perf_event_amd.c 17 KB

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  1. #include <linux/perf_event.h>
  2. #include <linux/export.h>
  3. #include <linux/types.h>
  4. #include <linux/init.h>
  5. #include <linux/slab.h>
  6. #include <asm/apicdef.h>
  7. #include "perf_event.h"
  8. static __initconst const u64 amd_hw_cache_event_ids
  9. [PERF_COUNT_HW_CACHE_MAX]
  10. [PERF_COUNT_HW_CACHE_OP_MAX]
  11. [PERF_COUNT_HW_CACHE_RESULT_MAX] =
  12. {
  13. [ C(L1D) ] = {
  14. [ C(OP_READ) ] = {
  15. [ C(RESULT_ACCESS) ] = 0x0040, /* Data Cache Accesses */
  16. [ C(RESULT_MISS) ] = 0x0141, /* Data Cache Misses */
  17. },
  18. [ C(OP_WRITE) ] = {
  19. [ C(RESULT_ACCESS) ] = 0x0142, /* Data Cache Refills :system */
  20. [ C(RESULT_MISS) ] = 0,
  21. },
  22. [ C(OP_PREFETCH) ] = {
  23. [ C(RESULT_ACCESS) ] = 0x0267, /* Data Prefetcher :attempts */
  24. [ C(RESULT_MISS) ] = 0x0167, /* Data Prefetcher :cancelled */
  25. },
  26. },
  27. [ C(L1I ) ] = {
  28. [ C(OP_READ) ] = {
  29. [ C(RESULT_ACCESS) ] = 0x0080, /* Instruction cache fetches */
  30. [ C(RESULT_MISS) ] = 0x0081, /* Instruction cache misses */
  31. },
  32. [ C(OP_WRITE) ] = {
  33. [ C(RESULT_ACCESS) ] = -1,
  34. [ C(RESULT_MISS) ] = -1,
  35. },
  36. [ C(OP_PREFETCH) ] = {
  37. [ C(RESULT_ACCESS) ] = 0x014B, /* Prefetch Instructions :Load */
  38. [ C(RESULT_MISS) ] = 0,
  39. },
  40. },
  41. [ C(LL ) ] = {
  42. [ C(OP_READ) ] = {
  43. [ C(RESULT_ACCESS) ] = 0x037D, /* Requests to L2 Cache :IC+DC */
  44. [ C(RESULT_MISS) ] = 0x037E, /* L2 Cache Misses : IC+DC */
  45. },
  46. [ C(OP_WRITE) ] = {
  47. [ C(RESULT_ACCESS) ] = 0x017F, /* L2 Fill/Writeback */
  48. [ C(RESULT_MISS) ] = 0,
  49. },
  50. [ C(OP_PREFETCH) ] = {
  51. [ C(RESULT_ACCESS) ] = 0,
  52. [ C(RESULT_MISS) ] = 0,
  53. },
  54. },
  55. [ C(DTLB) ] = {
  56. [ C(OP_READ) ] = {
  57. [ C(RESULT_ACCESS) ] = 0x0040, /* Data Cache Accesses */
  58. [ C(RESULT_MISS) ] = 0x0746, /* L1_DTLB_AND_L2_DLTB_MISS.ALL */
  59. },
  60. [ C(OP_WRITE) ] = {
  61. [ C(RESULT_ACCESS) ] = 0,
  62. [ C(RESULT_MISS) ] = 0,
  63. },
  64. [ C(OP_PREFETCH) ] = {
  65. [ C(RESULT_ACCESS) ] = 0,
  66. [ C(RESULT_MISS) ] = 0,
  67. },
  68. },
  69. [ C(ITLB) ] = {
  70. [ C(OP_READ) ] = {
  71. [ C(RESULT_ACCESS) ] = 0x0080, /* Instruction fecthes */
  72. [ C(RESULT_MISS) ] = 0x0385, /* L1_ITLB_AND_L2_ITLB_MISS.ALL */
  73. },
  74. [ C(OP_WRITE) ] = {
  75. [ C(RESULT_ACCESS) ] = -1,
  76. [ C(RESULT_MISS) ] = -1,
  77. },
  78. [ C(OP_PREFETCH) ] = {
  79. [ C(RESULT_ACCESS) ] = -1,
  80. [ C(RESULT_MISS) ] = -1,
  81. },
  82. },
  83. [ C(BPU ) ] = {
  84. [ C(OP_READ) ] = {
  85. [ C(RESULT_ACCESS) ] = 0x00c2, /* Retired Branch Instr. */
  86. [ C(RESULT_MISS) ] = 0x00c3, /* Retired Mispredicted BI */
  87. },
  88. [ C(OP_WRITE) ] = {
  89. [ C(RESULT_ACCESS) ] = -1,
  90. [ C(RESULT_MISS) ] = -1,
  91. },
  92. [ C(OP_PREFETCH) ] = {
  93. [ C(RESULT_ACCESS) ] = -1,
  94. [ C(RESULT_MISS) ] = -1,
  95. },
  96. },
  97. [ C(NODE) ] = {
  98. [ C(OP_READ) ] = {
  99. [ C(RESULT_ACCESS) ] = 0xb8e9, /* CPU Request to Memory, l+r */
  100. [ C(RESULT_MISS) ] = 0x98e9, /* CPU Request to Memory, r */
  101. },
  102. [ C(OP_WRITE) ] = {
  103. [ C(RESULT_ACCESS) ] = -1,
  104. [ C(RESULT_MISS) ] = -1,
  105. },
  106. [ C(OP_PREFETCH) ] = {
  107. [ C(RESULT_ACCESS) ] = -1,
  108. [ C(RESULT_MISS) ] = -1,
  109. },
  110. },
  111. };
  112. /*
  113. * AMD Performance Monitor K7 and later.
  114. */
  115. static const u64 amd_perfmon_event_map[] =
  116. {
  117. [PERF_COUNT_HW_CPU_CYCLES] = 0x0076,
  118. [PERF_COUNT_HW_INSTRUCTIONS] = 0x00c0,
  119. [PERF_COUNT_HW_CACHE_REFERENCES] = 0x0080,
  120. [PERF_COUNT_HW_CACHE_MISSES] = 0x0081,
  121. [PERF_COUNT_HW_BRANCH_INSTRUCTIONS] = 0x00c2,
  122. [PERF_COUNT_HW_BRANCH_MISSES] = 0x00c3,
  123. [PERF_COUNT_HW_STALLED_CYCLES_FRONTEND] = 0x00d0, /* "Decoder empty" event */
  124. [PERF_COUNT_HW_STALLED_CYCLES_BACKEND] = 0x00d1, /* "Dispatch stalls" event */
  125. };
  126. static u64 amd_pmu_event_map(int hw_event)
  127. {
  128. return amd_perfmon_event_map[hw_event];
  129. }
  130. static int amd_pmu_hw_config(struct perf_event *event)
  131. {
  132. int ret = x86_pmu_hw_config(event);
  133. if (ret)
  134. return ret;
  135. if (has_branch_stack(event))
  136. return -EOPNOTSUPP;
  137. if (event->attr.exclude_host && event->attr.exclude_guest)
  138. /*
  139. * When HO == GO == 1 the hardware treats that as GO == HO == 0
  140. * and will count in both modes. We don't want to count in that
  141. * case so we emulate no-counting by setting US = OS = 0.
  142. */
  143. event->hw.config &= ~(ARCH_PERFMON_EVENTSEL_USR |
  144. ARCH_PERFMON_EVENTSEL_OS);
  145. else if (event->attr.exclude_host)
  146. event->hw.config |= AMD_PERFMON_EVENTSEL_GUESTONLY;
  147. else if (event->attr.exclude_guest)
  148. event->hw.config |= AMD_PERFMON_EVENTSEL_HOSTONLY;
  149. if (event->attr.type != PERF_TYPE_RAW)
  150. return 0;
  151. event->hw.config |= event->attr.config & AMD64_RAW_EVENT_MASK;
  152. return 0;
  153. }
  154. /*
  155. * AMD64 events are detected based on their event codes.
  156. */
  157. static inline unsigned int amd_get_event_code(struct hw_perf_event *hwc)
  158. {
  159. return ((hwc->config >> 24) & 0x0f00) | (hwc->config & 0x00ff);
  160. }
  161. static inline int amd_is_nb_event(struct hw_perf_event *hwc)
  162. {
  163. return (hwc->config & 0xe0) == 0xe0;
  164. }
  165. static inline int amd_has_nb(struct cpu_hw_events *cpuc)
  166. {
  167. struct amd_nb *nb = cpuc->amd_nb;
  168. return nb && nb->nb_id != -1;
  169. }
  170. static void amd_put_event_constraints(struct cpu_hw_events *cpuc,
  171. struct perf_event *event)
  172. {
  173. struct hw_perf_event *hwc = &event->hw;
  174. struct amd_nb *nb = cpuc->amd_nb;
  175. int i;
  176. /*
  177. * only care about NB events
  178. */
  179. if (!(amd_has_nb(cpuc) && amd_is_nb_event(hwc)))
  180. return;
  181. /*
  182. * need to scan whole list because event may not have
  183. * been assigned during scheduling
  184. *
  185. * no race condition possible because event can only
  186. * be removed on one CPU at a time AND PMU is disabled
  187. * when we come here
  188. */
  189. for (i = 0; i < x86_pmu.num_counters; i++) {
  190. if (nb->owners[i] == event) {
  191. cmpxchg(nb->owners+i, event, NULL);
  192. break;
  193. }
  194. }
  195. }
  196. /*
  197. * AMD64 NorthBridge events need special treatment because
  198. * counter access needs to be synchronized across all cores
  199. * of a package. Refer to BKDG section 3.12
  200. *
  201. * NB events are events measuring L3 cache, Hypertransport
  202. * traffic. They are identified by an event code >= 0xe00.
  203. * They measure events on the NorthBride which is shared
  204. * by all cores on a package. NB events are counted on a
  205. * shared set of counters. When a NB event is programmed
  206. * in a counter, the data actually comes from a shared
  207. * counter. Thus, access to those counters needs to be
  208. * synchronized.
  209. *
  210. * We implement the synchronization such that no two cores
  211. * can be measuring NB events using the same counters. Thus,
  212. * we maintain a per-NB allocation table. The available slot
  213. * is propagated using the event_constraint structure.
  214. *
  215. * We provide only one choice for each NB event based on
  216. * the fact that only NB events have restrictions. Consequently,
  217. * if a counter is available, there is a guarantee the NB event
  218. * will be assigned to it. If no slot is available, an empty
  219. * constraint is returned and scheduling will eventually fail
  220. * for this event.
  221. *
  222. * Note that all cores attached the same NB compete for the same
  223. * counters to host NB events, this is why we use atomic ops. Some
  224. * multi-chip CPUs may have more than one NB.
  225. *
  226. * Given that resources are allocated (cmpxchg), they must be
  227. * eventually freed for others to use. This is accomplished by
  228. * calling amd_put_event_constraints().
  229. *
  230. * Non NB events are not impacted by this restriction.
  231. */
  232. static struct event_constraint *
  233. amd_get_event_constraints(struct cpu_hw_events *cpuc, struct perf_event *event)
  234. {
  235. struct hw_perf_event *hwc = &event->hw;
  236. struct amd_nb *nb = cpuc->amd_nb;
  237. struct perf_event *old = NULL;
  238. int max = x86_pmu.num_counters;
  239. int i, j, k = -1;
  240. /*
  241. * if not NB event or no NB, then no constraints
  242. */
  243. if (!(amd_has_nb(cpuc) && amd_is_nb_event(hwc)))
  244. return &unconstrained;
  245. /*
  246. * detect if already present, if so reuse
  247. *
  248. * cannot merge with actual allocation
  249. * because of possible holes
  250. *
  251. * event can already be present yet not assigned (in hwc->idx)
  252. * because of successive calls to x86_schedule_events() from
  253. * hw_perf_group_sched_in() without hw_perf_enable()
  254. */
  255. for (i = 0; i < max; i++) {
  256. /*
  257. * keep track of first free slot
  258. */
  259. if (k == -1 && !nb->owners[i])
  260. k = i;
  261. /* already present, reuse */
  262. if (nb->owners[i] == event)
  263. goto done;
  264. }
  265. /*
  266. * not present, so grab a new slot
  267. * starting either at:
  268. */
  269. if (hwc->idx != -1) {
  270. /* previous assignment */
  271. i = hwc->idx;
  272. } else if (k != -1) {
  273. /* start from free slot found */
  274. i = k;
  275. } else {
  276. /*
  277. * event not found, no slot found in
  278. * first pass, try again from the
  279. * beginning
  280. */
  281. i = 0;
  282. }
  283. j = i;
  284. do {
  285. old = cmpxchg(nb->owners+i, NULL, event);
  286. if (!old)
  287. break;
  288. if (++i == max)
  289. i = 0;
  290. } while (i != j);
  291. done:
  292. if (!old)
  293. return &nb->event_constraints[i];
  294. return &emptyconstraint;
  295. }
  296. static struct amd_nb *amd_alloc_nb(int cpu)
  297. {
  298. struct amd_nb *nb;
  299. int i;
  300. nb = kmalloc_node(sizeof(struct amd_nb), GFP_KERNEL | __GFP_ZERO,
  301. cpu_to_node(cpu));
  302. if (!nb)
  303. return NULL;
  304. nb->nb_id = -1;
  305. /*
  306. * initialize all possible NB constraints
  307. */
  308. for (i = 0; i < x86_pmu.num_counters; i++) {
  309. __set_bit(i, nb->event_constraints[i].idxmsk);
  310. nb->event_constraints[i].weight = 1;
  311. }
  312. return nb;
  313. }
  314. static int amd_pmu_cpu_prepare(int cpu)
  315. {
  316. struct cpu_hw_events *cpuc = &per_cpu(cpu_hw_events, cpu);
  317. WARN_ON_ONCE(cpuc->amd_nb);
  318. if (boot_cpu_data.x86_max_cores < 2)
  319. return NOTIFY_OK;
  320. cpuc->amd_nb = amd_alloc_nb(cpu);
  321. if (!cpuc->amd_nb)
  322. return NOTIFY_BAD;
  323. return NOTIFY_OK;
  324. }
  325. static void amd_pmu_cpu_starting(int cpu)
  326. {
  327. struct cpu_hw_events *cpuc = &per_cpu(cpu_hw_events, cpu);
  328. struct amd_nb *nb;
  329. int i, nb_id;
  330. cpuc->perf_ctr_virt_mask = AMD_PERFMON_EVENTSEL_HOSTONLY;
  331. if (boot_cpu_data.x86_max_cores < 2 || boot_cpu_data.x86 == 0x15)
  332. return;
  333. nb_id = amd_get_nb_id(cpu);
  334. WARN_ON_ONCE(nb_id == BAD_APICID);
  335. for_each_online_cpu(i) {
  336. nb = per_cpu(cpu_hw_events, i).amd_nb;
  337. if (WARN_ON_ONCE(!nb))
  338. continue;
  339. if (nb->nb_id == nb_id) {
  340. cpuc->kfree_on_online = cpuc->amd_nb;
  341. cpuc->amd_nb = nb;
  342. break;
  343. }
  344. }
  345. cpuc->amd_nb->nb_id = nb_id;
  346. cpuc->amd_nb->refcnt++;
  347. }
  348. static void amd_pmu_cpu_dead(int cpu)
  349. {
  350. struct cpu_hw_events *cpuhw;
  351. if (boot_cpu_data.x86_max_cores < 2)
  352. return;
  353. cpuhw = &per_cpu(cpu_hw_events, cpu);
  354. if (cpuhw->amd_nb) {
  355. struct amd_nb *nb = cpuhw->amd_nb;
  356. if (nb->nb_id == -1 || --nb->refcnt == 0)
  357. kfree(nb);
  358. cpuhw->amd_nb = NULL;
  359. }
  360. }
  361. PMU_FORMAT_ATTR(event, "config:0-7,32-35");
  362. PMU_FORMAT_ATTR(umask, "config:8-15" );
  363. PMU_FORMAT_ATTR(edge, "config:18" );
  364. PMU_FORMAT_ATTR(inv, "config:23" );
  365. PMU_FORMAT_ATTR(cmask, "config:24-31" );
  366. static struct attribute *amd_format_attr[] = {
  367. &format_attr_event.attr,
  368. &format_attr_umask.attr,
  369. &format_attr_edge.attr,
  370. &format_attr_inv.attr,
  371. &format_attr_cmask.attr,
  372. NULL,
  373. };
  374. static __initconst const struct x86_pmu amd_pmu = {
  375. .name = "AMD",
  376. .handle_irq = x86_pmu_handle_irq,
  377. .disable_all = x86_pmu_disable_all,
  378. .enable_all = x86_pmu_enable_all,
  379. .enable = x86_pmu_enable_event,
  380. .disable = x86_pmu_disable_event,
  381. .hw_config = amd_pmu_hw_config,
  382. .schedule_events = x86_schedule_events,
  383. .eventsel = MSR_K7_EVNTSEL0,
  384. .perfctr = MSR_K7_PERFCTR0,
  385. .event_map = amd_pmu_event_map,
  386. .max_events = ARRAY_SIZE(amd_perfmon_event_map),
  387. .num_counters = AMD64_NUM_COUNTERS,
  388. .cntval_bits = 48,
  389. .cntval_mask = (1ULL << 48) - 1,
  390. .apic = 1,
  391. /* use highest bit to detect overflow */
  392. .max_period = (1ULL << 47) - 1,
  393. .get_event_constraints = amd_get_event_constraints,
  394. .put_event_constraints = amd_put_event_constraints,
  395. .format_attrs = amd_format_attr,
  396. .cpu_prepare = amd_pmu_cpu_prepare,
  397. .cpu_starting = amd_pmu_cpu_starting,
  398. .cpu_dead = amd_pmu_cpu_dead,
  399. };
  400. /* AMD Family 15h */
  401. #define AMD_EVENT_TYPE_MASK 0x000000F0ULL
  402. #define AMD_EVENT_FP 0x00000000ULL ... 0x00000010ULL
  403. #define AMD_EVENT_LS 0x00000020ULL ... 0x00000030ULL
  404. #define AMD_EVENT_DC 0x00000040ULL ... 0x00000050ULL
  405. #define AMD_EVENT_CU 0x00000060ULL ... 0x00000070ULL
  406. #define AMD_EVENT_IC_DE 0x00000080ULL ... 0x00000090ULL
  407. #define AMD_EVENT_EX_LS 0x000000C0ULL
  408. #define AMD_EVENT_DE 0x000000D0ULL
  409. #define AMD_EVENT_NB 0x000000E0ULL ... 0x000000F0ULL
  410. /*
  411. * AMD family 15h event code/PMC mappings:
  412. *
  413. * type = event_code & 0x0F0:
  414. *
  415. * 0x000 FP PERF_CTL[5:3]
  416. * 0x010 FP PERF_CTL[5:3]
  417. * 0x020 LS PERF_CTL[5:0]
  418. * 0x030 LS PERF_CTL[5:0]
  419. * 0x040 DC PERF_CTL[5:0]
  420. * 0x050 DC PERF_CTL[5:0]
  421. * 0x060 CU PERF_CTL[2:0]
  422. * 0x070 CU PERF_CTL[2:0]
  423. * 0x080 IC/DE PERF_CTL[2:0]
  424. * 0x090 IC/DE PERF_CTL[2:0]
  425. * 0x0A0 ---
  426. * 0x0B0 ---
  427. * 0x0C0 EX/LS PERF_CTL[5:0]
  428. * 0x0D0 DE PERF_CTL[2:0]
  429. * 0x0E0 NB NB_PERF_CTL[3:0]
  430. * 0x0F0 NB NB_PERF_CTL[3:0]
  431. *
  432. * Exceptions:
  433. *
  434. * 0x000 FP PERF_CTL[3], PERF_CTL[5:3] (*)
  435. * 0x003 FP PERF_CTL[3]
  436. * 0x004 FP PERF_CTL[3], PERF_CTL[5:3] (*)
  437. * 0x00B FP PERF_CTL[3]
  438. * 0x00D FP PERF_CTL[3]
  439. * 0x023 DE PERF_CTL[2:0]
  440. * 0x02D LS PERF_CTL[3]
  441. * 0x02E LS PERF_CTL[3,0]
  442. * 0x031 LS PERF_CTL[2:0] (**)
  443. * 0x043 CU PERF_CTL[2:0]
  444. * 0x045 CU PERF_CTL[2:0]
  445. * 0x046 CU PERF_CTL[2:0]
  446. * 0x054 CU PERF_CTL[2:0]
  447. * 0x055 CU PERF_CTL[2:0]
  448. * 0x08F IC PERF_CTL[0]
  449. * 0x187 DE PERF_CTL[0]
  450. * 0x188 DE PERF_CTL[0]
  451. * 0x0DB EX PERF_CTL[5:0]
  452. * 0x0DC LS PERF_CTL[5:0]
  453. * 0x0DD LS PERF_CTL[5:0]
  454. * 0x0DE LS PERF_CTL[5:0]
  455. * 0x0DF LS PERF_CTL[5:0]
  456. * 0x1C0 EX PERF_CTL[5:3]
  457. * 0x1D6 EX PERF_CTL[5:0]
  458. * 0x1D8 EX PERF_CTL[5:0]
  459. *
  460. * (*) depending on the umask all FPU counters may be used
  461. * (**) only one unitmask enabled at a time
  462. */
  463. static struct event_constraint amd_f15_PMC0 = EVENT_CONSTRAINT(0, 0x01, 0);
  464. static struct event_constraint amd_f15_PMC20 = EVENT_CONSTRAINT(0, 0x07, 0);
  465. static struct event_constraint amd_f15_PMC3 = EVENT_CONSTRAINT(0, 0x08, 0);
  466. static struct event_constraint amd_f15_PMC30 = EVENT_CONSTRAINT_OVERLAP(0, 0x09, 0);
  467. static struct event_constraint amd_f15_PMC50 = EVENT_CONSTRAINT(0, 0x3F, 0);
  468. static struct event_constraint amd_f15_PMC53 = EVENT_CONSTRAINT(0, 0x38, 0);
  469. static struct event_constraint *
  470. amd_get_event_constraints_f15h(struct cpu_hw_events *cpuc, struct perf_event *event)
  471. {
  472. struct hw_perf_event *hwc = &event->hw;
  473. unsigned int event_code = amd_get_event_code(hwc);
  474. switch (event_code & AMD_EVENT_TYPE_MASK) {
  475. case AMD_EVENT_FP:
  476. switch (event_code) {
  477. case 0x000:
  478. if (!(hwc->config & 0x0000F000ULL))
  479. break;
  480. if (!(hwc->config & 0x00000F00ULL))
  481. break;
  482. return &amd_f15_PMC3;
  483. case 0x004:
  484. if (hweight_long(hwc->config & ARCH_PERFMON_EVENTSEL_UMASK) <= 1)
  485. break;
  486. return &amd_f15_PMC3;
  487. case 0x003:
  488. case 0x00B:
  489. case 0x00D:
  490. return &amd_f15_PMC3;
  491. }
  492. return &amd_f15_PMC53;
  493. case AMD_EVENT_LS:
  494. case AMD_EVENT_DC:
  495. case AMD_EVENT_EX_LS:
  496. switch (event_code) {
  497. case 0x023:
  498. case 0x043:
  499. case 0x045:
  500. case 0x046:
  501. case 0x054:
  502. case 0x055:
  503. return &amd_f15_PMC20;
  504. case 0x02D:
  505. return &amd_f15_PMC3;
  506. case 0x02E:
  507. return &amd_f15_PMC30;
  508. case 0x031:
  509. if (hweight_long(hwc->config & ARCH_PERFMON_EVENTSEL_UMASK) <= 1)
  510. return &amd_f15_PMC20;
  511. return &emptyconstraint;
  512. case 0x1C0:
  513. return &amd_f15_PMC53;
  514. default:
  515. return &amd_f15_PMC50;
  516. }
  517. case AMD_EVENT_CU:
  518. case AMD_EVENT_IC_DE:
  519. case AMD_EVENT_DE:
  520. switch (event_code) {
  521. case 0x08F:
  522. case 0x187:
  523. case 0x188:
  524. return &amd_f15_PMC0;
  525. case 0x0DB ... 0x0DF:
  526. case 0x1D6:
  527. case 0x1D8:
  528. return &amd_f15_PMC50;
  529. default:
  530. return &amd_f15_PMC20;
  531. }
  532. case AMD_EVENT_NB:
  533. /* not yet implemented */
  534. return &emptyconstraint;
  535. default:
  536. return &emptyconstraint;
  537. }
  538. }
  539. static __initconst const struct x86_pmu amd_pmu_f15h = {
  540. .name = "AMD Family 15h",
  541. .handle_irq = x86_pmu_handle_irq,
  542. .disable_all = x86_pmu_disable_all,
  543. .enable_all = x86_pmu_enable_all,
  544. .enable = x86_pmu_enable_event,
  545. .disable = x86_pmu_disable_event,
  546. .hw_config = amd_pmu_hw_config,
  547. .schedule_events = x86_schedule_events,
  548. .eventsel = MSR_F15H_PERF_CTL,
  549. .perfctr = MSR_F15H_PERF_CTR,
  550. .event_map = amd_pmu_event_map,
  551. .max_events = ARRAY_SIZE(amd_perfmon_event_map),
  552. .num_counters = AMD64_NUM_COUNTERS_F15H,
  553. .cntval_bits = 48,
  554. .cntval_mask = (1ULL << 48) - 1,
  555. .apic = 1,
  556. /* use highest bit to detect overflow */
  557. .max_period = (1ULL << 47) - 1,
  558. .get_event_constraints = amd_get_event_constraints_f15h,
  559. /* nortbridge counters not yet implemented: */
  560. #if 0
  561. .put_event_constraints = amd_put_event_constraints,
  562. .cpu_prepare = amd_pmu_cpu_prepare,
  563. .cpu_dead = amd_pmu_cpu_dead,
  564. #endif
  565. .cpu_starting = amd_pmu_cpu_starting,
  566. .format_attrs = amd_format_attr,
  567. };
  568. __init int amd_pmu_init(void)
  569. {
  570. /* Performance-monitoring supported from K7 and later: */
  571. if (boot_cpu_data.x86 < 6)
  572. return -ENODEV;
  573. /*
  574. * If core performance counter extensions exists, it must be
  575. * family 15h, otherwise fail. See x86_pmu_addr_offset().
  576. */
  577. switch (boot_cpu_data.x86) {
  578. case 0x15:
  579. if (!cpu_has_perfctr_core)
  580. return -ENODEV;
  581. x86_pmu = amd_pmu_f15h;
  582. break;
  583. default:
  584. if (cpu_has_perfctr_core)
  585. return -ENODEV;
  586. x86_pmu = amd_pmu;
  587. break;
  588. }
  589. /* Events are common for all AMDs */
  590. memcpy(hw_cache_event_ids, amd_hw_cache_event_ids,
  591. sizeof(hw_cache_event_ids));
  592. return 0;
  593. }
  594. void amd_pmu_enable_virt(void)
  595. {
  596. struct cpu_hw_events *cpuc = &__get_cpu_var(cpu_hw_events);
  597. cpuc->perf_ctr_virt_mask = 0;
  598. /* Reload all events */
  599. x86_pmu_disable_all();
  600. x86_pmu_enable_all(0);
  601. }
  602. EXPORT_SYMBOL_GPL(amd_pmu_enable_virt);
  603. void amd_pmu_disable_virt(void)
  604. {
  605. struct cpu_hw_events *cpuc = &__get_cpu_var(cpu_hw_events);
  606. /*
  607. * We only mask out the Host-only bit so that host-only counting works
  608. * when SVM is disabled. If someone sets up a guest-only counter when
  609. * SVM is disabled the Guest-only bits still gets set and the counter
  610. * will not count anything.
  611. */
  612. cpuc->perf_ctr_virt_mask = AMD_PERFMON_EVENTSEL_HOSTONLY;
  613. /* Reload all events */
  614. x86_pmu_disable_all();
  615. x86_pmu_enable_all(0);
  616. }
  617. EXPORT_SYMBOL_GPL(amd_pmu_disable_virt);