1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Resource Director Technology(RDT) 4 * - Monitoring code 5 * 6 * Copyright (C) 2017 Intel Corporation 7 * 8 * Author: 9 * Vikas Shivappa <vikas.shivappa@intel.com> 10 * 11 * This replaces the cqm.c based on perf but we reuse a lot of 12 * code and datastructures originally from Peter Zijlstra and Matt Fleming. 13 * 14 * More information about RDT be found in the Intel (R) x86 Architecture 15 * Software Developer Manual June 2016, volume 3, section 17.17. 16 */ 17 18 #define pr_fmt(fmt) "resctrl: " fmt 19 20 #include <linux/cpu.h> 21 #include <linux/resctrl.h> 22 #include <linux/sizes.h> 23 #include <linux/slab.h> 24 25 #include "internal.h" 26 27 #define CREATE_TRACE_POINTS 28 29 #include "monitor_trace.h" 30 31 /** 32 * struct rmid_entry - dirty tracking for all RMID. 33 * @closid: The CLOSID for this entry. 34 * @rmid: The RMID for this entry. 35 * @busy: The number of domains with cached data using this RMID. 36 * @list: Member of the rmid_free_lru list when busy == 0. 37 * 38 * Depending on the architecture the correct monitor is accessed using 39 * both @closid and @rmid, or @rmid only. 40 * 41 * Take the rdtgroup_mutex when accessing. 42 */ 43 struct rmid_entry { 44 u32 closid; 45 u32 rmid; 46 int busy; 47 struct list_head list; 48 }; 49 50 /* 51 * @rmid_free_lru - A least recently used list of free RMIDs 52 * These RMIDs are guaranteed to have an occupancy less than the 53 * threshold occupancy 54 */ 55 static LIST_HEAD(rmid_free_lru); 56 57 /* 58 * @closid_num_dirty_rmid The number of dirty RMID each CLOSID has. 59 * Only allocated when CONFIG_RESCTRL_RMID_DEPENDS_ON_CLOSID is defined. 60 * Indexed by CLOSID. Protected by rdtgroup_mutex. 61 */ 62 static u32 *closid_num_dirty_rmid; 63 64 /* 65 * @rmid_limbo_count - count of currently unused but (potentially) 66 * dirty RMIDs. 67 * This counts RMIDs that no one is currently using but that 68 * may have a occupancy value > resctrl_rmid_realloc_threshold. User can 69 * change the threshold occupancy value. 70 */ 71 static unsigned int rmid_limbo_count; 72 73 /* 74 * @rmid_entry - The entry in the limbo and free lists. 75 */ 76 static struct rmid_entry *rmid_ptrs; 77 78 /* 79 * This is the threshold cache occupancy in bytes at which we will consider an 80 * RMID available for re-allocation. 81 */ 82 unsigned int resctrl_rmid_realloc_threshold; 83 84 /* 85 * This is the maximum value for the reallocation threshold, in bytes. 86 */ 87 unsigned int resctrl_rmid_realloc_limit; 88 89 /* 90 * x86 and arm64 differ in their handling of monitoring. 91 * x86's RMID are independent numbers, there is only one source of traffic 92 * with an RMID value of '1'. 93 * arm64's PMG extends the PARTID/CLOSID space, there are multiple sources of 94 * traffic with a PMG value of '1', one for each CLOSID, meaning the RMID 95 * value is no longer unique. 96 * To account for this, resctrl uses an index. On x86 this is just the RMID, 97 * on arm64 it encodes the CLOSID and RMID. This gives a unique number. 98 * 99 * The domain's rmid_busy_llc and rmid_ptrs[] are sized by index. The arch code 100 * must accept an attempt to read every index. 101 */ 102 static inline struct rmid_entry *__rmid_entry(u32 idx) 103 { 104 struct rmid_entry *entry; 105 u32 closid, rmid; 106 107 entry = &rmid_ptrs[idx]; 108 resctrl_arch_rmid_idx_decode(idx, &closid, &rmid); 109 110 WARN_ON_ONCE(entry->closid != closid); 111 WARN_ON_ONCE(entry->rmid != rmid); 112 113 return entry; 114 } 115 116 static void limbo_release_entry(struct rmid_entry *entry) 117 { 118 lockdep_assert_held(&rdtgroup_mutex); 119 120 rmid_limbo_count--; 121 list_add_tail(&entry->list, &rmid_free_lru); 122 123 if (IS_ENABLED(CONFIG_RESCTRL_RMID_DEPENDS_ON_CLOSID)) 124 closid_num_dirty_rmid[entry->closid]--; 125 } 126 127 /* 128 * Check the RMIDs that are marked as busy for this domain. If the 129 * reported LLC occupancy is below the threshold clear the busy bit and 130 * decrement the count. If the busy count gets to zero on an RMID, we 131 * free the RMID 132 */ 133 void __check_limbo(struct rdt_l3_mon_domain *d, bool force_free) 134 { 135 struct rdt_resource *r = resctrl_arch_get_resource(RDT_RESOURCE_L3); 136 u32 idx_limit = resctrl_arch_system_num_rmid_idx(); 137 struct rmid_entry *entry; 138 u32 idx, cur_idx = 1; 139 void *arch_mon_ctx; 140 void *arch_priv; 141 bool rmid_dirty; 142 u64 val = 0; 143 144 arch_priv = mon_event_all[QOS_L3_OCCUP_EVENT_ID].arch_priv; 145 arch_mon_ctx = resctrl_arch_mon_ctx_alloc(r, QOS_L3_OCCUP_EVENT_ID); 146 if (IS_ERR(arch_mon_ctx)) { 147 pr_warn_ratelimited("Failed to allocate monitor context: %ld", 148 PTR_ERR(arch_mon_ctx)); 149 return; 150 } 151 152 /* 153 * Skip RMID 0 and start from RMID 1 and check all the RMIDs that 154 * are marked as busy for occupancy < threshold. If the occupancy 155 * is less than the threshold decrement the busy counter of the 156 * RMID and move it to the free list when the counter reaches 0. 157 */ 158 for (;;) { 159 idx = find_next_bit(d->rmid_busy_llc, idx_limit, cur_idx); 160 if (idx >= idx_limit) 161 break; 162 163 entry = __rmid_entry(idx); 164 if (resctrl_arch_rmid_read(r, &d->hdr, entry->closid, entry->rmid, 165 QOS_L3_OCCUP_EVENT_ID, arch_priv, &val, 166 arch_mon_ctx)) { 167 rmid_dirty = true; 168 } else { 169 rmid_dirty = (val >= resctrl_rmid_realloc_threshold); 170 171 /* 172 * x86's CLOSID and RMID are independent numbers, so the entry's 173 * CLOSID is an empty CLOSID (X86_RESCTRL_EMPTY_CLOSID). On Arm the 174 * RMID (PMG) extends the CLOSID (PARTID) space with bits that aren't 175 * used to select the configuration. It is thus necessary to track both 176 * CLOSID and RMID because there may be dependencies between them 177 * on some architectures. 178 */ 179 trace_mon_llc_occupancy_limbo(entry->closid, entry->rmid, d->hdr.id, val); 180 } 181 182 if (force_free || !rmid_dirty) { 183 clear_bit(idx, d->rmid_busy_llc); 184 if (!--entry->busy) 185 limbo_release_entry(entry); 186 } 187 cur_idx = idx + 1; 188 } 189 190 resctrl_arch_mon_ctx_free(r, QOS_L3_OCCUP_EVENT_ID, arch_mon_ctx); 191 } 192 193 bool has_busy_rmid(struct rdt_l3_mon_domain *d) 194 { 195 u32 idx_limit = resctrl_arch_system_num_rmid_idx(); 196 197 return find_first_bit(d->rmid_busy_llc, idx_limit) != idx_limit; 198 } 199 200 static struct rmid_entry *resctrl_find_free_rmid(u32 closid) 201 { 202 struct rmid_entry *itr; 203 u32 itr_idx, cmp_idx; 204 205 if (list_empty(&rmid_free_lru)) 206 return rmid_limbo_count ? ERR_PTR(-EBUSY) : ERR_PTR(-ENOSPC); 207 208 list_for_each_entry(itr, &rmid_free_lru, list) { 209 /* 210 * Get the index of this free RMID, and the index it would need 211 * to be if it were used with this CLOSID. 212 * If the CLOSID is irrelevant on this architecture, the two 213 * index values are always the same on every entry and thus the 214 * very first entry will be returned. 215 */ 216 itr_idx = resctrl_arch_rmid_idx_encode(itr->closid, itr->rmid); 217 cmp_idx = resctrl_arch_rmid_idx_encode(closid, itr->rmid); 218 219 if (itr_idx == cmp_idx) 220 return itr; 221 } 222 223 return ERR_PTR(-ENOSPC); 224 } 225 226 /** 227 * resctrl_find_cleanest_closid() - Find a CLOSID where all the associated 228 * RMID are clean, or the CLOSID that has 229 * the most clean RMID. 230 * 231 * MPAM's equivalent of RMID are per-CLOSID, meaning a freshly allocated CLOSID 232 * may not be able to allocate clean RMID. To avoid this the allocator will 233 * choose the CLOSID with the most clean RMID. 234 * 235 * When the CLOSID and RMID are independent numbers, the first free CLOSID will 236 * be returned. 237 */ 238 int resctrl_find_cleanest_closid(void) 239 { 240 u32 cleanest_closid = ~0; 241 int i = 0; 242 243 lockdep_assert_held(&rdtgroup_mutex); 244 245 if (!IS_ENABLED(CONFIG_RESCTRL_RMID_DEPENDS_ON_CLOSID)) 246 return -EIO; 247 248 for (i = 0; i < closids_supported(); i++) { 249 int num_dirty; 250 251 if (closid_allocated(i)) 252 continue; 253 254 num_dirty = closid_num_dirty_rmid[i]; 255 if (num_dirty == 0) 256 return i; 257 258 if (cleanest_closid == ~0) 259 cleanest_closid = i; 260 261 if (num_dirty < closid_num_dirty_rmid[cleanest_closid]) 262 cleanest_closid = i; 263 } 264 265 if (cleanest_closid == ~0) 266 return -ENOSPC; 267 268 return cleanest_closid; 269 } 270 271 /* 272 * For MPAM the RMID value is not unique, and has to be considered with 273 * the CLOSID. The (CLOSID, RMID) pair is allocated on all domains, which 274 * allows all domains to be managed by a single free list. 275 * Each domain also has a rmid_busy_llc to reduce the work of the limbo handler. 276 */ 277 int alloc_rmid(u32 closid) 278 { 279 struct rmid_entry *entry; 280 281 lockdep_assert_held(&rdtgroup_mutex); 282 283 entry = resctrl_find_free_rmid(closid); 284 if (IS_ERR(entry)) 285 return PTR_ERR(entry); 286 287 list_del(&entry->list); 288 return entry->rmid; 289 } 290 291 static void add_rmid_to_limbo(struct rmid_entry *entry) 292 { 293 struct rdt_resource *r = resctrl_arch_get_resource(RDT_RESOURCE_L3); 294 struct rdt_l3_mon_domain *d; 295 u32 idx; 296 297 lockdep_assert_held(&rdtgroup_mutex); 298 299 /* Walking r->domains, ensure it can't race with cpuhp */ 300 lockdep_assert_cpus_held(); 301 302 idx = resctrl_arch_rmid_idx_encode(entry->closid, entry->rmid); 303 304 entry->busy = 0; 305 list_for_each_entry(d, &r->mon_domains, hdr.list) { 306 /* 307 * For the first limbo RMID in the domain, 308 * setup up the limbo worker. 309 */ 310 if (!has_busy_rmid(d)) 311 cqm_setup_limbo_handler(d, CQM_LIMBOCHECK_INTERVAL, 312 RESCTRL_PICK_ANY_CPU); 313 set_bit(idx, d->rmid_busy_llc); 314 entry->busy++; 315 } 316 317 rmid_limbo_count++; 318 if (IS_ENABLED(CONFIG_RESCTRL_RMID_DEPENDS_ON_CLOSID)) 319 closid_num_dirty_rmid[entry->closid]++; 320 } 321 322 void free_rmid(u32 closid, u32 rmid) 323 { 324 u32 idx = resctrl_arch_rmid_idx_encode(closid, rmid); 325 struct rmid_entry *entry; 326 327 lockdep_assert_held(&rdtgroup_mutex); 328 329 /* 330 * Do not allow the default rmid to be free'd. Comparing by index 331 * allows architectures that ignore the closid parameter to avoid an 332 * unnecessary check. 333 */ 334 if (!resctrl_arch_mon_capable() || 335 idx == resctrl_arch_rmid_idx_encode(RESCTRL_RESERVED_CLOSID, 336 RESCTRL_RESERVED_RMID)) 337 return; 338 339 entry = __rmid_entry(idx); 340 341 if (resctrl_is_mon_event_enabled(QOS_L3_OCCUP_EVENT_ID)) 342 add_rmid_to_limbo(entry); 343 else 344 list_add_tail(&entry->list, &rmid_free_lru); 345 } 346 347 static struct mbm_state *get_mbm_state(struct rdt_l3_mon_domain *d, u32 closid, 348 u32 rmid, enum resctrl_event_id evtid) 349 { 350 u32 idx = resctrl_arch_rmid_idx_encode(closid, rmid); 351 struct mbm_state *state; 352 353 if (!resctrl_is_mbm_event(evtid)) 354 return NULL; 355 356 state = d->mbm_states[MBM_STATE_IDX(evtid)]; 357 358 return state ? &state[idx] : NULL; 359 } 360 361 /* 362 * mbm_cntr_get() - Return the counter ID for the matching @evtid and @rdtgrp. 363 * 364 * Return: 365 * Valid counter ID on success, or -ENOENT on failure. 366 */ 367 static int mbm_cntr_get(struct rdt_resource *r, struct rdt_l3_mon_domain *d, 368 struct rdtgroup *rdtgrp, enum resctrl_event_id evtid) 369 { 370 int cntr_id; 371 372 if (!r->mon.mbm_cntr_assignable) 373 return -ENOENT; 374 375 if (!resctrl_is_mbm_event(evtid)) 376 return -ENOENT; 377 378 for (cntr_id = 0; cntr_id < r->mon.num_mbm_cntrs; cntr_id++) { 379 if (d->cntr_cfg[cntr_id].rdtgrp == rdtgrp && 380 d->cntr_cfg[cntr_id].evtid == evtid) 381 return cntr_id; 382 } 383 384 return -ENOENT; 385 } 386 387 /* 388 * mbm_cntr_alloc() - Initialize and return a new counter ID in the domain @d. 389 * Caller must ensure that the specified event is not assigned already. 390 * 391 * Return: 392 * Valid counter ID on success, or -ENOSPC on failure. 393 */ 394 static int mbm_cntr_alloc(struct rdt_resource *r, struct rdt_l3_mon_domain *d, 395 struct rdtgroup *rdtgrp, enum resctrl_event_id evtid) 396 { 397 int cntr_id; 398 399 for (cntr_id = 0; cntr_id < r->mon.num_mbm_cntrs; cntr_id++) { 400 if (!d->cntr_cfg[cntr_id].rdtgrp) { 401 d->cntr_cfg[cntr_id].rdtgrp = rdtgrp; 402 d->cntr_cfg[cntr_id].evtid = evtid; 403 return cntr_id; 404 } 405 } 406 407 return -ENOSPC; 408 } 409 410 /* 411 * mbm_cntr_free() - Clear the counter ID configuration details in the domain @d. 412 */ 413 static void mbm_cntr_free(struct rdt_l3_mon_domain *d, int cntr_id) 414 { 415 memset(&d->cntr_cfg[cntr_id], 0, sizeof(*d->cntr_cfg)); 416 } 417 418 static int __l3_mon_event_count(struct rdtgroup *rdtgrp, struct rmid_read *rr) 419 { 420 int cpu = smp_processor_id(); 421 u32 closid = rdtgrp->closid; 422 u32 rmid = rdtgrp->mon.rmid; 423 struct rdt_l3_mon_domain *d; 424 int cntr_id = -ENOENT; 425 struct mbm_state *m; 426 u64 tval = 0; 427 428 if (!domain_header_is_valid(rr->hdr, RESCTRL_MON_DOMAIN, RDT_RESOURCE_L3)) { 429 rr->err = -EIO; 430 return -EINVAL; 431 } 432 d = container_of(rr->hdr, struct rdt_l3_mon_domain, hdr); 433 434 if (rr->is_mbm_cntr) { 435 cntr_id = mbm_cntr_get(rr->r, d, rdtgrp, rr->evt->evtid); 436 if (cntr_id < 0) { 437 rr->err = -ENOENT; 438 return -EINVAL; 439 } 440 } 441 442 if (rr->first) { 443 if (rr->is_mbm_cntr) 444 resctrl_arch_reset_cntr(rr->r, d, closid, rmid, cntr_id, rr->evt->evtid); 445 else 446 resctrl_arch_reset_rmid(rr->r, d, closid, rmid, rr->evt->evtid); 447 m = get_mbm_state(d, closid, rmid, rr->evt->evtid); 448 if (m) 449 memset(m, 0, sizeof(struct mbm_state)); 450 return 0; 451 } 452 453 /* Reading a single domain, must be on a CPU in that domain. */ 454 if (!cpumask_test_cpu(cpu, &d->hdr.cpu_mask)) 455 return -EINVAL; 456 if (rr->is_mbm_cntr) 457 rr->err = resctrl_arch_cntr_read(rr->r, d, closid, rmid, cntr_id, 458 rr->evt->evtid, &tval); 459 else 460 rr->err = resctrl_arch_rmid_read(rr->r, rr->hdr, closid, rmid, 461 rr->evt->evtid, rr->evt->arch_priv, 462 &tval, rr->arch_mon_ctx); 463 if (rr->err) 464 return rr->err; 465 466 rr->val += tval; 467 468 return 0; 469 } 470 471 static int __l3_mon_event_count_sum(struct rdtgroup *rdtgrp, struct rmid_read *rr) 472 { 473 int cpu = smp_processor_id(); 474 u32 closid = rdtgrp->closid; 475 u32 rmid = rdtgrp->mon.rmid; 476 struct rdt_l3_mon_domain *d; 477 u64 tval = 0; 478 int err, ret; 479 480 /* 481 * Summing across domains is only done for systems that implement 482 * Sub-NUMA Cluster. There is no overlap with systems that support 483 * assignable counters. 484 */ 485 if (rr->is_mbm_cntr) { 486 pr_warn_once("Summing domains using assignable counters is not supported\n"); 487 rr->err = -EINVAL; 488 return -EINVAL; 489 } 490 491 /* Summing domains that share a cache, must be on a CPU for that cache. */ 492 if (!cpumask_test_cpu(cpu, &rr->ci->shared_cpu_map)) 493 return -EINVAL; 494 495 /* 496 * Legacy files must report the sum of an event across all 497 * domains that share the same L3 cache instance. 498 * Report success if a read from any domain succeeds, -EINVAL 499 * (translated to "Unavailable" for user space) if reading from 500 * all domains fail for any reason. 501 */ 502 ret = -EINVAL; 503 list_for_each_entry(d, &rr->r->mon_domains, hdr.list) { 504 if (d->ci_id != rr->ci->id) 505 continue; 506 err = resctrl_arch_rmid_read(rr->r, &d->hdr, closid, rmid, 507 rr->evt->evtid, rr->evt->arch_priv, 508 &tval, rr->arch_mon_ctx); 509 if (!err) { 510 rr->val += tval; 511 ret = 0; 512 } 513 } 514 515 if (ret) 516 rr->err = ret; 517 518 return ret; 519 } 520 521 static int __mon_event_count(struct rdtgroup *rdtgrp, struct rmid_read *rr) 522 { 523 switch (rr->r->rid) { 524 case RDT_RESOURCE_L3: 525 WARN_ON_ONCE(rr->evt->any_cpu); 526 if (rr->hdr) 527 return __l3_mon_event_count(rdtgrp, rr); 528 else 529 return __l3_mon_event_count_sum(rdtgrp, rr); 530 case RDT_RESOURCE_PERF_PKG: { 531 u64 tval = 0; 532 533 rr->err = resctrl_arch_rmid_read(rr->r, rr->hdr, rdtgrp->closid, 534 rdtgrp->mon.rmid, rr->evt->evtid, 535 rr->evt->arch_priv, 536 &tval, rr->arch_mon_ctx); 537 if (rr->err) 538 return rr->err; 539 540 rr->val += tval; 541 542 return 0; 543 } 544 default: 545 rr->err = -EINVAL; 546 return -EINVAL; 547 } 548 } 549 550 /* 551 * mbm_bw_count() - Update bw count from values previously read by 552 * __mon_event_count(). 553 * @rdtgrp: resctrl group associated with the CLOSID and RMID to identify 554 * the cached mbm_state. 555 * @rr: The struct rmid_read populated by __mon_event_count(). 556 * 557 * Supporting function to calculate the memory bandwidth 558 * and delta bandwidth in MBps. The chunks value previously read by 559 * __mon_event_count() is compared with the chunks value from the previous 560 * invocation. This must be called once per second to maintain values in MBps. 561 */ 562 static void mbm_bw_count(struct rdtgroup *rdtgrp, struct rmid_read *rr) 563 { 564 u64 cur_bw, bytes, cur_bytes; 565 u32 closid = rdtgrp->closid; 566 u32 rmid = rdtgrp->mon.rmid; 567 struct rdt_l3_mon_domain *d; 568 struct mbm_state *m; 569 570 if (!domain_header_is_valid(rr->hdr, RESCTRL_MON_DOMAIN, RDT_RESOURCE_L3)) 571 return; 572 d = container_of(rr->hdr, struct rdt_l3_mon_domain, hdr); 573 m = get_mbm_state(d, closid, rmid, rr->evt->evtid); 574 if (WARN_ON_ONCE(!m)) 575 return; 576 577 cur_bytes = rr->val; 578 bytes = cur_bytes - m->prev_bw_bytes; 579 m->prev_bw_bytes = cur_bytes; 580 581 cur_bw = bytes / SZ_1M; 582 583 m->prev_bw = cur_bw; 584 } 585 586 /* 587 * This is scheduled by mon_event_read() to read the CQM/MBM counters 588 * on a domain. 589 */ 590 void mon_event_count(void *info) 591 { 592 struct rdtgroup *rdtgrp, *entry; 593 struct rmid_read *rr = info; 594 struct list_head *head; 595 int ret; 596 597 rdtgrp = rr->rgrp; 598 599 ret = __mon_event_count(rdtgrp, rr); 600 601 /* 602 * For Ctrl groups read data from child monitor groups and 603 * add them together. Count events which are read successfully. 604 * Discard the rmid_read's reporting errors. 605 */ 606 head = &rdtgrp->mon.crdtgrp_list; 607 608 if (rdtgrp->type == RDTCTRL_GROUP) { 609 list_for_each_entry(entry, head, mon.crdtgrp_list) { 610 if (__mon_event_count(entry, rr) == 0) 611 ret = 0; 612 } 613 } 614 615 /* 616 * __mon_event_count() calls for newly created monitor groups may 617 * report -EINVAL/Unavailable if the monitor hasn't seen any traffic. 618 * Discard error if any of the monitor event reads succeeded. 619 */ 620 if (ret == 0) 621 rr->err = 0; 622 } 623 624 static struct rdt_ctrl_domain *get_ctrl_domain_from_cpu(int cpu, 625 struct rdt_resource *r) 626 { 627 struct rdt_ctrl_domain *d; 628 629 lockdep_assert_cpus_held(); 630 631 list_for_each_entry(d, &r->ctrl_domains, hdr.list) { 632 /* Find the domain that contains this CPU */ 633 if (cpumask_test_cpu(cpu, &d->hdr.cpu_mask)) 634 return d; 635 } 636 637 return NULL; 638 } 639 640 /* 641 * Feedback loop for MBA software controller (mba_sc) 642 * 643 * mba_sc is a feedback loop where we periodically read MBM counters and 644 * adjust the bandwidth percentage values via the IA32_MBA_THRTL_MSRs so 645 * that: 646 * 647 * current bandwidth(cur_bw) < user specified bandwidth(user_bw) 648 * 649 * This uses the MBM counters to measure the bandwidth and MBA throttle 650 * MSRs to control the bandwidth for a particular rdtgrp. It builds on the 651 * fact that resctrl rdtgroups have both monitoring and control. 652 * 653 * The frequency of the checks is 1s and we just tag along the MBM overflow 654 * timer. Having 1s interval makes the calculation of bandwidth simpler. 655 * 656 * Although MBA's goal is to restrict the bandwidth to a maximum, there may 657 * be a need to increase the bandwidth to avoid unnecessarily restricting 658 * the L2 <-> L3 traffic. 659 * 660 * Since MBA controls the L2 external bandwidth where as MBM measures the 661 * L3 external bandwidth the following sequence could lead to such a 662 * situation. 663 * 664 * Consider an rdtgroup which had high L3 <-> memory traffic in initial 665 * phases -> mba_sc kicks in and reduced bandwidth percentage values -> but 666 * after some time rdtgroup has mostly L2 <-> L3 traffic. 667 * 668 * In this case we may restrict the rdtgroup's L2 <-> L3 traffic as its 669 * throttle MSRs already have low percentage values. To avoid 670 * unnecessarily restricting such rdtgroups, we also increase the bandwidth. 671 */ 672 static void update_mba_bw(struct rdtgroup *rgrp, struct rdt_l3_mon_domain *dom_mbm) 673 { 674 u32 closid, rmid, cur_msr_val, new_msr_val; 675 struct mbm_state *pmbm_data, *cmbm_data; 676 struct rdt_ctrl_domain *dom_mba; 677 enum resctrl_event_id evt_id; 678 struct rdt_resource *r_mba; 679 struct list_head *head; 680 struct rdtgroup *entry; 681 u32 cur_bw, user_bw; 682 683 r_mba = resctrl_arch_get_resource(RDT_RESOURCE_MBA); 684 evt_id = rgrp->mba_mbps_event; 685 686 closid = rgrp->closid; 687 rmid = rgrp->mon.rmid; 688 pmbm_data = get_mbm_state(dom_mbm, closid, rmid, evt_id); 689 if (WARN_ON_ONCE(!pmbm_data)) 690 return; 691 692 dom_mba = get_ctrl_domain_from_cpu(smp_processor_id(), r_mba); 693 if (!dom_mba) { 694 pr_warn_once("Failure to get domain for MBA update\n"); 695 return; 696 } 697 698 cur_bw = pmbm_data->prev_bw; 699 user_bw = dom_mba->mbps_val[closid]; 700 701 /* MBA resource doesn't support CDP */ 702 cur_msr_val = resctrl_arch_get_config(r_mba, dom_mba, closid, CDP_NONE); 703 704 /* 705 * For Ctrl groups read data from child monitor groups. 706 */ 707 head = &rgrp->mon.crdtgrp_list; 708 list_for_each_entry(entry, head, mon.crdtgrp_list) { 709 cmbm_data = get_mbm_state(dom_mbm, entry->closid, entry->mon.rmid, evt_id); 710 if (WARN_ON_ONCE(!cmbm_data)) 711 return; 712 cur_bw += cmbm_data->prev_bw; 713 } 714 715 /* 716 * Scale up/down the bandwidth linearly for the ctrl group. The 717 * bandwidth step is the bandwidth granularity specified by the 718 * hardware. 719 * Always increase throttling if current bandwidth is above the 720 * target set by user. 721 * But avoid thrashing up and down on every poll by checking 722 * whether a decrease in throttling is likely to push the group 723 * back over target. E.g. if currently throttling to 30% of bandwidth 724 * on a system with 10% granularity steps, check whether moving to 725 * 40% would go past the limit by multiplying current bandwidth by 726 * "(30 + 10) / 30". 727 */ 728 if (cur_msr_val > r_mba->membw.min_bw && user_bw < cur_bw) { 729 new_msr_val = cur_msr_val - r_mba->membw.bw_gran; 730 } else if (cur_msr_val < MAX_MBA_BW && 731 (user_bw > (cur_bw * (cur_msr_val + r_mba->membw.min_bw) / cur_msr_val))) { 732 new_msr_val = cur_msr_val + r_mba->membw.bw_gran; 733 } else { 734 return; 735 } 736 737 resctrl_arch_update_one(r_mba, dom_mba, closid, CDP_NONE, new_msr_val); 738 } 739 740 static void mbm_update_one_event(struct rdt_resource *r, struct rdt_l3_mon_domain *d, 741 struct rdtgroup *rdtgrp, enum resctrl_event_id evtid) 742 { 743 struct rmid_read rr = {0}; 744 745 rr.r = r; 746 rr.hdr = &d->hdr; 747 rr.evt = &mon_event_all[evtid]; 748 if (resctrl_arch_mbm_cntr_assign_enabled(r)) { 749 rr.is_mbm_cntr = true; 750 } else { 751 rr.arch_mon_ctx = resctrl_arch_mon_ctx_alloc(rr.r, evtid); 752 if (IS_ERR(rr.arch_mon_ctx)) { 753 pr_warn_ratelimited("Failed to allocate monitor context: %ld", 754 PTR_ERR(rr.arch_mon_ctx)); 755 return; 756 } 757 } 758 759 __mon_event_count(rdtgrp, &rr); 760 761 /* 762 * If the software controller is enabled, compute the 763 * bandwidth for this event id. 764 */ 765 if (is_mba_sc(NULL)) 766 mbm_bw_count(rdtgrp, &rr); 767 768 if (rr.arch_mon_ctx) 769 resctrl_arch_mon_ctx_free(rr.r, evtid, rr.arch_mon_ctx); 770 } 771 772 static void mbm_update(struct rdt_resource *r, struct rdt_l3_mon_domain *d, 773 struct rdtgroup *rdtgrp) 774 { 775 /* 776 * This is protected from concurrent reads from user as both 777 * the user and overflow handler hold the global mutex. 778 */ 779 if (resctrl_is_mon_event_enabled(QOS_L3_MBM_TOTAL_EVENT_ID)) 780 mbm_update_one_event(r, d, rdtgrp, QOS_L3_MBM_TOTAL_EVENT_ID); 781 782 if (resctrl_is_mon_event_enabled(QOS_L3_MBM_LOCAL_EVENT_ID)) 783 mbm_update_one_event(r, d, rdtgrp, QOS_L3_MBM_LOCAL_EVENT_ID); 784 } 785 786 /* 787 * Handler to scan the limbo list and move the RMIDs 788 * to free list whose occupancy < threshold_occupancy. 789 */ 790 void cqm_handle_limbo(struct work_struct *work) 791 { 792 unsigned long delay = msecs_to_jiffies(CQM_LIMBOCHECK_INTERVAL); 793 struct rdt_l3_mon_domain *d; 794 795 cpus_read_lock(); 796 mutex_lock(&rdtgroup_mutex); 797 798 d = container_of(work, struct rdt_l3_mon_domain, cqm_limbo.work); 799 800 __check_limbo(d, false); 801 802 if (has_busy_rmid(d)) { 803 d->cqm_work_cpu = cpumask_any_housekeeping(&d->hdr.cpu_mask, 804 RESCTRL_PICK_ANY_CPU); 805 schedule_delayed_work_on(d->cqm_work_cpu, &d->cqm_limbo, 806 delay); 807 } 808 809 mutex_unlock(&rdtgroup_mutex); 810 cpus_read_unlock(); 811 } 812 813 /** 814 * cqm_setup_limbo_handler() - Schedule the limbo handler to run for this 815 * domain. 816 * @dom: The domain the limbo handler should run for. 817 * @delay_ms: How far in the future the handler should run. 818 * @exclude_cpu: Which CPU the handler should not run on, 819 * RESCTRL_PICK_ANY_CPU to pick any CPU. 820 */ 821 void cqm_setup_limbo_handler(struct rdt_l3_mon_domain *dom, unsigned long delay_ms, 822 int exclude_cpu) 823 { 824 unsigned long delay = msecs_to_jiffies(delay_ms); 825 int cpu; 826 827 cpu = cpumask_any_housekeeping(&dom->hdr.cpu_mask, exclude_cpu); 828 dom->cqm_work_cpu = cpu; 829 830 if (cpu < nr_cpu_ids) 831 schedule_delayed_work_on(cpu, &dom->cqm_limbo, delay); 832 } 833 834 void mbm_handle_overflow(struct work_struct *work) 835 { 836 unsigned long delay = msecs_to_jiffies(MBM_OVERFLOW_INTERVAL); 837 struct rdtgroup *prgrp, *crgrp; 838 struct rdt_l3_mon_domain *d; 839 struct list_head *head; 840 struct rdt_resource *r; 841 842 cpus_read_lock(); 843 mutex_lock(&rdtgroup_mutex); 844 845 /* 846 * If the filesystem has been unmounted this work no longer needs to 847 * run. 848 */ 849 if (!resctrl_mounted || !resctrl_arch_mon_capable()) 850 goto out_unlock; 851 852 r = resctrl_arch_get_resource(RDT_RESOURCE_L3); 853 d = container_of(work, struct rdt_l3_mon_domain, mbm_over.work); 854 855 list_for_each_entry(prgrp, &rdt_all_groups, rdtgroup_list) { 856 mbm_update(r, d, prgrp); 857 858 head = &prgrp->mon.crdtgrp_list; 859 list_for_each_entry(crgrp, head, mon.crdtgrp_list) 860 mbm_update(r, d, crgrp); 861 862 if (is_mba_sc(NULL)) 863 update_mba_bw(prgrp, d); 864 } 865 866 /* 867 * Re-check for housekeeping CPUs. This allows the overflow handler to 868 * move off a nohz_full CPU quickly. 869 */ 870 d->mbm_work_cpu = cpumask_any_housekeeping(&d->hdr.cpu_mask, 871 RESCTRL_PICK_ANY_CPU); 872 schedule_delayed_work_on(d->mbm_work_cpu, &d->mbm_over, delay); 873 874 out_unlock: 875 mutex_unlock(&rdtgroup_mutex); 876 cpus_read_unlock(); 877 } 878 879 /** 880 * mbm_setup_overflow_handler() - Schedule the overflow handler to run for this 881 * domain. 882 * @dom: The domain the overflow handler should run for. 883 * @delay_ms: How far in the future the handler should run. 884 * @exclude_cpu: Which CPU the handler should not run on, 885 * RESCTRL_PICK_ANY_CPU to pick any CPU. 886 */ 887 void mbm_setup_overflow_handler(struct rdt_l3_mon_domain *dom, unsigned long delay_ms, 888 int exclude_cpu) 889 { 890 unsigned long delay = msecs_to_jiffies(delay_ms); 891 int cpu; 892 893 /* 894 * When a domain comes online there is no guarantee the filesystem is 895 * mounted. If not, there is no need to catch counter overflow. 896 */ 897 if (!resctrl_mounted || !resctrl_arch_mon_capable()) 898 return; 899 cpu = cpumask_any_housekeeping(&dom->hdr.cpu_mask, exclude_cpu); 900 dom->mbm_work_cpu = cpu; 901 902 if (cpu < nr_cpu_ids) 903 schedule_delayed_work_on(cpu, &dom->mbm_over, delay); 904 } 905 906 static int dom_data_init(struct rdt_resource *r) 907 { 908 u32 idx_limit = resctrl_arch_system_num_rmid_idx(); 909 struct rmid_entry *entry = NULL; 910 int err = 0, i; 911 u32 idx; 912 913 mutex_lock(&rdtgroup_mutex); 914 915 rmid_ptrs = kcalloc(idx_limit, sizeof(struct rmid_entry), GFP_KERNEL); 916 if (!rmid_ptrs) { 917 err = -ENOMEM; 918 goto out_unlock; 919 } 920 921 for (i = 0; i < idx_limit; i++) { 922 entry = &rmid_ptrs[i]; 923 INIT_LIST_HEAD(&entry->list); 924 925 resctrl_arch_rmid_idx_decode(i, &entry->closid, &entry->rmid); 926 list_add_tail(&entry->list, &rmid_free_lru); 927 } 928 929 /* 930 * RESCTRL_RESERVED_CLOSID and RESCTRL_RESERVED_RMID are special and 931 * are always allocated. These are used for the rdtgroup_default 932 * control group, which will be setup later in resctrl_init(). 933 */ 934 idx = resctrl_arch_rmid_idx_encode(RESCTRL_RESERVED_CLOSID, 935 RESCTRL_RESERVED_RMID); 936 entry = __rmid_entry(idx); 937 list_del(&entry->list); 938 939 out_unlock: 940 mutex_unlock(&rdtgroup_mutex); 941 942 return err; 943 } 944 945 static void dom_data_exit(struct rdt_resource *r) 946 { 947 mutex_lock(&rdtgroup_mutex); 948 949 if (!r->mon_capable) 950 goto out_unlock; 951 952 kfree(rmid_ptrs); 953 rmid_ptrs = NULL; 954 955 out_unlock: 956 mutex_unlock(&rdtgroup_mutex); 957 } 958 959 #define MON_EVENT(_eventid, _name, _res, _fp) \ 960 [_eventid] = { \ 961 .name = _name, \ 962 .evtid = _eventid, \ 963 .rid = _res, \ 964 .is_floating_point = _fp, \ 965 } 966 967 /* 968 * All available events. Architecture code marks the ones that 969 * are supported by a system using resctrl_enable_mon_event() 970 * to set .enabled. 971 */ 972 struct mon_evt mon_event_all[QOS_NUM_EVENTS] = { 973 MON_EVENT(QOS_L3_OCCUP_EVENT_ID, "llc_occupancy", RDT_RESOURCE_L3, false), 974 MON_EVENT(QOS_L3_MBM_TOTAL_EVENT_ID, "mbm_total_bytes", RDT_RESOURCE_L3, false), 975 MON_EVENT(QOS_L3_MBM_LOCAL_EVENT_ID, "mbm_local_bytes", RDT_RESOURCE_L3, false), 976 MON_EVENT(PMT_EVENT_ENERGY, "core_energy", RDT_RESOURCE_PERF_PKG, true), 977 MON_EVENT(PMT_EVENT_ACTIVITY, "activity", RDT_RESOURCE_PERF_PKG, true), 978 MON_EVENT(PMT_EVENT_STALLS_LLC_HIT, "stalls_llc_hit", RDT_RESOURCE_PERF_PKG, false), 979 MON_EVENT(PMT_EVENT_C1_RES, "c1_res", RDT_RESOURCE_PERF_PKG, false), 980 MON_EVENT(PMT_EVENT_UNHALTED_CORE_CYCLES, "unhalted_core_cycles", RDT_RESOURCE_PERF_PKG, false), 981 MON_EVENT(PMT_EVENT_STALLS_LLC_MISS, "stalls_llc_miss", RDT_RESOURCE_PERF_PKG, false), 982 MON_EVENT(PMT_EVENT_AUTO_C6_RES, "c6_res", RDT_RESOURCE_PERF_PKG, false), 983 MON_EVENT(PMT_EVENT_UNHALTED_REF_CYCLES, "unhalted_ref_cycles", RDT_RESOURCE_PERF_PKG, false), 984 MON_EVENT(PMT_EVENT_UOPS_RETIRED, "uops_retired", RDT_RESOURCE_PERF_PKG, false), 985 }; 986 987 bool resctrl_enable_mon_event(enum resctrl_event_id eventid, bool any_cpu, 988 unsigned int binary_bits, void *arch_priv) 989 { 990 if (WARN_ON_ONCE(eventid < QOS_FIRST_EVENT || eventid >= QOS_NUM_EVENTS || 991 binary_bits > MAX_BINARY_BITS)) 992 return false; 993 if (mon_event_all[eventid].enabled) { 994 pr_warn("Duplicate enable for event %d\n", eventid); 995 return false; 996 } 997 if (binary_bits && !mon_event_all[eventid].is_floating_point) { 998 pr_warn("Event %d may not be floating point\n", eventid); 999 return false; 1000 } 1001 1002 mon_event_all[eventid].any_cpu = any_cpu; 1003 mon_event_all[eventid].binary_bits = binary_bits; 1004 mon_event_all[eventid].arch_priv = arch_priv; 1005 mon_event_all[eventid].enabled = true; 1006 1007 return true; 1008 } 1009 1010 bool resctrl_is_mon_event_enabled(enum resctrl_event_id eventid) 1011 { 1012 return eventid >= QOS_FIRST_EVENT && eventid < QOS_NUM_EVENTS && 1013 mon_event_all[eventid].enabled; 1014 } 1015 1016 u32 resctrl_get_mon_evt_cfg(enum resctrl_event_id evtid) 1017 { 1018 return mon_event_all[evtid].evt_cfg; 1019 } 1020 1021 /** 1022 * struct mbm_transaction - Memory transaction an MBM event can be configured with. 1023 * @name: Name of memory transaction (read, write ...). 1024 * @val: The bit (eg. READS_TO_LOCAL_MEM or READS_TO_REMOTE_MEM) used to 1025 * represent the memory transaction within an event's configuration. 1026 */ 1027 struct mbm_transaction { 1028 char name[32]; 1029 u32 val; 1030 }; 1031 1032 /* Decoded values for each type of memory transaction. */ 1033 static struct mbm_transaction mbm_transactions[NUM_MBM_TRANSACTIONS] = { 1034 {"local_reads", READS_TO_LOCAL_MEM}, 1035 {"remote_reads", READS_TO_REMOTE_MEM}, 1036 {"local_non_temporal_writes", NON_TEMP_WRITE_TO_LOCAL_MEM}, 1037 {"remote_non_temporal_writes", NON_TEMP_WRITE_TO_REMOTE_MEM}, 1038 {"local_reads_slow_memory", READS_TO_LOCAL_S_MEM}, 1039 {"remote_reads_slow_memory", READS_TO_REMOTE_S_MEM}, 1040 {"dirty_victim_writes_all", DIRTY_VICTIMS_TO_ALL_MEM}, 1041 }; 1042 1043 int event_filter_show(struct kernfs_open_file *of, struct seq_file *seq, void *v) 1044 { 1045 struct mon_evt *mevt = rdt_kn_parent_priv(of->kn); 1046 struct rdt_resource *r; 1047 bool sep = false; 1048 int ret = 0, i; 1049 1050 mutex_lock(&rdtgroup_mutex); 1051 rdt_last_cmd_clear(); 1052 1053 r = resctrl_arch_get_resource(mevt->rid); 1054 if (!resctrl_arch_mbm_cntr_assign_enabled(r)) { 1055 rdt_last_cmd_puts("mbm_event counter assignment mode is not enabled\n"); 1056 ret = -EINVAL; 1057 goto out_unlock; 1058 } 1059 1060 for (i = 0; i < NUM_MBM_TRANSACTIONS; i++) { 1061 if (mevt->evt_cfg & mbm_transactions[i].val) { 1062 if (sep) 1063 seq_putc(seq, ','); 1064 seq_printf(seq, "%s", mbm_transactions[i].name); 1065 sep = true; 1066 } 1067 } 1068 seq_putc(seq, '\n'); 1069 1070 out_unlock: 1071 mutex_unlock(&rdtgroup_mutex); 1072 1073 return ret; 1074 } 1075 1076 int resctrl_mbm_assign_on_mkdir_show(struct kernfs_open_file *of, struct seq_file *s, 1077 void *v) 1078 { 1079 struct rdt_resource *r = rdt_kn_parent_priv(of->kn); 1080 int ret = 0; 1081 1082 mutex_lock(&rdtgroup_mutex); 1083 rdt_last_cmd_clear(); 1084 1085 if (!resctrl_arch_mbm_cntr_assign_enabled(r)) { 1086 rdt_last_cmd_puts("mbm_event counter assignment mode is not enabled\n"); 1087 ret = -EINVAL; 1088 goto out_unlock; 1089 } 1090 1091 seq_printf(s, "%u\n", r->mon.mbm_assign_on_mkdir); 1092 1093 out_unlock: 1094 mutex_unlock(&rdtgroup_mutex); 1095 1096 return ret; 1097 } 1098 1099 ssize_t resctrl_mbm_assign_on_mkdir_write(struct kernfs_open_file *of, char *buf, 1100 size_t nbytes, loff_t off) 1101 { 1102 struct rdt_resource *r = rdt_kn_parent_priv(of->kn); 1103 bool value; 1104 int ret; 1105 1106 ret = kstrtobool(buf, &value); 1107 if (ret) 1108 return ret; 1109 1110 mutex_lock(&rdtgroup_mutex); 1111 rdt_last_cmd_clear(); 1112 1113 if (!resctrl_arch_mbm_cntr_assign_enabled(r)) { 1114 rdt_last_cmd_puts("mbm_event counter assignment mode is not enabled\n"); 1115 ret = -EINVAL; 1116 goto out_unlock; 1117 } 1118 1119 r->mon.mbm_assign_on_mkdir = value; 1120 1121 out_unlock: 1122 mutex_unlock(&rdtgroup_mutex); 1123 1124 return ret ?: nbytes; 1125 } 1126 1127 /* 1128 * mbm_cntr_free_all() - Clear all the counter ID configuration details in the 1129 * domain @d. Called when mbm_assign_mode is changed. 1130 */ 1131 static void mbm_cntr_free_all(struct rdt_resource *r, struct rdt_l3_mon_domain *d) 1132 { 1133 memset(d->cntr_cfg, 0, sizeof(*d->cntr_cfg) * r->mon.num_mbm_cntrs); 1134 } 1135 1136 /* 1137 * resctrl_reset_rmid_all() - Reset all non-architecture states for all the 1138 * supported RMIDs. 1139 */ 1140 static void resctrl_reset_rmid_all(struct rdt_resource *r, struct rdt_l3_mon_domain *d) 1141 { 1142 u32 idx_limit = resctrl_arch_system_num_rmid_idx(); 1143 enum resctrl_event_id evt; 1144 int idx; 1145 1146 for_each_mbm_event_id(evt) { 1147 if (!resctrl_is_mon_event_enabled(evt)) 1148 continue; 1149 idx = MBM_STATE_IDX(evt); 1150 memset(d->mbm_states[idx], 0, sizeof(*d->mbm_states[0]) * idx_limit); 1151 } 1152 } 1153 1154 /* 1155 * rdtgroup_assign_cntr() - Assign/unassign the counter ID for the event, RMID 1156 * pair in the domain. 1157 * 1158 * Assign the counter if @assign is true else unassign the counter. Reset the 1159 * associated non-architectural state. 1160 */ 1161 static void rdtgroup_assign_cntr(struct rdt_resource *r, struct rdt_l3_mon_domain *d, 1162 enum resctrl_event_id evtid, u32 rmid, u32 closid, 1163 u32 cntr_id, bool assign) 1164 { 1165 struct mbm_state *m; 1166 1167 resctrl_arch_config_cntr(r, d, evtid, rmid, closid, cntr_id, assign); 1168 1169 m = get_mbm_state(d, closid, rmid, evtid); 1170 if (m) 1171 memset(m, 0, sizeof(*m)); 1172 } 1173 1174 /* 1175 * rdtgroup_alloc_assign_cntr() - Allocate a counter ID and assign it to the event 1176 * pointed to by @mevt and the resctrl group @rdtgrp within the domain @d. 1177 * 1178 * Return: 1179 * 0 on success, < 0 on failure. 1180 */ 1181 static int rdtgroup_alloc_assign_cntr(struct rdt_resource *r, struct rdt_l3_mon_domain *d, 1182 struct rdtgroup *rdtgrp, struct mon_evt *mevt) 1183 { 1184 int cntr_id; 1185 1186 /* No action required if the counter is assigned already. */ 1187 cntr_id = mbm_cntr_get(r, d, rdtgrp, mevt->evtid); 1188 if (cntr_id >= 0) 1189 return 0; 1190 1191 cntr_id = mbm_cntr_alloc(r, d, rdtgrp, mevt->evtid); 1192 if (cntr_id < 0) { 1193 rdt_last_cmd_printf("Failed to allocate counter for %s in domain %d\n", 1194 mevt->name, d->hdr.id); 1195 return cntr_id; 1196 } 1197 1198 rdtgroup_assign_cntr(r, d, mevt->evtid, rdtgrp->mon.rmid, rdtgrp->closid, cntr_id, true); 1199 1200 return 0; 1201 } 1202 1203 /* 1204 * rdtgroup_assign_cntr_event() - Assign a hardware counter for the event in 1205 * @mevt to the resctrl group @rdtgrp. Assign counters to all domains if @d is 1206 * NULL; otherwise, assign the counter to the specified domain @d. 1207 * 1208 * If all counters in a domain are already in use, rdtgroup_alloc_assign_cntr() 1209 * will fail. The assignment process will abort at the first failure encountered 1210 * during domain traversal, which may result in the event being only partially 1211 * assigned. 1212 * 1213 * Return: 1214 * 0 on success, < 0 on failure. 1215 */ 1216 static int rdtgroup_assign_cntr_event(struct rdt_l3_mon_domain *d, struct rdtgroup *rdtgrp, 1217 struct mon_evt *mevt) 1218 { 1219 struct rdt_resource *r = resctrl_arch_get_resource(mevt->rid); 1220 int ret = 0; 1221 1222 if (!d) { 1223 list_for_each_entry(d, &r->mon_domains, hdr.list) { 1224 ret = rdtgroup_alloc_assign_cntr(r, d, rdtgrp, mevt); 1225 if (ret) 1226 return ret; 1227 } 1228 } else { 1229 ret = rdtgroup_alloc_assign_cntr(r, d, rdtgrp, mevt); 1230 } 1231 1232 return ret; 1233 } 1234 1235 /* 1236 * rdtgroup_assign_cntrs() - Assign counters to MBM events. Called when 1237 * a new group is created. 1238 * 1239 * Each group can accommodate two counters per domain: one for the total 1240 * event and one for the local event. Assignments may fail due to the limited 1241 * number of counters. However, it is not necessary to fail the group creation 1242 * and thus no failure is returned. Users have the option to modify the 1243 * counter assignments after the group has been created. 1244 */ 1245 void rdtgroup_assign_cntrs(struct rdtgroup *rdtgrp) 1246 { 1247 struct rdt_resource *r = resctrl_arch_get_resource(RDT_RESOURCE_L3); 1248 1249 if (!r->mon_capable || !resctrl_arch_mbm_cntr_assign_enabled(r) || 1250 !r->mon.mbm_assign_on_mkdir) 1251 return; 1252 1253 if (resctrl_is_mon_event_enabled(QOS_L3_MBM_TOTAL_EVENT_ID)) 1254 rdtgroup_assign_cntr_event(NULL, rdtgrp, 1255 &mon_event_all[QOS_L3_MBM_TOTAL_EVENT_ID]); 1256 1257 if (resctrl_is_mon_event_enabled(QOS_L3_MBM_LOCAL_EVENT_ID)) 1258 rdtgroup_assign_cntr_event(NULL, rdtgrp, 1259 &mon_event_all[QOS_L3_MBM_LOCAL_EVENT_ID]); 1260 } 1261 1262 /* 1263 * rdtgroup_free_unassign_cntr() - Unassign and reset the counter ID configuration 1264 * for the event pointed to by @mevt within the domain @d and resctrl group @rdtgrp. 1265 */ 1266 static void rdtgroup_free_unassign_cntr(struct rdt_resource *r, struct rdt_l3_mon_domain *d, 1267 struct rdtgroup *rdtgrp, struct mon_evt *mevt) 1268 { 1269 int cntr_id; 1270 1271 cntr_id = mbm_cntr_get(r, d, rdtgrp, mevt->evtid); 1272 1273 /* If there is no cntr_id assigned, nothing to do */ 1274 if (cntr_id < 0) 1275 return; 1276 1277 rdtgroup_assign_cntr(r, d, mevt->evtid, rdtgrp->mon.rmid, rdtgrp->closid, cntr_id, false); 1278 1279 mbm_cntr_free(d, cntr_id); 1280 } 1281 1282 /* 1283 * rdtgroup_unassign_cntr_event() - Unassign a hardware counter associated with 1284 * the event structure @mevt from the domain @d and the group @rdtgrp. Unassign 1285 * the counters from all the domains if @d is NULL else unassign from @d. 1286 */ 1287 static void rdtgroup_unassign_cntr_event(struct rdt_l3_mon_domain *d, struct rdtgroup *rdtgrp, 1288 struct mon_evt *mevt) 1289 { 1290 struct rdt_resource *r = resctrl_arch_get_resource(mevt->rid); 1291 1292 if (!d) { 1293 list_for_each_entry(d, &r->mon_domains, hdr.list) 1294 rdtgroup_free_unassign_cntr(r, d, rdtgrp, mevt); 1295 } else { 1296 rdtgroup_free_unassign_cntr(r, d, rdtgrp, mevt); 1297 } 1298 } 1299 1300 /* 1301 * rdtgroup_unassign_cntrs() - Unassign the counters associated with MBM events. 1302 * Called when a group is deleted. 1303 */ 1304 void rdtgroup_unassign_cntrs(struct rdtgroup *rdtgrp) 1305 { 1306 struct rdt_resource *r = resctrl_arch_get_resource(RDT_RESOURCE_L3); 1307 1308 if (!r->mon_capable || !resctrl_arch_mbm_cntr_assign_enabled(r)) 1309 return; 1310 1311 if (resctrl_is_mon_event_enabled(QOS_L3_MBM_TOTAL_EVENT_ID)) 1312 rdtgroup_unassign_cntr_event(NULL, rdtgrp, 1313 &mon_event_all[QOS_L3_MBM_TOTAL_EVENT_ID]); 1314 1315 if (resctrl_is_mon_event_enabled(QOS_L3_MBM_LOCAL_EVENT_ID)) 1316 rdtgroup_unassign_cntr_event(NULL, rdtgrp, 1317 &mon_event_all[QOS_L3_MBM_LOCAL_EVENT_ID]); 1318 } 1319 1320 static int resctrl_parse_mem_transactions(char *tok, u32 *val) 1321 { 1322 u32 temp_val = 0; 1323 char *evt_str; 1324 bool found; 1325 int i; 1326 1327 next_config: 1328 if (!tok || tok[0] == '\0') { 1329 *val = temp_val; 1330 return 0; 1331 } 1332 1333 /* Start processing the strings for each memory transaction type */ 1334 evt_str = strim(strsep(&tok, ",")); 1335 found = false; 1336 for (i = 0; i < NUM_MBM_TRANSACTIONS; i++) { 1337 if (!strcmp(mbm_transactions[i].name, evt_str)) { 1338 temp_val |= mbm_transactions[i].val; 1339 found = true; 1340 break; 1341 } 1342 } 1343 1344 if (!found) { 1345 rdt_last_cmd_printf("Invalid memory transaction type %s\n", evt_str); 1346 return -EINVAL; 1347 } 1348 1349 goto next_config; 1350 } 1351 1352 /* 1353 * rdtgroup_update_cntr_event - Update the counter assignments for the event 1354 * in a group. 1355 * @r: Resource to which update needs to be done. 1356 * @rdtgrp: Resctrl group. 1357 * @evtid: MBM monitor event. 1358 */ 1359 static void rdtgroup_update_cntr_event(struct rdt_resource *r, struct rdtgroup *rdtgrp, 1360 enum resctrl_event_id evtid) 1361 { 1362 struct rdt_l3_mon_domain *d; 1363 int cntr_id; 1364 1365 list_for_each_entry(d, &r->mon_domains, hdr.list) { 1366 cntr_id = mbm_cntr_get(r, d, rdtgrp, evtid); 1367 if (cntr_id >= 0) 1368 rdtgroup_assign_cntr(r, d, evtid, rdtgrp->mon.rmid, 1369 rdtgrp->closid, cntr_id, true); 1370 } 1371 } 1372 1373 /* 1374 * resctrl_update_cntr_allrdtgrp - Update the counter assignments for the event 1375 * for all the groups. 1376 * @mevt MBM Monitor event. 1377 */ 1378 static void resctrl_update_cntr_allrdtgrp(struct mon_evt *mevt) 1379 { 1380 struct rdt_resource *r = resctrl_arch_get_resource(mevt->rid); 1381 struct rdtgroup *prgrp, *crgrp; 1382 1383 /* 1384 * Find all the groups where the event is assigned and update the 1385 * configuration of existing assignments. 1386 */ 1387 list_for_each_entry(prgrp, &rdt_all_groups, rdtgroup_list) { 1388 rdtgroup_update_cntr_event(r, prgrp, mevt->evtid); 1389 1390 list_for_each_entry(crgrp, &prgrp->mon.crdtgrp_list, mon.crdtgrp_list) 1391 rdtgroup_update_cntr_event(r, crgrp, mevt->evtid); 1392 } 1393 } 1394 1395 ssize_t event_filter_write(struct kernfs_open_file *of, char *buf, size_t nbytes, 1396 loff_t off) 1397 { 1398 struct mon_evt *mevt = rdt_kn_parent_priv(of->kn); 1399 struct rdt_resource *r; 1400 u32 evt_cfg = 0; 1401 int ret = 0; 1402 1403 /* Valid input requires a trailing newline */ 1404 if (nbytes == 0 || buf[nbytes - 1] != '\n') 1405 return -EINVAL; 1406 1407 buf[nbytes - 1] = '\0'; 1408 1409 cpus_read_lock(); 1410 mutex_lock(&rdtgroup_mutex); 1411 1412 rdt_last_cmd_clear(); 1413 1414 r = resctrl_arch_get_resource(mevt->rid); 1415 if (!resctrl_arch_mbm_cntr_assign_enabled(r)) { 1416 rdt_last_cmd_puts("mbm_event counter assignment mode is not enabled\n"); 1417 ret = -EINVAL; 1418 goto out_unlock; 1419 } 1420 1421 ret = resctrl_parse_mem_transactions(buf, &evt_cfg); 1422 if (!ret && mevt->evt_cfg != evt_cfg) { 1423 mevt->evt_cfg = evt_cfg; 1424 resctrl_update_cntr_allrdtgrp(mevt); 1425 } 1426 1427 out_unlock: 1428 mutex_unlock(&rdtgroup_mutex); 1429 cpus_read_unlock(); 1430 1431 return ret ?: nbytes; 1432 } 1433 1434 int resctrl_mbm_assign_mode_show(struct kernfs_open_file *of, 1435 struct seq_file *s, void *v) 1436 { 1437 struct rdt_resource *r = rdt_kn_parent_priv(of->kn); 1438 bool enabled; 1439 1440 mutex_lock(&rdtgroup_mutex); 1441 enabled = resctrl_arch_mbm_cntr_assign_enabled(r); 1442 1443 if (r->mon.mbm_cntr_assignable) { 1444 if (enabled) 1445 seq_puts(s, "[mbm_event]\n"); 1446 else 1447 seq_puts(s, "[default]\n"); 1448 1449 if (!IS_ENABLED(CONFIG_RESCTRL_ASSIGN_FIXED)) { 1450 if (enabled) 1451 seq_puts(s, "default\n"); 1452 else 1453 seq_puts(s, "mbm_event\n"); 1454 } 1455 } else { 1456 seq_puts(s, "[default]\n"); 1457 } 1458 1459 mutex_unlock(&rdtgroup_mutex); 1460 1461 return 0; 1462 } 1463 1464 ssize_t resctrl_mbm_assign_mode_write(struct kernfs_open_file *of, char *buf, 1465 size_t nbytes, loff_t off) 1466 { 1467 struct rdt_resource *r = rdt_kn_parent_priv(of->kn); 1468 struct rdt_l3_mon_domain *d; 1469 int ret = 0; 1470 bool enable; 1471 1472 /* Valid input requires a trailing newline */ 1473 if (nbytes == 0 || buf[nbytes - 1] != '\n') 1474 return -EINVAL; 1475 1476 buf[nbytes - 1] = '\0'; 1477 1478 cpus_read_lock(); 1479 mutex_lock(&rdtgroup_mutex); 1480 1481 rdt_last_cmd_clear(); 1482 1483 if (!strcmp(buf, "default")) { 1484 enable = 0; 1485 } else if (!strcmp(buf, "mbm_event")) { 1486 if (r->mon.mbm_cntr_assignable) { 1487 enable = 1; 1488 } else { 1489 ret = -EINVAL; 1490 rdt_last_cmd_puts("mbm_event mode is not supported\n"); 1491 goto out_unlock; 1492 } 1493 } else { 1494 ret = -EINVAL; 1495 rdt_last_cmd_puts("Unsupported assign mode\n"); 1496 goto out_unlock; 1497 } 1498 1499 if (enable != resctrl_arch_mbm_cntr_assign_enabled(r)) { 1500 ret = resctrl_arch_mbm_cntr_assign_set(r, enable); 1501 if (ret) 1502 goto out_unlock; 1503 1504 /* Update the visibility of BMEC related files */ 1505 resctrl_bmec_files_show(r, NULL, !enable); 1506 1507 /* 1508 * Initialize the default memory transaction values for 1509 * total and local events. 1510 */ 1511 if (resctrl_is_mon_event_enabled(QOS_L3_MBM_TOTAL_EVENT_ID)) 1512 mon_event_all[QOS_L3_MBM_TOTAL_EVENT_ID].evt_cfg = r->mon.mbm_cfg_mask; 1513 if (resctrl_is_mon_event_enabled(QOS_L3_MBM_LOCAL_EVENT_ID)) 1514 mon_event_all[QOS_L3_MBM_LOCAL_EVENT_ID].evt_cfg = r->mon.mbm_cfg_mask & 1515 (READS_TO_LOCAL_MEM | 1516 READS_TO_LOCAL_S_MEM | 1517 NON_TEMP_WRITE_TO_LOCAL_MEM); 1518 /* Enable auto assignment when switching to "mbm_event" mode */ 1519 if (enable) 1520 r->mon.mbm_assign_on_mkdir = true; 1521 /* 1522 * Reset all the non-achitectural RMID state and assignable counters. 1523 */ 1524 list_for_each_entry(d, &r->mon_domains, hdr.list) { 1525 mbm_cntr_free_all(r, d); 1526 resctrl_reset_rmid_all(r, d); 1527 } 1528 } 1529 1530 out_unlock: 1531 mutex_unlock(&rdtgroup_mutex); 1532 cpus_read_unlock(); 1533 1534 return ret ?: nbytes; 1535 } 1536 1537 int resctrl_num_mbm_cntrs_show(struct kernfs_open_file *of, 1538 struct seq_file *s, void *v) 1539 { 1540 struct rdt_resource *r = rdt_kn_parent_priv(of->kn); 1541 struct rdt_l3_mon_domain *dom; 1542 bool sep = false; 1543 1544 cpus_read_lock(); 1545 mutex_lock(&rdtgroup_mutex); 1546 1547 list_for_each_entry(dom, &r->mon_domains, hdr.list) { 1548 if (sep) 1549 seq_putc(s, ';'); 1550 1551 seq_printf(s, "%d=%d", dom->hdr.id, r->mon.num_mbm_cntrs); 1552 sep = true; 1553 } 1554 seq_putc(s, '\n'); 1555 1556 mutex_unlock(&rdtgroup_mutex); 1557 cpus_read_unlock(); 1558 return 0; 1559 } 1560 1561 int resctrl_available_mbm_cntrs_show(struct kernfs_open_file *of, 1562 struct seq_file *s, void *v) 1563 { 1564 struct rdt_resource *r = rdt_kn_parent_priv(of->kn); 1565 struct rdt_l3_mon_domain *dom; 1566 bool sep = false; 1567 u32 cntrs, i; 1568 int ret = 0; 1569 1570 cpus_read_lock(); 1571 mutex_lock(&rdtgroup_mutex); 1572 1573 rdt_last_cmd_clear(); 1574 1575 if (!resctrl_arch_mbm_cntr_assign_enabled(r)) { 1576 rdt_last_cmd_puts("mbm_event counter assignment mode is not enabled\n"); 1577 ret = -EINVAL; 1578 goto out_unlock; 1579 } 1580 1581 list_for_each_entry(dom, &r->mon_domains, hdr.list) { 1582 if (sep) 1583 seq_putc(s, ';'); 1584 1585 cntrs = 0; 1586 for (i = 0; i < r->mon.num_mbm_cntrs; i++) { 1587 if (!dom->cntr_cfg[i].rdtgrp) 1588 cntrs++; 1589 } 1590 1591 seq_printf(s, "%d=%u", dom->hdr.id, cntrs); 1592 sep = true; 1593 } 1594 seq_putc(s, '\n'); 1595 1596 out_unlock: 1597 mutex_unlock(&rdtgroup_mutex); 1598 cpus_read_unlock(); 1599 1600 return ret; 1601 } 1602 1603 int mbm_L3_assignments_show(struct kernfs_open_file *of, struct seq_file *s, void *v) 1604 { 1605 struct rdt_resource *r = resctrl_arch_get_resource(RDT_RESOURCE_L3); 1606 struct rdt_l3_mon_domain *d; 1607 struct rdtgroup *rdtgrp; 1608 struct mon_evt *mevt; 1609 int ret = 0; 1610 bool sep; 1611 1612 rdtgrp = rdtgroup_kn_lock_live(of->kn); 1613 if (!rdtgrp) { 1614 ret = -ENOENT; 1615 goto out_unlock; 1616 } 1617 1618 rdt_last_cmd_clear(); 1619 if (!resctrl_arch_mbm_cntr_assign_enabled(r)) { 1620 rdt_last_cmd_puts("mbm_event counter assignment mode is not enabled\n"); 1621 ret = -EINVAL; 1622 goto out_unlock; 1623 } 1624 1625 for_each_mon_event(mevt) { 1626 if (mevt->rid != r->rid || !mevt->enabled || !resctrl_is_mbm_event(mevt->evtid)) 1627 continue; 1628 1629 sep = false; 1630 seq_printf(s, "%s:", mevt->name); 1631 list_for_each_entry(d, &r->mon_domains, hdr.list) { 1632 if (sep) 1633 seq_putc(s, ';'); 1634 1635 if (mbm_cntr_get(r, d, rdtgrp, mevt->evtid) < 0) 1636 seq_printf(s, "%d=_", d->hdr.id); 1637 else 1638 seq_printf(s, "%d=e", d->hdr.id); 1639 1640 sep = true; 1641 } 1642 seq_putc(s, '\n'); 1643 } 1644 1645 out_unlock: 1646 rdtgroup_kn_unlock(of->kn); 1647 1648 return ret; 1649 } 1650 1651 /* 1652 * mbm_get_mon_event_by_name() - Return the mon_evt entry for the matching 1653 * event name. 1654 */ 1655 static struct mon_evt *mbm_get_mon_event_by_name(struct rdt_resource *r, char *name) 1656 { 1657 struct mon_evt *mevt; 1658 1659 for_each_mon_event(mevt) { 1660 if (mevt->rid == r->rid && mevt->enabled && 1661 resctrl_is_mbm_event(mevt->evtid) && 1662 !strcmp(mevt->name, name)) 1663 return mevt; 1664 } 1665 1666 return NULL; 1667 } 1668 1669 static int rdtgroup_modify_assign_state(char *assign, struct rdt_l3_mon_domain *d, 1670 struct rdtgroup *rdtgrp, struct mon_evt *mevt) 1671 { 1672 int ret = 0; 1673 1674 if (!assign || strlen(assign) != 1) 1675 return -EINVAL; 1676 1677 switch (*assign) { 1678 case 'e': 1679 ret = rdtgroup_assign_cntr_event(d, rdtgrp, mevt); 1680 break; 1681 case '_': 1682 rdtgroup_unassign_cntr_event(d, rdtgrp, mevt); 1683 break; 1684 default: 1685 ret = -EINVAL; 1686 break; 1687 } 1688 1689 return ret; 1690 } 1691 1692 static int resctrl_parse_mbm_assignment(struct rdt_resource *r, struct rdtgroup *rdtgrp, 1693 char *event, char *tok) 1694 { 1695 struct rdt_l3_mon_domain *d; 1696 unsigned long dom_id = 0; 1697 char *dom_str, *id_str; 1698 struct mon_evt *mevt; 1699 int ret; 1700 1701 mevt = mbm_get_mon_event_by_name(r, event); 1702 if (!mevt) { 1703 rdt_last_cmd_printf("Invalid event %s\n", event); 1704 return -ENOENT; 1705 } 1706 1707 next: 1708 if (!tok || tok[0] == '\0') 1709 return 0; 1710 1711 /* Start processing the strings for each domain */ 1712 dom_str = strim(strsep(&tok, ";")); 1713 1714 id_str = strsep(&dom_str, "="); 1715 1716 /* Check for domain id '*' which means all domains */ 1717 if (id_str && *id_str == '*') { 1718 ret = rdtgroup_modify_assign_state(dom_str, NULL, rdtgrp, mevt); 1719 if (ret) 1720 rdt_last_cmd_printf("Assign operation '%s:*=%s' failed\n", 1721 event, dom_str); 1722 return ret; 1723 } else if (!id_str || kstrtoul(id_str, 10, &dom_id)) { 1724 rdt_last_cmd_puts("Missing domain id\n"); 1725 return -EINVAL; 1726 } 1727 1728 /* Verify if the dom_id is valid */ 1729 list_for_each_entry(d, &r->mon_domains, hdr.list) { 1730 if (d->hdr.id == dom_id) { 1731 ret = rdtgroup_modify_assign_state(dom_str, d, rdtgrp, mevt); 1732 if (ret) { 1733 rdt_last_cmd_printf("Assign operation '%s:%ld=%s' failed\n", 1734 event, dom_id, dom_str); 1735 return ret; 1736 } 1737 goto next; 1738 } 1739 } 1740 1741 rdt_last_cmd_printf("Invalid domain id %ld\n", dom_id); 1742 return -EINVAL; 1743 } 1744 1745 ssize_t mbm_L3_assignments_write(struct kernfs_open_file *of, char *buf, 1746 size_t nbytes, loff_t off) 1747 { 1748 struct rdt_resource *r = resctrl_arch_get_resource(RDT_RESOURCE_L3); 1749 struct rdtgroup *rdtgrp; 1750 char *token, *event; 1751 int ret = 0; 1752 1753 /* Valid input requires a trailing newline */ 1754 if (nbytes == 0 || buf[nbytes - 1] != '\n') 1755 return -EINVAL; 1756 1757 buf[nbytes - 1] = '\0'; 1758 1759 rdtgrp = rdtgroup_kn_lock_live(of->kn); 1760 if (!rdtgrp) { 1761 rdtgroup_kn_unlock(of->kn); 1762 return -ENOENT; 1763 } 1764 rdt_last_cmd_clear(); 1765 1766 if (!resctrl_arch_mbm_cntr_assign_enabled(r)) { 1767 rdt_last_cmd_puts("mbm_event mode is not enabled\n"); 1768 rdtgroup_kn_unlock(of->kn); 1769 return -EINVAL; 1770 } 1771 1772 while ((token = strsep(&buf, "\n")) != NULL) { 1773 /* 1774 * The write command follows the following format: 1775 * "<Event>:<Domain ID>=<Assignment state>" 1776 * Extract the event name first. 1777 */ 1778 event = strsep(&token, ":"); 1779 1780 ret = resctrl_parse_mbm_assignment(r, rdtgrp, event, token); 1781 if (ret) 1782 break; 1783 } 1784 1785 rdtgroup_kn_unlock(of->kn); 1786 1787 return ret ?: nbytes; 1788 } 1789 1790 static int closid_num_dirty_rmid_alloc(struct rdt_resource *r) 1791 { 1792 if (IS_ENABLED(CONFIG_RESCTRL_RMID_DEPENDS_ON_CLOSID)) { 1793 u32 num_closid = resctrl_arch_get_num_closid(r); 1794 u32 *tmp; 1795 1796 /* For ARM memory ordering access to closid_num_dirty_rmid */ 1797 mutex_lock(&rdtgroup_mutex); 1798 1799 /* 1800 * If the architecture hasn't provided a sanitised value here, 1801 * this may result in larger arrays than necessary. Resctrl will 1802 * use a smaller system wide value based on the resources in 1803 * use. 1804 */ 1805 tmp = kcalloc(num_closid, sizeof(*tmp), GFP_KERNEL); 1806 if (!tmp) { 1807 mutex_unlock(&rdtgroup_mutex); 1808 return -ENOMEM; 1809 } 1810 1811 closid_num_dirty_rmid = tmp; 1812 1813 mutex_unlock(&rdtgroup_mutex); 1814 } 1815 1816 return 0; 1817 } 1818 1819 static void closid_num_dirty_rmid_free(void) 1820 { 1821 if (IS_ENABLED(CONFIG_RESCTRL_RMID_DEPENDS_ON_CLOSID)) { 1822 mutex_lock(&rdtgroup_mutex); 1823 kfree(closid_num_dirty_rmid); 1824 closid_num_dirty_rmid = NULL; 1825 mutex_unlock(&rdtgroup_mutex); 1826 } 1827 } 1828 1829 /** 1830 * resctrl_l3_mon_resource_init() - Initialise global monitoring structures. 1831 * 1832 * Allocate and initialise global monitor resources that do not belong to a 1833 * specific domain. i.e. the rmid_ptrs[] used for the limbo and free lists. 1834 * Called once during boot after the struct rdt_resource's have been configured 1835 * but before the filesystem is mounted. 1836 * Resctrl's cpuhp callbacks may be called before this point to bring a domain 1837 * online. 1838 * 1839 * Return: 0 for success, or -ENOMEM. 1840 */ 1841 int resctrl_l3_mon_resource_init(void) 1842 { 1843 struct rdt_resource *r = resctrl_arch_get_resource(RDT_RESOURCE_L3); 1844 int ret; 1845 1846 if (!r->mon_capable) 1847 return 0; 1848 1849 ret = closid_num_dirty_rmid_alloc(r); 1850 if (ret) 1851 return ret; 1852 1853 ret = dom_data_init(r); 1854 if (ret) { 1855 closid_num_dirty_rmid_free(); 1856 return ret; 1857 } 1858 1859 if (resctrl_arch_is_evt_configurable(QOS_L3_MBM_TOTAL_EVENT_ID)) { 1860 mon_event_all[QOS_L3_MBM_TOTAL_EVENT_ID].configurable = true; 1861 resctrl_file_fflags_init("mbm_total_bytes_config", 1862 RFTYPE_MON_INFO | RFTYPE_RES_CACHE); 1863 } 1864 if (resctrl_arch_is_evt_configurable(QOS_L3_MBM_LOCAL_EVENT_ID)) { 1865 mon_event_all[QOS_L3_MBM_LOCAL_EVENT_ID].configurable = true; 1866 resctrl_file_fflags_init("mbm_local_bytes_config", 1867 RFTYPE_MON_INFO | RFTYPE_RES_CACHE); 1868 } 1869 1870 if (resctrl_is_mon_event_enabled(QOS_L3_MBM_LOCAL_EVENT_ID)) 1871 mba_mbps_default_event = QOS_L3_MBM_LOCAL_EVENT_ID; 1872 else if (resctrl_is_mon_event_enabled(QOS_L3_MBM_TOTAL_EVENT_ID)) 1873 mba_mbps_default_event = QOS_L3_MBM_TOTAL_EVENT_ID; 1874 1875 if (r->mon.mbm_cntr_assignable) { 1876 if (resctrl_is_mon_event_enabled(QOS_L3_MBM_TOTAL_EVENT_ID)) 1877 mon_event_all[QOS_L3_MBM_TOTAL_EVENT_ID].evt_cfg = r->mon.mbm_cfg_mask; 1878 if (resctrl_is_mon_event_enabled(QOS_L3_MBM_LOCAL_EVENT_ID)) 1879 mon_event_all[QOS_L3_MBM_LOCAL_EVENT_ID].evt_cfg = r->mon.mbm_cfg_mask & 1880 (READS_TO_LOCAL_MEM | 1881 READS_TO_LOCAL_S_MEM | 1882 NON_TEMP_WRITE_TO_LOCAL_MEM); 1883 r->mon.mbm_assign_on_mkdir = true; 1884 resctrl_file_fflags_init("num_mbm_cntrs", 1885 RFTYPE_MON_INFO | RFTYPE_RES_CACHE); 1886 resctrl_file_fflags_init("available_mbm_cntrs", 1887 RFTYPE_MON_INFO | RFTYPE_RES_CACHE); 1888 resctrl_file_fflags_init("event_filter", RFTYPE_ASSIGN_CONFIG); 1889 resctrl_file_fflags_init("mbm_assign_on_mkdir", RFTYPE_MON_INFO | 1890 RFTYPE_RES_CACHE); 1891 resctrl_file_fflags_init("mbm_L3_assignments", RFTYPE_MON_BASE); 1892 } 1893 1894 return 0; 1895 } 1896 1897 void resctrl_l3_mon_resource_exit(void) 1898 { 1899 struct rdt_resource *r = resctrl_arch_get_resource(RDT_RESOURCE_L3); 1900 1901 if (!r->mon_capable) 1902 return; 1903 1904 closid_num_dirty_rmid_free(); 1905 1906 dom_data_exit(r); 1907 } 1908