xref: /linux/arch/x86/kernel/cpu/resctrl/monitor.c (revision 1620ddc0dcefc6ffb85f4718086e880335d1a7f5)
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 
23 #include <asm/cpu_device_id.h>
24 #include <asm/cpuid/api.h>
25 #include <asm/msr.h>
26 
27 #include "internal.h"
28 
29 /*
30  * Global boolean for rdt_monitor which is true if any
31  * resource monitoring is enabled.
32  */
33 bool rdt_mon_capable;
34 
35 #define CF(cf)	((unsigned long)(1048576 * (cf) + 0.5))
36 
37 static int snc_nodes_per_l3_cache = 1;
38 
39 /*
40  * The correction factor table is documented in Documentation/filesystems/resctrl.rst.
41  * If rmid > rmid threshold, MBM total and local values should be multiplied
42  * by the correction factor.
43  *
44  * The original table is modified for better code:
45  *
46  * 1. The threshold 0 is changed to rmid count - 1 so don't do correction
47  *    for the case.
48  * 2. MBM total and local correction table indexed by core counter which is
49  *    equal to (x86_cache_max_rmid + 1) / 8 - 1 and is from 0 up to 27.
50  * 3. The correction factor is normalized to 2^20 (1048576) so it's faster
51  *    to calculate corrected value by shifting:
52  *    corrected_value = (original_value * correction_factor) >> 20
53  */
54 static const struct mbm_correction_factor_table {
55 	u32 rmidthreshold;
56 	u64 cf;
57 } mbm_cf_table[] __initconst = {
58 	{7,	CF(1.000000)},
59 	{15,	CF(1.000000)},
60 	{15,	CF(0.969650)},
61 	{31,	CF(1.000000)},
62 	{31,	CF(1.066667)},
63 	{31,	CF(0.969650)},
64 	{47,	CF(1.142857)},
65 	{63,	CF(1.000000)},
66 	{63,	CF(1.185115)},
67 	{63,	CF(1.066553)},
68 	{79,	CF(1.454545)},
69 	{95,	CF(1.000000)},
70 	{95,	CF(1.230769)},
71 	{95,	CF(1.142857)},
72 	{95,	CF(1.066667)},
73 	{127,	CF(1.000000)},
74 	{127,	CF(1.254863)},
75 	{127,	CF(1.185255)},
76 	{151,	CF(1.000000)},
77 	{127,	CF(1.066667)},
78 	{167,	CF(1.000000)},
79 	{159,	CF(1.454334)},
80 	{183,	CF(1.000000)},
81 	{127,	CF(0.969744)},
82 	{191,	CF(1.280246)},
83 	{191,	CF(1.230921)},
84 	{215,	CF(1.000000)},
85 	{191,	CF(1.143118)},
86 };
87 
88 static u32 mbm_cf_rmidthreshold __read_mostly = UINT_MAX;
89 
90 static u64 mbm_cf __read_mostly;
91 
92 static inline u64 get_corrected_mbm_count(u32 rmid, unsigned long val)
93 {
94 	/* Correct MBM value. */
95 	if (rmid > mbm_cf_rmidthreshold)
96 		val = (val * mbm_cf) >> 20;
97 
98 	return val;
99 }
100 
101 /*
102  * When Sub-NUMA Cluster (SNC) mode is not enabled (as indicated by
103  * "snc_nodes_per_l3_cache == 1") no translation of the RMID value is
104  * needed. The physical RMID is the same as the logical RMID.
105  *
106  * On a platform with SNC mode enabled, Linux enables RMID sharing mode
107  * via MSR 0xCA0 (see the "RMID Sharing Mode" section in the "Intel
108  * Resource Director Technology Architecture Specification" for a full
109  * description of RMID sharing mode).
110  *
111  * In RMID sharing mode there are fewer "logical RMID" values available
112  * to accumulate data ("physical RMIDs" are divided evenly between SNC
113  * nodes that share an L3 cache). Linux creates an rdt_l3_mon_domain for
114  * each SNC node.
115  *
116  * The value loaded into IA32_PQR_ASSOC is the "logical RMID".
117  *
118  * Data is collected independently on each SNC node and can be retrieved
119  * using the "physical RMID" value computed by this function and loaded
120  * into IA32_QM_EVTSEL. @cpu can be any CPU in the SNC node.
121  *
122  * The scope of the IA32_QM_EVTSEL and IA32_QM_CTR MSRs is at the L3
123  * cache.  So a "physical RMID" may be read from any CPU that shares
124  * the L3 cache with the desired SNC node, not just from a CPU in
125  * the specific SNC node.
126  */
127 static int logical_rmid_to_physical_rmid(int cpu, int lrmid)
128 {
129 	struct rdt_resource *r = &rdt_resources_all[RDT_RESOURCE_L3].r_resctrl;
130 
131 	if (snc_nodes_per_l3_cache == 1)
132 		return lrmid;
133 
134 	return lrmid + (cpu_to_node(cpu) % snc_nodes_per_l3_cache) * r->mon.num_rmid;
135 }
136 
137 static int __rmid_read_phys(u32 prmid, enum resctrl_event_id eventid, u64 *val)
138 {
139 	struct msr msr_val = { .l = eventid, .h = prmid };
140 
141 	/*
142 	 * As per the SDM, when IA32_QM_EVTSEL.EvtID (bits 7:0) is configured
143 	 * with a valid event code for supported resource type and the bits
144 	 * IA32_QM_EVTSEL.RMID (bits 41:32) are configured with valid RMID,
145 	 * IA32_QM_CTR.data (bits 61:0) reports the monitored data.
146 	 * IA32_QM_CTR.Error (bit 63) and IA32_QM_CTR.Unavailable (bit 62)
147 	 * are error bits.
148 	 */
149 	wrmsrq(MSR_IA32_QM_EVTSEL, msr_val.q);
150 	rdmsrq(MSR_IA32_QM_CTR, msr_val.q);
151 
152 	if (msr_val.q & RMID_VAL_ERROR)
153 		return -EIO;
154 	if (msr_val.q & RMID_VAL_UNAVAIL)
155 		return -EINVAL;
156 
157 	*val = msr_val.q;
158 	return 0;
159 }
160 
161 static struct arch_mbm_state *get_arch_mbm_state(struct rdt_hw_l3_mon_domain *hw_dom,
162 						 u32 rmid,
163 						 enum resctrl_event_id eventid)
164 {
165 	struct arch_mbm_state *state;
166 
167 	if (!resctrl_is_mbm_event(eventid))
168 		return NULL;
169 
170 	state = hw_dom->arch_mbm_states[MBM_STATE_IDX(eventid)];
171 
172 	return state ? &state[rmid] : NULL;
173 }
174 
175 void resctrl_arch_reset_rmid(struct rdt_resource *r, struct rdt_l3_mon_domain *d,
176 			     u32 unused, u32 rmid,
177 			     enum resctrl_event_id eventid)
178 {
179 	struct rdt_hw_l3_mon_domain *hw_dom = resctrl_to_arch_mon_dom(d);
180 	int cpu = cpumask_any(&d->hdr.cpu_mask);
181 	struct arch_mbm_state *am;
182 	u32 prmid;
183 
184 	am = get_arch_mbm_state(hw_dom, rmid, eventid);
185 	if (am) {
186 		memset(am, 0, sizeof(*am));
187 
188 		prmid = logical_rmid_to_physical_rmid(cpu, rmid);
189 		/* Record any initial, non-zero count value. */
190 		__rmid_read_phys(prmid, eventid, &am->prev_msr);
191 	}
192 }
193 
194 /*
195  * Assumes that hardware counters are also reset and thus that there is
196  * no need to record initial non-zero counts.
197  */
198 void resctrl_arch_reset_rmid_all(struct rdt_resource *r, struct rdt_l3_mon_domain *d)
199 {
200 	struct rdt_hw_l3_mon_domain *hw_dom = resctrl_to_arch_mon_dom(d);
201 	enum resctrl_event_id eventid;
202 	int idx;
203 
204 	for_each_mbm_event_id(eventid) {
205 		if (!resctrl_is_mon_event_enabled(eventid))
206 			continue;
207 		idx = MBM_STATE_IDX(eventid);
208 		memset(hw_dom->arch_mbm_states[idx], 0,
209 		       sizeof(*hw_dom->arch_mbm_states[0]) * r->mon.num_rmid);
210 	}
211 }
212 
213 static u64 mbm_overflow_count(u64 prev_msr, u64 cur_msr, unsigned int width)
214 {
215 	u64 shift = 64 - width, chunks;
216 
217 	chunks = (cur_msr << shift) - (prev_msr << shift);
218 	return chunks >> shift;
219 }
220 
221 static u64 get_corrected_val(struct rdt_resource *r, struct rdt_l3_mon_domain *d,
222 			     u32 rmid, enum resctrl_event_id eventid, u64 msr_val)
223 {
224 	struct rdt_hw_l3_mon_domain *hw_dom = resctrl_to_arch_mon_dom(d);
225 	struct rdt_hw_resource *hw_res = resctrl_to_arch_res(r);
226 	struct arch_mbm_state *am;
227 	u64 chunks;
228 
229 	am = get_arch_mbm_state(hw_dom, rmid, eventid);
230 	if (am) {
231 		am->chunks += mbm_overflow_count(am->prev_msr, msr_val,
232 						 hw_res->mbm_width);
233 		chunks = get_corrected_mbm_count(rmid, am->chunks);
234 		am->prev_msr = msr_val;
235 	} else {
236 		chunks = msr_val;
237 	}
238 
239 	return chunks * hw_res->mon_scale;
240 }
241 
242 int resctrl_arch_rmid_read(struct rdt_resource *r, struct rdt_domain_hdr *hdr,
243 			   u32 unused, u32 rmid, enum resctrl_event_id eventid,
244 			   void *arch_priv, u64 *val, void *ignored)
245 {
246 	struct rdt_hw_l3_mon_domain *hw_dom;
247 	struct rdt_l3_mon_domain *d;
248 	struct arch_mbm_state *am;
249 	u64 msr_val;
250 	u32 prmid;
251 	int cpu;
252 	int ret;
253 
254 	resctrl_arch_rmid_read_context_check();
255 
256 	if (r->rid == RDT_RESOURCE_PERF_PKG)
257 		return intel_aet_read_event(hdr->id, rmid, arch_priv, val);
258 
259 	if (!domain_header_is_valid(hdr, RESCTRL_MON_DOMAIN, RDT_RESOURCE_L3))
260 		return -EINVAL;
261 
262 	d = container_of(hdr, struct rdt_l3_mon_domain, hdr);
263 	hw_dom = resctrl_to_arch_mon_dom(d);
264 	cpu = cpumask_any(&hdr->cpu_mask);
265 	prmid = logical_rmid_to_physical_rmid(cpu, rmid);
266 	ret = __rmid_read_phys(prmid, eventid, &msr_val);
267 
268 	if (!ret) {
269 		*val = get_corrected_val(r, d, rmid, eventid, msr_val);
270 	} else if (ret == -EINVAL) {
271 		am = get_arch_mbm_state(hw_dom, rmid, eventid);
272 		if (am)
273 			am->prev_msr = 0;
274 	}
275 
276 	return ret;
277 }
278 
279 static int __cntr_id_read(u32 cntr_id, u64 *val)
280 {
281 	struct msr msr_val = {
282 		.l = ABMC_EXTENDED_EVT_ID | ABMC_EVT_ID,
283 		.h = cntr_id
284 	};
285 
286 	/*
287 	 * QM_EVTSEL Register definition:
288 	 * =======================================================
289 	 * Bits    Mnemonic        Description
290 	 * =======================================================
291 	 * 63:44   --              Reserved
292 	 * 43:32   RMID            RMID or counter ID in ABMC mode
293 	 *                         when reading an MBM event
294 	 * 31      ExtendedEvtID   Extended Event Identifier
295 	 * 30:8    --              Reserved
296 	 * 7:0     EvtID           Event Identifier
297 	 * =======================================================
298 	 * The contents of a specific counter can be read by setting the
299 	 * following fields in QM_EVTSEL.ExtendedEvtID(=1) and
300 	 * QM_EVTSEL.EvtID = L3CacheABMC (=1) and setting QM_EVTSEL.RMID
301 	 * to the desired counter ID. Reading the QM_CTR then returns the
302 	 * contents of the specified counter. The RMID_VAL_ERROR bit is set
303 	 * if the counter configuration is invalid, or if an invalid counter
304 	 * ID is set in the QM_EVTSEL.RMID field.  The RMID_VAL_UNAVAIL bit
305 	 * is set if the counter data is unavailable.
306 	 */
307 	wrmsrq(MSR_IA32_QM_EVTSEL, msr_val.q);
308 	rdmsrq(MSR_IA32_QM_CTR, msr_val.q);
309 
310 	if (msr_val.q & RMID_VAL_ERROR)
311 		return -EIO;
312 	if (msr_val.q & RMID_VAL_UNAVAIL)
313 		return -EINVAL;
314 
315 	*val = msr_val.q;
316 	return 0;
317 }
318 
319 void resctrl_arch_reset_cntr(struct rdt_resource *r, struct rdt_l3_mon_domain *d,
320 			     u32 unused, u32 rmid, int cntr_id,
321 			     enum resctrl_event_id eventid)
322 {
323 	struct rdt_hw_l3_mon_domain *hw_dom = resctrl_to_arch_mon_dom(d);
324 	struct arch_mbm_state *am;
325 
326 	am = get_arch_mbm_state(hw_dom, rmid, eventid);
327 	if (am) {
328 		memset(am, 0, sizeof(*am));
329 
330 		/* Record any initial, non-zero count value. */
331 		__cntr_id_read(cntr_id, &am->prev_msr);
332 	}
333 }
334 
335 int resctrl_arch_cntr_read(struct rdt_resource *r, struct rdt_l3_mon_domain *d,
336 			   u32 unused, u32 rmid, int cntr_id,
337 			   enum resctrl_event_id eventid, u64 *val)
338 {
339 	u64 msr_val;
340 	int ret;
341 
342 	ret = __cntr_id_read(cntr_id, &msr_val);
343 	if (ret)
344 		return ret;
345 
346 	*val = get_corrected_val(r, d, rmid, eventid, msr_val);
347 
348 	return 0;
349 }
350 
351 /*
352  * The power-on reset value of MSR_RMID_SNC_CONFIG is 0x1
353  * which indicates that RMIDs are configured in legacy mode.
354  * This mode is incompatible with Linux resctrl semantics
355  * as RMIDs are partitioned between SNC nodes, which requires
356  * a user to know which RMID is allocated to a task.
357  * Clearing bit 0 reconfigures the RMID counters for use
358  * in RMID sharing mode. This mode is better for Linux.
359  * The RMID space is divided between all SNC nodes with the
360  * RMIDs renumbered to start from zero in each node when
361  * counting operations from tasks. Code to read the counters
362  * must adjust RMID counter numbers based on SNC node. See
363  * logical_rmid_to_physical_rmid() for code that does this.
364  */
365 void arch_mon_domain_online(struct rdt_resource *r, struct rdt_l3_mon_domain *d)
366 {
367 	if (snc_nodes_per_l3_cache > 1)
368 		msr_clear_bit(MSR_RMID_SNC_CONFIG, 0);
369 }
370 
371 /* CPU models that support SNC and MSR_RMID_SNC_CONFIG */
372 static const struct x86_cpu_id snc_cpu_ids[] __initconst = {
373 	X86_MATCH_VFM(INTEL_ICELAKE_X, 0),
374 	X86_MATCH_VFM(INTEL_SAPPHIRERAPIDS_X, 0),
375 	X86_MATCH_VFM(INTEL_EMERALDRAPIDS_X, 0),
376 	X86_MATCH_VFM(INTEL_GRANITERAPIDS_X, 0),
377 	X86_MATCH_VFM(INTEL_ATOM_CRESTMONT_X, 0),
378 	X86_MATCH_VFM(INTEL_ATOM_DARKMONT_X, 0),
379 	{}
380 };
381 
382 static __init int snc_get_config(void)
383 {
384 	int ret;
385 
386 	if (boot_cpu_data.x86_vendor != X86_VENDOR_INTEL)
387 		return 1;
388 
389 	ret = topology_num_nodes_per_package();
390 
391 	if (ret > 1 && !x86_match_cpu(snc_cpu_ids)) {
392 		pr_warn("CoD enabled system? Resctrl not supported\n");
393 		return 1;
394 	}
395 
396 	/* sanity check: Only valid results are 1, 2, 3, 4, 6 */
397 	switch (ret) {
398 	case 1:
399 		break;
400 	case 2 ... 4:
401 	case 6:
402 		pr_info("Sub-NUMA Cluster mode detected with %d nodes per L3 cache\n", ret);
403 		rdt_resources_all[RDT_RESOURCE_L3].r_resctrl.mon_scope = RESCTRL_L3_NODE;
404 		break;
405 	default:
406 		pr_warn("Ignore improbable SNC node count %d\n", ret);
407 		ret = 1;
408 		break;
409 	}
410 
411 	return ret;
412 }
413 
414 int __init rdt_get_l3_mon_config(struct rdt_resource *r)
415 {
416 	unsigned int mbm_offset = boot_cpu_data.x86_cache_mbm_width_offset;
417 	struct rdt_hw_resource *hw_res = resctrl_to_arch_res(r);
418 	unsigned int threshold;
419 	u32 eax, ebx, ecx, edx;
420 
421 	snc_nodes_per_l3_cache = snc_get_config();
422 
423 	resctrl_rmid_realloc_limit = boot_cpu_data.x86_cache_size * 1024;
424 	hw_res->mon_scale = boot_cpu_data.x86_cache_occ_scale / snc_nodes_per_l3_cache;
425 	r->mon.num_rmid = (boot_cpu_data.x86_cache_max_rmid + 1) / snc_nodes_per_l3_cache;
426 	hw_res->mbm_width = MBM_CNTR_WIDTH_BASE;
427 
428 	if (mbm_offset > 0 && mbm_offset <= MBM_CNTR_WIDTH_OFFSET_MAX)
429 		hw_res->mbm_width += mbm_offset;
430 	else if (mbm_offset > MBM_CNTR_WIDTH_OFFSET_MAX)
431 		pr_warn("Ignoring impossible MBM counter offset\n");
432 
433 	/*
434 	 * A reasonable upper limit on the max threshold is the number
435 	 * of lines tagged per RMID if all RMIDs have the same number of
436 	 * lines tagged in the LLC.
437 	 *
438 	 * For a 35MB LLC and 56 RMIDs, this is ~1.8% of the LLC.
439 	 */
440 	threshold = resctrl_rmid_realloc_limit / r->mon.num_rmid;
441 
442 	/*
443 	 * Because num_rmid may not be a power of two, round the value
444 	 * to the nearest multiple of hw_res->mon_scale so it matches a
445 	 * value the hardware will measure. mon_scale may not be a power of 2.
446 	 */
447 	resctrl_rmid_realloc_threshold = resctrl_arch_round_mon_val(threshold);
448 
449 	if (rdt_cpu_has(X86_FEATURE_BMEC) || rdt_cpu_has(X86_FEATURE_ABMC)) {
450 		/* Detect list of bandwidth sources that can be tracked */
451 		cpuid_count(0x80000020, 3, &eax, &ebx, &ecx, &edx);
452 		r->mon.mbm_cfg_mask = ecx & MAX_EVT_CONFIG_BITS;
453 	}
454 
455 	/*
456 	 * resctrl assumes a system that supports assignable counters can
457 	 * switch to "default" mode. Ensure that there is a "default" mode
458 	 * to switch to. This enforces a dependency between the independent
459 	 * X86_FEATURE_ABMC and X86_FEATURE_CQM_MBM_TOTAL/X86_FEATURE_CQM_MBM_LOCAL
460 	 * hardware features.
461 	 */
462 	if (rdt_cpu_has(X86_FEATURE_ABMC) &&
463 	    (rdt_cpu_has(X86_FEATURE_CQM_MBM_TOTAL) ||
464 	     rdt_cpu_has(X86_FEATURE_CQM_MBM_LOCAL))) {
465 		r->mon.mbm_cntr_assignable = true;
466 		r->mon.mbm_cntr_configurable = true;
467 		cpuid_count(0x80000020, 5, &eax, &ebx, &ecx, &edx);
468 		r->mon.num_mbm_cntrs = (ebx & GENMASK(15, 0)) + 1;
469 		hw_res->mbm_cntr_assign_enabled = true;
470 	}
471 
472 	r->mon_capable = true;
473 
474 	return 0;
475 }
476 
477 void __init intel_rdt_mbm_apply_quirk(void)
478 {
479 	int cf_index;
480 
481 	cf_index = (boot_cpu_data.x86_cache_max_rmid + 1) / 8 - 1;
482 	if (cf_index >= ARRAY_SIZE(mbm_cf_table)) {
483 		pr_info("No MBM correction factor available\n");
484 		return;
485 	}
486 
487 	mbm_cf_rmidthreshold = mbm_cf_table[cf_index].rmidthreshold;
488 	mbm_cf = mbm_cf_table[cf_index].cf;
489 }
490 
491 static void resctrl_abmc_set_one_amd(void *arg)
492 {
493 	bool *enable = arg;
494 
495 	if (*enable)
496 		msr_set_bit(MSR_IA32_L3_QOS_EXT_CFG, ABMC_ENABLE_BIT);
497 	else
498 		msr_clear_bit(MSR_IA32_L3_QOS_EXT_CFG, ABMC_ENABLE_BIT);
499 }
500 
501 /*
502  * ABMC enable/disable requires update of L3_QOS_EXT_CFG MSR on all the CPUs
503  * associated with all monitor domains.
504  */
505 static void _resctrl_abmc_enable(struct rdt_resource *r, bool enable)
506 {
507 	struct rdt_l3_mon_domain *d;
508 
509 	lockdep_assert_cpus_held();
510 
511 	list_for_each_entry(d, &r->mon_domains, hdr.list) {
512 		on_each_cpu_mask(&d->hdr.cpu_mask, resctrl_abmc_set_one_amd,
513 				 &enable, 1);
514 		resctrl_arch_reset_rmid_all(r, d);
515 	}
516 }
517 
518 int resctrl_arch_mbm_cntr_assign_set(struct rdt_resource *r, bool enable)
519 {
520 	struct rdt_hw_resource *hw_res = resctrl_to_arch_res(r);
521 
522 	if (r->mon.mbm_cntr_assignable &&
523 	    hw_res->mbm_cntr_assign_enabled != enable) {
524 		_resctrl_abmc_enable(r, enable);
525 		hw_res->mbm_cntr_assign_enabled = enable;
526 	}
527 
528 	return 0;
529 }
530 
531 bool resctrl_arch_mbm_cntr_assign_enabled(struct rdt_resource *r)
532 {
533 	return resctrl_to_arch_res(r)->mbm_cntr_assign_enabled;
534 }
535 
536 static void resctrl_abmc_config_one_amd(void *info)
537 {
538 	union l3_qos_abmc_cfg *abmc_cfg = info;
539 
540 	wrmsrq(MSR_IA32_L3_QOS_ABMC_CFG, abmc_cfg->full);
541 }
542 
543 /*
544  * Send an IPI to the domain to assign the counter to RMID, event pair.
545  */
546 void resctrl_arch_config_cntr(struct rdt_resource *r, struct rdt_l3_mon_domain *d,
547 			      enum resctrl_event_id evtid, u32 rmid, u32 closid,
548 			      u32 cntr_id, bool assign)
549 {
550 	struct rdt_hw_l3_mon_domain *hw_dom = resctrl_to_arch_mon_dom(d);
551 	union l3_qos_abmc_cfg abmc_cfg = { 0 };
552 	struct arch_mbm_state *am;
553 
554 	abmc_cfg.split.cfg_en = 1;
555 	abmc_cfg.split.cntr_en = assign ? 1 : 0;
556 	abmc_cfg.split.cntr_id = cntr_id;
557 	abmc_cfg.split.bw_src = rmid;
558 	if (assign)
559 		abmc_cfg.split.bw_type = resctrl_get_mon_evt_cfg(evtid);
560 
561 	smp_call_function_any(&d->hdr.cpu_mask, resctrl_abmc_config_one_amd, &abmc_cfg, 1);
562 
563 	/*
564 	 * The hardware counter is reset (because cfg_en == 1) so there is no
565 	 * need to record initial non-zero counts.
566 	 */
567 	am = get_arch_mbm_state(hw_dom, rmid, evtid);
568 	if (am)
569 		memset(am, 0, sizeof(*am));
570 }
571 
572 void resctrl_arch_mbm_cntr_assign_set_one(struct rdt_resource *r)
573 {
574 	struct rdt_hw_resource *hw_res = resctrl_to_arch_res(r);
575 
576 	resctrl_abmc_set_one_amd(&hw_res->mbm_cntr_assign_enabled);
577 }
578