acpi-cpufreq.c 9.8 KB

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  1. /*
  2. * arch/ia64/kernel/cpufreq/acpi-cpufreq.c
  3. * This file provides the ACPI based P-state support. This
  4. * module works with generic cpufreq infrastructure. Most of
  5. * the code is based on i386 version
  6. * (arch/i386/kernel/cpu/cpufreq/acpi-cpufreq.c)
  7. *
  8. * Copyright (C) 2005 Intel Corp
  9. * Venkatesh Pallipadi <venkatesh.pallipadi@intel.com>
  10. */
  11. #include <linux/kernel.h>
  12. #include <linux/slab.h>
  13. #include <linux/module.h>
  14. #include <linux/init.h>
  15. #include <linux/cpufreq.h>
  16. #include <linux/proc_fs.h>
  17. #include <linux/seq_file.h>
  18. #include <asm/io.h>
  19. #include <asm/uaccess.h>
  20. #include <asm/pal.h>
  21. #include <linux/acpi.h>
  22. #include <acpi/processor.h>
  23. MODULE_AUTHOR("Venkatesh Pallipadi");
  24. MODULE_DESCRIPTION("ACPI Processor P-States Driver");
  25. MODULE_LICENSE("GPL");
  26. struct cpufreq_acpi_io {
  27. struct acpi_processor_performance acpi_data;
  28. struct cpufreq_frequency_table *freq_table;
  29. unsigned int resume;
  30. };
  31. static struct cpufreq_acpi_io *acpi_io_data[NR_CPUS];
  32. static struct cpufreq_driver acpi_cpufreq_driver;
  33. static int
  34. processor_set_pstate (
  35. u32 value)
  36. {
  37. s64 retval;
  38. pr_debug("processor_set_pstate\n");
  39. retval = ia64_pal_set_pstate((u64)value);
  40. if (retval) {
  41. pr_debug("Failed to set freq to 0x%x, with error 0x%lx\n",
  42. value, retval);
  43. return -ENODEV;
  44. }
  45. return (int)retval;
  46. }
  47. static int
  48. processor_get_pstate (
  49. u32 *value)
  50. {
  51. u64 pstate_index = 0;
  52. s64 retval;
  53. pr_debug("processor_get_pstate\n");
  54. retval = ia64_pal_get_pstate(&pstate_index,
  55. PAL_GET_PSTATE_TYPE_INSTANT);
  56. *value = (u32) pstate_index;
  57. if (retval)
  58. pr_debug("Failed to get current freq with "
  59. "error 0x%lx, idx 0x%x\n", retval, *value);
  60. return (int)retval;
  61. }
  62. /* To be used only after data->acpi_data is initialized */
  63. static unsigned
  64. extract_clock (
  65. struct cpufreq_acpi_io *data,
  66. unsigned value,
  67. unsigned int cpu)
  68. {
  69. unsigned long i;
  70. pr_debug("extract_clock\n");
  71. for (i = 0; i < data->acpi_data.state_count; i++) {
  72. if (value == data->acpi_data.states[i].status)
  73. return data->acpi_data.states[i].core_frequency;
  74. }
  75. return data->acpi_data.states[i-1].core_frequency;
  76. }
  77. static unsigned int
  78. processor_get_freq (
  79. struct cpufreq_acpi_io *data,
  80. unsigned int cpu)
  81. {
  82. int ret = 0;
  83. u32 value = 0;
  84. cpumask_t saved_mask;
  85. unsigned long clock_freq;
  86. pr_debug("processor_get_freq\n");
  87. saved_mask = current->cpus_allowed;
  88. set_cpus_allowed_ptr(current, cpumask_of(cpu));
  89. if (smp_processor_id() != cpu)
  90. goto migrate_end;
  91. /* processor_get_pstate gets the instantaneous frequency */
  92. ret = processor_get_pstate(&value);
  93. if (ret) {
  94. set_cpus_allowed_ptr(current, &saved_mask);
  95. printk(KERN_WARNING "get performance failed with error %d\n",
  96. ret);
  97. ret = 0;
  98. goto migrate_end;
  99. }
  100. clock_freq = extract_clock(data, value, cpu);
  101. ret = (clock_freq*1000);
  102. migrate_end:
  103. set_cpus_allowed_ptr(current, &saved_mask);
  104. return ret;
  105. }
  106. static int
  107. processor_set_freq (
  108. struct cpufreq_acpi_io *data,
  109. unsigned int cpu,
  110. int state)
  111. {
  112. int ret = 0;
  113. u32 value = 0;
  114. struct cpufreq_freqs cpufreq_freqs;
  115. cpumask_t saved_mask;
  116. int retval;
  117. pr_debug("processor_set_freq\n");
  118. saved_mask = current->cpus_allowed;
  119. set_cpus_allowed_ptr(current, cpumask_of(cpu));
  120. if (smp_processor_id() != cpu) {
  121. retval = -EAGAIN;
  122. goto migrate_end;
  123. }
  124. if (state == data->acpi_data.state) {
  125. if (unlikely(data->resume)) {
  126. pr_debug("Called after resume, resetting to P%d\n", state);
  127. data->resume = 0;
  128. } else {
  129. pr_debug("Already at target state (P%d)\n", state);
  130. retval = 0;
  131. goto migrate_end;
  132. }
  133. }
  134. pr_debug("Transitioning from P%d to P%d\n",
  135. data->acpi_data.state, state);
  136. /* cpufreq frequency struct */
  137. cpufreq_freqs.cpu = cpu;
  138. cpufreq_freqs.old = data->freq_table[data->acpi_data.state].frequency;
  139. cpufreq_freqs.new = data->freq_table[state].frequency;
  140. /* notify cpufreq */
  141. cpufreq_notify_transition(&cpufreq_freqs, CPUFREQ_PRECHANGE);
  142. /*
  143. * First we write the target state's 'control' value to the
  144. * control_register.
  145. */
  146. value = (u32) data->acpi_data.states[state].control;
  147. pr_debug("Transitioning to state: 0x%08x\n", value);
  148. ret = processor_set_pstate(value);
  149. if (ret) {
  150. unsigned int tmp = cpufreq_freqs.new;
  151. cpufreq_notify_transition(&cpufreq_freqs, CPUFREQ_POSTCHANGE);
  152. cpufreq_freqs.new = cpufreq_freqs.old;
  153. cpufreq_freqs.old = tmp;
  154. cpufreq_notify_transition(&cpufreq_freqs, CPUFREQ_PRECHANGE);
  155. cpufreq_notify_transition(&cpufreq_freqs, CPUFREQ_POSTCHANGE);
  156. printk(KERN_WARNING "Transition failed with error %d\n", ret);
  157. retval = -ENODEV;
  158. goto migrate_end;
  159. }
  160. cpufreq_notify_transition(&cpufreq_freqs, CPUFREQ_POSTCHANGE);
  161. data->acpi_data.state = state;
  162. retval = 0;
  163. migrate_end:
  164. set_cpus_allowed_ptr(current, &saved_mask);
  165. return (retval);
  166. }
  167. static unsigned int
  168. acpi_cpufreq_get (
  169. unsigned int cpu)
  170. {
  171. struct cpufreq_acpi_io *data = acpi_io_data[cpu];
  172. pr_debug("acpi_cpufreq_get\n");
  173. return processor_get_freq(data, cpu);
  174. }
  175. static int
  176. acpi_cpufreq_target (
  177. struct cpufreq_policy *policy,
  178. unsigned int target_freq,
  179. unsigned int relation)
  180. {
  181. struct cpufreq_acpi_io *data = acpi_io_data[policy->cpu];
  182. unsigned int next_state = 0;
  183. unsigned int result = 0;
  184. pr_debug("acpi_cpufreq_setpolicy\n");
  185. result = cpufreq_frequency_table_target(policy,
  186. data->freq_table, target_freq, relation, &next_state);
  187. if (result)
  188. return (result);
  189. result = processor_set_freq(data, policy->cpu, next_state);
  190. return (result);
  191. }
  192. static int
  193. acpi_cpufreq_verify (
  194. struct cpufreq_policy *policy)
  195. {
  196. unsigned int result = 0;
  197. struct cpufreq_acpi_io *data = acpi_io_data[policy->cpu];
  198. pr_debug("acpi_cpufreq_verify\n");
  199. result = cpufreq_frequency_table_verify(policy,
  200. data->freq_table);
  201. return (result);
  202. }
  203. static int
  204. acpi_cpufreq_cpu_init (
  205. struct cpufreq_policy *policy)
  206. {
  207. unsigned int i;
  208. unsigned int cpu = policy->cpu;
  209. struct cpufreq_acpi_io *data;
  210. unsigned int result = 0;
  211. pr_debug("acpi_cpufreq_cpu_init\n");
  212. data = kzalloc(sizeof(struct cpufreq_acpi_io), GFP_KERNEL);
  213. if (!data)
  214. return (-ENOMEM);
  215. acpi_io_data[cpu] = data;
  216. result = acpi_processor_register_performance(&data->acpi_data, cpu);
  217. if (result)
  218. goto err_free;
  219. /* capability check */
  220. if (data->acpi_data.state_count <= 1) {
  221. pr_debug("No P-States\n");
  222. result = -ENODEV;
  223. goto err_unreg;
  224. }
  225. if ((data->acpi_data.control_register.space_id !=
  226. ACPI_ADR_SPACE_FIXED_HARDWARE) ||
  227. (data->acpi_data.status_register.space_id !=
  228. ACPI_ADR_SPACE_FIXED_HARDWARE)) {
  229. pr_debug("Unsupported address space [%d, %d]\n",
  230. (u32) (data->acpi_data.control_register.space_id),
  231. (u32) (data->acpi_data.status_register.space_id));
  232. result = -ENODEV;
  233. goto err_unreg;
  234. }
  235. /* alloc freq_table */
  236. data->freq_table = kmalloc(sizeof(struct cpufreq_frequency_table) *
  237. (data->acpi_data.state_count + 1),
  238. GFP_KERNEL);
  239. if (!data->freq_table) {
  240. result = -ENOMEM;
  241. goto err_unreg;
  242. }
  243. /* detect transition latency */
  244. policy->cpuinfo.transition_latency = 0;
  245. for (i=0; i<data->acpi_data.state_count; i++) {
  246. if ((data->acpi_data.states[i].transition_latency * 1000) >
  247. policy->cpuinfo.transition_latency) {
  248. policy->cpuinfo.transition_latency =
  249. data->acpi_data.states[i].transition_latency * 1000;
  250. }
  251. }
  252. policy->cur = processor_get_freq(data, policy->cpu);
  253. /* table init */
  254. for (i = 0; i <= data->acpi_data.state_count; i++)
  255. {
  256. data->freq_table[i].index = i;
  257. if (i < data->acpi_data.state_count) {
  258. data->freq_table[i].frequency =
  259. data->acpi_data.states[i].core_frequency * 1000;
  260. } else {
  261. data->freq_table[i].frequency = CPUFREQ_TABLE_END;
  262. }
  263. }
  264. result = cpufreq_frequency_table_cpuinfo(policy, data->freq_table);
  265. if (result) {
  266. goto err_freqfree;
  267. }
  268. /* notify BIOS that we exist */
  269. acpi_processor_notify_smm(THIS_MODULE);
  270. printk(KERN_INFO "acpi-cpufreq: CPU%u - ACPI performance management "
  271. "activated.\n", cpu);
  272. for (i = 0; i < data->acpi_data.state_count; i++)
  273. pr_debug(" %cP%d: %d MHz, %d mW, %d uS, %d uS, 0x%x 0x%x\n",
  274. (i == data->acpi_data.state?'*':' '), i,
  275. (u32) data->acpi_data.states[i].core_frequency,
  276. (u32) data->acpi_data.states[i].power,
  277. (u32) data->acpi_data.states[i].transition_latency,
  278. (u32) data->acpi_data.states[i].bus_master_latency,
  279. (u32) data->acpi_data.states[i].status,
  280. (u32) data->acpi_data.states[i].control);
  281. cpufreq_frequency_table_get_attr(data->freq_table, policy->cpu);
  282. /* the first call to ->target() should result in us actually
  283. * writing something to the appropriate registers. */
  284. data->resume = 1;
  285. return (result);
  286. err_freqfree:
  287. kfree(data->freq_table);
  288. err_unreg:
  289. acpi_processor_unregister_performance(&data->acpi_data, cpu);
  290. err_free:
  291. kfree(data);
  292. acpi_io_data[cpu] = NULL;
  293. return (result);
  294. }
  295. static int
  296. acpi_cpufreq_cpu_exit (
  297. struct cpufreq_policy *policy)
  298. {
  299. struct cpufreq_acpi_io *data = acpi_io_data[policy->cpu];
  300. pr_debug("acpi_cpufreq_cpu_exit\n");
  301. if (data) {
  302. cpufreq_frequency_table_put_attr(policy->cpu);
  303. acpi_io_data[policy->cpu] = NULL;
  304. acpi_processor_unregister_performance(&data->acpi_data,
  305. policy->cpu);
  306. kfree(data);
  307. }
  308. return (0);
  309. }
  310. static struct freq_attr* acpi_cpufreq_attr[] = {
  311. &cpufreq_freq_attr_scaling_available_freqs,
  312. NULL,
  313. };
  314. static struct cpufreq_driver acpi_cpufreq_driver = {
  315. .verify = acpi_cpufreq_verify,
  316. .target = acpi_cpufreq_target,
  317. .get = acpi_cpufreq_get,
  318. .init = acpi_cpufreq_cpu_init,
  319. .exit = acpi_cpufreq_cpu_exit,
  320. .name = "acpi-cpufreq",
  321. .owner = THIS_MODULE,
  322. .attr = acpi_cpufreq_attr,
  323. };
  324. static int __init
  325. acpi_cpufreq_init (void)
  326. {
  327. pr_debug("acpi_cpufreq_init\n");
  328. return cpufreq_register_driver(&acpi_cpufreq_driver);
  329. }
  330. static void __exit
  331. acpi_cpufreq_exit (void)
  332. {
  333. pr_debug("acpi_cpufreq_exit\n");
  334. cpufreq_unregister_driver(&acpi_cpufreq_driver);
  335. return;
  336. }
  337. late_initcall(acpi_cpufreq_init);
  338. module_exit(acpi_cpufreq_exit);