acpi-cpufreq.c 20 KB

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  1. /*
  2. * acpi-cpufreq.c - ACPI Processor P-States Driver
  3. *
  4. * Copyright (C) 2001, 2002 Andy Grover <andrew.grover@intel.com>
  5. * Copyright (C) 2001, 2002 Paul Diefenbaugh <paul.s.diefenbaugh@intel.com>
  6. * Copyright (C) 2002 - 2004 Dominik Brodowski <linux@brodo.de>
  7. * Copyright (C) 2006 Denis Sadykov <denis.m.sadykov@intel.com>
  8. *
  9. * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
  10. *
  11. * This program is free software; you can redistribute it and/or modify
  12. * it under the terms of the GNU General Public License as published by
  13. * the Free Software Foundation; either version 2 of the License, or (at
  14. * your option) any later version.
  15. *
  16. * This program is distributed in the hope that it will be useful, but
  17. * WITHOUT ANY WARRANTY; without even the implied warranty of
  18. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  19. * General Public License for more details.
  20. *
  21. * You should have received a copy of the GNU General Public License along
  22. * with this program; if not, write to the Free Software Foundation, Inc.,
  23. * 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA.
  24. *
  25. * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
  26. */
  27. #include <linux/kernel.h>
  28. #include <linux/module.h>
  29. #include <linux/init.h>
  30. #include <linux/smp.h>
  31. #include <linux/sched.h>
  32. #include <linux/cpufreq.h>
  33. #include <linux/compiler.h>
  34. #include <linux/dmi.h>
  35. #include <trace/events/power.h>
  36. #include <linux/acpi.h>
  37. #include <linux/io.h>
  38. #include <linux/delay.h>
  39. #include <linux/uaccess.h>
  40. #include <acpi/processor.h>
  41. #include <asm/msr.h>
  42. #include <asm/processor.h>
  43. #include <asm/cpufeature.h>
  44. #define dprintk(msg...) cpufreq_debug_printk(CPUFREQ_DEBUG_DRIVER, \
  45. "acpi-cpufreq", msg)
  46. MODULE_AUTHOR("Paul Diefenbaugh, Dominik Brodowski");
  47. MODULE_DESCRIPTION("ACPI Processor P-States Driver");
  48. MODULE_LICENSE("GPL");
  49. enum {
  50. UNDEFINED_CAPABLE = 0,
  51. SYSTEM_INTEL_MSR_CAPABLE,
  52. SYSTEM_IO_CAPABLE,
  53. };
  54. #define INTEL_MSR_RANGE (0xffff)
  55. struct acpi_cpufreq_data {
  56. struct acpi_processor_performance *acpi_data;
  57. struct cpufreq_frequency_table *freq_table;
  58. unsigned int resume;
  59. unsigned int cpu_feature;
  60. };
  61. static DEFINE_PER_CPU(struct acpi_cpufreq_data *, acfreq_data);
  62. static DEFINE_PER_CPU(struct aperfmperf, acfreq_old_perf);
  63. /* acpi_perf_data is a pointer to percpu data. */
  64. static struct acpi_processor_performance *acpi_perf_data;
  65. static struct cpufreq_driver acpi_cpufreq_driver;
  66. static unsigned int acpi_pstate_strict;
  67. static int check_est_cpu(unsigned int cpuid)
  68. {
  69. struct cpuinfo_x86 *cpu = &cpu_data(cpuid);
  70. return cpu_has(cpu, X86_FEATURE_EST);
  71. }
  72. static unsigned extract_io(u32 value, struct acpi_cpufreq_data *data)
  73. {
  74. struct acpi_processor_performance *perf;
  75. int i;
  76. perf = data->acpi_data;
  77. for (i = 0; i < perf->state_count; i++) {
  78. if (value == perf->states[i].status)
  79. return data->freq_table[i].frequency;
  80. }
  81. return 0;
  82. }
  83. static unsigned extract_msr(u32 msr, struct acpi_cpufreq_data *data)
  84. {
  85. int i;
  86. struct acpi_processor_performance *perf;
  87. msr &= INTEL_MSR_RANGE;
  88. perf = data->acpi_data;
  89. for (i = 0; data->freq_table[i].frequency != CPUFREQ_TABLE_END; i++) {
  90. if (msr == perf->states[data->freq_table[i].index].status)
  91. return data->freq_table[i].frequency;
  92. }
  93. return data->freq_table[0].frequency;
  94. }
  95. static unsigned extract_freq(u32 val, struct acpi_cpufreq_data *data)
  96. {
  97. switch (data->cpu_feature) {
  98. case SYSTEM_INTEL_MSR_CAPABLE:
  99. return extract_msr(val, data);
  100. case SYSTEM_IO_CAPABLE:
  101. return extract_io(val, data);
  102. default:
  103. return 0;
  104. }
  105. }
  106. struct msr_addr {
  107. u32 reg;
  108. };
  109. struct io_addr {
  110. u16 port;
  111. u8 bit_width;
  112. };
  113. struct drv_cmd {
  114. unsigned int type;
  115. const struct cpumask *mask;
  116. union {
  117. struct msr_addr msr;
  118. struct io_addr io;
  119. } addr;
  120. u32 val;
  121. };
  122. /* Called via smp_call_function_single(), on the target CPU */
  123. static void do_drv_read(void *_cmd)
  124. {
  125. struct drv_cmd *cmd = _cmd;
  126. u32 h;
  127. switch (cmd->type) {
  128. case SYSTEM_INTEL_MSR_CAPABLE:
  129. rdmsr(cmd->addr.msr.reg, cmd->val, h);
  130. break;
  131. case SYSTEM_IO_CAPABLE:
  132. acpi_os_read_port((acpi_io_address)cmd->addr.io.port,
  133. &cmd->val,
  134. (u32)cmd->addr.io.bit_width);
  135. break;
  136. default:
  137. break;
  138. }
  139. }
  140. /* Called via smp_call_function_many(), on the target CPUs */
  141. static void do_drv_write(void *_cmd)
  142. {
  143. struct drv_cmd *cmd = _cmd;
  144. u32 lo, hi;
  145. switch (cmd->type) {
  146. case SYSTEM_INTEL_MSR_CAPABLE:
  147. rdmsr(cmd->addr.msr.reg, lo, hi);
  148. lo = (lo & ~INTEL_MSR_RANGE) | (cmd->val & INTEL_MSR_RANGE);
  149. wrmsr(cmd->addr.msr.reg, lo, hi);
  150. break;
  151. case SYSTEM_IO_CAPABLE:
  152. acpi_os_write_port((acpi_io_address)cmd->addr.io.port,
  153. cmd->val,
  154. (u32)cmd->addr.io.bit_width);
  155. break;
  156. default:
  157. break;
  158. }
  159. }
  160. static void drv_read(struct drv_cmd *cmd)
  161. {
  162. int err;
  163. cmd->val = 0;
  164. err = smp_call_function_any(cmd->mask, do_drv_read, cmd, 1);
  165. WARN_ON_ONCE(err); /* smp_call_function_any() was buggy? */
  166. }
  167. static void drv_write(struct drv_cmd *cmd)
  168. {
  169. int this_cpu;
  170. this_cpu = get_cpu();
  171. if (cpumask_test_cpu(this_cpu, cmd->mask))
  172. do_drv_write(cmd);
  173. smp_call_function_many(cmd->mask, do_drv_write, cmd, 1);
  174. put_cpu();
  175. }
  176. static u32 get_cur_val(const struct cpumask *mask)
  177. {
  178. struct acpi_processor_performance *perf;
  179. struct drv_cmd cmd;
  180. if (unlikely(cpumask_empty(mask)))
  181. return 0;
  182. switch (per_cpu(acfreq_data, cpumask_first(mask))->cpu_feature) {
  183. case SYSTEM_INTEL_MSR_CAPABLE:
  184. cmd.type = SYSTEM_INTEL_MSR_CAPABLE;
  185. cmd.addr.msr.reg = MSR_IA32_PERF_STATUS;
  186. break;
  187. case SYSTEM_IO_CAPABLE:
  188. cmd.type = SYSTEM_IO_CAPABLE;
  189. perf = per_cpu(acfreq_data, cpumask_first(mask))->acpi_data;
  190. cmd.addr.io.port = perf->control_register.address;
  191. cmd.addr.io.bit_width = perf->control_register.bit_width;
  192. break;
  193. default:
  194. return 0;
  195. }
  196. cmd.mask = mask;
  197. drv_read(&cmd);
  198. dprintk("get_cur_val = %u\n", cmd.val);
  199. return cmd.val;
  200. }
  201. /* Called via smp_call_function_single(), on the target CPU */
  202. static void read_measured_perf_ctrs(void *_cur)
  203. {
  204. struct aperfmperf *am = _cur;
  205. get_aperfmperf(am);
  206. }
  207. /*
  208. * Return the measured active (C0) frequency on this CPU since last call
  209. * to this function.
  210. * Input: cpu number
  211. * Return: Average CPU frequency in terms of max frequency (zero on error)
  212. *
  213. * We use IA32_MPERF and IA32_APERF MSRs to get the measured performance
  214. * over a period of time, while CPU is in C0 state.
  215. * IA32_MPERF counts at the rate of max advertised frequency
  216. * IA32_APERF counts at the rate of actual CPU frequency
  217. * Only IA32_APERF/IA32_MPERF ratio is architecturally defined and
  218. * no meaning should be associated with absolute values of these MSRs.
  219. */
  220. static unsigned int get_measured_perf(struct cpufreq_policy *policy,
  221. unsigned int cpu)
  222. {
  223. struct aperfmperf perf;
  224. unsigned long ratio;
  225. unsigned int retval;
  226. if (smp_call_function_single(cpu, read_measured_perf_ctrs, &perf, 1))
  227. return 0;
  228. ratio = calc_aperfmperf_ratio(&per_cpu(acfreq_old_perf, cpu), &perf);
  229. per_cpu(acfreq_old_perf, cpu) = perf;
  230. retval = (policy->cpuinfo.max_freq * ratio) >> APERFMPERF_SHIFT;
  231. return retval;
  232. }
  233. static unsigned int get_cur_freq_on_cpu(unsigned int cpu)
  234. {
  235. struct acpi_cpufreq_data *data = per_cpu(acfreq_data, cpu);
  236. unsigned int freq;
  237. unsigned int cached_freq;
  238. dprintk("get_cur_freq_on_cpu (%d)\n", cpu);
  239. if (unlikely(data == NULL ||
  240. data->acpi_data == NULL || data->freq_table == NULL)) {
  241. return 0;
  242. }
  243. cached_freq = data->freq_table[data->acpi_data->state].frequency;
  244. freq = extract_freq(get_cur_val(cpumask_of(cpu)), data);
  245. if (freq != cached_freq) {
  246. /*
  247. * The dreaded BIOS frequency change behind our back.
  248. * Force set the frequency on next target call.
  249. */
  250. data->resume = 1;
  251. }
  252. dprintk("cur freq = %u\n", freq);
  253. return freq;
  254. }
  255. static unsigned int check_freqs(const struct cpumask *mask, unsigned int freq,
  256. struct acpi_cpufreq_data *data)
  257. {
  258. unsigned int cur_freq;
  259. unsigned int i;
  260. for (i = 0; i < 100; i++) {
  261. cur_freq = extract_freq(get_cur_val(mask), data);
  262. if (cur_freq == freq)
  263. return 1;
  264. udelay(10);
  265. }
  266. return 0;
  267. }
  268. static int acpi_cpufreq_target(struct cpufreq_policy *policy,
  269. unsigned int target_freq, unsigned int relation)
  270. {
  271. struct acpi_cpufreq_data *data = per_cpu(acfreq_data, policy->cpu);
  272. struct acpi_processor_performance *perf;
  273. struct cpufreq_freqs freqs;
  274. struct drv_cmd cmd;
  275. unsigned int next_state = 0; /* Index into freq_table */
  276. unsigned int next_perf_state = 0; /* Index into perf table */
  277. unsigned int i;
  278. int result = 0;
  279. dprintk("acpi_cpufreq_target %d (%d)\n", target_freq, policy->cpu);
  280. if (unlikely(data == NULL ||
  281. data->acpi_data == NULL || data->freq_table == NULL)) {
  282. return -ENODEV;
  283. }
  284. perf = data->acpi_data;
  285. result = cpufreq_frequency_table_target(policy,
  286. data->freq_table,
  287. target_freq,
  288. relation, &next_state);
  289. if (unlikely(result)) {
  290. result = -ENODEV;
  291. goto out;
  292. }
  293. next_perf_state = data->freq_table[next_state].index;
  294. if (perf->state == next_perf_state) {
  295. if (unlikely(data->resume)) {
  296. dprintk("Called after resume, resetting to P%d\n",
  297. next_perf_state);
  298. data->resume = 0;
  299. } else {
  300. dprintk("Already at target state (P%d)\n",
  301. next_perf_state);
  302. goto out;
  303. }
  304. }
  305. trace_power_frequency(POWER_PSTATE, data->freq_table[next_state].frequency);
  306. switch (data->cpu_feature) {
  307. case SYSTEM_INTEL_MSR_CAPABLE:
  308. cmd.type = SYSTEM_INTEL_MSR_CAPABLE;
  309. cmd.addr.msr.reg = MSR_IA32_PERF_CTL;
  310. cmd.val = (u32) perf->states[next_perf_state].control;
  311. break;
  312. case SYSTEM_IO_CAPABLE:
  313. cmd.type = SYSTEM_IO_CAPABLE;
  314. cmd.addr.io.port = perf->control_register.address;
  315. cmd.addr.io.bit_width = perf->control_register.bit_width;
  316. cmd.val = (u32) perf->states[next_perf_state].control;
  317. break;
  318. default:
  319. result = -ENODEV;
  320. goto out;
  321. }
  322. /* cpufreq holds the hotplug lock, so we are safe from here on */
  323. if (policy->shared_type != CPUFREQ_SHARED_TYPE_ANY)
  324. cmd.mask = policy->cpus;
  325. else
  326. cmd.mask = cpumask_of(policy->cpu);
  327. freqs.old = perf->states[perf->state].core_frequency * 1000;
  328. freqs.new = data->freq_table[next_state].frequency;
  329. for_each_cpu(i, cmd.mask) {
  330. freqs.cpu = i;
  331. cpufreq_notify_transition(&freqs, CPUFREQ_PRECHANGE);
  332. }
  333. drv_write(&cmd);
  334. if (acpi_pstate_strict) {
  335. if (!check_freqs(cmd.mask, freqs.new, data)) {
  336. dprintk("acpi_cpufreq_target failed (%d)\n",
  337. policy->cpu);
  338. result = -EAGAIN;
  339. goto out;
  340. }
  341. }
  342. for_each_cpu(i, cmd.mask) {
  343. freqs.cpu = i;
  344. cpufreq_notify_transition(&freqs, CPUFREQ_POSTCHANGE);
  345. }
  346. perf->state = next_perf_state;
  347. out:
  348. return result;
  349. }
  350. static int acpi_cpufreq_verify(struct cpufreq_policy *policy)
  351. {
  352. struct acpi_cpufreq_data *data = per_cpu(acfreq_data, policy->cpu);
  353. dprintk("acpi_cpufreq_verify\n");
  354. return cpufreq_frequency_table_verify(policy, data->freq_table);
  355. }
  356. static unsigned long
  357. acpi_cpufreq_guess_freq(struct acpi_cpufreq_data *data, unsigned int cpu)
  358. {
  359. struct acpi_processor_performance *perf = data->acpi_data;
  360. if (cpu_khz) {
  361. /* search the closest match to cpu_khz */
  362. unsigned int i;
  363. unsigned long freq;
  364. unsigned long freqn = perf->states[0].core_frequency * 1000;
  365. for (i = 0; i < (perf->state_count-1); i++) {
  366. freq = freqn;
  367. freqn = perf->states[i+1].core_frequency * 1000;
  368. if ((2 * cpu_khz) > (freqn + freq)) {
  369. perf->state = i;
  370. return freq;
  371. }
  372. }
  373. perf->state = perf->state_count-1;
  374. return freqn;
  375. } else {
  376. /* assume CPU is at P0... */
  377. perf->state = 0;
  378. return perf->states[0].core_frequency * 1000;
  379. }
  380. }
  381. static void free_acpi_perf_data(void)
  382. {
  383. unsigned int i;
  384. /* Freeing a NULL pointer is OK, and alloc_percpu zeroes. */
  385. for_each_possible_cpu(i)
  386. free_cpumask_var(per_cpu_ptr(acpi_perf_data, i)
  387. ->shared_cpu_map);
  388. free_percpu(acpi_perf_data);
  389. }
  390. /*
  391. * acpi_cpufreq_early_init - initialize ACPI P-States library
  392. *
  393. * Initialize the ACPI P-States library (drivers/acpi/processor_perflib.c)
  394. * in order to determine correct frequency and voltage pairings. We can
  395. * do _PDC and _PSD and find out the processor dependency for the
  396. * actual init that will happen later...
  397. */
  398. static int __init acpi_cpufreq_early_init(void)
  399. {
  400. unsigned int i;
  401. dprintk("acpi_cpufreq_early_init\n");
  402. acpi_perf_data = alloc_percpu(struct acpi_processor_performance);
  403. if (!acpi_perf_data) {
  404. dprintk("Memory allocation error for acpi_perf_data.\n");
  405. return -ENOMEM;
  406. }
  407. for_each_possible_cpu(i) {
  408. if (!zalloc_cpumask_var_node(
  409. &per_cpu_ptr(acpi_perf_data, i)->shared_cpu_map,
  410. GFP_KERNEL, cpu_to_node(i))) {
  411. /* Freeing a NULL pointer is OK: alloc_percpu zeroes. */
  412. free_acpi_perf_data();
  413. return -ENOMEM;
  414. }
  415. }
  416. /* Do initialization in ACPI core */
  417. acpi_processor_preregister_performance(acpi_perf_data);
  418. return 0;
  419. }
  420. #ifdef CONFIG_SMP
  421. /*
  422. * Some BIOSes do SW_ANY coordination internally, either set it up in hw
  423. * or do it in BIOS firmware and won't inform about it to OS. If not
  424. * detected, this has a side effect of making CPU run at a different speed
  425. * than OS intended it to run at. Detect it and handle it cleanly.
  426. */
  427. static int bios_with_sw_any_bug;
  428. static int sw_any_bug_found(const struct dmi_system_id *d)
  429. {
  430. bios_with_sw_any_bug = 1;
  431. return 0;
  432. }
  433. static const struct dmi_system_id sw_any_bug_dmi_table[] = {
  434. {
  435. .callback = sw_any_bug_found,
  436. .ident = "Supermicro Server X6DLP",
  437. .matches = {
  438. DMI_MATCH(DMI_SYS_VENDOR, "Supermicro"),
  439. DMI_MATCH(DMI_BIOS_VERSION, "080010"),
  440. DMI_MATCH(DMI_PRODUCT_NAME, "X6DLP"),
  441. },
  442. },
  443. { }
  444. };
  445. static int acpi_cpufreq_blacklist(struct cpuinfo_x86 *c)
  446. {
  447. /* Intel Xeon Processor 7100 Series Specification Update
  448. * http://www.intel.com/Assets/PDF/specupdate/314554.pdf
  449. * AL30: A Machine Check Exception (MCE) Occurring during an
  450. * Enhanced Intel SpeedStep Technology Ratio Change May Cause
  451. * Both Processor Cores to Lock Up. */
  452. if (c->x86_vendor == X86_VENDOR_INTEL) {
  453. if ((c->x86 == 15) &&
  454. (c->x86_model == 6) &&
  455. (c->x86_mask == 8)) {
  456. printk(KERN_INFO "acpi-cpufreq: Intel(R) "
  457. "Xeon(R) 7100 Errata AL30, processors may "
  458. "lock up on frequency changes: disabling "
  459. "acpi-cpufreq.\n");
  460. return -ENODEV;
  461. }
  462. }
  463. return 0;
  464. }
  465. #endif
  466. static int acpi_cpufreq_cpu_init(struct cpufreq_policy *policy)
  467. {
  468. unsigned int i;
  469. unsigned int valid_states = 0;
  470. unsigned int cpu = policy->cpu;
  471. struct acpi_cpufreq_data *data;
  472. unsigned int result = 0;
  473. struct cpuinfo_x86 *c = &cpu_data(policy->cpu);
  474. struct acpi_processor_performance *perf;
  475. #ifdef CONFIG_SMP
  476. static int blacklisted;
  477. #endif
  478. dprintk("acpi_cpufreq_cpu_init\n");
  479. #ifdef CONFIG_SMP
  480. if (blacklisted)
  481. return blacklisted;
  482. blacklisted = acpi_cpufreq_blacklist(c);
  483. if (blacklisted)
  484. return blacklisted;
  485. #endif
  486. data = kzalloc(sizeof(struct acpi_cpufreq_data), GFP_KERNEL);
  487. if (!data)
  488. return -ENOMEM;
  489. data->acpi_data = per_cpu_ptr(acpi_perf_data, cpu);
  490. per_cpu(acfreq_data, cpu) = data;
  491. if (cpu_has(c, X86_FEATURE_CONSTANT_TSC))
  492. acpi_cpufreq_driver.flags |= CPUFREQ_CONST_LOOPS;
  493. result = acpi_processor_register_performance(data->acpi_data, cpu);
  494. if (result)
  495. goto err_free;
  496. perf = data->acpi_data;
  497. policy->shared_type = perf->shared_type;
  498. /*
  499. * Will let policy->cpus know about dependency only when software
  500. * coordination is required.
  501. */
  502. if (policy->shared_type == CPUFREQ_SHARED_TYPE_ALL ||
  503. policy->shared_type == CPUFREQ_SHARED_TYPE_ANY) {
  504. cpumask_copy(policy->cpus, perf->shared_cpu_map);
  505. }
  506. cpumask_copy(policy->related_cpus, perf->shared_cpu_map);
  507. #ifdef CONFIG_SMP
  508. dmi_check_system(sw_any_bug_dmi_table);
  509. if (bios_with_sw_any_bug && cpumask_weight(policy->cpus) == 1) {
  510. policy->shared_type = CPUFREQ_SHARED_TYPE_ALL;
  511. cpumask_copy(policy->cpus, cpu_core_mask(cpu));
  512. }
  513. #endif
  514. /* capability check */
  515. if (perf->state_count <= 1) {
  516. dprintk("No P-States\n");
  517. result = -ENODEV;
  518. goto err_unreg;
  519. }
  520. if (perf->control_register.space_id != perf->status_register.space_id) {
  521. result = -ENODEV;
  522. goto err_unreg;
  523. }
  524. switch (perf->control_register.space_id) {
  525. case ACPI_ADR_SPACE_SYSTEM_IO:
  526. dprintk("SYSTEM IO addr space\n");
  527. data->cpu_feature = SYSTEM_IO_CAPABLE;
  528. break;
  529. case ACPI_ADR_SPACE_FIXED_HARDWARE:
  530. dprintk("HARDWARE addr space\n");
  531. if (!check_est_cpu(cpu)) {
  532. result = -ENODEV;
  533. goto err_unreg;
  534. }
  535. data->cpu_feature = SYSTEM_INTEL_MSR_CAPABLE;
  536. break;
  537. default:
  538. dprintk("Unknown addr space %d\n",
  539. (u32) (perf->control_register.space_id));
  540. result = -ENODEV;
  541. goto err_unreg;
  542. }
  543. data->freq_table = kmalloc(sizeof(struct cpufreq_frequency_table) *
  544. (perf->state_count+1), GFP_KERNEL);
  545. if (!data->freq_table) {
  546. result = -ENOMEM;
  547. goto err_unreg;
  548. }
  549. /* detect transition latency */
  550. policy->cpuinfo.transition_latency = 0;
  551. for (i = 0; i < perf->state_count; i++) {
  552. if ((perf->states[i].transition_latency * 1000) >
  553. policy->cpuinfo.transition_latency)
  554. policy->cpuinfo.transition_latency =
  555. perf->states[i].transition_latency * 1000;
  556. }
  557. /* Check for high latency (>20uS) from buggy BIOSes, like on T42 */
  558. if (perf->control_register.space_id == ACPI_ADR_SPACE_FIXED_HARDWARE &&
  559. policy->cpuinfo.transition_latency > 20 * 1000) {
  560. policy->cpuinfo.transition_latency = 20 * 1000;
  561. printk_once(KERN_INFO
  562. "P-state transition latency capped at 20 uS\n");
  563. }
  564. /* table init */
  565. for (i = 0; i < perf->state_count; i++) {
  566. if (i > 0 && perf->states[i].core_frequency >=
  567. data->freq_table[valid_states-1].frequency / 1000)
  568. continue;
  569. data->freq_table[valid_states].index = i;
  570. data->freq_table[valid_states].frequency =
  571. perf->states[i].core_frequency * 1000;
  572. valid_states++;
  573. }
  574. data->freq_table[valid_states].frequency = CPUFREQ_TABLE_END;
  575. perf->state = 0;
  576. result = cpufreq_frequency_table_cpuinfo(policy, data->freq_table);
  577. if (result)
  578. goto err_freqfree;
  579. if (perf->states[0].core_frequency * 1000 != policy->cpuinfo.max_freq)
  580. printk(KERN_WARNING FW_WARN "P-state 0 is not max freq\n");
  581. switch (perf->control_register.space_id) {
  582. case ACPI_ADR_SPACE_SYSTEM_IO:
  583. /* Current speed is unknown and not detectable by IO port */
  584. policy->cur = acpi_cpufreq_guess_freq(data, policy->cpu);
  585. break;
  586. case ACPI_ADR_SPACE_FIXED_HARDWARE:
  587. acpi_cpufreq_driver.get = get_cur_freq_on_cpu;
  588. policy->cur = get_cur_freq_on_cpu(cpu);
  589. break;
  590. default:
  591. break;
  592. }
  593. /* notify BIOS that we exist */
  594. acpi_processor_notify_smm(THIS_MODULE);
  595. /* Check for APERF/MPERF support in hardware */
  596. if (cpu_has(c, X86_FEATURE_APERFMPERF))
  597. acpi_cpufreq_driver.getavg = get_measured_perf;
  598. dprintk("CPU%u - ACPI performance management activated.\n", cpu);
  599. for (i = 0; i < perf->state_count; i++)
  600. dprintk(" %cP%d: %d MHz, %d mW, %d uS\n",
  601. (i == perf->state ? '*' : ' '), i,
  602. (u32) perf->states[i].core_frequency,
  603. (u32) perf->states[i].power,
  604. (u32) perf->states[i].transition_latency);
  605. cpufreq_frequency_table_get_attr(data->freq_table, policy->cpu);
  606. /*
  607. * the first call to ->target() should result in us actually
  608. * writing something to the appropriate registers.
  609. */
  610. data->resume = 1;
  611. return result;
  612. err_freqfree:
  613. kfree(data->freq_table);
  614. err_unreg:
  615. acpi_processor_unregister_performance(perf, cpu);
  616. err_free:
  617. kfree(data);
  618. per_cpu(acfreq_data, cpu) = NULL;
  619. return result;
  620. }
  621. static int acpi_cpufreq_cpu_exit(struct cpufreq_policy *policy)
  622. {
  623. struct acpi_cpufreq_data *data = per_cpu(acfreq_data, policy->cpu);
  624. dprintk("acpi_cpufreq_cpu_exit\n");
  625. if (data) {
  626. cpufreq_frequency_table_put_attr(policy->cpu);
  627. per_cpu(acfreq_data, policy->cpu) = NULL;
  628. acpi_processor_unregister_performance(data->acpi_data,
  629. policy->cpu);
  630. kfree(data);
  631. }
  632. return 0;
  633. }
  634. static int acpi_cpufreq_resume(struct cpufreq_policy *policy)
  635. {
  636. struct acpi_cpufreq_data *data = per_cpu(acfreq_data, policy->cpu);
  637. dprintk("acpi_cpufreq_resume\n");
  638. data->resume = 1;
  639. return 0;
  640. }
  641. static struct freq_attr *acpi_cpufreq_attr[] = {
  642. &cpufreq_freq_attr_scaling_available_freqs,
  643. NULL,
  644. };
  645. static struct cpufreq_driver acpi_cpufreq_driver = {
  646. .verify = acpi_cpufreq_verify,
  647. .target = acpi_cpufreq_target,
  648. .bios_limit = acpi_processor_get_bios_limit,
  649. .init = acpi_cpufreq_cpu_init,
  650. .exit = acpi_cpufreq_cpu_exit,
  651. .resume = acpi_cpufreq_resume,
  652. .name = "acpi-cpufreq",
  653. .owner = THIS_MODULE,
  654. .attr = acpi_cpufreq_attr,
  655. };
  656. static int __init acpi_cpufreq_init(void)
  657. {
  658. int ret;
  659. if (acpi_disabled)
  660. return 0;
  661. dprintk("acpi_cpufreq_init\n");
  662. ret = acpi_cpufreq_early_init();
  663. if (ret)
  664. return ret;
  665. ret = cpufreq_register_driver(&acpi_cpufreq_driver);
  666. if (ret)
  667. free_acpi_perf_data();
  668. return ret;
  669. }
  670. static void __exit acpi_cpufreq_exit(void)
  671. {
  672. dprintk("acpi_cpufreq_exit\n");
  673. cpufreq_unregister_driver(&acpi_cpufreq_driver);
  674. free_percpu(acpi_perf_data);
  675. }
  676. module_param(acpi_pstate_strict, uint, 0644);
  677. MODULE_PARM_DESC(acpi_pstate_strict,
  678. "value 0 or non-zero. non-zero -> strict ACPI checks are "
  679. "performed during frequency changes.");
  680. late_initcall(acpi_cpufreq_init);
  681. module_exit(acpi_cpufreq_exit);
  682. MODULE_ALIAS("acpi");