xref: /linux/arch/x86/events/perf_event.h (revision 8302c5f475fa5a4ed36a7d32c7b965023d5d7066)
1 /*
2  * Performance events x86 architecture header
3  *
4  *  Copyright (C) 2008 Linutronix GmbH, Thomas Gleixner <tglx@kernel.org>
5  *  Copyright (C) 2008-2009 Red Hat, Inc., Ingo Molnar
6  *  Copyright (C) 2009 Jaswinder Singh Rajput
7  *  Copyright (C) 2009 Advanced Micro Devices, Inc., Robert Richter
8  *  Copyright (C) 2008-2009 Red Hat, Inc., Peter Zijlstra
9  *  Copyright (C) 2009 Intel Corporation, <markus.t.metzger@intel.com>
10  *  Copyright (C) 2009 Google, Inc., Stephane Eranian
11  *
12  *  For licencing details see kernel-base/COPYING
13  */
14 
15 #include <linux/perf_event.h>
16 
17 #include <asm/fpu/xstate.h>
18 #include <asm/intel_ds.h>
19 #include <asm/cpu.h>
20 #include <asm/msr.h>
21 
22 /* To enable MSR tracing please use the generic trace points. */
23 
24 /*
25  *          |   NHM/WSM    |      SNB     |
26  * register -------------------------------
27  *          |  HT  | no HT |  HT  | no HT |
28  *-----------------------------------------
29  * offcore  | core | core  | cpu  | core  |
30  * lbr_sel  | core | core  | cpu  | core  |
31  * ld_lat   | cpu  | core  | cpu  | core  |
32  *-----------------------------------------
33  *
34  * Given that there is a small number of shared regs,
35  * we can pre-allocate their slot in the per-cpu
36  * per-core reg tables.
37  */
38 enum extra_reg_type {
39 	EXTRA_REG_NONE		= -1, /* not used */
40 
41 	EXTRA_REG_RSP_0		= 0,  /* offcore_response_0 */
42 	EXTRA_REG_RSP_1		= 1,  /* offcore_response_1 */
43 	EXTRA_REG_LBR		= 2,  /* lbr_select */
44 	EXTRA_REG_LDLAT		= 3,  /* ld_lat_threshold */
45 	EXTRA_REG_FE		= 4,  /* fe_* */
46 	EXTRA_REG_SNOOP_0	= 5,  /* snoop response 0 */
47 	EXTRA_REG_SNOOP_1	= 6,  /* snoop response 1 */
48 	EXTRA_REG_OMR_0		= 7,  /* OMR 0 */
49 	EXTRA_REG_OMR_1		= 8,  /* OMR 1 */
50 	EXTRA_REG_OMR_2		= 9,  /* OMR 2 */
51 	EXTRA_REG_OMR_3		= 10,  /* OMR 3 */
52 
53 	EXTRA_REG_MAX		      /* number of entries needed */
54 };
55 
56 struct event_constraint {
57 	union {
58 		unsigned long	idxmsk[BITS_TO_LONGS(X86_PMC_IDX_MAX)];
59 		u64		idxmsk64;
60 	};
61 	u64		code;
62 	u64		cmask;
63 	int		weight;
64 	int		overlap;
65 	int		flags;
66 	unsigned int	size;
67 };
68 
69 static inline bool constraint_match(struct event_constraint *c, u64 ecode)
70 {
71 	return ((ecode & c->cmask) - c->code) <= (u64)c->size;
72 }
73 
74 #define PERF_ARCH(name, val)	\
75 	PERF_X86_EVENT_##name = val,
76 
77 /*
78  * struct hw_perf_event.flags flags
79  */
80 enum {
81 #include "perf_event_flags.h"
82 };
83 
84 #undef PERF_ARCH
85 
86 #define PERF_ARCH(name, val)						\
87 	static_assert((PERF_X86_EVENT_##name & PERF_EVENT_FLAG_ARCH) ==	\
88 		      PERF_X86_EVENT_##name);
89 
90 #include "perf_event_flags.h"
91 
92 #undef PERF_ARCH
93 
94 static inline bool is_topdown_count(struct perf_event *event)
95 {
96 	return event->hw.flags & PERF_X86_EVENT_TOPDOWN;
97 }
98 
99 static inline bool is_metric_event(struct perf_event *event)
100 {
101 	u64 config = event->attr.config;
102 
103 	return ((config & ARCH_PERFMON_EVENTSEL_EVENT) == 0) &&
104 		((config & INTEL_ARCH_EVENT_MASK) >= INTEL_TD_METRIC_RETIRING)  &&
105 		((config & INTEL_ARCH_EVENT_MASK) <= INTEL_TD_METRIC_MAX);
106 }
107 
108 static inline bool is_slots_event(struct perf_event *event)
109 {
110 	return (event->attr.config & INTEL_ARCH_EVENT_MASK) == INTEL_TD_SLOTS;
111 }
112 
113 static inline bool is_topdown_event(struct perf_event *event)
114 {
115 	return is_metric_event(event) || is_slots_event(event);
116 }
117 
118 int is_x86_event(struct perf_event *event);
119 
120 static inline bool check_leader_group(struct perf_event *leader, int flags)
121 {
122 	return is_x86_event(leader) ? !!(leader->hw.flags & flags) : false;
123 }
124 
125 static inline bool is_branch_counters_group(struct perf_event *event)
126 {
127 	return check_leader_group(event->group_leader, PERF_X86_EVENT_BRANCH_COUNTERS);
128 }
129 
130 static inline bool is_pebs_counter_event_group(struct perf_event *event)
131 {
132 	return check_leader_group(event->group_leader, PERF_X86_EVENT_PEBS_CNTR);
133 }
134 
135 static inline bool is_acr_event_group(struct perf_event *event)
136 {
137 	return check_leader_group(event->group_leader, PERF_X86_EVENT_ACR);
138 }
139 
140 static inline bool is_acr_self_reload_event(struct perf_event *event)
141 {
142 	struct hw_perf_event *hwc = &event->hw;
143 
144 	if (hwc->idx < 0 || !is_acr_event_group(event))
145 		return false;
146 
147 	return test_bit(hwc->idx, (unsigned long *)&hwc->config1);
148 }
149 
150 struct amd_nb {
151 	int nb_id;  /* NorthBridge id */
152 	int refcnt; /* reference count */
153 	struct perf_event *owners[X86_PMC_IDX_MAX];
154 	struct event_constraint event_constraints[X86_PMC_IDX_MAX];
155 };
156 
157 #define PEBS_COUNTER_MASK	((1ULL << MAX_PEBS_EVENTS) - 1)
158 #define PEBS_PMI_AFTER_EACH_RECORD BIT_ULL(60)
159 #define PEBS_OUTPUT_OFFSET	61
160 #define PEBS_OUTPUT_MASK	(3ull << PEBS_OUTPUT_OFFSET)
161 #define PEBS_OUTPUT_PT		(1ull << PEBS_OUTPUT_OFFSET)
162 #define PEBS_VIA_PT_MASK	(PEBS_OUTPUT_PT | PEBS_PMI_AFTER_EACH_RECORD)
163 
164 /*
165  * Flags PEBS can handle without an PMI.
166  *
167  * TID can only be handled by flushing at context switch.
168  * REGS_USER can be handled for events limited to ring 3.
169  *
170  */
171 #define LARGE_PEBS_FLAGS \
172 	(PERF_SAMPLE_IP | PERF_SAMPLE_TID | PERF_SAMPLE_ADDR | \
173 	PERF_SAMPLE_ID | PERF_SAMPLE_CPU | PERF_SAMPLE_STREAM_ID | \
174 	PERF_SAMPLE_DATA_SRC | PERF_SAMPLE_IDENTIFIER | \
175 	PERF_SAMPLE_TRANSACTION | PERF_SAMPLE_PHYS_ADDR | \
176 	PERF_SAMPLE_REGS_INTR | PERF_SAMPLE_REGS_USER | \
177 	PERF_SAMPLE_PERIOD | PERF_SAMPLE_CODE_PAGE_SIZE | \
178 	PERF_SAMPLE_WEIGHT_TYPE)
179 
180 #define PEBS_GP_REGS			\
181 	((1ULL << PERF_REG_X86_AX)    | \
182 	 (1ULL << PERF_REG_X86_BX)    | \
183 	 (1ULL << PERF_REG_X86_CX)    | \
184 	 (1ULL << PERF_REG_X86_DX)    | \
185 	 (1ULL << PERF_REG_X86_DI)    | \
186 	 (1ULL << PERF_REG_X86_SI)    | \
187 	 (1ULL << PERF_REG_X86_SP)    | \
188 	 (1ULL << PERF_REG_X86_BP)    | \
189 	 (1ULL << PERF_REG_X86_IP)    | \
190 	 (1ULL << PERF_REG_X86_FLAGS) | \
191 	 (1ULL << PERF_REG_X86_R8)    | \
192 	 (1ULL << PERF_REG_X86_R9)    | \
193 	 (1ULL << PERF_REG_X86_R10)   | \
194 	 (1ULL << PERF_REG_X86_R11)   | \
195 	 (1ULL << PERF_REG_X86_R12)   | \
196 	 (1ULL << PERF_REG_X86_R13)   | \
197 	 (1ULL << PERF_REG_X86_R14)   | \
198 	 (1ULL << PERF_REG_X86_R15))
199 
200 /* user space rdpmc control values */
201 enum {
202 	X86_USER_RDPMC_NEVER_ENABLE		= 0,
203 	X86_USER_RDPMC_CONDITIONAL_ENABLE	= 1,
204 	X86_USER_RDPMC_ALWAYS_ENABLE		= 2,
205 };
206 
207 /*
208  * Per register state.
209  */
210 struct er_account {
211 	raw_spinlock_t      lock;	/* per-core: protect structure */
212 	u64                 config;	/* extra MSR config */
213 	u64                 reg;	/* extra MSR number */
214 	atomic_t            ref;	/* reference count */
215 };
216 
217 /*
218  * Per core/cpu state
219  *
220  * Used to coordinate shared registers between HT threads or
221  * among events on a single PMU.
222  */
223 struct intel_shared_regs {
224 	struct er_account       regs[EXTRA_REG_MAX];
225 	int                     refcnt;		/* per-core: #HT threads */
226 	unsigned                core_id;	/* per-core: core id */
227 };
228 
229 enum intel_excl_state_type {
230 	INTEL_EXCL_UNUSED    = 0, /* counter is unused */
231 	INTEL_EXCL_SHARED    = 1, /* counter can be used by both threads */
232 	INTEL_EXCL_EXCLUSIVE = 2, /* counter can be used by one thread only */
233 };
234 
235 struct intel_excl_states {
236 	enum intel_excl_state_type state[X86_PMC_IDX_MAX];
237 	bool sched_started; /* true if scheduling has started */
238 };
239 
240 struct intel_excl_cntrs {
241 	raw_spinlock_t	lock;
242 
243 	struct intel_excl_states states[2];
244 
245 	union {
246 		u16	has_exclusive[2];
247 		u32	exclusive_present;
248 	};
249 
250 	int		refcnt;		/* per-core: #HT threads */
251 	unsigned	core_id;	/* per-core: core id */
252 };
253 
254 struct x86_perf_task_context;
255 #define MAX_LBR_ENTRIES		32
256 
257 enum {
258 	LBR_FORMAT_32		= 0x00,
259 	LBR_FORMAT_LIP		= 0x01,
260 	LBR_FORMAT_EIP		= 0x02,
261 	LBR_FORMAT_EIP_FLAGS	= 0x03,
262 	LBR_FORMAT_EIP_FLAGS2	= 0x04,
263 	LBR_FORMAT_INFO		= 0x05,
264 	LBR_FORMAT_TIME		= 0x06,
265 	LBR_FORMAT_INFO2	= 0x07,
266 	LBR_FORMAT_MAX_KNOWN    = LBR_FORMAT_INFO2,
267 };
268 
269 enum {
270 	X86_PERF_KFREE_SHARED = 0,
271 	X86_PERF_KFREE_EXCL   = 1,
272 	X86_PERF_KFREE_MAX
273 };
274 
275 struct cpu_hw_events {
276 	/*
277 	 * Generic x86 PMC bits
278 	 */
279 	struct perf_event	*events[X86_PMC_IDX_MAX]; /* in counter order */
280 	unsigned long		active_mask[BITS_TO_LONGS(X86_PMC_IDX_MAX)];
281 	unsigned long		dirty[BITS_TO_LONGS(X86_PMC_IDX_MAX)];
282 	int			enabled;
283 
284 	int			n_events; /* the # of events in the below arrays */
285 	int			n_added;  /* the # last events in the below arrays;
286 					     they've never been enabled yet */
287 	int			n_txn;    /* the # last events in the below arrays;
288 					     added in the current transaction */
289 	int			n_txn_pair;
290 	int			n_txn_metric;
291 	int			assign[X86_PMC_IDX_MAX]; /* event to counter assignment */
292 	u64			tags[X86_PMC_IDX_MAX];
293 
294 	struct perf_event	*event_list[X86_PMC_IDX_MAX]; /* in enabled order */
295 	struct event_constraint	*event_constraint[X86_PMC_IDX_MAX];
296 
297 	int			n_excl; /* the number of exclusive events */
298 	int			n_late_setup; /* the num of events needs late setup */
299 
300 	unsigned int		txn_flags;
301 	int			is_fake;
302 
303 	/*
304 	 * Intel DebugStore bits
305 	 */
306 	struct debug_store	*ds;
307 	void			*ds_bts_vaddr;
308 	/* DS based PEBS or arch-PEBS buffer address */
309 	void			*pebs_vaddr;
310 	u64			pebs_enabled;
311 	int			n_pebs;
312 	int			n_large_pebs;
313 	int			n_pebs_via_pt;
314 	int			pebs_output;
315 
316 	/* Current super set of events hardware configuration */
317 	u64			pebs_data_cfg;
318 	u64			active_pebs_data_cfg;
319 	int			pebs_record_size;
320 
321 	/* Intel Fixed counter configuration */
322 	u64			fixed_ctrl_val;
323 	u64			active_fixed_ctrl_val;
324 
325 	/* Intel ACR/arch-PEBS configuration */
326 	u64			acr_cfg_b[X86_PMC_IDX_MAX];
327 	u64			cfg_c_val[X86_PMC_IDX_MAX];
328 
329 	/*
330 	 * Intel LBR bits
331 	 */
332 	int				lbr_users;
333 	int				lbr_pebs_users;
334 	struct perf_branch_stack	lbr_stack;
335 	struct perf_branch_entry	lbr_entries[MAX_LBR_ENTRIES];
336 	u64				lbr_counters[MAX_LBR_ENTRIES]; /* branch stack extra */
337 	union {
338 		struct er_account		*lbr_sel;
339 		struct er_account		*lbr_ctl;
340 	};
341 	u64				br_sel;
342 	void				*last_task_ctx;
343 	int				last_log_id;
344 	int				lbr_select;
345 	void				*lbr_xsave;
346 
347 	/*
348 	 * Intel host/guest exclude bits
349 	 */
350 	u64				intel_ctrl_guest_mask;
351 	u64				intel_ctrl_host_mask;
352 	struct perf_guest_switch_msr	guest_switch_msrs[X86_PMC_IDX_MAX];
353 
354 	/*
355 	 * Intel checkpoint mask
356 	 */
357 	u64				intel_cp_status;
358 
359 	/*
360 	 * manage shared (per-core, per-cpu) registers
361 	 * used on Intel NHM/WSM/SNB
362 	 */
363 	struct intel_shared_regs	*shared_regs;
364 	/*
365 	 * manage exclusive counter access between hyperthread
366 	 */
367 	struct event_constraint *constraint_list; /* in enable order */
368 	struct intel_excl_cntrs		*excl_cntrs;
369 	int excl_thread_id; /* 0 or 1 */
370 
371 	/*
372 	 * SKL TSX_FORCE_ABORT shadow
373 	 */
374 	u64				tfa_shadow;
375 
376 	/*
377 	 * Perf Metrics
378 	 */
379 	/* number of accepted metrics events */
380 	int				n_metric;
381 
382 	/*
383 	 * AMD specific bits
384 	 */
385 	struct amd_nb			*amd_nb;
386 	int				brs_active; /* BRS is enabled */
387 
388 	/* Inverted mask of bits to clear in the perf_ctr ctrl registers */
389 	u64				perf_ctr_virt_mask;
390 	int				n_pair; /* Large increment events */
391 
392 	void				*kfree_on_online[X86_PERF_KFREE_MAX];
393 
394 	struct pmu			*pmu;
395 };
396 
397 #define __EVENT_CONSTRAINT_RANGE(c, e, n, m, w, o, f) {	\
398 	{ .idxmsk64 = (n) },		\
399 	.code = (c),			\
400 	.size = (e) - (c),		\
401 	.cmask = (m),			\
402 	.weight = (w),			\
403 	.overlap = (o),			\
404 	.flags = f,			\
405 }
406 
407 #define __EVENT_CONSTRAINT(c, n, m, w, o, f) \
408 	__EVENT_CONSTRAINT_RANGE(c, c, n, m, w, o, f)
409 
410 #define EVENT_CONSTRAINT(c, n, m)	\
411 	__EVENT_CONSTRAINT(c, n, m, HWEIGHT(n), 0, 0)
412 
413 /*
414  * The constraint_match() function only works for 'simple' event codes
415  * and not for extended (AMD64_EVENTSEL_EVENT) events codes.
416  */
417 #define EVENT_CONSTRAINT_RANGE(c, e, n, m) \
418 	__EVENT_CONSTRAINT_RANGE(c, e, n, m, HWEIGHT(n), 0, 0)
419 
420 #define INTEL_EXCLEVT_CONSTRAINT(c, n)	\
421 	__EVENT_CONSTRAINT(c, n, ARCH_PERFMON_EVENTSEL_EVENT, HWEIGHT(n),\
422 			   0, PERF_X86_EVENT_EXCL)
423 
424 /*
425  * The overlap flag marks event constraints with overlapping counter
426  * masks. This is the case if the counter mask of such an event is not
427  * a subset of any other counter mask of a constraint with an equal or
428  * higher weight, e.g.:
429  *
430  *  c_overlaps = EVENT_CONSTRAINT_OVERLAP(0, 0x09, 0);
431  *  c_another1 = EVENT_CONSTRAINT(0, 0x07, 0);
432  *  c_another2 = EVENT_CONSTRAINT(0, 0x38, 0);
433  *
434  * The event scheduler may not select the correct counter in the first
435  * cycle because it needs to know which subsequent events will be
436  * scheduled. It may fail to schedule the events then. So we set the
437  * overlap flag for such constraints to give the scheduler a hint which
438  * events to select for counter rescheduling.
439  *
440  * Care must be taken as the rescheduling algorithm is O(n!) which
441  * will increase scheduling cycles for an over-committed system
442  * dramatically.  The number of such EVENT_CONSTRAINT_OVERLAP() macros
443  * and its counter masks must be kept at a minimum.
444  */
445 #define EVENT_CONSTRAINT_OVERLAP(c, n, m)	\
446 	__EVENT_CONSTRAINT(c, n, m, HWEIGHT(n), 1, 0)
447 
448 /*
449  * Constraint on the Event code.
450  */
451 #define INTEL_EVENT_CONSTRAINT(c, n)	\
452 	EVENT_CONSTRAINT(c, n, ARCH_PERFMON_EVENTSEL_EVENT)
453 
454 /*
455  * Constraint on a range of Event codes
456  */
457 #define INTEL_EVENT_CONSTRAINT_RANGE(c, e, n)			\
458 	EVENT_CONSTRAINT_RANGE(c, e, n, ARCH_PERFMON_EVENTSEL_EVENT)
459 
460 /*
461  * Constraint on the Event code + UMask + fixed-mask
462  *
463  * filter mask to validate fixed counter events.
464  * the following filters disqualify for fixed counters:
465  *  - inv
466  *  - edge
467  *  - cnt-mask
468  *  - in_tx
469  *  - in_tx_checkpointed
470  *  The other filters are supported by fixed counters.
471  *  The any-thread option is supported starting with v3.
472  */
473 #define FIXED_EVENT_FLAGS (X86_RAW_EVENT_MASK|HSW_IN_TX|HSW_IN_TX_CHECKPOINTED)
474 #define FIXED_EVENT_CONSTRAINT(c, n)	\
475 	EVENT_CONSTRAINT(c, (1ULL << (32+n)), FIXED_EVENT_FLAGS)
476 
477 /*
478  * The special metric counters do not actually exist. They are calculated from
479  * the combination of the FxCtr3 + MSR_PERF_METRICS.
480  *
481  * The special metric counters are mapped to a dummy offset for the scheduler.
482  * The sharing between multiple users of the same metric without multiplexing
483  * is not allowed, even though the hardware supports that in principle.
484  */
485 
486 #define METRIC_EVENT_CONSTRAINT(c, n)					\
487 	EVENT_CONSTRAINT(c, (1ULL << (INTEL_PMC_IDX_METRIC_BASE + n)),	\
488 			 INTEL_ARCH_EVENT_MASK)
489 
490 /*
491  * Constraint on the Event code + UMask
492  */
493 #define INTEL_UEVENT_CONSTRAINT(c, n)	\
494 	EVENT_CONSTRAINT(c, n, INTEL_ARCH_EVENT_MASK)
495 
496 /* Constraint on specific umask bit only + event */
497 #define INTEL_UBIT_EVENT_CONSTRAINT(c, n)	\
498 	EVENT_CONSTRAINT(c, n, ARCH_PERFMON_EVENTSEL_EVENT|(c))
499 
500 /* Like UEVENT_CONSTRAINT, but match flags too */
501 #define INTEL_FLAGS_UEVENT_CONSTRAINT(c, n)	\
502 	EVENT_CONSTRAINT(c, n, INTEL_ARCH_EVENT_MASK|X86_ALL_EVENT_FLAGS)
503 
504 #define INTEL_EXCLUEVT_CONSTRAINT(c, n)	\
505 	__EVENT_CONSTRAINT(c, n, INTEL_ARCH_EVENT_MASK, \
506 			   HWEIGHT(n), 0, PERF_X86_EVENT_EXCL)
507 
508 #define INTEL_PLD_CONSTRAINT(c, n)	\
509 	__EVENT_CONSTRAINT(c, n, INTEL_ARCH_EVENT_MASK|X86_ALL_EVENT_FLAGS, \
510 			   HWEIGHT(n), 0, PERF_X86_EVENT_PEBS_LDLAT)
511 
512 #define INTEL_PSD_CONSTRAINT(c, n)	\
513 	__EVENT_CONSTRAINT(c, n, INTEL_ARCH_EVENT_MASK|X86_ALL_EVENT_FLAGS, \
514 			   HWEIGHT(n), 0, PERF_X86_EVENT_PEBS_STLAT)
515 
516 #define INTEL_PST_CONSTRAINT(c, n)	\
517 	__EVENT_CONSTRAINT(c, n, INTEL_ARCH_EVENT_MASK|X86_ALL_EVENT_FLAGS, \
518 			  HWEIGHT(n), 0, PERF_X86_EVENT_PEBS_ST)
519 
520 #define INTEL_HYBRID_LDLAT_CONSTRAINT(c, n)	\
521 	__EVENT_CONSTRAINT(c, n, INTEL_ARCH_EVENT_MASK|X86_ALL_EVENT_FLAGS, \
522 			  HWEIGHT(n), 0, PERF_X86_EVENT_PEBS_LAT_HYBRID|PERF_X86_EVENT_PEBS_LD_HSW)
523 
524 #define INTEL_HYBRID_STLAT_CONSTRAINT(c, n)	\
525 	__EVENT_CONSTRAINT(c, n, INTEL_ARCH_EVENT_MASK|X86_ALL_EVENT_FLAGS, \
526 			  HWEIGHT(n), 0, PERF_X86_EVENT_PEBS_LAT_HYBRID|PERF_X86_EVENT_PEBS_ST_HSW)
527 
528 /* Event constraint, but match on all event flags too. */
529 #define INTEL_FLAGS_EVENT_CONSTRAINT(c, n) \
530 	EVENT_CONSTRAINT(c, n, ARCH_PERFMON_EVENTSEL_EVENT|X86_ALL_EVENT_FLAGS)
531 
532 #define INTEL_FLAGS_EVENT_CONSTRAINT_RANGE(c, e, n)			\
533 	EVENT_CONSTRAINT_RANGE(c, e, n, ARCH_PERFMON_EVENTSEL_EVENT|X86_ALL_EVENT_FLAGS)
534 
535 /* Check only flags, but allow all event/umask */
536 #define INTEL_ALL_EVENT_CONSTRAINT(code, n)	\
537 	EVENT_CONSTRAINT(code, n, X86_ALL_EVENT_FLAGS)
538 
539 /* Check flags and event code, and set the HSW store flag */
540 #define INTEL_FLAGS_EVENT_CONSTRAINT_DATALA_ST(code, n) \
541 	__EVENT_CONSTRAINT(code, n, 			\
542 			  ARCH_PERFMON_EVENTSEL_EVENT|X86_ALL_EVENT_FLAGS, \
543 			  HWEIGHT(n), 0, PERF_X86_EVENT_PEBS_ST_HSW)
544 
545 /* Check flags and event code, and set the HSW load flag */
546 #define INTEL_FLAGS_EVENT_CONSTRAINT_DATALA_LD(code, n) \
547 	__EVENT_CONSTRAINT(code, n,			\
548 			  ARCH_PERFMON_EVENTSEL_EVENT|X86_ALL_EVENT_FLAGS, \
549 			  HWEIGHT(n), 0, PERF_X86_EVENT_PEBS_LD_HSW)
550 
551 #define INTEL_FLAGS_EVENT_CONSTRAINT_DATALA_LD_RANGE(code, end, n) \
552 	__EVENT_CONSTRAINT_RANGE(code, end, n,				\
553 			  ARCH_PERFMON_EVENTSEL_EVENT|X86_ALL_EVENT_FLAGS, \
554 			  HWEIGHT(n), 0, PERF_X86_EVENT_PEBS_LD_HSW)
555 
556 #define INTEL_FLAGS_EVENT_CONSTRAINT_DATALA_XLD(code, n) \
557 	__EVENT_CONSTRAINT(code, n,			\
558 			  ARCH_PERFMON_EVENTSEL_EVENT|X86_ALL_EVENT_FLAGS, \
559 			  HWEIGHT(n), 0, \
560 			  PERF_X86_EVENT_PEBS_LD_HSW|PERF_X86_EVENT_EXCL)
561 
562 /* Check flags and event code/umask, and set the HSW store flag */
563 #define INTEL_FLAGS_UEVENT_CONSTRAINT_DATALA_ST(code, n) \
564 	__EVENT_CONSTRAINT(code, n, 			\
565 			  INTEL_ARCH_EVENT_MASK|X86_ALL_EVENT_FLAGS, \
566 			  HWEIGHT(n), 0, PERF_X86_EVENT_PEBS_ST_HSW)
567 
568 #define INTEL_FLAGS_UEVENT_CONSTRAINT_DATALA_XST(code, n) \
569 	__EVENT_CONSTRAINT(code, n,			\
570 			  INTEL_ARCH_EVENT_MASK|X86_ALL_EVENT_FLAGS, \
571 			  HWEIGHT(n), 0, \
572 			  PERF_X86_EVENT_PEBS_ST_HSW|PERF_X86_EVENT_EXCL)
573 
574 /* Check flags and event code/umask, and set the HSW load flag */
575 #define INTEL_FLAGS_UEVENT_CONSTRAINT_DATALA_LD(code, n) \
576 	__EVENT_CONSTRAINT(code, n, 			\
577 			  INTEL_ARCH_EVENT_MASK|X86_ALL_EVENT_FLAGS, \
578 			  HWEIGHT(n), 0, PERF_X86_EVENT_PEBS_LD_HSW)
579 
580 #define INTEL_FLAGS_UEVENT_CONSTRAINT_DATALA_XLD(code, n) \
581 	__EVENT_CONSTRAINT(code, n,			\
582 			  INTEL_ARCH_EVENT_MASK|X86_ALL_EVENT_FLAGS, \
583 			  HWEIGHT(n), 0, \
584 			  PERF_X86_EVENT_PEBS_LD_HSW|PERF_X86_EVENT_EXCL)
585 
586 /* Check flags and event code/umask, and set the HSW N/A flag */
587 #define INTEL_FLAGS_UEVENT_CONSTRAINT_DATALA_NA(code, n) \
588 	__EVENT_CONSTRAINT(code, n, 			\
589 			  INTEL_ARCH_EVENT_MASK|X86_ALL_EVENT_FLAGS, \
590 			  HWEIGHT(n), 0, PERF_X86_EVENT_PEBS_NA_HSW)
591 
592 
593 /*
594  * We define the end marker as having a weight of -1
595  * to enable blacklisting of events using a counter bitmask
596  * of zero and thus a weight of zero.
597  * The end marker has a weight that cannot possibly be
598  * obtained from counting the bits in the bitmask.
599  */
600 #define EVENT_CONSTRAINT_END { .weight = -1 }
601 
602 /*
603  * Check for end marker with weight == -1
604  */
605 #define for_each_event_constraint(e, c)	\
606 	for ((e) = (c); (e)->weight != -1; (e)++)
607 
608 /*
609  * Extra registers for specific events.
610  *
611  * Some events need large masks and require external MSRs.
612  * Those extra MSRs end up being shared for all events on
613  * a PMU and sometimes between PMU of sibling HT threads.
614  * In either case, the kernel needs to handle conflicting
615  * accesses to those extra, shared, regs. The data structure
616  * to manage those registers is stored in cpu_hw_event.
617  */
618 struct extra_reg {
619 	unsigned int		event;
620 	unsigned int		msr;
621 	u64			config_mask;
622 	u64			valid_mask;
623 	int			idx;  /* per_xxx->regs[] reg index */
624 	bool			extra_msr_access;
625 };
626 
627 #define EVENT_EXTRA_REG(e, ms, m, vm, i) {	\
628 	.event = (e),			\
629 	.msr = (ms),			\
630 	.config_mask = (m),		\
631 	.valid_mask = (vm),		\
632 	.idx = EXTRA_REG_##i,		\
633 	.extra_msr_access = true,	\
634 	}
635 
636 #define INTEL_EVENT_EXTRA_REG(event, msr, vm, idx)	\
637 	EVENT_EXTRA_REG(event, msr, ARCH_PERFMON_EVENTSEL_EVENT, vm, idx)
638 
639 #define INTEL_UEVENT_EXTRA_REG(event, msr, vm, idx) \
640 	EVENT_EXTRA_REG(event, msr, ARCH_PERFMON_EVENTSEL_EVENT | \
641 			ARCH_PERFMON_EVENTSEL_UMASK, vm, idx)
642 
643 #define INTEL_UEVENT_PEBS_LDLAT_EXTRA_REG(c) \
644 	INTEL_UEVENT_EXTRA_REG(c, \
645 			       MSR_PEBS_LD_LAT_THRESHOLD, \
646 			       0xffff, \
647 			       LDLAT)
648 
649 #define EVENT_EXTRA_END EVENT_EXTRA_REG(0, 0, 0, 0, RSP_0)
650 
651 union perf_capabilities {
652 	struct {
653 		u64	lbr_format:6;
654 		u64	pebs_trap:1;
655 		u64	pebs_arch_reg:1;
656 		u64	pebs_format:4;
657 		u64	smm_freeze:1;
658 		/*
659 		 * PMU supports separate counter range for writing
660 		 * values > 32bit.
661 		 */
662 		u64	full_width_write:1;
663 		u64     pebs_baseline:1;
664 		u64	perf_metrics:1;
665 		u64	pebs_output_pt_available:1;
666 		u64	pebs_timing_info:1;
667 		u64	__reserved:1;
668 		u64	rdpmc_metrics_clear:1;
669 	};
670 	u64	capabilities;
671 };
672 
673 struct x86_pmu_quirk {
674 	struct x86_pmu_quirk *next;
675 	void (*func)(void);
676 };
677 
678 union x86_pmu_config {
679 	struct {
680 		u64 event:8,
681 		    umask:8,
682 		    usr:1,
683 		    os:1,
684 		    edge:1,
685 		    pc:1,
686 		    interrupt:1,
687 		    __reserved1:1,
688 		    en:1,
689 		    inv:1,
690 		    cmask:8,
691 		    event2:4,
692 		    __reserved2:4,
693 		    go:1,
694 		    ho:1;
695 	} bits;
696 	u64 value;
697 };
698 
699 #define X86_CONFIG(args...) ((union x86_pmu_config){.bits = {args}}).value
700 
701 enum {
702 	x86_lbr_exclusive_lbr,
703 	x86_lbr_exclusive_bts,
704 	x86_lbr_exclusive_pt,
705 	x86_lbr_exclusive_max,
706 };
707 
708 #define PERF_PEBS_DATA_SOURCE_MAX	0x100
709 #define PERF_PEBS_DATA_SOURCE_MASK	(PERF_PEBS_DATA_SOURCE_MAX - 1)
710 #define PERF_PEBS_DATA_SOURCE_GRT_MAX	0x10
711 #define PERF_PEBS_DATA_SOURCE_GRT_MASK	(PERF_PEBS_DATA_SOURCE_GRT_MAX - 1)
712 
713 #define X86_HYBRID_PMU_ATOM_IDX		0
714 #define X86_HYBRID_PMU_CORE_IDX		1
715 #define X86_HYBRID_PMU_TINY_IDX		2
716 
717 enum hybrid_pmu_type {
718 	not_hybrid,
719 	hybrid_small		= BIT(X86_HYBRID_PMU_ATOM_IDX),
720 	hybrid_big		= BIT(X86_HYBRID_PMU_CORE_IDX),
721 	hybrid_tiny		= BIT(X86_HYBRID_PMU_TINY_IDX),
722 
723 	/* The belows are only used for matching */
724 	hybrid_big_small	= hybrid_big   | hybrid_small,
725 	hybrid_small_tiny	= hybrid_small | hybrid_tiny,
726 	hybrid_big_small_tiny	= hybrid_big   | hybrid_small_tiny,
727 };
728 
729 struct arch_pebs_cap {
730 	u64 caps;
731 	u64 counters;
732 	u64 pdists;
733 };
734 
735 struct x86_hybrid_pmu {
736 	struct pmu			pmu;
737 	const char			*name;
738 	enum hybrid_pmu_type		pmu_type;
739 	cpumask_t			supported_cpus;
740 	union perf_capabilities		intel_cap;
741 	u64				intel_ctrl;
742 	u64				pebs_events_mask;
743 	u64				config_mask;
744 	union {
745 			u64		cntr_mask64;
746 			unsigned long	cntr_mask[BITS_TO_LONGS(X86_PMC_IDX_MAX)];
747 	};
748 	union {
749 			u64		fixed_cntr_mask64;
750 			unsigned long	fixed_cntr_mask[BITS_TO_LONGS(X86_PMC_IDX_MAX)];
751 	};
752 
753 	union {
754 			u64		acr_cntr_mask64;
755 			unsigned long	acr_cntr_mask[BITS_TO_LONGS(X86_PMC_IDX_MAX)];
756 	};
757 	union {
758 			u64		acr_cause_mask64;
759 			unsigned long	acr_cause_mask[BITS_TO_LONGS(X86_PMC_IDX_MAX)];
760 	};
761 	struct event_constraint		unconstrained;
762 
763 	u64				hw_cache_event_ids
764 					[PERF_COUNT_HW_CACHE_MAX]
765 					[PERF_COUNT_HW_CACHE_OP_MAX]
766 					[PERF_COUNT_HW_CACHE_RESULT_MAX];
767 	u64				hw_cache_extra_regs
768 					[PERF_COUNT_HW_CACHE_MAX]
769 					[PERF_COUNT_HW_CACHE_OP_MAX]
770 					[PERF_COUNT_HW_CACHE_RESULT_MAX];
771 	struct event_constraint		*event_constraints;
772 	struct event_constraint		*pebs_constraints;
773 	struct extra_reg		*extra_regs;
774 
775 	unsigned int			late_ack	:1,
776 					mid_ack		:1,
777 					enabled_ack	:1;
778 
779 	struct arch_pebs_cap		arch_pebs_cap;
780 
781 	u64				pebs_data_source[PERF_PEBS_DATA_SOURCE_MAX];
782 };
783 
784 static __always_inline struct x86_hybrid_pmu *hybrid_pmu(struct pmu *pmu)
785 {
786 	return container_of(pmu, struct x86_hybrid_pmu, pmu);
787 }
788 
789 extern struct static_key_false perf_is_hybrid;
790 #define is_hybrid()		static_branch_unlikely(&perf_is_hybrid)
791 
792 #define hybrid(_pmu, _field)				\
793 (*({							\
794 	typeof(&x86_pmu._field) __Fp = &x86_pmu._field;	\
795 							\
796 	if (is_hybrid() && (_pmu))			\
797 		__Fp = &hybrid_pmu(_pmu)->_field;	\
798 							\
799 	__Fp;						\
800 }))
801 
802 #define hybrid_var(_pmu, _var)				\
803 (*({							\
804 	typeof(&_var) __Fp = &_var;			\
805 							\
806 	if (is_hybrid() && (_pmu))			\
807 		__Fp = &hybrid_pmu(_pmu)->_var;		\
808 							\
809 	__Fp;						\
810 }))
811 
812 #define hybrid_bit(_pmu, _field)			\
813 ({							\
814 	bool __Fp = x86_pmu._field;			\
815 							\
816 	if (is_hybrid() && (_pmu))			\
817 		__Fp = hybrid_pmu(_pmu)->_field;	\
818 							\
819 	__Fp;						\
820 })
821 
822 /*
823  * struct x86_pmu - generic x86 pmu
824  */
825 struct x86_pmu {
826 	/*
827 	 * Generic x86 PMC bits
828 	 */
829 	const char	*name;
830 	int		version;
831 	int		(*handle_irq)(struct pt_regs *);
832 	void		(*disable_all)(void);
833 	void		(*enable_all)(int added);
834 	void		(*enable)(struct perf_event *);
835 	void		(*disable)(struct perf_event *);
836 	void		(*assign)(struct perf_event *event, int idx);
837 	void		(*add)(struct perf_event *);
838 	void		(*del)(struct perf_event *);
839 	void		(*read)(struct perf_event *event);
840 	int		(*set_period)(struct perf_event *event);
841 	u64		(*update)(struct perf_event *event);
842 	int		(*hw_config)(struct perf_event *event);
843 	int		(*schedule_events)(struct cpu_hw_events *cpuc, int n, int *assign);
844 	void		(*late_setup)(void);
845 	void		(*pebs_enable)(struct perf_event *event);
846 	void		(*pebs_disable)(struct perf_event *event);
847 	void		(*pebs_enable_all)(void);
848 	void		(*pebs_disable_all)(void);
849 	unsigned	eventsel;
850 	unsigned	perfctr;
851 	unsigned	fixedctr;
852 	int		(*addr_offset)(int index, bool eventsel);
853 	int		(*rdpmc_index)(int index);
854 	u64		(*event_map)(int);
855 	int		max_events;
856 	u64		config_mask;
857 	union {
858 			u64		cntr_mask64;
859 			unsigned long	cntr_mask[BITS_TO_LONGS(X86_PMC_IDX_MAX)];
860 	};
861 	union {
862 			u64		fixed_cntr_mask64;
863 			unsigned long	fixed_cntr_mask[BITS_TO_LONGS(X86_PMC_IDX_MAX)];
864 	};
865 	union {
866 			u64		acr_cntr_mask64;
867 			unsigned long	acr_cntr_mask[BITS_TO_LONGS(X86_PMC_IDX_MAX)];
868 	};
869 	union {
870 			u64		acr_cause_mask64;
871 			unsigned long	acr_cause_mask[BITS_TO_LONGS(X86_PMC_IDX_MAX)];
872 	};
873 	int		cntval_bits;
874 	u64		cntval_mask;
875 	union {
876 			unsigned long events_maskl;
877 			unsigned long events_mask[BITS_TO_LONGS(ARCH_PERFMON_EVENTS_COUNT)];
878 	};
879 	int		events_mask_len;
880 	int		apic;
881 	u64		max_period;
882 	struct event_constraint *
883 			(*get_event_constraints)(struct cpu_hw_events *cpuc,
884 						 int idx,
885 						 struct perf_event *event);
886 
887 	void		(*put_event_constraints)(struct cpu_hw_events *cpuc,
888 						 struct perf_event *event);
889 
890 	void		(*start_scheduling)(struct cpu_hw_events *cpuc);
891 
892 	void		(*commit_scheduling)(struct cpu_hw_events *cpuc, int idx, int cntr);
893 
894 	void		(*stop_scheduling)(struct cpu_hw_events *cpuc);
895 
896 	struct event_constraint *event_constraints;
897 	struct x86_pmu_quirk *quirks;
898 	void		(*limit_period)(struct perf_event *event, s64 *l);
899 
900 	/* PMI handler bits */
901 	unsigned int	late_ack		:1,
902 			mid_ack			:1,
903 			enabled_ack		:1;
904 	/*
905 	 * sysfs attrs
906 	 */
907 	int		attr_rdpmc_broken;
908 	int		attr_rdpmc;
909 	struct attribute **format_attrs;
910 
911 	ssize_t		(*events_sysfs_show)(char *page, u64 config);
912 	const struct attribute_group **attr_update;
913 
914 	unsigned long	attr_freeze_on_smi;
915 
916 	/*
917 	 * CPU Hotplug hooks
918 	 */
919 	int		(*cpu_prepare)(int cpu);
920 	void		(*cpu_starting)(int cpu);
921 	void		(*cpu_dying)(int cpu);
922 	void		(*cpu_dead)(int cpu);
923 
924 	void		(*check_microcode)(void);
925 	void		(*sched_task)(struct perf_event_pmu_context *pmu_ctx,
926 				      struct task_struct *task, bool sched_in);
927 
928 	/*
929 	 * Intel Arch Perfmon v2+
930 	 */
931 	u64			intel_ctrl;
932 	union perf_capabilities intel_cap;
933 
934 	/*
935 	 * Intel DebugStore and PEBS bits
936 	 */
937 	unsigned int	bts			:1,
938 			bts_active		:1,
939 			ds_pebs			:1,
940 			pebs_active		:1,
941 			pebs_broken		:1,
942 			pebs_prec_dist		:1,
943 			pebs_no_tlb		:1,
944 			pebs_no_isolation	:1,
945 			pebs_block		:1,
946 			pebs_ept		:1,
947 			arch_pebs		:1;
948 	int		pebs_record_size;
949 	int		pebs_buffer_size;
950 	u64		pebs_events_mask;
951 	void		(*drain_pebs)(struct pt_regs *regs, struct perf_sample_data *data);
952 	struct event_constraint *pebs_constraints;
953 	void		(*pebs_aliases)(struct perf_event *event);
954 	u64		(*pebs_latency_data)(struct perf_event *event, u64 status);
955 	unsigned long	large_pebs_flags;
956 	u64		rtm_abort_event;
957 	u64		pebs_capable;
958 
959 	/*
960 	 * Intel Architectural PEBS
961 	 */
962 	struct arch_pebs_cap arch_pebs_cap;
963 
964 	/*
965 	 * Intel LBR
966 	 */
967 	unsigned int	lbr_tos, lbr_from, lbr_to,
968 			lbr_info, lbr_nr;	   /* LBR base regs and size */
969 	union {
970 		u64	lbr_sel_mask;		   /* LBR_SELECT valid bits */
971 		u64	lbr_ctl_mask;		   /* LBR_CTL valid bits */
972 	};
973 	union {
974 		const int	*lbr_sel_map;	   /* lbr_select mappings */
975 		int		*lbr_ctl_map;	   /* LBR_CTL mappings */
976 	};
977 	u64		lbr_callstack_users;	   /* lbr callstack system wide users */
978 	bool		lbr_double_abort;	   /* duplicated lbr aborts */
979 	bool		lbr_pt_coexist;		   /* (LBR|BTS) may coexist with PT */
980 
981 	unsigned int	lbr_has_info:1;
982 	unsigned int	lbr_has_tsx:1;
983 	unsigned int	lbr_from_flags:1;
984 	unsigned int	lbr_to_cycles:1;
985 
986 	/*
987 	 * Intel Architectural LBR CPUID Enumeration
988 	 */
989 	unsigned int	lbr_depth_mask:8;
990 	unsigned int	lbr_deep_c_reset:1;
991 	unsigned int	lbr_lip:1;
992 	unsigned int	lbr_cpl:1;
993 	unsigned int	lbr_filter:1;
994 	unsigned int	lbr_call_stack:1;
995 	unsigned int	lbr_mispred:1;
996 	unsigned int	lbr_timed_lbr:1;
997 	unsigned int	lbr_br_type:1;
998 	unsigned int	lbr_counters:4;
999 
1000 	void		(*lbr_reset)(void);
1001 	void		(*lbr_read)(struct cpu_hw_events *cpuc);
1002 	void		(*lbr_save)(void *ctx);
1003 	void		(*lbr_restore)(void *ctx);
1004 
1005 	/*
1006 	 * Intel PT/LBR/BTS are exclusive
1007 	 */
1008 	atomic_t	lbr_exclusive[x86_lbr_exclusive_max];
1009 
1010 	/*
1011 	 * Intel perf metrics
1012 	 */
1013 	int		num_topdown_events;
1014 
1015 	/*
1016 	 * AMD bits
1017 	 */
1018 	unsigned int	amd_nb_constraints : 1;
1019 	u64		perf_ctr_pair_en;
1020 
1021 	/*
1022 	 * Extra registers for events
1023 	 */
1024 	struct extra_reg *extra_regs;
1025 	unsigned int flags;
1026 
1027 	/*
1028 	 * Intel host/guest support (KVM)
1029 	 */
1030 	struct perf_guest_switch_msr *(*guest_get_msrs)(int *nr, void *data);
1031 
1032 	/*
1033 	 * Check period value for PERF_EVENT_IOC_PERIOD ioctl.
1034 	 */
1035 	int (*check_period) (struct perf_event *event, u64 period);
1036 
1037 	int (*aux_output_match) (struct perf_event *event);
1038 
1039 	void (*filter)(struct pmu *pmu, int cpu, bool *ret);
1040 	/*
1041 	 * Hybrid support
1042 	 *
1043 	 * Most PMU capabilities are the same among different hybrid PMUs.
1044 	 * The global x86_pmu saves the architecture capabilities, which
1045 	 * are available for all PMUs. The hybrid_pmu only includes the
1046 	 * unique capabilities.
1047 	 */
1048 	int				num_hybrid_pmus;
1049 	struct x86_hybrid_pmu		*hybrid_pmu;
1050 	enum intel_cpu_type (*get_hybrid_cpu_type)	(void);
1051 };
1052 
1053 struct x86_perf_task_context_opt {
1054 	int lbr_callstack_users;
1055 	int lbr_stack_state;
1056 	int log_id;
1057 };
1058 
1059 struct x86_perf_task_context {
1060 	u64 lbr_sel;
1061 	int tos;
1062 	int valid_lbrs;
1063 	struct x86_perf_task_context_opt opt;
1064 	struct lbr_entry lbr[MAX_LBR_ENTRIES];
1065 };
1066 
1067 struct x86_perf_task_context_arch_lbr {
1068 	struct x86_perf_task_context_opt opt;
1069 	struct lbr_entry entries[];
1070 };
1071 
1072 /*
1073  * Add padding to guarantee the 64-byte alignment of the state buffer.
1074  *
1075  * The structure is dynamically allocated. The size of the LBR state may vary
1076  * based on the number of LBR registers.
1077  *
1078  * Do not put anything after the LBR state.
1079  */
1080 struct x86_perf_task_context_arch_lbr_xsave {
1081 	struct x86_perf_task_context_opt		opt;
1082 
1083 	union {
1084 		struct xregs_state			xsave;
1085 		struct {
1086 			struct fxregs_state		i387;
1087 			struct xstate_header		header;
1088 			struct arch_lbr_state		lbr;
1089 		} __attribute__ ((packed, aligned (XSAVE_ALIGNMENT)));
1090 	};
1091 };
1092 
1093 #define x86_add_quirk(func_)						\
1094 do {									\
1095 	static struct x86_pmu_quirk __quirk __initdata = {		\
1096 		.func = func_,						\
1097 	};								\
1098 	__quirk.next = x86_pmu.quirks;					\
1099 	x86_pmu.quirks = &__quirk;					\
1100 } while (0)
1101 
1102 /*
1103  * x86_pmu flags
1104  */
1105 #define PMU_FL_NO_HT_SHARING	0x1 /* no hyper-threading resource sharing */
1106 #define PMU_FL_HAS_RSP_1	0x2 /* has 2 equivalent offcore_rsp regs   */
1107 #define PMU_FL_EXCL_CNTRS	0x4 /* has exclusive counter requirements  */
1108 #define PMU_FL_EXCL_ENABLED	0x8 /* exclusive counter active */
1109 #define PMU_FL_PEBS_ALL		0x10 /* all events are valid PEBS events */
1110 #define PMU_FL_TFA		0x20 /* deal with TSX force abort */
1111 #define PMU_FL_PAIR		0x40 /* merge counters for large incr. events */
1112 #define PMU_FL_INSTR_LATENCY	0x80 /* Support Instruction Latency in PEBS Memory Info Record */
1113 #define PMU_FL_MEM_LOADS_AUX	0x100 /* Require an auxiliary event for the complete memory info */
1114 #define PMU_FL_RETIRE_LATENCY	0x200 /* Support Retire Latency in PEBS */
1115 #define PMU_FL_BR_CNTR		0x400 /* Support branch counter logging */
1116 #define PMU_FL_DYN_CONSTRAINT	0x800 /* Needs dynamic constraint */
1117 #define PMU_FL_HAS_OMR		0x1000 /* has 4 equivalent OMR regs */
1118 
1119 #define EVENT_VAR(_id)  event_attr_##_id
1120 #define EVENT_PTR(_id) &event_attr_##_id.attr.attr
1121 
1122 #define EVENT_ATTR(_name, _id)						\
1123 static struct perf_pmu_events_attr EVENT_VAR(_id) = {			\
1124 	.attr		= __ATTR(_name, 0444, events_sysfs_show, NULL),	\
1125 	.id		= PERF_COUNT_HW_##_id,				\
1126 	.event_str	= NULL,						\
1127 };
1128 
1129 #define EVENT_ATTR_STR(_name, v, str)					\
1130 static struct perf_pmu_events_attr event_attr_##v = {			\
1131 	.attr		= __ATTR(_name, 0444, events_sysfs_show, NULL),	\
1132 	.id		= 0,						\
1133 	.event_str	= str,						\
1134 };
1135 
1136 #define EVENT_ATTR_STR_HT(_name, v, noht, ht)				\
1137 static struct perf_pmu_events_ht_attr event_attr_##v = {		\
1138 	.attr		= __ATTR(_name, 0444, events_ht_sysfs_show, NULL),\
1139 	.id		= 0,						\
1140 	.event_str_noht	= noht,						\
1141 	.event_str_ht	= ht,						\
1142 }
1143 
1144 #define EVENT_ATTR_STR_HYBRID(_name, v, str, _pmu)			\
1145 static struct perf_pmu_events_hybrid_attr event_attr_##v = {		\
1146 	.attr		= __ATTR(_name, 0444, events_hybrid_sysfs_show, NULL),\
1147 	.id		= 0,						\
1148 	.event_str	= str,						\
1149 	.pmu_type	= _pmu,						\
1150 }
1151 
1152 #define FORMAT_HYBRID_PTR(_id) (&format_attr_hybrid_##_id.attr.attr)
1153 
1154 #define FORMAT_ATTR_HYBRID(_name, _pmu)					\
1155 static struct perf_pmu_format_hybrid_attr format_attr_hybrid_##_name = {\
1156 	.attr		= __ATTR_RO(_name),				\
1157 	.pmu_type	= _pmu,						\
1158 }
1159 
1160 struct pmu *x86_get_static_pmu(void);
1161 struct pmu *x86_get_pmu(unsigned int cpu);
1162 extern struct x86_pmu x86_pmu __read_mostly;
1163 
1164 DECLARE_STATIC_CALL(x86_pmu_set_period, *x86_pmu.set_period);
1165 DECLARE_STATIC_CALL(x86_pmu_update,     *x86_pmu.update);
1166 DECLARE_STATIC_CALL(x86_pmu_drain_pebs,	*x86_pmu.drain_pebs);
1167 DECLARE_STATIC_CALL(x86_pmu_late_setup,	*x86_pmu.late_setup);
1168 DECLARE_STATIC_CALL(x86_pmu_pebs_enable, *x86_pmu.pebs_enable);
1169 DECLARE_STATIC_CALL(x86_pmu_pebs_disable, *x86_pmu.pebs_disable);
1170 DECLARE_STATIC_CALL(x86_pmu_pebs_enable_all, *x86_pmu.pebs_enable_all);
1171 DECLARE_STATIC_CALL(x86_pmu_pebs_disable_all, *x86_pmu.pebs_disable_all);
1172 
1173 static __always_inline struct x86_perf_task_context_opt *task_context_opt(void *ctx)
1174 {
1175 	if (cpu_feature_enabled(X86_FEATURE_ARCH_LBR))
1176 		return &((struct x86_perf_task_context_arch_lbr *)ctx)->opt;
1177 
1178 	return &((struct x86_perf_task_context *)ctx)->opt;
1179 }
1180 
1181 static inline bool x86_pmu_has_lbr_callstack(void)
1182 {
1183 	return  x86_pmu.lbr_sel_map &&
1184 		x86_pmu.lbr_sel_map[PERF_SAMPLE_BRANCH_CALL_STACK_SHIFT] > 0;
1185 }
1186 
1187 DECLARE_PER_CPU(struct cpu_hw_events, cpu_hw_events);
1188 DECLARE_PER_CPU(u64 [X86_PMC_IDX_MAX], pmc_prev_left);
1189 
1190 int x86_perf_event_set_period(struct perf_event *event);
1191 
1192 /*
1193  * Generalized hw caching related hw_event table, filled
1194  * in on a per model basis. A value of 0 means
1195  * 'not supported', -1 means 'hw_event makes no sense on
1196  * this CPU', any other value means the raw hw_event
1197  * ID.
1198  */
1199 
1200 #define C(x) PERF_COUNT_HW_CACHE_##x
1201 
1202 extern u64 __read_mostly hw_cache_event_ids
1203 				[PERF_COUNT_HW_CACHE_MAX]
1204 				[PERF_COUNT_HW_CACHE_OP_MAX]
1205 				[PERF_COUNT_HW_CACHE_RESULT_MAX];
1206 extern u64 __read_mostly hw_cache_extra_regs
1207 				[PERF_COUNT_HW_CACHE_MAX]
1208 				[PERF_COUNT_HW_CACHE_OP_MAX]
1209 				[PERF_COUNT_HW_CACHE_RESULT_MAX];
1210 
1211 u64 x86_perf_event_update(struct perf_event *event);
1212 
1213 static inline u64 intel_pmu_topdown_event_update(struct perf_event *event, u64 *val)
1214 {
1215 	return x86_perf_event_update(event);
1216 }
1217 DECLARE_STATIC_CALL(intel_pmu_update_topdown_event, intel_pmu_topdown_event_update);
1218 
1219 static inline unsigned int x86_pmu_config_addr(int index)
1220 {
1221 	return x86_pmu.eventsel + (x86_pmu.addr_offset ?
1222 				   x86_pmu.addr_offset(index, true) : index);
1223 }
1224 
1225 static inline unsigned int x86_pmu_event_addr(int index)
1226 {
1227 	return x86_pmu.perfctr + (x86_pmu.addr_offset ?
1228 				  x86_pmu.addr_offset(index, false) : index);
1229 }
1230 
1231 static inline unsigned int x86_pmu_fixed_ctr_addr(int index)
1232 {
1233 	return x86_pmu.fixedctr + (x86_pmu.addr_offset ?
1234 				   x86_pmu.addr_offset(index, false) : index);
1235 }
1236 
1237 static inline int x86_pmu_rdpmc_index(int index)
1238 {
1239 	return x86_pmu.rdpmc_index ? x86_pmu.rdpmc_index(index) : index;
1240 }
1241 
1242 bool check_hw_exists(unsigned long *cntr_mask,
1243 		     unsigned long *fixed_cntr_mask);
1244 
1245 int x86_add_exclusive(unsigned int what);
1246 
1247 void x86_del_exclusive(unsigned int what);
1248 
1249 int x86_reserve_hardware(void);
1250 
1251 void x86_release_hardware(void);
1252 
1253 int x86_pmu_max_precise(struct pmu *pmu);
1254 
1255 void hw_perf_lbr_event_destroy(struct perf_event *event);
1256 
1257 int x86_setup_perfctr(struct perf_event *event);
1258 
1259 int x86_pmu_hw_config(struct perf_event *event);
1260 
1261 void x86_pmu_disable_all(void);
1262 
1263 static inline bool has_amd_brs(struct hw_perf_event *hwc)
1264 {
1265 	return hwc->flags & PERF_X86_EVENT_AMD_BRS;
1266 }
1267 
1268 static inline bool is_counter_pair(struct hw_perf_event *hwc)
1269 {
1270 	return hwc->flags & PERF_X86_EVENT_PAIR;
1271 }
1272 
1273 static inline void __x86_pmu_enable_event(struct hw_perf_event *hwc,
1274 					  u64 enable_mask)
1275 {
1276 	u64 disable_mask = __this_cpu_read(cpu_hw_events.perf_ctr_virt_mask);
1277 
1278 	if (hwc->extra_reg.reg)
1279 		wrmsrq(hwc->extra_reg.reg, hwc->extra_reg.config);
1280 
1281 	/*
1282 	 * Add enabled Merge event on next counter
1283 	 * if large increment event being enabled on this counter
1284 	 */
1285 	if (is_counter_pair(hwc))
1286 		wrmsrq(x86_pmu_config_addr(hwc->idx + 1), x86_pmu.perf_ctr_pair_en);
1287 
1288 	wrmsrq(hwc->config_base, (hwc->config | enable_mask) & ~disable_mask);
1289 }
1290 
1291 void x86_pmu_enable_all(int added);
1292 
1293 int perf_assign_events(struct event_constraint **constraints, int n,
1294 			int wmin, int wmax, int gpmax, int *assign);
1295 int x86_schedule_events(struct cpu_hw_events *cpuc, int n, int *assign);
1296 
1297 void x86_pmu_stop(struct perf_event *event, int flags);
1298 
1299 static inline void x86_pmu_disable_event(struct perf_event *event)
1300 {
1301 	u64 disable_mask = __this_cpu_read(cpu_hw_events.perf_ctr_virt_mask);
1302 	struct hw_perf_event *hwc = &event->hw;
1303 
1304 	wrmsrq(hwc->config_base, hwc->config & ~disable_mask);
1305 
1306 	if (is_counter_pair(hwc))
1307 		wrmsrq(x86_pmu_config_addr(hwc->idx + 1), 0);
1308 }
1309 
1310 void x86_pmu_enable_event(struct perf_event *event);
1311 
1312 int x86_pmu_handle_irq(struct pt_regs *regs);
1313 
1314 void x86_pmu_show_pmu_cap(struct pmu *pmu);
1315 
1316 static inline int x86_pmu_num_counters(struct pmu *pmu)
1317 {
1318 	return hweight64(hybrid(pmu, cntr_mask64));
1319 }
1320 
1321 static inline int x86_pmu_max_num_counters(struct pmu *pmu)
1322 {
1323 	return fls64(hybrid(pmu, cntr_mask64));
1324 }
1325 
1326 static inline int x86_pmu_num_counters_fixed(struct pmu *pmu)
1327 {
1328 	return hweight64(hybrid(pmu, fixed_cntr_mask64));
1329 }
1330 
1331 static inline int x86_pmu_max_num_counters_fixed(struct pmu *pmu)
1332 {
1333 	return fls64(hybrid(pmu, fixed_cntr_mask64));
1334 }
1335 
1336 static inline u64 x86_pmu_get_event_config(struct perf_event *event)
1337 {
1338 	return event->attr.config & hybrid(event->pmu, config_mask);
1339 }
1340 
1341 static inline bool x86_pmu_has_rdpmc_user_disable(struct pmu *pmu)
1342 {
1343 	return !!(hybrid(pmu, config_mask) &
1344 		  ARCH_PERFMON_EVENTSEL_RDPMC_USER_DISABLE);
1345 }
1346 
1347 extern struct event_constraint emptyconstraint;
1348 
1349 extern struct event_constraint unconstrained;
1350 
1351 static inline bool kernel_ip(unsigned long ip)
1352 {
1353 #ifdef CONFIG_X86_32
1354 	return ip > PAGE_OFFSET;
1355 #else
1356 	return (long)ip < 0;
1357 #endif
1358 }
1359 
1360 /*
1361  * Not all PMUs provide the right context information to place the reported IP
1362  * into full context. Specifically segment registers are typically not
1363  * supplied.
1364  *
1365  * Assuming the address is a linear address (it is for IBS), we fake the CS and
1366  * vm86 mode using the known zero-based code segment and 'fix up' the registers
1367  * to reflect this.
1368  *
1369  * Intel PEBS/LBR appear to typically provide the effective address, nothing
1370  * much we can do about that but pray and treat it like a linear address.
1371  */
1372 static inline void set_linear_ip(struct pt_regs *regs, unsigned long ip)
1373 {
1374 	regs->cs = kernel_ip(ip) ? __KERNEL_CS : __USER_CS;
1375 	if (regs->flags & X86_VM_MASK)
1376 		regs->flags ^= (PERF_EFLAGS_VM | X86_VM_MASK);
1377 	regs->ip = ip;
1378 }
1379 
1380 /*
1381  * x86control flow change classification
1382  * x86control flow changes include branches, interrupts, traps, faults
1383  */
1384 enum {
1385 	X86_BR_NONE		= 0,      /* unknown */
1386 
1387 	X86_BR_USER		= 1 << 0, /* branch target is user */
1388 	X86_BR_KERNEL		= 1 << 1, /* branch target is kernel */
1389 
1390 	X86_BR_CALL		= 1 << 2, /* call */
1391 	X86_BR_RET		= 1 << 3, /* return */
1392 	X86_BR_SYSCALL		= 1 << 4, /* syscall */
1393 	X86_BR_SYSRET		= 1 << 5, /* syscall return */
1394 	X86_BR_INT		= 1 << 6, /* sw interrupt */
1395 	X86_BR_IRET		= 1 << 7, /* return from interrupt */
1396 	X86_BR_JCC		= 1 << 8, /* conditional */
1397 	X86_BR_JMP		= 1 << 9, /* jump */
1398 	X86_BR_IRQ		= 1 << 10,/* hw interrupt or trap or fault */
1399 	X86_BR_IND_CALL		= 1 << 11,/* indirect calls */
1400 	X86_BR_ABORT		= 1 << 12,/* transaction abort */
1401 	X86_BR_IN_TX		= 1 << 13,/* in transaction */
1402 	X86_BR_NO_TX		= 1 << 14,/* not in transaction */
1403 	X86_BR_ZERO_CALL	= 1 << 15,/* zero length call */
1404 	X86_BR_CALL_STACK	= 1 << 16,/* call stack */
1405 	X86_BR_IND_JMP		= 1 << 17,/* indirect jump */
1406 
1407 	X86_BR_TYPE_SAVE	= 1 << 18,/* indicate to save branch type */
1408 
1409 };
1410 
1411 #define X86_BR_PLM (X86_BR_USER | X86_BR_KERNEL)
1412 #define X86_BR_ANYTX (X86_BR_NO_TX | X86_BR_IN_TX)
1413 
1414 #define X86_BR_ANY       \
1415 	(X86_BR_CALL    |\
1416 	 X86_BR_RET     |\
1417 	 X86_BR_SYSCALL |\
1418 	 X86_BR_SYSRET  |\
1419 	 X86_BR_INT     |\
1420 	 X86_BR_IRET    |\
1421 	 X86_BR_JCC     |\
1422 	 X86_BR_JMP	 |\
1423 	 X86_BR_IRQ	 |\
1424 	 X86_BR_ABORT	 |\
1425 	 X86_BR_IND_CALL |\
1426 	 X86_BR_IND_JMP  |\
1427 	 X86_BR_ZERO_CALL)
1428 
1429 #define X86_BR_ALL (X86_BR_PLM | X86_BR_ANY)
1430 
1431 #define X86_BR_ANY_CALL		 \
1432 	(X86_BR_CALL		|\
1433 	 X86_BR_IND_CALL	|\
1434 	 X86_BR_ZERO_CALL	|\
1435 	 X86_BR_SYSCALL		|\
1436 	 X86_BR_IRQ		|\
1437 	 X86_BR_INT)
1438 
1439 int common_branch_type(int type);
1440 int branch_type(unsigned long from, unsigned long to, int abort);
1441 int branch_type_fused(unsigned long from, unsigned long to, int abort,
1442 		      int *offset);
1443 
1444 ssize_t x86_event_sysfs_show(char *page, u64 config, u64 event);
1445 ssize_t intel_event_sysfs_show(char *page, u64 config);
1446 
1447 ssize_t events_sysfs_show(struct device *dev, struct device_attribute *attr,
1448 			  char *page);
1449 ssize_t events_ht_sysfs_show(struct device *dev, struct device_attribute *attr,
1450 			  char *page);
1451 ssize_t events_hybrid_sysfs_show(struct device *dev,
1452 				 struct device_attribute *attr,
1453 				 char *page);
1454 
1455 #ifdef CONFIG_CPU_SUP_AMD
1456 
1457 int amd_pmu_init(void);
1458 
1459 int amd_pmu_lbr_init(void);
1460 void amd_pmu_lbr_reset(void);
1461 void amd_pmu_lbr_read(void);
1462 void amd_pmu_lbr_add(struct perf_event *event);
1463 void amd_pmu_lbr_del(struct perf_event *event);
1464 void amd_pmu_lbr_sched_task(struct perf_event_pmu_context *pmu_ctx,
1465 			    struct task_struct *task, bool sched_in);
1466 void amd_pmu_lbr_enable_all(void);
1467 void amd_pmu_lbr_disable_all(void);
1468 int amd_pmu_lbr_hw_config(struct perf_event *event);
1469 
1470 static __always_inline void __amd_pmu_lbr_disable(void)
1471 {
1472 	u64 dbg_ctl, dbg_extn_cfg;
1473 
1474 	rdmsrq(MSR_AMD_DBG_EXTN_CFG, dbg_extn_cfg);
1475 	wrmsrq(MSR_AMD_DBG_EXTN_CFG, dbg_extn_cfg & ~DBG_EXTN_CFG_LBRV2EN);
1476 
1477 	if (cpu_feature_enabled(X86_FEATURE_AMD_LBR_PMC_FREEZE)) {
1478 		rdmsrq(MSR_IA32_DEBUGCTLMSR, dbg_ctl);
1479 		wrmsrq(MSR_IA32_DEBUGCTLMSR, dbg_ctl & ~DEBUGCTLMSR_FREEZE_LBRS_ON_PMI);
1480 	}
1481 }
1482 
1483 #ifdef CONFIG_PERF_EVENTS_AMD_BRS
1484 
1485 #define AMD_FAM19H_BRS_EVENT 0xc4 /* RETIRED_TAKEN_BRANCH_INSTRUCTIONS */
1486 
1487 int amd_brs_init(void);
1488 void amd_brs_disable(void);
1489 void amd_brs_enable(void);
1490 void amd_brs_enable_all(void);
1491 void amd_brs_disable_all(void);
1492 void amd_brs_drain(void);
1493 void amd_brs_lopwr_init(void);
1494 int amd_brs_hw_config(struct perf_event *event);
1495 void amd_brs_reset(void);
1496 
1497 static inline void amd_pmu_brs_add(struct perf_event *event)
1498 {
1499 	struct cpu_hw_events *cpuc = this_cpu_ptr(&cpu_hw_events);
1500 
1501 	perf_sched_cb_inc(event->pmu);
1502 	cpuc->lbr_users++;
1503 	/*
1504 	 * No need to reset BRS because it is reset
1505 	 * on brs_enable() and it is saturating
1506 	 */
1507 }
1508 
1509 static inline void amd_pmu_brs_del(struct perf_event *event)
1510 {
1511 	struct cpu_hw_events *cpuc = this_cpu_ptr(&cpu_hw_events);
1512 
1513 	cpuc->lbr_users--;
1514 	WARN_ON_ONCE(cpuc->lbr_users < 0);
1515 
1516 	perf_sched_cb_dec(event->pmu);
1517 }
1518 
1519 void amd_pmu_brs_sched_task(struct perf_event_pmu_context *pmu_ctx,
1520 			    struct task_struct *task, bool sched_in);
1521 #else
1522 static inline int amd_brs_init(void)
1523 {
1524 	return 0;
1525 }
1526 static inline void amd_brs_disable(void) {}
1527 static inline void amd_brs_enable(void) {}
1528 static inline void amd_brs_drain(void) {}
1529 static inline void amd_brs_lopwr_init(void) {}
1530 static inline void amd_brs_disable_all(void) {}
1531 static inline int amd_brs_hw_config(struct perf_event *event)
1532 {
1533 	return 0;
1534 }
1535 static inline void amd_brs_reset(void) {}
1536 
1537 static inline void amd_pmu_brs_add(struct perf_event *event)
1538 {
1539 }
1540 
1541 static inline void amd_pmu_brs_del(struct perf_event *event)
1542 {
1543 }
1544 
1545 static inline void amd_pmu_brs_sched_task(struct perf_event_pmu_context *pmu_ctx,
1546 					  struct task_struct *task, bool sched_in)
1547 {
1548 }
1549 
1550 static inline void amd_brs_enable_all(void)
1551 {
1552 }
1553 
1554 #endif
1555 
1556 #else /* CONFIG_CPU_SUP_AMD */
1557 
1558 static inline int amd_pmu_init(void)
1559 {
1560 	return 0;
1561 }
1562 
1563 static inline int amd_brs_init(void)
1564 {
1565 	return -EOPNOTSUPP;
1566 }
1567 
1568 static inline void amd_brs_drain(void)
1569 {
1570 }
1571 
1572 static inline void amd_brs_enable_all(void)
1573 {
1574 }
1575 
1576 static inline void amd_brs_disable_all(void)
1577 {
1578 }
1579 #endif /* CONFIG_CPU_SUP_AMD */
1580 
1581 static inline int is_pebs_pt(struct perf_event *event)
1582 {
1583 	return !!(event->hw.flags & PERF_X86_EVENT_PEBS_VIA_PT);
1584 }
1585 
1586 #ifdef CONFIG_CPU_SUP_INTEL
1587 
1588 static inline bool intel_pmu_has_bts_period(struct perf_event *event, u64 period)
1589 {
1590 	struct hw_perf_event *hwc = &event->hw;
1591 	unsigned int hw_event, bts_event;
1592 
1593 	/*
1594 	 * Only use BTS for fixed rate period==1 events.
1595 	 */
1596 	if (event->attr.freq || period != 1)
1597 		return false;
1598 
1599 	/*
1600 	 * BTS doesn't virtualize.
1601 	 */
1602 	if (event->attr.exclude_host)
1603 		return false;
1604 
1605 	hw_event = hwc->config & INTEL_ARCH_EVENT_MASK;
1606 	bts_event = x86_pmu.event_map(PERF_COUNT_HW_BRANCH_INSTRUCTIONS);
1607 
1608 	return hw_event == bts_event;
1609 }
1610 
1611 static inline bool intel_pmu_has_bts(struct perf_event *event)
1612 {
1613 	struct hw_perf_event *hwc = &event->hw;
1614 
1615 	return intel_pmu_has_bts_period(event, hwc->sample_period);
1616 }
1617 
1618 static __always_inline void __intel_pmu_pebs_disable_all(void)
1619 {
1620 	wrmsrq(MSR_IA32_PEBS_ENABLE, 0);
1621 }
1622 
1623 static __always_inline void __intel_pmu_arch_lbr_disable(void)
1624 {
1625 	wrmsrq(MSR_ARCH_LBR_CTL, 0);
1626 }
1627 
1628 static __always_inline void __intel_pmu_lbr_disable(void)
1629 {
1630 	u64 debugctl;
1631 
1632 	rdmsrq(MSR_IA32_DEBUGCTLMSR, debugctl);
1633 	debugctl &= ~(DEBUGCTLMSR_LBR | DEBUGCTLMSR_FREEZE_LBRS_ON_PMI);
1634 	wrmsrq(MSR_IA32_DEBUGCTLMSR, debugctl);
1635 }
1636 
1637 extern int __intel_pmu_quiesce(void);
1638 extern void __intel_pmu_resume(int pmu_enabled);
1639 
1640 int intel_pmu_save_and_restart(struct perf_event *event);
1641 
1642 struct event_constraint *
1643 x86_get_event_constraints(struct cpu_hw_events *cpuc, int idx,
1644 			  struct perf_event *event);
1645 
1646 extern int intel_cpuc_prepare(struct cpu_hw_events *cpuc, int cpu);
1647 extern void intel_cpuc_finish(struct cpu_hw_events *cpuc);
1648 
1649 int intel_pmu_init(void);
1650 
1651 int alloc_arch_pebs_buf_on_cpu(int cpu);
1652 
1653 void release_arch_pebs_buf_on_cpu(int cpu);
1654 
1655 void init_arch_pebs_on_cpu(int cpu);
1656 
1657 void fini_arch_pebs_on_cpu(int cpu);
1658 
1659 void init_debug_store_on_cpu(int cpu);
1660 
1661 void fini_debug_store_on_cpu(int cpu);
1662 
1663 void release_ds_buffers(void);
1664 
1665 void reserve_ds_buffers(void);
1666 
1667 void release_lbr_buffers(void);
1668 
1669 void reserve_lbr_buffers(void);
1670 
1671 extern struct event_constraint bts_constraint;
1672 extern struct event_constraint vlbr_constraint;
1673 
1674 void intel_pmu_enable_bts(u64 config);
1675 
1676 void intel_pmu_disable_bts(void);
1677 
1678 int intel_pmu_drain_bts_buffer(void);
1679 
1680 void intel_pmu_late_setup(void);
1681 
1682 u64 grt_latency_data(struct perf_event *event, u64 status);
1683 
1684 u64 cmt_latency_data(struct perf_event *event, u64 status);
1685 
1686 u64 lnl_latency_data(struct perf_event *event, u64 status);
1687 
1688 u64 arl_h_latency_data(struct perf_event *event, u64 status);
1689 
1690 u64 pnc_latency_data(struct perf_event *event, u64 status);
1691 
1692 u64 nvl_latency_data(struct perf_event *event, u64 status);
1693 
1694 extern struct event_constraint intel_core2_pebs_event_constraints[];
1695 
1696 extern struct event_constraint intel_atom_pebs_event_constraints[];
1697 
1698 extern struct event_constraint intel_slm_pebs_event_constraints[];
1699 
1700 extern struct event_constraint intel_glm_pebs_event_constraints[];
1701 
1702 extern struct event_constraint intel_glp_pebs_event_constraints[];
1703 
1704 extern struct event_constraint intel_grt_pebs_event_constraints[];
1705 
1706 extern struct event_constraint intel_cmt_pebs_event_constraints[];
1707 
1708 extern struct event_constraint intel_dkt_pebs_event_constraints[];
1709 
1710 extern struct event_constraint intel_nehalem_pebs_event_constraints[];
1711 
1712 extern struct event_constraint intel_westmere_pebs_event_constraints[];
1713 
1714 extern struct event_constraint intel_snb_pebs_event_constraints[];
1715 
1716 extern struct event_constraint intel_ivb_pebs_event_constraints[];
1717 
1718 extern struct event_constraint intel_hsw_pebs_event_constraints[];
1719 
1720 extern struct event_constraint intel_bdw_pebs_event_constraints[];
1721 
1722 extern struct event_constraint intel_skl_pebs_event_constraints[];
1723 
1724 extern struct event_constraint intel_icl_pebs_event_constraints[];
1725 
1726 extern struct event_constraint intel_glc_pebs_event_constraints[];
1727 
1728 extern struct event_constraint intel_lnc_pebs_event_constraints[];
1729 
1730 extern struct event_constraint intel_pnc_pebs_event_constraints[];
1731 
1732 struct event_constraint *intel_pebs_constraints(struct perf_event *event);
1733 
1734 void intel_pmu_pebs_add(struct perf_event *event);
1735 
1736 void intel_pmu_pebs_del(struct perf_event *event);
1737 
1738 void intel_pmu_pebs_enable(struct perf_event *event);
1739 
1740 void intel_pmu_pebs_disable(struct perf_event *event);
1741 
1742 void intel_pmu_pebs_enable_all(void);
1743 
1744 void intel_pmu_pebs_disable_all(void);
1745 
1746 void intel_pmu_pebs_sched_task(struct perf_event_pmu_context *pmu_ctx, bool sched_in);
1747 
1748 void intel_pmu_pebs_late_setup(struct cpu_hw_events *cpuc);
1749 
1750 void intel_pmu_drain_pebs_buffer(void);
1751 
1752 void intel_pmu_store_pebs_lbrs(struct lbr_entry *lbr);
1753 
1754 void intel_pebs_init(void);
1755 
1756 void intel_pmu_lbr_save_brstack(struct perf_sample_data *data,
1757 				struct cpu_hw_events *cpuc,
1758 				struct perf_event *event);
1759 
1760 void intel_pmu_lbr_sched_task(struct perf_event_pmu_context *pmu_ctx,
1761 			      struct task_struct *task, bool sched_in);
1762 
1763 u64 lbr_from_signext_quirk_wr(u64 val);
1764 
1765 void intel_pmu_lbr_reset(void);
1766 
1767 void intel_pmu_lbr_reset_32(void);
1768 
1769 void intel_pmu_lbr_reset_64(void);
1770 
1771 void intel_pmu_lbr_add(struct perf_event *event);
1772 
1773 void intel_pmu_lbr_del(struct perf_event *event);
1774 
1775 void intel_pmu_lbr_enable_all(bool pmi);
1776 
1777 void intel_pmu_lbr_disable_all(void);
1778 
1779 void intel_pmu_lbr_read(void);
1780 
1781 void intel_pmu_lbr_read_32(struct cpu_hw_events *cpuc);
1782 
1783 void intel_pmu_lbr_read_64(struct cpu_hw_events *cpuc);
1784 
1785 void intel_pmu_lbr_save(void *ctx);
1786 
1787 void intel_pmu_lbr_restore(void *ctx);
1788 
1789 void intel_pmu_lbr_init_core(void);
1790 
1791 void intel_pmu_lbr_init_nhm(void);
1792 
1793 void intel_pmu_lbr_init_atom(void);
1794 
1795 void intel_pmu_lbr_init_slm(void);
1796 
1797 void intel_pmu_lbr_init_snb(void);
1798 
1799 void intel_pmu_lbr_init_hsw(void);
1800 
1801 void intel_pmu_lbr_init_skl(void);
1802 
1803 void intel_pmu_lbr_init_knl(void);
1804 
1805 void intel_pmu_lbr_init(void);
1806 
1807 void intel_pmu_arch_lbr_init(void);
1808 
1809 void intel_pmu_pebs_data_source_nhm(void);
1810 
1811 void intel_pmu_pebs_data_source_skl(bool pmem);
1812 
1813 void intel_pmu_pebs_data_source_adl(void);
1814 
1815 void intel_pmu_pebs_data_source_grt(void);
1816 
1817 void intel_pmu_pebs_data_source_mtl(void);
1818 
1819 void intel_pmu_pebs_data_source_arl_h(void);
1820 
1821 void intel_pmu_pebs_data_source_cmt(void);
1822 
1823 void intel_pmu_pebs_data_source_lnl(void);
1824 
1825 u64 intel_get_arch_pebs_data_config(struct perf_event *event);
1826 
1827 int intel_pmu_setup_lbr_filter(struct perf_event *event);
1828 
1829 void intel_pt_interrupt(void);
1830 
1831 int intel_bts_interrupt(void);
1832 
1833 void intel_bts_enable_local(void);
1834 
1835 void intel_bts_disable_local(void);
1836 
1837 int p4_pmu_init(void);
1838 
1839 int p6_pmu_init(void);
1840 
1841 int knc_pmu_init(void);
1842 
1843 static inline int is_ht_workaround_enabled(void)
1844 {
1845 	return !!(x86_pmu.flags & PMU_FL_EXCL_ENABLED);
1846 }
1847 
1848 static inline u64 intel_pmu_pebs_mask(u64 cntr_mask)
1849 {
1850 	return MAX_PEBS_EVENTS_MASK & cntr_mask;
1851 }
1852 
1853 static inline int intel_pmu_max_num_pebs(struct pmu *pmu)
1854 {
1855 	static_assert(MAX_PEBS_EVENTS == 32);
1856 	return fls((u32)hybrid(pmu, pebs_events_mask));
1857 }
1858 
1859 static inline bool intel_pmu_has_pebs(void)
1860 {
1861 	return x86_pmu.ds_pebs || x86_pmu.arch_pebs;
1862 }
1863 
1864 #else /* CONFIG_CPU_SUP_INTEL */
1865 
1866 static inline void reserve_ds_buffers(void)
1867 {
1868 }
1869 
1870 static inline void release_ds_buffers(void)
1871 {
1872 }
1873 
1874 static inline void release_lbr_buffers(void)
1875 {
1876 }
1877 
1878 static inline void reserve_lbr_buffers(void)
1879 {
1880 }
1881 
1882 static inline int intel_pmu_init(void)
1883 {
1884 	return 0;
1885 }
1886 
1887 static inline int intel_cpuc_prepare(struct cpu_hw_events *cpuc, int cpu)
1888 {
1889 	return 0;
1890 }
1891 
1892 static inline void intel_cpuc_finish(struct cpu_hw_events *cpuc)
1893 {
1894 }
1895 
1896 static inline int is_ht_workaround_enabled(void)
1897 {
1898 	return 0;
1899 }
1900 #endif /* CONFIG_CPU_SUP_INTEL */
1901 
1902 #if ((defined CONFIG_CPU_SUP_CENTAUR) || (defined CONFIG_CPU_SUP_ZHAOXIN))
1903 int zhaoxin_pmu_init(void);
1904 #else
1905 static inline int zhaoxin_pmu_init(void)
1906 {
1907 	return 0;
1908 }
1909 #endif /*CONFIG_CPU_SUP_CENTAUR or CONFIG_CPU_SUP_ZHAOXIN*/
1910