of events, 11617 * we link inherited events back to the original parent, 11618 * which has a filp for sure, which we use as the reference 11619 * count: 11620 */ 11621 if (parent_event->parent) 11622 parent_event = parent_event->parent; 11623 11624 child_event = perf_event_alloc(&parent_event->attr, 11625 parent_event->cpu, 11626 child, 11627 group_leader, parent_event, 11628 NULL, NULL, -1); 11629 if (IS_ERR(child_event)) 11630 return child_event; 11631 11632 11633 if ((child_event->attach_state & PERF_ATTACH_TASK_DATA) && 11634 !child_ctx->task_ctx_data) { 11635 struct pmu *pmu = child_event->pmu; 11636 11637 child_ctx->task_ctx_data = kzalloc(pmu->task_ctx_size, 11638 GFP_KERNEL); 11639 if (!child_ctx->task_ctx_data) { 11640 free_event(child_event); 11641 return NULL; 11642 } 11643 } 11644 11645 /* 11646 * is_orphaned_event() and list_add_tail(&parent_event->child_list) 11647 * must be under the same lock in order to serialize against 11648 * perf_event_release_kernel(), such that either we must observe 11649 * is_orphaned_event() or they will observe us on the child_list. 11650 */ 11651 mutex_lock(&parent_event->child_mutex); 11652 if (is_orphaned_event(parent_event) || 11653 !atomic_long_inc_not_zero(&parent_event->refcount)) { 11654 mutex_unlock(&parent_event->child_mutex); 11655 /* task_ctx_data is freed with child_ctx */ 11656 free_event(child_event); 11657 return NULL; 11658 } 11659 11660 get_ctx(child_ctx); 11661 11662 /* 11663 * Make the child state follow the state of the parent event, 11664 * not its attr.disabled bit. We hold the parent's mutex, 11665 * so we won't race with perf_event_{en, dis}able_family. 11666 */ 11667 if (parent_state >= PERF_EVENT_STATE_INACTIVE) 11668 child_event->state = PERF_EVENT_STATE_INACTIVE; 11669 else 11670 child_event->state = PERF_EVENT_STATE_OFF; 11671 11672 if (parent_event->attr.freq) { 11673 u64 sample_period = parent_event->hw.sample_period; 11674 struct hw_perf_event *hwc = &child_event->hw; 11675 11676 hwc->sample_period = sample_period; 11677 hwc->last_period = sample_period; 11678 11679 local64_set(&hwc->period_left, sample_period); 11680 } 11681 11682 child_event->ctx = child_ctx; 11683 child_event->overflow_handler = parent_event->overflow_handler; 11684 child_event->overflow_handler_context 11685 = parent_event->overflow_handler_context; 11686 11687 /* 11688 * Precalculate sample_data sizes 11689 */ 11690 perf_event__header_size(child_event); 11691 perf_event__id_header_size(child_event); 11692 11693 /* 11694 * Link it up in the child's context: 11695 */ 11696 raw_spin_lock_irqsave(&child_ctx->lock, flags); 11697 add_event_to_ctx(child_event, child_ctx); 11698 raw_spin_unlock_irqrestore(&child_ctx->lock, flags); 11699 11700 /* 11701 * Link this into the parent event's child list 11702 */ 11703 list_add_tail(&child_event->child_list, &parent_event->child_list); 11704 mutex_unlock(&parent_event->child_mutex); 11705 11706 return child_event; 11707 } 11708 11709 /* 11710 * Inherits an event group. 11711 * 11712 * This will quietly suppress orphaned events; !inherit_event() is not an error. 11713 * This matches with perf_event_release_kernel() removing all child events. 11714 * 11715 * Returns: 11716 * - 0 on success 11717 * - <0 on error 11718 */ 11719 static int inherit_group(struct perf_event *parent_event, 11720 struct task_struct *parent, 11721 struct perf_event_context *parent_ctx, 11722 struct task_struct *child, 11723 struct perf_event_context *child_ctx) 11724 { 11725 struct perf_event *leader; 11726 struct perf_event *sub; 11727 struct perf_event *child_ctr; 11728 11729 leader = inherit_event(parent_event, parent, parent_ctx, 11730 child, NULL, child_ctx); 11731 if (IS_ERR(leader)) 11732 return PTR_ERR(leader); 11733 /* 11734 * @leader can be NULL here because of is_orphaned_event(). In this 11735 * case inherit_event() will create individual events, similar to what 11736 * perf_group_detach() would do anyway. 11737 */ 11738 for_each_sibling_event(sub, parent_event) { 11739 child_ctr = inherit_event(sub, parent, parent_ctx, 11740 child, leader, child_ctx); 11741 if (IS_ERR(child_ctr)) 11742 return PTR_ERR(child_ctr); 11743 } 11744 return 0; 11745 } 11746 11747 /* 11748 * Creates the child task context and tries to inherit the event-group. 11749 * 11750 * Clears @inherited_all on !attr.inherited or error. Note that we'll leave 11751 * inherited_all set when we 'fail' to inherit an orphaned event; this is 11752 * consistent with perf_event_release_kernel() removing all child events. 11753 * 11754 * Returns: 11755 * - 0 on success 11756 * - <0 on error 11757 */ 11758 static int 11759 inherit_task_group(struct perf_event *event, struct task_struct *parent, 11760 struct perf_event_context *parent_ctx, 11761 struct task_struct *child, int ctxn, 11762 int *inherited_all) 11763 { 11764 int ret; 11765 struct perf_event_context *child_ctx; 11766 11767 if (!event->attr.inherit) { 11768 *inherited_all = 0; 11769 return 0; 11770 } 11771 11772 child_ctx = child->perf_event_ctxp[ctxn]; 11773 if (!child_ctx) { 11774 /* 11775 * This is executed from the parent task context, so 11776 * inherit events that have been marked for cloning. 11777 * First allocate and initialize a context for the 11778 * child. 11779 */ 11780 child_ctx = alloc_perf_context(parent_ctx->pmu, child); 11781 if (!child_ctx) 11782 return -ENOMEM; 11783 11784 child->perf_event_ctxp[ctxn] = child_ctx; 11785 } 11786 11787 ret = inherit_group(event, parent, parent_ctx, 11788 child, child_ctx); 11789 11790 if (ret) 11791 *inherited_all = 0; 11792 11793 return ret; 11794 } 11795 11796 /* 11797 * Initialize the perf_event context in task_struct 11798 */ 11799 static int perf_event_init_context(struct task_struct *child, int ctxn) 11800 { 11801 struct perf_event_context *child_ctx, *parent_ctx; 11802 struct perf_event_context *cloned_ctx; 11803 struct perf_event *event; 11804 struct task_struct *parent = current; 11805 int inherited_all = 1; 11806 unsigned long flags; 11807 int ret = 0; 11808 11809 if (likely(!parent->perf_event_ctxp[ctxn])) 11810 return 0; 11811 11812 /* 11813 * If the parent's context is a clone, pin it so it won't get 11814 * swapped under us. 11815 */ 11816 parent_ctx = perf_pin_task_context(parent, ctxn); 11817 if (!parent_ctx) 11818 return 0; 11819 11820 /* 11821 * No need to check if parent_ctx != NULL here; since we saw 11822 * it non-NULL earlier, the only reason for it to become NULL 11823 * is if we exit, and since we're currently in the middle of 11824 * a fork we can't be exiting at the same time. 11825 */ 11826 11827 /* 11828 * Lock the parent list. No need to lock the child - not PID 11829 * hashed yet and not running, so nobody can access it. 11830 */ 11831 mutex_lock(&parent_ctx->mutex); 11832 11833 /* 11834 * We dont have to disable NMIs - we are only looking at 11835 * the list, not manipulating it: 11836 */ 11837 perf_event_groups_for_each(event, &parent_ctx->pinned_groups) { 11838 ret = inherit_task_group(event, parent, parent_ctx, 11839 child, ctxn, &inherited_all); 11840 if (ret) 11841 goto out_unlock; 11842 } 11843 11844 /* 11845 * We can't hold ctx->lock when iterating the ->flexible_group list due 11846 * to allocations, but we need to prevent rotation because 11847 * rotate_ctx() will change the list from interrupt context. 11848 */ 11849 raw_spin_lock_irqsave(&parent_ctx->lock, flags); 11850 parent_ctx->rotate_disable = 1; 11851 raw_spin_unlock_irqrestore(&parent_ctx->lock, flags); 11852 11853 perf_event_groups_for_each(event, &parent_ctx->flexible_groups) { 11854 ret = inherit_task_group(event, parent, parent_ctx, 11855 child, ctxn, &inherited_all); 11856 if (ret) 11857 goto out_unlock; 11858 } 11859 11860 raw_spin_lock_irqsave(&parent_ctx->lock, flags); 11861 parent_ctx->rotate_disable = 0; 11862 11863 child_ctx = child->perf_event_ctxp[ctxn]; 11864 11865 if (child_ctx && inherited_all) { 11866 /* 11867 * Mark the child context as a clone of the parent 11868 * context, or of whatever the parent is a clone of. 11869 * 11870 * Note that if the parent is a clone, the holding of 11871 * parent_ctx->lock avoids it from being uncloned. 11872 */ 11873 cloned_ctx = parent_ctx->parent_ctx; 11874 if (cloned_ctx) { 11875 child_ctx->parent_ctx = cloned_ctx; 11876 child_ctx->parent_gen = parent_ctx->parent_gen; 11877 } else { 11878 child_ctx->parent_ctx = parent_ctx; 11879 child_ctx->parent_gen = parent_ctx->generation; 11880 } 11881 get_ctx(child_ctx->parent_ctx); 11882 } 11883 11884 raw_spin_unlock_irqrestore(&parent_ctx->lock, flags); 11885 out_unlock: 11886 mutex_unlock(&parent_ctx->mutex); 11887 11888 perf_unpin_context(parent_ctx); 11889 put_ctx(parent_ctx); 11890 11891 return ret; 11892 } 11893 11894 /* 11895 * Initialize the perf_event context in task_struct 11896 */ 11897 int perf_event_init_task(struct task_struct *child) 11898 { 11899 int ctxn, ret; 11900 11901 memset(child->perf_event_ctxp, 0, sizeof(child->perf_event_ctxp)); 11902 mutex_init(&child->perf_event_mutex); 11903 INIT_LIST_HEAD(&child->perf_event_list); 11904 11905 for_each_task_context_nr(ctxn) { 11906 ret = perf_event_init_context(child, ctxn); 11907 if (ret) { 11908 perf_event_free_task(child); 11909 return ret; 11910 } 11911 } 11912 11913 return 0; 11914 } 11915 11916 static void __init perf_event_init_all_cpus(void) 11917 { 11918 struct swevent_htable *swhash; 11919 int cpu; 11920 11921 zalloc_cpumask_var(&perf_online_mask, GFP_KERNEL); 11922 11923 for_each_possible_cpu(cpu) { 11924 swhash = &per_cpu(swevent_htable, cpu); 11925 mutex_init(&swhash->hlist_mutex); 11926 INIT_LIST_HEAD(&per_cpu(active_ctx_list, cpu)); 11927 11928 INIT_LIST_HEAD(&per_cpu(pmu_sb_events.list, cpu)); 11929 raw_spin_lock_init(&per_cpu(pmu_sb_events.lock, cpu)); 11930 11931 #ifdef CONFIG_CGROUP_PERF 11932 INIT_LIST_HEAD(&per_cpu(cgrp_cpuctx_list, cpu)); 11933 #endif 11934 INIT_LIST_HEAD(&per_cpu(sched_cb_list, cpu)); 11935 } 11936 } 11937 11938 static void perf_swevent_init_cpu(unsigned int cpu) 11939 { 11940 struct swevent_htable *swhash = &per_cpu(swevent_htable, cpu); 11941 11942 mutex_lock(&swhash->hlist_mutex); 11943 if (swhash->hlist_refcount > 0 && !swevent_hlist_deref(swhash)) { 11944 struct swevent_hlist *hlist; 11945 11946 hlist = kzalloc_node(sizeof(*hlist), GFP_KERNEL, cpu_to_node(cpu)); 11947 WARN_ON(!hlist); 11948 rcu_assign_pointer(swhash->swevent_hlist, hlist); 11949 } 11950 mutex_unlock(&swhash->hlist_mutex); 11951 } 11952 11953 #if defined CONFIG_HOTPLUG_CPU || defined CONFIG_KEXEC_CORE 11954 static void __perf_event_exit_context(void *__info) 11955 { 11956 struct perf_event_context *ctx = __info; 11957 struct perf_cpu_context *cpuctx = __get_cpu_context(ctx); 11958 struct perf_event *event; 11959 11960 raw_spin_lock(&ctx->lock); 11961 ctx_sched_out(ctx, cpuctx, EVENT_TIME); 11962 list_for_each_entry(event, &ctx->event_list, event_entry) 11963 __perf_remove_from_context(event, cpuctx, ctx, (void *)DETACH_GROUP); 11964 raw_spin_unlock(&ctx->lock); 11965 } 11966 11967 static void perf_event_exit_cpu_context(int cpu) 11968 { 11969 struct perf_cpu_context *cpuctx; 11970 struct perf_event_context *ctx; 11971 struct pmu *pmu; 11972 11973 mutex_lock(&pmus_lock); 11974 list_for_each_entry(pmu, &pmus, entry) { 11975 cpuctx = per_cpu_ptr(pmu->pmu_cpu_context, cpu); 11976 ctx = &cpuctx->ctx; 11977 11978 mutex_lock(&ctx->mutex); 11979 smp_call_function_single(cpu, __perf_event_exit_context, ctx, 1); 11980 cpuctx->online = 0; 11981 mutex_unlock(&ctx->mutex); 11982 } 11983 cpumask_clear_cpu(cpu, perf_online_mask); 11984 mutex_unlock(&pmus_lock); 11985 } 11986 #else 11987 11988 static void perf_event_exit_cpu_context(int cpu) { } 11989 11990 #endif 11991 11992 int perf_event_init_cpu(unsigned int cpu) 11993 { 11994 struct perf_cpu_context *cpuctx; 11995 struct perf_event_context *ctx; 11996 struct pmu *pmu; 11997 11998 perf_swevent_init_cpu(cpu); 11999 12000 mutex_lock(&pmus_lock); 12001 cpumask_set_cpu(cpu, perf_online_mask); 12002 list_for_each_entry(pmu, &pmus, entry) { 12003 cpuctx = per_cpu_ptr(pmu->pmu_cpu_context, cpu); 12004 ctx = &cpuctx->ctx; 12005 12006 mutex_lock(&ctx->mutex); 12007 cpuctx->online = 1; 12008 mutex_unlock(&ctx->mutex); 12009 } 12010 mutex_unlock(&pmus_lock); 12011 12012 return 0; 12013 } 12014 12015 int perf_event_exit_cpu(unsigned int cpu) 12016 { 12017 perf_event_exit_cpu_context(cpu); 12018 return 0; 12019 } 12020 12021 static int 12022 perf_reboot(struct notifier_block *notifier, unsigned long val, void *v) 12023 { 12024 int cpu; 12025 12026 for_each_online_cpu(cpu) 12027 perf_event_exit_cpu(cpu); 12028 12029 return NOTIFY_OK; 12030 } 12031 12032 /* 12033 * Run the perf reboot notifier at the very last possible moment so that 12034 * the generic watchdog code runs as long as possible. 12035 */ 12036 static struct notifier_block perf_reboot_notifier = { 12037 .notifier_call = perf_reboot, 12038 .priority = INT_MIN, 12039 }; 12040 12041 void __init perf_event_init(void) 12042 { 12043 int ret; 12044 12045 idr_init(&pmu_idr); 12046 12047 perf_event_init_all_cpus(); 12048 init_srcu_struct(&pmus_srcu); 12049 perf_pmu_register(&perf_swevent, "software", PERF_TYPE_SOFTWARE); 12050 perf_pmu_register(&perf_cpu_clock, NULL, -1); 12051 perf_pmu_register(&perf_task_clock, NULL, -1); 12052 perf_tp_register(); 12053 perf_event_init_cpu(smp_processor_id()); 12054 register_reboot_notifier(&perf_reboot_notifier); 12055 12056 ret = init_hw_breakpoint(); 12057 WARN(ret, "hw_breakpoint initialization failed with: %d", ret); 12058 12059 /* 12060 * Build time assertion that we keep the data_head at the intended 12061 * location. IOW, validation we got the __reserved[] size right. 12062 */ 12063 BUILD_BUG_ON((offsetof(struct perf_event_mmap_page, data_head)) 12064 != 1024); 12065 } 12066 12067 ssize_t perf_event_sysfs_show(struct device *dev, struct device_attribute *attr, 12068 char *page) 12069 { 12070 struct perf_pmu_events_attr *pmu_attr = 12071 container_of(attr, struct perf_pmu_events_attr, attr); 12072 12073 if (pmu_attr->event_str) 12074 return sprintf(page, "%s\n", pmu_attr->event_str); 12075 12076 return 0; 12077 } 12078 EXPORT_SYMBOL_GPL(perf_event_sysfs_show); 12079 12080 static int __init perf_event_sysfs_init(void) 12081 { 12082 struct pmu *pmu; 12083 int ret; 12084 12085 mutex_lock(&pmus_lock); 12086 12087 ret = bus_register(&pmu_bus); 12088 if (ret) 12089 goto unlock; 12090 12091 list_for_each_entry(pmu, &pmus, entry) { 12092 if (!pmu->name || pmu->type < 0) 12093 continue; 12094 12095 ret = pmu_dev_alloc(pmu); 12096 WARN(ret, "Failed to register pmu: %s, reason %d\n", pmu->name, ret); 12097 } 12098 pmu_bus_running = 1; 12099 ret = 0; 12100 12101 unlock: 12102 mutex_unlock(&pmus_lock); 12103 12104 return ret; 12105 } 12106 device_initcall(perf_event_sysfs_init); 12107 12108 #ifdef CONFIG_CGROUP_PERF 12109 static struct cgroup_subsys_state * 12110 perf_cgroup_css_alloc(struct cgroup_subsys_state *parent_css) 12111 { 12112 struct perf_cgroup *jc; 12113 12114 jc = kzalloc(sizeof(*jc), GFP_KERNEL); 12115 if (!jc) 12116 return ERR_PTR(-ENOMEM); 12117 12118 jc->info = alloc_percpu(struct perf_cgroup_info); 12119 if (!jc->info) { 12120 kfree(jc); 12121 return ERR_PTR(-ENOMEM); 12122 } 12123 12124 return &jc->css; 12125 } 12126 12127 static void perf_cgroup_css_free(struct cgroup_subsys_state *css) 12128 { 12129 struct perf_cgroup *jc = container_of(css, struct perf_cgroup, css); 12130 12131 free_percpu(jc->info); 12132 kfree(jc); 12133 } 12134 12135 static int __perf_cgroup_move(void *info) 12136 { 12137 struct task_struct *task = info; 12138 rcu_read_lock(); 12139 perf_cgroup_switch(task, PERF_CGROUP_SWOUT | PERF_CGROUP_SWIN); 12140 rcu_read_unlock(); 12141 return 0; 12142 } 12143 12144 static void perf_cgroup_attach(struct cgroup_taskset *tset) 12145 { 12146 struct task_struct *task; 12147 struct cgroup_subsys_state *css; 12148 12149 cgroup_taskset_for_each(task, css, tset) 12150 task_function_call(task, __perf_cgroup_move, task); 12151 } 12152 12153 struct cgroup_subsys perf_event_cgrp_subsys = { 12154 .css_alloc = perf_cgroup_css_alloc, 12155 .css_free = perf_cgroup_css_free, 12156 .attach = perf_cgroup_attach, 12157 /* 12158 * Implicitly enable on dfl hierarchy so that perf events can 12159 * always be filtered by cgroup2 path as long as perf_event 12160 * controller is not mounted on a legacy hierarchy. 12161 */ 12162 .implicit_on_dfl = true, 12163 .threaded = true, 12164 }; 12165 #endif /* CONFIG_CGROUP_PERF */ 12166