ufs-sysfs.c 51 KB

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  1. // SPDX-License-Identifier: GPL-2.0
  2. // Copyright (C) 2018 Western Digital Corporation
  3. #include <linux/err.h>
  4. #include <linux/string.h>
  5. #include <linux/bitfield.h>
  6. #include <linux/unaligned.h>
  7. #include <ufs/ufs.h>
  8. #include <ufs/unipro.h>
  9. #include "ufs-sysfs.h"
  10. #include "ufshcd-priv.h"
  11. static const char *ufs_pa_pwr_mode_to_string(enum ufs_pa_pwr_mode mode)
  12. {
  13. switch (mode) {
  14. case FAST_MODE: return "FAST_MODE";
  15. case SLOW_MODE: return "SLOW_MODE";
  16. case FASTAUTO_MODE: return "FASTAUTO_MODE";
  17. case SLOWAUTO_MODE: return "SLOWAUTO_MODE";
  18. default: return "UNKNOWN";
  19. }
  20. }
  21. static const char *ufs_hs_gear_rate_to_string(enum ufs_hs_gear_rate rate)
  22. {
  23. switch (rate) {
  24. case PA_HS_MODE_A: return "HS_RATE_A";
  25. case PA_HS_MODE_B: return "HS_RATE_B";
  26. default: return "UNKNOWN";
  27. }
  28. }
  29. static const char *ufs_pwm_gear_to_string(enum ufs_pwm_gear_tag gear)
  30. {
  31. switch (gear) {
  32. case UFS_PWM_G1: return "PWM_GEAR1";
  33. case UFS_PWM_G2: return "PWM_GEAR2";
  34. case UFS_PWM_G3: return "PWM_GEAR3";
  35. case UFS_PWM_G4: return "PWM_GEAR4";
  36. case UFS_PWM_G5: return "PWM_GEAR5";
  37. case UFS_PWM_G6: return "PWM_GEAR6";
  38. case UFS_PWM_G7: return "PWM_GEAR7";
  39. default: return "UNKNOWN";
  40. }
  41. }
  42. static const char *ufs_hs_gear_to_string(enum ufs_hs_gear_tag gear)
  43. {
  44. switch (gear) {
  45. case UFS_HS_G1: return "HS_GEAR1";
  46. case UFS_HS_G2: return "HS_GEAR2";
  47. case UFS_HS_G3: return "HS_GEAR3";
  48. case UFS_HS_G4: return "HS_GEAR4";
  49. case UFS_HS_G5: return "HS_GEAR5";
  50. default: return "UNKNOWN";
  51. }
  52. }
  53. static const char *ufshcd_uic_link_state_to_string(
  54. enum uic_link_state state)
  55. {
  56. switch (state) {
  57. case UIC_LINK_OFF_STATE: return "OFF";
  58. case UIC_LINK_ACTIVE_STATE: return "ACTIVE";
  59. case UIC_LINK_HIBERN8_STATE: return "HIBERN8";
  60. case UIC_LINK_BROKEN_STATE: return "BROKEN";
  61. default: return "UNKNOWN";
  62. }
  63. }
  64. static const char *ufshcd_ufs_dev_pwr_mode_to_string(
  65. enum ufs_dev_pwr_mode state)
  66. {
  67. switch (state) {
  68. case UFS_ACTIVE_PWR_MODE: return "ACTIVE";
  69. case UFS_SLEEP_PWR_MODE: return "SLEEP";
  70. case UFS_POWERDOWN_PWR_MODE: return "POWERDOWN";
  71. case UFS_DEEPSLEEP_PWR_MODE: return "DEEPSLEEP";
  72. default: return "UNKNOWN";
  73. }
  74. }
  75. static inline ssize_t ufs_sysfs_pm_lvl_store(struct device *dev,
  76. struct device_attribute *attr,
  77. const char *buf, size_t count,
  78. bool rpm)
  79. {
  80. struct ufs_hba *hba = dev_get_drvdata(dev);
  81. struct ufs_dev_info *dev_info = &hba->dev_info;
  82. unsigned long flags, value;
  83. if (kstrtoul(buf, 0, &value))
  84. return -EINVAL;
  85. if (value >= UFS_PM_LVL_MAX)
  86. return -EINVAL;
  87. if (ufs_pm_lvl_states[value].dev_state == UFS_DEEPSLEEP_PWR_MODE &&
  88. (!(hba->caps & UFSHCD_CAP_DEEPSLEEP) ||
  89. !(dev_info->wspecversion >= 0x310)))
  90. return -EINVAL;
  91. spin_lock_irqsave(hba->host->host_lock, flags);
  92. if (rpm)
  93. hba->rpm_lvl = value;
  94. else
  95. hba->spm_lvl = value;
  96. spin_unlock_irqrestore(hba->host->host_lock, flags);
  97. return count;
  98. }
  99. static ssize_t rpm_lvl_show(struct device *dev,
  100. struct device_attribute *attr, char *buf)
  101. {
  102. struct ufs_hba *hba = dev_get_drvdata(dev);
  103. return sysfs_emit(buf, "%d\n", hba->rpm_lvl);
  104. }
  105. static ssize_t rpm_lvl_store(struct device *dev,
  106. struct device_attribute *attr, const char *buf, size_t count)
  107. {
  108. return ufs_sysfs_pm_lvl_store(dev, attr, buf, count, true);
  109. }
  110. static ssize_t rpm_target_dev_state_show(struct device *dev,
  111. struct device_attribute *attr, char *buf)
  112. {
  113. struct ufs_hba *hba = dev_get_drvdata(dev);
  114. return sysfs_emit(buf, "%s\n", ufshcd_ufs_dev_pwr_mode_to_string(
  115. ufs_pm_lvl_states[hba->rpm_lvl].dev_state));
  116. }
  117. static ssize_t rpm_target_link_state_show(struct device *dev,
  118. struct device_attribute *attr, char *buf)
  119. {
  120. struct ufs_hba *hba = dev_get_drvdata(dev);
  121. return sysfs_emit(buf, "%s\n", ufshcd_uic_link_state_to_string(
  122. ufs_pm_lvl_states[hba->rpm_lvl].link_state));
  123. }
  124. static ssize_t spm_lvl_show(struct device *dev,
  125. struct device_attribute *attr, char *buf)
  126. {
  127. struct ufs_hba *hba = dev_get_drvdata(dev);
  128. return sysfs_emit(buf, "%d\n", hba->spm_lvl);
  129. }
  130. static ssize_t spm_lvl_store(struct device *dev,
  131. struct device_attribute *attr, const char *buf, size_t count)
  132. {
  133. return ufs_sysfs_pm_lvl_store(dev, attr, buf, count, false);
  134. }
  135. static ssize_t spm_target_dev_state_show(struct device *dev,
  136. struct device_attribute *attr, char *buf)
  137. {
  138. struct ufs_hba *hba = dev_get_drvdata(dev);
  139. return sysfs_emit(buf, "%s\n", ufshcd_ufs_dev_pwr_mode_to_string(
  140. ufs_pm_lvl_states[hba->spm_lvl].dev_state));
  141. }
  142. static ssize_t spm_target_link_state_show(struct device *dev,
  143. struct device_attribute *attr, char *buf)
  144. {
  145. struct ufs_hba *hba = dev_get_drvdata(dev);
  146. return sysfs_emit(buf, "%s\n", ufshcd_uic_link_state_to_string(
  147. ufs_pm_lvl_states[hba->spm_lvl].link_state));
  148. }
  149. /* Convert Auto-Hibernate Idle Timer register value to microseconds */
  150. static int ufshcd_ahit_to_us(u32 ahit)
  151. {
  152. int timer = FIELD_GET(UFSHCI_AHIBERN8_TIMER_MASK, ahit);
  153. int scale = FIELD_GET(UFSHCI_AHIBERN8_SCALE_MASK, ahit);
  154. for (; scale > 0; --scale)
  155. timer *= UFSHCI_AHIBERN8_SCALE_FACTOR;
  156. return timer;
  157. }
  158. /* Convert microseconds to Auto-Hibernate Idle Timer register value */
  159. static u32 ufshcd_us_to_ahit(unsigned int timer)
  160. {
  161. unsigned int scale;
  162. for (scale = 0; timer > UFSHCI_AHIBERN8_TIMER_MASK; ++scale)
  163. timer /= UFSHCI_AHIBERN8_SCALE_FACTOR;
  164. return FIELD_PREP(UFSHCI_AHIBERN8_TIMER_MASK, timer) |
  165. FIELD_PREP(UFSHCI_AHIBERN8_SCALE_MASK, scale);
  166. }
  167. static int ufshcd_read_hci_reg(struct ufs_hba *hba, u32 *val, unsigned int reg)
  168. {
  169. down(&hba->host_sem);
  170. if (!ufshcd_is_user_access_allowed(hba)) {
  171. up(&hba->host_sem);
  172. return -EBUSY;
  173. }
  174. ufshcd_rpm_get_sync(hba);
  175. ufshcd_hold(hba);
  176. *val = ufshcd_readl(hba, reg);
  177. ufshcd_release(hba);
  178. ufshcd_rpm_put_sync(hba);
  179. up(&hba->host_sem);
  180. return 0;
  181. }
  182. static ssize_t auto_hibern8_show(struct device *dev,
  183. struct device_attribute *attr, char *buf)
  184. {
  185. u32 ahit;
  186. int ret;
  187. struct ufs_hba *hba = dev_get_drvdata(dev);
  188. if (!ufshcd_is_auto_hibern8_supported(hba))
  189. return -EOPNOTSUPP;
  190. ret = ufshcd_read_hci_reg(hba, &ahit, REG_AUTO_HIBERNATE_IDLE_TIMER);
  191. if (ret)
  192. return ret;
  193. return sysfs_emit(buf, "%d\n", ufshcd_ahit_to_us(ahit));
  194. }
  195. static ssize_t auto_hibern8_store(struct device *dev,
  196. struct device_attribute *attr,
  197. const char *buf, size_t count)
  198. {
  199. struct ufs_hba *hba = dev_get_drvdata(dev);
  200. unsigned int timer;
  201. int ret = 0;
  202. if (!ufshcd_is_auto_hibern8_supported(hba))
  203. return -EOPNOTSUPP;
  204. if (kstrtouint(buf, 0, &timer))
  205. return -EINVAL;
  206. if (timer > UFSHCI_AHIBERN8_MAX)
  207. return -EINVAL;
  208. down(&hba->host_sem);
  209. if (!ufshcd_is_user_access_allowed(hba)) {
  210. ret = -EBUSY;
  211. goto out;
  212. }
  213. ufshcd_auto_hibern8_update(hba, ufshcd_us_to_ahit(timer));
  214. out:
  215. up(&hba->host_sem);
  216. return ret ? ret : count;
  217. }
  218. static ssize_t wb_on_show(struct device *dev, struct device_attribute *attr,
  219. char *buf)
  220. {
  221. struct ufs_hba *hba = dev_get_drvdata(dev);
  222. return sysfs_emit(buf, "%d\n", hba->dev_info.wb_enabled);
  223. }
  224. static ssize_t wb_on_store(struct device *dev, struct device_attribute *attr,
  225. const char *buf, size_t count)
  226. {
  227. struct ufs_hba *hba = dev_get_drvdata(dev);
  228. unsigned int wb_enable;
  229. ssize_t res;
  230. if (!ufshcd_is_wb_allowed(hba) || (ufshcd_is_clkscaling_supported(hba)
  231. && ufshcd_enable_wb_if_scaling_up(hba))) {
  232. /*
  233. * If the platform supports UFSHCD_CAP_CLK_SCALING, turn WB
  234. * on/off will be done while clock scaling up/down.
  235. */
  236. dev_warn(dev, "It is not allowed to configure WB!\n");
  237. return -EOPNOTSUPP;
  238. }
  239. if (kstrtouint(buf, 0, &wb_enable))
  240. return -EINVAL;
  241. if (wb_enable != 0 && wb_enable != 1)
  242. return -EINVAL;
  243. down(&hba->host_sem);
  244. if (!ufshcd_is_user_access_allowed(hba)) {
  245. res = -EBUSY;
  246. goto out;
  247. }
  248. ufshcd_rpm_get_sync(hba);
  249. res = ufshcd_wb_toggle(hba, wb_enable);
  250. ufshcd_rpm_put_sync(hba);
  251. out:
  252. up(&hba->host_sem);
  253. return res < 0 ? res : count;
  254. }
  255. static ssize_t rtc_update_ms_show(struct device *dev, struct device_attribute *attr,
  256. char *buf)
  257. {
  258. struct ufs_hba *hba = dev_get_drvdata(dev);
  259. return sysfs_emit(buf, "%d\n", hba->dev_info.rtc_update_period);
  260. }
  261. static ssize_t rtc_update_ms_store(struct device *dev, struct device_attribute *attr,
  262. const char *buf, size_t count)
  263. {
  264. struct ufs_hba *hba = dev_get_drvdata(dev);
  265. unsigned int ms;
  266. bool resume_period_update = false;
  267. if (kstrtouint(buf, 0, &ms))
  268. return -EINVAL;
  269. if (!hba->dev_info.rtc_update_period && ms > 0)
  270. resume_period_update = true;
  271. /* Minimum and maximum update frequency should be synchronized with all UFS vendors */
  272. hba->dev_info.rtc_update_period = ms;
  273. if (resume_period_update)
  274. schedule_delayed_work(&hba->ufs_rtc_update_work,
  275. msecs_to_jiffies(hba->dev_info.rtc_update_period));
  276. return count;
  277. }
  278. static ssize_t enable_wb_buf_flush_show(struct device *dev,
  279. struct device_attribute *attr,
  280. char *buf)
  281. {
  282. struct ufs_hba *hba = dev_get_drvdata(dev);
  283. return sysfs_emit(buf, "%d\n", hba->dev_info.wb_buf_flush_enabled);
  284. }
  285. static ssize_t enable_wb_buf_flush_store(struct device *dev,
  286. struct device_attribute *attr,
  287. const char *buf, size_t count)
  288. {
  289. struct ufs_hba *hba = dev_get_drvdata(dev);
  290. unsigned int enable_wb_buf_flush;
  291. ssize_t res;
  292. if (!ufshcd_is_wb_buf_flush_allowed(hba)) {
  293. dev_warn(dev, "It is not allowed to configure WB buf flushing!\n");
  294. return -EOPNOTSUPP;
  295. }
  296. if (kstrtouint(buf, 0, &enable_wb_buf_flush))
  297. return -EINVAL;
  298. if (enable_wb_buf_flush != 0 && enable_wb_buf_flush != 1)
  299. return -EINVAL;
  300. down(&hba->host_sem);
  301. if (!ufshcd_is_user_access_allowed(hba)) {
  302. res = -EBUSY;
  303. goto out;
  304. }
  305. ufshcd_rpm_get_sync(hba);
  306. res = ufshcd_wb_toggle_buf_flush(hba, enable_wb_buf_flush);
  307. ufshcd_rpm_put_sync(hba);
  308. out:
  309. up(&hba->host_sem);
  310. return res < 0 ? res : count;
  311. }
  312. static ssize_t wb_flush_threshold_show(struct device *dev,
  313. struct device_attribute *attr,
  314. char *buf)
  315. {
  316. struct ufs_hba *hba = dev_get_drvdata(dev);
  317. return sysfs_emit(buf, "%u\n", hba->vps->wb_flush_threshold);
  318. }
  319. static ssize_t wb_flush_threshold_store(struct device *dev,
  320. struct device_attribute *attr,
  321. const char *buf, size_t count)
  322. {
  323. struct ufs_hba *hba = dev_get_drvdata(dev);
  324. unsigned int wb_flush_threshold;
  325. if (kstrtouint(buf, 0, &wb_flush_threshold))
  326. return -EINVAL;
  327. /* The range of values for wb_flush_threshold is (0,10] */
  328. if (wb_flush_threshold > UFS_WB_BUF_REMAIN_PERCENT(100) ||
  329. wb_flush_threshold == 0) {
  330. dev_err(dev, "The value of wb_flush_threshold is invalid!\n");
  331. return -EINVAL;
  332. }
  333. hba->vps->wb_flush_threshold = wb_flush_threshold;
  334. return count;
  335. }
  336. /**
  337. * pm_qos_enable_show - sysfs handler to show pm qos enable value
  338. * @dev: device associated with the UFS controller
  339. * @attr: sysfs attribute handle
  340. * @buf: buffer for sysfs file
  341. *
  342. * Print 1 if PM QoS feature is enabled, 0 if disabled.
  343. *
  344. * Returns number of characters written to @buf.
  345. */
  346. static ssize_t pm_qos_enable_show(struct device *dev,
  347. struct device_attribute *attr, char *buf)
  348. {
  349. struct ufs_hba *hba = dev_get_drvdata(dev);
  350. return sysfs_emit(buf, "%d\n", hba->pm_qos_enabled);
  351. }
  352. /**
  353. * pm_qos_enable_store - sysfs handler to store value
  354. * @dev: device associated with the UFS controller
  355. * @attr: sysfs attribute handle
  356. * @buf: buffer for sysfs file
  357. * @count: stores buffer characters count
  358. *
  359. * Input 0 to disable PM QoS and 1 value to enable.
  360. * Default state: 1
  361. *
  362. * Return: number of characters written to @buf on success, < 0 upon failure.
  363. */
  364. static ssize_t pm_qos_enable_store(struct device *dev,
  365. struct device_attribute *attr, const char *buf, size_t count)
  366. {
  367. struct ufs_hba *hba = dev_get_drvdata(dev);
  368. bool value;
  369. if (kstrtobool(buf, &value))
  370. return -EINVAL;
  371. if (value)
  372. ufshcd_pm_qos_init(hba);
  373. else
  374. ufshcd_pm_qos_exit(hba);
  375. return count;
  376. }
  377. static DEVICE_ATTR_RW(rpm_lvl);
  378. static DEVICE_ATTR_RO(rpm_target_dev_state);
  379. static DEVICE_ATTR_RO(rpm_target_link_state);
  380. static DEVICE_ATTR_RW(spm_lvl);
  381. static DEVICE_ATTR_RO(spm_target_dev_state);
  382. static DEVICE_ATTR_RO(spm_target_link_state);
  383. static DEVICE_ATTR_RW(auto_hibern8);
  384. static DEVICE_ATTR_RW(wb_on);
  385. static DEVICE_ATTR_RW(enable_wb_buf_flush);
  386. static DEVICE_ATTR_RW(wb_flush_threshold);
  387. static DEVICE_ATTR_RW(rtc_update_ms);
  388. static DEVICE_ATTR_RW(pm_qos_enable);
  389. static struct attribute *ufs_sysfs_ufshcd_attrs[] = {
  390. &dev_attr_rpm_lvl.attr,
  391. &dev_attr_rpm_target_dev_state.attr,
  392. &dev_attr_rpm_target_link_state.attr,
  393. &dev_attr_spm_lvl.attr,
  394. &dev_attr_spm_target_dev_state.attr,
  395. &dev_attr_spm_target_link_state.attr,
  396. &dev_attr_auto_hibern8.attr,
  397. &dev_attr_wb_on.attr,
  398. &dev_attr_enable_wb_buf_flush.attr,
  399. &dev_attr_wb_flush_threshold.attr,
  400. &dev_attr_rtc_update_ms.attr,
  401. &dev_attr_pm_qos_enable.attr,
  402. NULL
  403. };
  404. static const struct attribute_group ufs_sysfs_default_group = {
  405. .attrs = ufs_sysfs_ufshcd_attrs,
  406. };
  407. static ssize_t clock_scaling_show(struct device *dev, struct device_attribute *attr,
  408. char *buf)
  409. {
  410. struct ufs_hba *hba = dev_get_drvdata(dev);
  411. return sysfs_emit(buf, "%d\n", ufshcd_is_clkscaling_supported(hba));
  412. }
  413. static ssize_t write_booster_show(struct device *dev, struct device_attribute *attr,
  414. char *buf)
  415. {
  416. struct ufs_hba *hba = dev_get_drvdata(dev);
  417. return sysfs_emit(buf, "%d\n", ufshcd_is_wb_allowed(hba));
  418. }
  419. static DEVICE_ATTR_RO(clock_scaling);
  420. static DEVICE_ATTR_RO(write_booster);
  421. /*
  422. * See Documentation/ABI/testing/sysfs-driver-ufs for the semantics of this
  423. * group.
  424. */
  425. static struct attribute *ufs_sysfs_capabilities_attrs[] = {
  426. &dev_attr_clock_scaling.attr,
  427. &dev_attr_write_booster.attr,
  428. NULL
  429. };
  430. static const struct attribute_group ufs_sysfs_capabilities_group = {
  431. .name = "capabilities",
  432. .attrs = ufs_sysfs_capabilities_attrs,
  433. };
  434. static ssize_t version_show(struct device *dev,
  435. struct device_attribute *attr, char *buf)
  436. {
  437. struct ufs_hba *hba = dev_get_drvdata(dev);
  438. return sysfs_emit(buf, "0x%x\n", hba->ufs_version);
  439. }
  440. static ssize_t product_id_show(struct device *dev,
  441. struct device_attribute *attr, char *buf)
  442. {
  443. int ret;
  444. u32 val;
  445. struct ufs_hba *hba = dev_get_drvdata(dev);
  446. ret = ufshcd_read_hci_reg(hba, &val, REG_CONTROLLER_PID);
  447. if (ret)
  448. return ret;
  449. return sysfs_emit(buf, "0x%x\n", val);
  450. }
  451. static ssize_t man_id_show(struct device *dev,
  452. struct device_attribute *attr, char *buf)
  453. {
  454. int ret;
  455. u32 val;
  456. struct ufs_hba *hba = dev_get_drvdata(dev);
  457. ret = ufshcd_read_hci_reg(hba, &val, REG_CONTROLLER_MID);
  458. if (ret)
  459. return ret;
  460. return sysfs_emit(buf, "0x%x\n", val);
  461. }
  462. static DEVICE_ATTR_RO(version);
  463. static DEVICE_ATTR_RO(product_id);
  464. static DEVICE_ATTR_RO(man_id);
  465. static struct attribute *ufs_sysfs_ufshci_cap_attrs[] = {
  466. &dev_attr_version.attr,
  467. &dev_attr_product_id.attr,
  468. &dev_attr_man_id.attr,
  469. NULL
  470. };
  471. static const struct attribute_group ufs_sysfs_ufshci_group = {
  472. .name = "ufshci_capabilities",
  473. .attrs = ufs_sysfs_ufshci_cap_attrs,
  474. };
  475. static ssize_t monitor_enable_show(struct device *dev,
  476. struct device_attribute *attr, char *buf)
  477. {
  478. struct ufs_hba *hba = dev_get_drvdata(dev);
  479. return sysfs_emit(buf, "%d\n", hba->monitor.enabled);
  480. }
  481. static ssize_t monitor_enable_store(struct device *dev,
  482. struct device_attribute *attr,
  483. const char *buf, size_t count)
  484. {
  485. struct ufs_hba *hba = dev_get_drvdata(dev);
  486. unsigned long value, flags;
  487. if (kstrtoul(buf, 0, &value))
  488. return -EINVAL;
  489. value = !!value;
  490. spin_lock_irqsave(hba->host->host_lock, flags);
  491. if (value == hba->monitor.enabled)
  492. goto out_unlock;
  493. if (!value) {
  494. memset(&hba->monitor, 0, sizeof(hba->monitor));
  495. } else {
  496. hba->monitor.enabled = true;
  497. hba->monitor.enabled_ts = ktime_get();
  498. }
  499. out_unlock:
  500. spin_unlock_irqrestore(hba->host->host_lock, flags);
  501. return count;
  502. }
  503. static ssize_t monitor_chunk_size_show(struct device *dev,
  504. struct device_attribute *attr, char *buf)
  505. {
  506. struct ufs_hba *hba = dev_get_drvdata(dev);
  507. return sysfs_emit(buf, "%lu\n", hba->monitor.chunk_size);
  508. }
  509. static ssize_t monitor_chunk_size_store(struct device *dev,
  510. struct device_attribute *attr,
  511. const char *buf, size_t count)
  512. {
  513. struct ufs_hba *hba = dev_get_drvdata(dev);
  514. unsigned long value, flags;
  515. if (kstrtoul(buf, 0, &value))
  516. return -EINVAL;
  517. spin_lock_irqsave(hba->host->host_lock, flags);
  518. /* Only allow chunk size change when monitor is disabled */
  519. if (!hba->monitor.enabled)
  520. hba->monitor.chunk_size = value;
  521. spin_unlock_irqrestore(hba->host->host_lock, flags);
  522. return count;
  523. }
  524. static ssize_t read_total_sectors_show(struct device *dev,
  525. struct device_attribute *attr, char *buf)
  526. {
  527. struct ufs_hba *hba = dev_get_drvdata(dev);
  528. return sysfs_emit(buf, "%lu\n", hba->monitor.nr_sec_rw[READ]);
  529. }
  530. static ssize_t read_total_busy_show(struct device *dev,
  531. struct device_attribute *attr, char *buf)
  532. {
  533. struct ufs_hba *hba = dev_get_drvdata(dev);
  534. return sysfs_emit(buf, "%llu\n",
  535. ktime_to_us(hba->monitor.total_busy[READ]));
  536. }
  537. static ssize_t read_nr_requests_show(struct device *dev,
  538. struct device_attribute *attr, char *buf)
  539. {
  540. struct ufs_hba *hba = dev_get_drvdata(dev);
  541. return sysfs_emit(buf, "%lu\n", hba->monitor.nr_req[READ]);
  542. }
  543. static ssize_t read_req_latency_avg_show(struct device *dev,
  544. struct device_attribute *attr,
  545. char *buf)
  546. {
  547. struct ufs_hba *hba = dev_get_drvdata(dev);
  548. struct ufs_hba_monitor *m = &hba->monitor;
  549. if (!m->nr_req[READ])
  550. return sysfs_emit(buf, "0\n");
  551. return sysfs_emit(buf, "%llu\n", div_u64(ktime_to_us(m->lat_sum[READ]),
  552. m->nr_req[READ]));
  553. }
  554. static ssize_t read_req_latency_max_show(struct device *dev,
  555. struct device_attribute *attr,
  556. char *buf)
  557. {
  558. struct ufs_hba *hba = dev_get_drvdata(dev);
  559. return sysfs_emit(buf, "%llu\n",
  560. ktime_to_us(hba->monitor.lat_max[READ]));
  561. }
  562. static ssize_t read_req_latency_min_show(struct device *dev,
  563. struct device_attribute *attr,
  564. char *buf)
  565. {
  566. struct ufs_hba *hba = dev_get_drvdata(dev);
  567. return sysfs_emit(buf, "%llu\n",
  568. ktime_to_us(hba->monitor.lat_min[READ]));
  569. }
  570. static ssize_t read_req_latency_sum_show(struct device *dev,
  571. struct device_attribute *attr,
  572. char *buf)
  573. {
  574. struct ufs_hba *hba = dev_get_drvdata(dev);
  575. return sysfs_emit(buf, "%llu\n",
  576. ktime_to_us(hba->monitor.lat_sum[READ]));
  577. }
  578. static ssize_t write_total_sectors_show(struct device *dev,
  579. struct device_attribute *attr,
  580. char *buf)
  581. {
  582. struct ufs_hba *hba = dev_get_drvdata(dev);
  583. return sysfs_emit(buf, "%lu\n", hba->monitor.nr_sec_rw[WRITE]);
  584. }
  585. static ssize_t write_total_busy_show(struct device *dev,
  586. struct device_attribute *attr, char *buf)
  587. {
  588. struct ufs_hba *hba = dev_get_drvdata(dev);
  589. return sysfs_emit(buf, "%llu\n",
  590. ktime_to_us(hba->monitor.total_busy[WRITE]));
  591. }
  592. static ssize_t write_nr_requests_show(struct device *dev,
  593. struct device_attribute *attr, char *buf)
  594. {
  595. struct ufs_hba *hba = dev_get_drvdata(dev);
  596. return sysfs_emit(buf, "%lu\n", hba->monitor.nr_req[WRITE]);
  597. }
  598. static ssize_t write_req_latency_avg_show(struct device *dev,
  599. struct device_attribute *attr,
  600. char *buf)
  601. {
  602. struct ufs_hba *hba = dev_get_drvdata(dev);
  603. struct ufs_hba_monitor *m = &hba->monitor;
  604. if (!m->nr_req[WRITE])
  605. return sysfs_emit(buf, "0\n");
  606. return sysfs_emit(buf, "%llu\n", div_u64(ktime_to_us(m->lat_sum[WRITE]),
  607. m->nr_req[WRITE]));
  608. }
  609. static ssize_t write_req_latency_max_show(struct device *dev,
  610. struct device_attribute *attr,
  611. char *buf)
  612. {
  613. struct ufs_hba *hba = dev_get_drvdata(dev);
  614. return sysfs_emit(buf, "%llu\n",
  615. ktime_to_us(hba->monitor.lat_max[WRITE]));
  616. }
  617. static ssize_t write_req_latency_min_show(struct device *dev,
  618. struct device_attribute *attr,
  619. char *buf)
  620. {
  621. struct ufs_hba *hba = dev_get_drvdata(dev);
  622. return sysfs_emit(buf, "%llu\n",
  623. ktime_to_us(hba->monitor.lat_min[WRITE]));
  624. }
  625. static ssize_t write_req_latency_sum_show(struct device *dev,
  626. struct device_attribute *attr,
  627. char *buf)
  628. {
  629. struct ufs_hba *hba = dev_get_drvdata(dev);
  630. return sysfs_emit(buf, "%llu\n",
  631. ktime_to_us(hba->monitor.lat_sum[WRITE]));
  632. }
  633. static DEVICE_ATTR_RW(monitor_enable);
  634. static DEVICE_ATTR_RW(monitor_chunk_size);
  635. static DEVICE_ATTR_RO(read_total_sectors);
  636. static DEVICE_ATTR_RO(read_total_busy);
  637. static DEVICE_ATTR_RO(read_nr_requests);
  638. static DEVICE_ATTR_RO(read_req_latency_avg);
  639. static DEVICE_ATTR_RO(read_req_latency_max);
  640. static DEVICE_ATTR_RO(read_req_latency_min);
  641. static DEVICE_ATTR_RO(read_req_latency_sum);
  642. static DEVICE_ATTR_RO(write_total_sectors);
  643. static DEVICE_ATTR_RO(write_total_busy);
  644. static DEVICE_ATTR_RO(write_nr_requests);
  645. static DEVICE_ATTR_RO(write_req_latency_avg);
  646. static DEVICE_ATTR_RO(write_req_latency_max);
  647. static DEVICE_ATTR_RO(write_req_latency_min);
  648. static DEVICE_ATTR_RO(write_req_latency_sum);
  649. static struct attribute *ufs_sysfs_monitor_attrs[] = {
  650. &dev_attr_monitor_enable.attr,
  651. &dev_attr_monitor_chunk_size.attr,
  652. &dev_attr_read_total_sectors.attr,
  653. &dev_attr_read_total_busy.attr,
  654. &dev_attr_read_nr_requests.attr,
  655. &dev_attr_read_req_latency_avg.attr,
  656. &dev_attr_read_req_latency_max.attr,
  657. &dev_attr_read_req_latency_min.attr,
  658. &dev_attr_read_req_latency_sum.attr,
  659. &dev_attr_write_total_sectors.attr,
  660. &dev_attr_write_total_busy.attr,
  661. &dev_attr_write_nr_requests.attr,
  662. &dev_attr_write_req_latency_avg.attr,
  663. &dev_attr_write_req_latency_max.attr,
  664. &dev_attr_write_req_latency_min.attr,
  665. &dev_attr_write_req_latency_sum.attr,
  666. NULL
  667. };
  668. static const struct attribute_group ufs_sysfs_monitor_group = {
  669. .name = "monitor",
  670. .attrs = ufs_sysfs_monitor_attrs,
  671. };
  672. static ssize_t lane_show(struct device *dev, struct device_attribute *attr,
  673. char *buf)
  674. {
  675. struct ufs_hba *hba = dev_get_drvdata(dev);
  676. return sysfs_emit(buf, "%u\n", hba->pwr_info.lane_rx);
  677. }
  678. static ssize_t mode_show(struct device *dev, struct device_attribute *attr,
  679. char *buf)
  680. {
  681. struct ufs_hba *hba = dev_get_drvdata(dev);
  682. return sysfs_emit(buf, "%s\n", ufs_pa_pwr_mode_to_string(hba->pwr_info.pwr_rx));
  683. }
  684. static ssize_t rate_show(struct device *dev, struct device_attribute *attr,
  685. char *buf)
  686. {
  687. struct ufs_hba *hba = dev_get_drvdata(dev);
  688. return sysfs_emit(buf, "%s\n", ufs_hs_gear_rate_to_string(hba->pwr_info.hs_rate));
  689. }
  690. static ssize_t gear_show(struct device *dev, struct device_attribute *attr,
  691. char *buf)
  692. {
  693. struct ufs_hba *hba = dev_get_drvdata(dev);
  694. return sysfs_emit(buf, "%s\n", hba->pwr_info.hs_rate ?
  695. ufs_hs_gear_to_string(hba->pwr_info.gear_rx) :
  696. ufs_pwm_gear_to_string(hba->pwr_info.gear_rx));
  697. }
  698. static ssize_t dev_pm_show(struct device *dev, struct device_attribute *attr,
  699. char *buf)
  700. {
  701. struct ufs_hba *hba = dev_get_drvdata(dev);
  702. return sysfs_emit(buf, "%s\n", ufshcd_ufs_dev_pwr_mode_to_string(hba->curr_dev_pwr_mode));
  703. }
  704. static ssize_t link_state_show(struct device *dev,
  705. struct device_attribute *attr, char *buf)
  706. {
  707. struct ufs_hba *hba = dev_get_drvdata(dev);
  708. return sysfs_emit(buf, "%s\n", ufshcd_uic_link_state_to_string(hba->uic_link_state));
  709. }
  710. static DEVICE_ATTR_RO(lane);
  711. static DEVICE_ATTR_RO(mode);
  712. static DEVICE_ATTR_RO(rate);
  713. static DEVICE_ATTR_RO(gear);
  714. static DEVICE_ATTR_RO(dev_pm);
  715. static DEVICE_ATTR_RO(link_state);
  716. static struct attribute *ufs_power_info_attrs[] = {
  717. &dev_attr_lane.attr,
  718. &dev_attr_mode.attr,
  719. &dev_attr_rate.attr,
  720. &dev_attr_gear.attr,
  721. &dev_attr_dev_pm.attr,
  722. &dev_attr_link_state.attr,
  723. NULL
  724. };
  725. static const struct attribute_group ufs_sysfs_power_info_group = {
  726. .name = "power_info",
  727. .attrs = ufs_power_info_attrs,
  728. };
  729. static ssize_t ufs_sysfs_read_desc_param(struct ufs_hba *hba,
  730. enum desc_idn desc_id,
  731. u8 desc_index,
  732. u8 param_offset,
  733. u8 *sysfs_buf,
  734. u8 param_size)
  735. {
  736. u8 desc_buf[8] = {0};
  737. int ret;
  738. if (param_size > 8)
  739. return -EINVAL;
  740. down(&hba->host_sem);
  741. if (!ufshcd_is_user_access_allowed(hba)) {
  742. ret = -EBUSY;
  743. goto out;
  744. }
  745. ufshcd_rpm_get_sync(hba);
  746. ret = ufshcd_read_desc_param(hba, desc_id, desc_index,
  747. param_offset, desc_buf, param_size);
  748. ufshcd_rpm_put_sync(hba);
  749. if (ret) {
  750. ret = -EINVAL;
  751. goto out;
  752. }
  753. switch (param_size) {
  754. case 1:
  755. ret = sysfs_emit(sysfs_buf, "0x%02X\n", *desc_buf);
  756. break;
  757. case 2:
  758. ret = sysfs_emit(sysfs_buf, "0x%04X\n",
  759. get_unaligned_be16(desc_buf));
  760. break;
  761. case 4:
  762. ret = sysfs_emit(sysfs_buf, "0x%08X\n",
  763. get_unaligned_be32(desc_buf));
  764. break;
  765. case 8:
  766. ret = sysfs_emit(sysfs_buf, "0x%016llX\n",
  767. get_unaligned_be64(desc_buf));
  768. break;
  769. }
  770. out:
  771. up(&hba->host_sem);
  772. return ret;
  773. }
  774. #define UFS_DESC_PARAM(_name, _puname, _duname, _size) \
  775. static ssize_t _name##_show(struct device *dev, \
  776. struct device_attribute *attr, char *buf) \
  777. { \
  778. struct ufs_hba *hba = dev_get_drvdata(dev); \
  779. return ufs_sysfs_read_desc_param(hba, QUERY_DESC_IDN_##_duname, \
  780. 0, _duname##_DESC_PARAM##_puname, buf, _size); \
  781. } \
  782. static DEVICE_ATTR_RO(_name)
  783. #define UFS_DEVICE_DESC_PARAM(_name, _uname, _size) \
  784. UFS_DESC_PARAM(_name, _uname, DEVICE, _size)
  785. UFS_DEVICE_DESC_PARAM(device_type, _DEVICE_TYPE, 1);
  786. UFS_DEVICE_DESC_PARAM(device_class, _DEVICE_CLASS, 1);
  787. UFS_DEVICE_DESC_PARAM(device_sub_class, _DEVICE_SUB_CLASS, 1);
  788. UFS_DEVICE_DESC_PARAM(protocol, _PRTCL, 1);
  789. UFS_DEVICE_DESC_PARAM(number_of_luns, _NUM_LU, 1);
  790. UFS_DEVICE_DESC_PARAM(number_of_wluns, _NUM_WLU, 1);
  791. UFS_DEVICE_DESC_PARAM(boot_enable, _BOOT_ENBL, 1);
  792. UFS_DEVICE_DESC_PARAM(descriptor_access_enable, _DESC_ACCSS_ENBL, 1);
  793. UFS_DEVICE_DESC_PARAM(initial_power_mode, _INIT_PWR_MODE, 1);
  794. UFS_DEVICE_DESC_PARAM(high_priority_lun, _HIGH_PR_LUN, 1);
  795. UFS_DEVICE_DESC_PARAM(secure_removal_type, _SEC_RMV_TYPE, 1);
  796. UFS_DEVICE_DESC_PARAM(support_security_lun, _SEC_LU, 1);
  797. UFS_DEVICE_DESC_PARAM(bkops_termination_latency, _BKOP_TERM_LT, 1);
  798. UFS_DEVICE_DESC_PARAM(initial_active_icc_level, _ACTVE_ICC_LVL, 1);
  799. UFS_DEVICE_DESC_PARAM(specification_version, _SPEC_VER, 2);
  800. UFS_DEVICE_DESC_PARAM(manufacturing_date, _MANF_DATE, 2);
  801. UFS_DEVICE_DESC_PARAM(manufacturer_id, _MANF_ID, 2);
  802. UFS_DEVICE_DESC_PARAM(rtt_capability, _RTT_CAP, 1);
  803. UFS_DEVICE_DESC_PARAM(rtc_update, _FRQ_RTC, 2);
  804. UFS_DEVICE_DESC_PARAM(ufs_features, _UFS_FEAT, 1);
  805. UFS_DEVICE_DESC_PARAM(ffu_timeout, _FFU_TMT, 1);
  806. UFS_DEVICE_DESC_PARAM(queue_depth, _Q_DPTH, 1);
  807. UFS_DEVICE_DESC_PARAM(device_version, _DEV_VER, 2);
  808. UFS_DEVICE_DESC_PARAM(number_of_secure_wpa, _NUM_SEC_WPA, 1);
  809. UFS_DEVICE_DESC_PARAM(psa_max_data_size, _PSA_MAX_DATA, 4);
  810. UFS_DEVICE_DESC_PARAM(psa_state_timeout, _PSA_TMT, 1);
  811. UFS_DEVICE_DESC_PARAM(ext_feature_sup, _EXT_UFS_FEATURE_SUP, 4);
  812. UFS_DEVICE_DESC_PARAM(wb_presv_us_en, _WB_PRESRV_USRSPC_EN, 1);
  813. UFS_DEVICE_DESC_PARAM(wb_type, _WB_TYPE, 1);
  814. UFS_DEVICE_DESC_PARAM(wb_shared_alloc_units, _WB_SHARED_ALLOC_UNITS, 4);
  815. static struct attribute *ufs_sysfs_device_descriptor[] = {
  816. &dev_attr_device_type.attr,
  817. &dev_attr_device_class.attr,
  818. &dev_attr_device_sub_class.attr,
  819. &dev_attr_protocol.attr,
  820. &dev_attr_number_of_luns.attr,
  821. &dev_attr_number_of_wluns.attr,
  822. &dev_attr_boot_enable.attr,
  823. &dev_attr_descriptor_access_enable.attr,
  824. &dev_attr_initial_power_mode.attr,
  825. &dev_attr_high_priority_lun.attr,
  826. &dev_attr_secure_removal_type.attr,
  827. &dev_attr_support_security_lun.attr,
  828. &dev_attr_bkops_termination_latency.attr,
  829. &dev_attr_initial_active_icc_level.attr,
  830. &dev_attr_specification_version.attr,
  831. &dev_attr_manufacturing_date.attr,
  832. &dev_attr_manufacturer_id.attr,
  833. &dev_attr_rtt_capability.attr,
  834. &dev_attr_rtc_update.attr,
  835. &dev_attr_ufs_features.attr,
  836. &dev_attr_ffu_timeout.attr,
  837. &dev_attr_queue_depth.attr,
  838. &dev_attr_device_version.attr,
  839. &dev_attr_number_of_secure_wpa.attr,
  840. &dev_attr_psa_max_data_size.attr,
  841. &dev_attr_psa_state_timeout.attr,
  842. &dev_attr_ext_feature_sup.attr,
  843. &dev_attr_wb_presv_us_en.attr,
  844. &dev_attr_wb_type.attr,
  845. &dev_attr_wb_shared_alloc_units.attr,
  846. NULL,
  847. };
  848. static const struct attribute_group ufs_sysfs_device_descriptor_group = {
  849. .name = "device_descriptor",
  850. .attrs = ufs_sysfs_device_descriptor,
  851. };
  852. #define UFS_INTERCONNECT_DESC_PARAM(_name, _uname, _size) \
  853. UFS_DESC_PARAM(_name, _uname, INTERCONNECT, _size)
  854. UFS_INTERCONNECT_DESC_PARAM(unipro_version, _UNIPRO_VER, 2);
  855. UFS_INTERCONNECT_DESC_PARAM(mphy_version, _MPHY_VER, 2);
  856. static struct attribute *ufs_sysfs_interconnect_descriptor[] = {
  857. &dev_attr_unipro_version.attr,
  858. &dev_attr_mphy_version.attr,
  859. NULL,
  860. };
  861. static const struct attribute_group ufs_sysfs_interconnect_descriptor_group = {
  862. .name = "interconnect_descriptor",
  863. .attrs = ufs_sysfs_interconnect_descriptor,
  864. };
  865. #define UFS_GEOMETRY_DESC_PARAM(_name, _uname, _size) \
  866. UFS_DESC_PARAM(_name, _uname, GEOMETRY, _size)
  867. UFS_GEOMETRY_DESC_PARAM(raw_device_capacity, _DEV_CAP, 8);
  868. UFS_GEOMETRY_DESC_PARAM(max_number_of_luns, _MAX_NUM_LUN, 1);
  869. UFS_GEOMETRY_DESC_PARAM(segment_size, _SEG_SIZE, 4);
  870. UFS_GEOMETRY_DESC_PARAM(allocation_unit_size, _ALLOC_UNIT_SIZE, 1);
  871. UFS_GEOMETRY_DESC_PARAM(min_addressable_block_size, _MIN_BLK_SIZE, 1);
  872. UFS_GEOMETRY_DESC_PARAM(optimal_read_block_size, _OPT_RD_BLK_SIZE, 1);
  873. UFS_GEOMETRY_DESC_PARAM(optimal_write_block_size, _OPT_WR_BLK_SIZE, 1);
  874. UFS_GEOMETRY_DESC_PARAM(max_in_buffer_size, _MAX_IN_BUF_SIZE, 1);
  875. UFS_GEOMETRY_DESC_PARAM(max_out_buffer_size, _MAX_OUT_BUF_SIZE, 1);
  876. UFS_GEOMETRY_DESC_PARAM(rpmb_rw_size, _RPMB_RW_SIZE, 1);
  877. UFS_GEOMETRY_DESC_PARAM(dyn_capacity_resource_policy, _DYN_CAP_RSRC_PLC, 1);
  878. UFS_GEOMETRY_DESC_PARAM(data_ordering, _DATA_ORDER, 1);
  879. UFS_GEOMETRY_DESC_PARAM(max_number_of_contexts, _MAX_NUM_CTX, 1);
  880. UFS_GEOMETRY_DESC_PARAM(sys_data_tag_unit_size, _TAG_UNIT_SIZE, 1);
  881. UFS_GEOMETRY_DESC_PARAM(sys_data_tag_resource_size, _TAG_RSRC_SIZE, 1);
  882. UFS_GEOMETRY_DESC_PARAM(secure_removal_types, _SEC_RM_TYPES, 1);
  883. UFS_GEOMETRY_DESC_PARAM(memory_types, _MEM_TYPES, 2);
  884. UFS_GEOMETRY_DESC_PARAM(sys_code_memory_max_alloc_units,
  885. _SCM_MAX_NUM_UNITS, 4);
  886. UFS_GEOMETRY_DESC_PARAM(sys_code_memory_capacity_adjustment_factor,
  887. _SCM_CAP_ADJ_FCTR, 2);
  888. UFS_GEOMETRY_DESC_PARAM(non_persist_memory_max_alloc_units,
  889. _NPM_MAX_NUM_UNITS, 4);
  890. UFS_GEOMETRY_DESC_PARAM(non_persist_memory_capacity_adjustment_factor,
  891. _NPM_CAP_ADJ_FCTR, 2);
  892. UFS_GEOMETRY_DESC_PARAM(enh1_memory_max_alloc_units,
  893. _ENM1_MAX_NUM_UNITS, 4);
  894. UFS_GEOMETRY_DESC_PARAM(enh1_memory_capacity_adjustment_factor,
  895. _ENM1_CAP_ADJ_FCTR, 2);
  896. UFS_GEOMETRY_DESC_PARAM(enh2_memory_max_alloc_units,
  897. _ENM2_MAX_NUM_UNITS, 4);
  898. UFS_GEOMETRY_DESC_PARAM(enh2_memory_capacity_adjustment_factor,
  899. _ENM2_CAP_ADJ_FCTR, 2);
  900. UFS_GEOMETRY_DESC_PARAM(enh3_memory_max_alloc_units,
  901. _ENM3_MAX_NUM_UNITS, 4);
  902. UFS_GEOMETRY_DESC_PARAM(enh3_memory_capacity_adjustment_factor,
  903. _ENM3_CAP_ADJ_FCTR, 2);
  904. UFS_GEOMETRY_DESC_PARAM(enh4_memory_max_alloc_units,
  905. _ENM4_MAX_NUM_UNITS, 4);
  906. UFS_GEOMETRY_DESC_PARAM(enh4_memory_capacity_adjustment_factor,
  907. _ENM4_CAP_ADJ_FCTR, 2);
  908. UFS_GEOMETRY_DESC_PARAM(wb_max_alloc_units, _WB_MAX_ALLOC_UNITS, 4);
  909. UFS_GEOMETRY_DESC_PARAM(wb_max_wb_luns, _WB_MAX_WB_LUNS, 1);
  910. UFS_GEOMETRY_DESC_PARAM(wb_buff_cap_adj, _WB_BUFF_CAP_ADJ, 1);
  911. UFS_GEOMETRY_DESC_PARAM(wb_sup_red_type, _WB_SUP_RED_TYPE, 1);
  912. UFS_GEOMETRY_DESC_PARAM(wb_sup_wb_type, _WB_SUP_WB_TYPE, 1);
  913. static struct attribute *ufs_sysfs_geometry_descriptor[] = {
  914. &dev_attr_raw_device_capacity.attr,
  915. &dev_attr_max_number_of_luns.attr,
  916. &dev_attr_segment_size.attr,
  917. &dev_attr_allocation_unit_size.attr,
  918. &dev_attr_min_addressable_block_size.attr,
  919. &dev_attr_optimal_read_block_size.attr,
  920. &dev_attr_optimal_write_block_size.attr,
  921. &dev_attr_max_in_buffer_size.attr,
  922. &dev_attr_max_out_buffer_size.attr,
  923. &dev_attr_rpmb_rw_size.attr,
  924. &dev_attr_dyn_capacity_resource_policy.attr,
  925. &dev_attr_data_ordering.attr,
  926. &dev_attr_max_number_of_contexts.attr,
  927. &dev_attr_sys_data_tag_unit_size.attr,
  928. &dev_attr_sys_data_tag_resource_size.attr,
  929. &dev_attr_secure_removal_types.attr,
  930. &dev_attr_memory_types.attr,
  931. &dev_attr_sys_code_memory_max_alloc_units.attr,
  932. &dev_attr_sys_code_memory_capacity_adjustment_factor.attr,
  933. &dev_attr_non_persist_memory_max_alloc_units.attr,
  934. &dev_attr_non_persist_memory_capacity_adjustment_factor.attr,
  935. &dev_attr_enh1_memory_max_alloc_units.attr,
  936. &dev_attr_enh1_memory_capacity_adjustment_factor.attr,
  937. &dev_attr_enh2_memory_max_alloc_units.attr,
  938. &dev_attr_enh2_memory_capacity_adjustment_factor.attr,
  939. &dev_attr_enh3_memory_max_alloc_units.attr,
  940. &dev_attr_enh3_memory_capacity_adjustment_factor.attr,
  941. &dev_attr_enh4_memory_max_alloc_units.attr,
  942. &dev_attr_enh4_memory_capacity_adjustment_factor.attr,
  943. &dev_attr_wb_max_alloc_units.attr,
  944. &dev_attr_wb_max_wb_luns.attr,
  945. &dev_attr_wb_buff_cap_adj.attr,
  946. &dev_attr_wb_sup_red_type.attr,
  947. &dev_attr_wb_sup_wb_type.attr,
  948. NULL,
  949. };
  950. static const struct attribute_group ufs_sysfs_geometry_descriptor_group = {
  951. .name = "geometry_descriptor",
  952. .attrs = ufs_sysfs_geometry_descriptor,
  953. };
  954. #define UFS_HEALTH_DESC_PARAM(_name, _uname, _size) \
  955. UFS_DESC_PARAM(_name, _uname, HEALTH, _size)
  956. UFS_HEALTH_DESC_PARAM(eol_info, _EOL_INFO, 1);
  957. UFS_HEALTH_DESC_PARAM(life_time_estimation_a, _LIFE_TIME_EST_A, 1);
  958. UFS_HEALTH_DESC_PARAM(life_time_estimation_b, _LIFE_TIME_EST_B, 1);
  959. static struct attribute *ufs_sysfs_health_descriptor[] = {
  960. &dev_attr_eol_info.attr,
  961. &dev_attr_life_time_estimation_a.attr,
  962. &dev_attr_life_time_estimation_b.attr,
  963. NULL,
  964. };
  965. static const struct attribute_group ufs_sysfs_health_descriptor_group = {
  966. .name = "health_descriptor",
  967. .attrs = ufs_sysfs_health_descriptor,
  968. };
  969. #define UFS_POWER_DESC_PARAM(_name, _uname, _index) \
  970. static ssize_t _name##_index##_show(struct device *dev, \
  971. struct device_attribute *attr, char *buf) \
  972. { \
  973. struct ufs_hba *hba = dev_get_drvdata(dev); \
  974. return ufs_sysfs_read_desc_param(hba, QUERY_DESC_IDN_POWER, 0, \
  975. PWR_DESC##_uname##_0 + _index * 2, buf, 2); \
  976. } \
  977. static DEVICE_ATTR_RO(_name##_index)
  978. UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 0);
  979. UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 1);
  980. UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 2);
  981. UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 3);
  982. UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 4);
  983. UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 5);
  984. UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 6);
  985. UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 7);
  986. UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 8);
  987. UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 9);
  988. UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 10);
  989. UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 11);
  990. UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 12);
  991. UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 13);
  992. UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 14);
  993. UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 15);
  994. UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 0);
  995. UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 1);
  996. UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 2);
  997. UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 3);
  998. UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 4);
  999. UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 5);
  1000. UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 6);
  1001. UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 7);
  1002. UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 8);
  1003. UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 9);
  1004. UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 10);
  1005. UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 11);
  1006. UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 12);
  1007. UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 13);
  1008. UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 14);
  1009. UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 15);
  1010. UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 0);
  1011. UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 1);
  1012. UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 2);
  1013. UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 3);
  1014. UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 4);
  1015. UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 5);
  1016. UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 6);
  1017. UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 7);
  1018. UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 8);
  1019. UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 9);
  1020. UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 10);
  1021. UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 11);
  1022. UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 12);
  1023. UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 13);
  1024. UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 14);
  1025. UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 15);
  1026. static struct attribute *ufs_sysfs_power_descriptor[] = {
  1027. &dev_attr_active_icc_levels_vcc0.attr,
  1028. &dev_attr_active_icc_levels_vcc1.attr,
  1029. &dev_attr_active_icc_levels_vcc2.attr,
  1030. &dev_attr_active_icc_levels_vcc3.attr,
  1031. &dev_attr_active_icc_levels_vcc4.attr,
  1032. &dev_attr_active_icc_levels_vcc5.attr,
  1033. &dev_attr_active_icc_levels_vcc6.attr,
  1034. &dev_attr_active_icc_levels_vcc7.attr,
  1035. &dev_attr_active_icc_levels_vcc8.attr,
  1036. &dev_attr_active_icc_levels_vcc9.attr,
  1037. &dev_attr_active_icc_levels_vcc10.attr,
  1038. &dev_attr_active_icc_levels_vcc11.attr,
  1039. &dev_attr_active_icc_levels_vcc12.attr,
  1040. &dev_attr_active_icc_levels_vcc13.attr,
  1041. &dev_attr_active_icc_levels_vcc14.attr,
  1042. &dev_attr_active_icc_levels_vcc15.attr,
  1043. &dev_attr_active_icc_levels_vccq0.attr,
  1044. &dev_attr_active_icc_levels_vccq1.attr,
  1045. &dev_attr_active_icc_levels_vccq2.attr,
  1046. &dev_attr_active_icc_levels_vccq3.attr,
  1047. &dev_attr_active_icc_levels_vccq4.attr,
  1048. &dev_attr_active_icc_levels_vccq5.attr,
  1049. &dev_attr_active_icc_levels_vccq6.attr,
  1050. &dev_attr_active_icc_levels_vccq7.attr,
  1051. &dev_attr_active_icc_levels_vccq8.attr,
  1052. &dev_attr_active_icc_levels_vccq9.attr,
  1053. &dev_attr_active_icc_levels_vccq10.attr,
  1054. &dev_attr_active_icc_levels_vccq11.attr,
  1055. &dev_attr_active_icc_levels_vccq12.attr,
  1056. &dev_attr_active_icc_levels_vccq13.attr,
  1057. &dev_attr_active_icc_levels_vccq14.attr,
  1058. &dev_attr_active_icc_levels_vccq15.attr,
  1059. &dev_attr_active_icc_levels_vccq20.attr,
  1060. &dev_attr_active_icc_levels_vccq21.attr,
  1061. &dev_attr_active_icc_levels_vccq22.attr,
  1062. &dev_attr_active_icc_levels_vccq23.attr,
  1063. &dev_attr_active_icc_levels_vccq24.attr,
  1064. &dev_attr_active_icc_levels_vccq25.attr,
  1065. &dev_attr_active_icc_levels_vccq26.attr,
  1066. &dev_attr_active_icc_levels_vccq27.attr,
  1067. &dev_attr_active_icc_levels_vccq28.attr,
  1068. &dev_attr_active_icc_levels_vccq29.attr,
  1069. &dev_attr_active_icc_levels_vccq210.attr,
  1070. &dev_attr_active_icc_levels_vccq211.attr,
  1071. &dev_attr_active_icc_levels_vccq212.attr,
  1072. &dev_attr_active_icc_levels_vccq213.attr,
  1073. &dev_attr_active_icc_levels_vccq214.attr,
  1074. &dev_attr_active_icc_levels_vccq215.attr,
  1075. NULL,
  1076. };
  1077. static const struct attribute_group ufs_sysfs_power_descriptor_group = {
  1078. .name = "power_descriptor",
  1079. .attrs = ufs_sysfs_power_descriptor,
  1080. };
  1081. #define UFS_STRING_DESCRIPTOR(_name, _pname) \
  1082. static ssize_t _name##_show(struct device *dev, \
  1083. struct device_attribute *attr, char *buf) \
  1084. { \
  1085. u8 index; \
  1086. struct ufs_hba *hba = dev_get_drvdata(dev); \
  1087. int ret; \
  1088. int desc_len = QUERY_DESC_MAX_SIZE; \
  1089. u8 *desc_buf; \
  1090. \
  1091. down(&hba->host_sem); \
  1092. if (!ufshcd_is_user_access_allowed(hba)) { \
  1093. up(&hba->host_sem); \
  1094. return -EBUSY; \
  1095. } \
  1096. desc_buf = kzalloc(QUERY_DESC_MAX_SIZE, GFP_ATOMIC); \
  1097. if (!desc_buf) { \
  1098. up(&hba->host_sem); \
  1099. return -ENOMEM; \
  1100. } \
  1101. ufshcd_rpm_get_sync(hba); \
  1102. ret = ufshcd_query_descriptor_retry(hba, \
  1103. UPIU_QUERY_OPCODE_READ_DESC, QUERY_DESC_IDN_DEVICE, \
  1104. 0, 0, desc_buf, &desc_len); \
  1105. if (ret) { \
  1106. ret = -EINVAL; \
  1107. goto out; \
  1108. } \
  1109. index = desc_buf[DEVICE_DESC_PARAM##_pname]; \
  1110. kfree(desc_buf); \
  1111. desc_buf = NULL; \
  1112. ret = ufshcd_read_string_desc(hba, index, &desc_buf, \
  1113. SD_ASCII_STD); \
  1114. if (ret < 0) \
  1115. goto out; \
  1116. ret = sysfs_emit(buf, "%s\n", desc_buf); \
  1117. out: \
  1118. ufshcd_rpm_put_sync(hba); \
  1119. kfree(desc_buf); \
  1120. up(&hba->host_sem); \
  1121. return ret; \
  1122. } \
  1123. static DEVICE_ATTR_RO(_name)
  1124. UFS_STRING_DESCRIPTOR(manufacturer_name, _MANF_NAME);
  1125. UFS_STRING_DESCRIPTOR(product_name, _PRDCT_NAME);
  1126. UFS_STRING_DESCRIPTOR(oem_id, _OEM_ID);
  1127. UFS_STRING_DESCRIPTOR(serial_number, _SN);
  1128. UFS_STRING_DESCRIPTOR(product_revision, _PRDCT_REV);
  1129. static struct attribute *ufs_sysfs_string_descriptors[] = {
  1130. &dev_attr_manufacturer_name.attr,
  1131. &dev_attr_product_name.attr,
  1132. &dev_attr_oem_id.attr,
  1133. &dev_attr_serial_number.attr,
  1134. &dev_attr_product_revision.attr,
  1135. NULL,
  1136. };
  1137. static const struct attribute_group ufs_sysfs_string_descriptors_group = {
  1138. .name = "string_descriptors",
  1139. .attrs = ufs_sysfs_string_descriptors,
  1140. };
  1141. static inline bool ufshcd_is_wb_flags(enum flag_idn idn)
  1142. {
  1143. return idn >= QUERY_FLAG_IDN_WB_EN &&
  1144. idn <= QUERY_FLAG_IDN_WB_BUFF_FLUSH_DURING_HIBERN8;
  1145. }
  1146. #define UFS_FLAG(_name, _uname) \
  1147. static ssize_t _name##_show(struct device *dev, \
  1148. struct device_attribute *attr, char *buf) \
  1149. { \
  1150. bool flag; \
  1151. u8 index = 0; \
  1152. int ret; \
  1153. struct ufs_hba *hba = dev_get_drvdata(dev); \
  1154. \
  1155. down(&hba->host_sem); \
  1156. if (!ufshcd_is_user_access_allowed(hba)) { \
  1157. up(&hba->host_sem); \
  1158. return -EBUSY; \
  1159. } \
  1160. if (ufshcd_is_wb_flags(QUERY_FLAG_IDN##_uname)) \
  1161. index = ufshcd_wb_get_query_index(hba); \
  1162. ufshcd_rpm_get_sync(hba); \
  1163. ret = ufshcd_query_flag(hba, UPIU_QUERY_OPCODE_READ_FLAG, \
  1164. QUERY_FLAG_IDN##_uname, index, &flag); \
  1165. ufshcd_rpm_put_sync(hba); \
  1166. if (ret) { \
  1167. ret = -EINVAL; \
  1168. goto out; \
  1169. } \
  1170. ret = sysfs_emit(buf, "%s\n", flag ? "true" : "false"); \
  1171. out: \
  1172. up(&hba->host_sem); \
  1173. return ret; \
  1174. } \
  1175. static DEVICE_ATTR_RO(_name)
  1176. UFS_FLAG(device_init, _FDEVICEINIT);
  1177. UFS_FLAG(permanent_wpe, _PERMANENT_WPE);
  1178. UFS_FLAG(power_on_wpe, _PWR_ON_WPE);
  1179. UFS_FLAG(bkops_enable, _BKOPS_EN);
  1180. UFS_FLAG(life_span_mode_enable, _LIFE_SPAN_MODE_ENABLE);
  1181. UFS_FLAG(phy_resource_removal, _FPHYRESOURCEREMOVAL);
  1182. UFS_FLAG(busy_rtc, _BUSY_RTC);
  1183. UFS_FLAG(disable_fw_update, _PERMANENTLY_DISABLE_FW_UPDATE);
  1184. UFS_FLAG(wb_enable, _WB_EN);
  1185. UFS_FLAG(wb_flush_en, _WB_BUFF_FLUSH_EN);
  1186. UFS_FLAG(wb_flush_during_h8, _WB_BUFF_FLUSH_DURING_HIBERN8);
  1187. static struct attribute *ufs_sysfs_device_flags[] = {
  1188. &dev_attr_device_init.attr,
  1189. &dev_attr_permanent_wpe.attr,
  1190. &dev_attr_power_on_wpe.attr,
  1191. &dev_attr_bkops_enable.attr,
  1192. &dev_attr_life_span_mode_enable.attr,
  1193. &dev_attr_phy_resource_removal.attr,
  1194. &dev_attr_busy_rtc.attr,
  1195. &dev_attr_disable_fw_update.attr,
  1196. &dev_attr_wb_enable.attr,
  1197. &dev_attr_wb_flush_en.attr,
  1198. &dev_attr_wb_flush_during_h8.attr,
  1199. NULL,
  1200. };
  1201. static const struct attribute_group ufs_sysfs_flags_group = {
  1202. .name = "flags",
  1203. .attrs = ufs_sysfs_device_flags,
  1204. };
  1205. static ssize_t max_number_of_rtt_show(struct device *dev,
  1206. struct device_attribute *attr, char *buf)
  1207. {
  1208. struct ufs_hba *hba = dev_get_drvdata(dev);
  1209. u32 rtt;
  1210. int ret;
  1211. down(&hba->host_sem);
  1212. if (!ufshcd_is_user_access_allowed(hba)) {
  1213. up(&hba->host_sem);
  1214. return -EBUSY;
  1215. }
  1216. ufshcd_rpm_get_sync(hba);
  1217. ret = ufshcd_query_attr(hba, UPIU_QUERY_OPCODE_READ_ATTR,
  1218. QUERY_ATTR_IDN_MAX_NUM_OF_RTT, 0, 0, &rtt);
  1219. ufshcd_rpm_put_sync(hba);
  1220. if (ret)
  1221. goto out;
  1222. ret = sysfs_emit(buf, "0x%08X\n", rtt);
  1223. out:
  1224. up(&hba->host_sem);
  1225. return ret;
  1226. }
  1227. static ssize_t max_number_of_rtt_store(struct device *dev,
  1228. struct device_attribute *attr,
  1229. const char *buf, size_t count)
  1230. {
  1231. struct ufs_hba *hba = dev_get_drvdata(dev);
  1232. struct ufs_dev_info *dev_info = &hba->dev_info;
  1233. struct scsi_device *sdev;
  1234. unsigned int rtt;
  1235. int ret;
  1236. if (kstrtouint(buf, 0, &rtt))
  1237. return -EINVAL;
  1238. if (rtt > dev_info->rtt_cap) {
  1239. dev_err(dev, "rtt can be at most bDeviceRTTCap\n");
  1240. return -EINVAL;
  1241. }
  1242. down(&hba->host_sem);
  1243. if (!ufshcd_is_user_access_allowed(hba)) {
  1244. ret = -EBUSY;
  1245. goto out;
  1246. }
  1247. ufshcd_rpm_get_sync(hba);
  1248. shost_for_each_device(sdev, hba->host)
  1249. blk_mq_freeze_queue(sdev->request_queue);
  1250. ret = ufshcd_query_attr(hba, UPIU_QUERY_OPCODE_WRITE_ATTR,
  1251. QUERY_ATTR_IDN_MAX_NUM_OF_RTT, 0, 0, &rtt);
  1252. shost_for_each_device(sdev, hba->host)
  1253. blk_mq_unfreeze_queue(sdev->request_queue);
  1254. ufshcd_rpm_put_sync(hba);
  1255. out:
  1256. up(&hba->host_sem);
  1257. return ret < 0 ? ret : count;
  1258. }
  1259. static DEVICE_ATTR_RW(max_number_of_rtt);
  1260. static inline bool ufshcd_is_wb_attrs(enum attr_idn idn)
  1261. {
  1262. return idn >= QUERY_ATTR_IDN_WB_FLUSH_STATUS &&
  1263. idn <= QUERY_ATTR_IDN_CURR_WB_BUFF_SIZE;
  1264. }
  1265. #define UFS_ATTRIBUTE(_name, _uname) \
  1266. static ssize_t _name##_show(struct device *dev, \
  1267. struct device_attribute *attr, char *buf) \
  1268. { \
  1269. struct ufs_hba *hba = dev_get_drvdata(dev); \
  1270. u32 value; \
  1271. int ret; \
  1272. u8 index = 0; \
  1273. \
  1274. down(&hba->host_sem); \
  1275. if (!ufshcd_is_user_access_allowed(hba)) { \
  1276. up(&hba->host_sem); \
  1277. return -EBUSY; \
  1278. } \
  1279. if (ufshcd_is_wb_attrs(QUERY_ATTR_IDN##_uname)) \
  1280. index = ufshcd_wb_get_query_index(hba); \
  1281. ufshcd_rpm_get_sync(hba); \
  1282. ret = ufshcd_query_attr(hba, UPIU_QUERY_OPCODE_READ_ATTR, \
  1283. QUERY_ATTR_IDN##_uname, index, 0, &value); \
  1284. ufshcd_rpm_put_sync(hba); \
  1285. if (ret) { \
  1286. ret = -EINVAL; \
  1287. goto out; \
  1288. } \
  1289. ret = sysfs_emit(buf, "0x%08X\n", value); \
  1290. out: \
  1291. up(&hba->host_sem); \
  1292. return ret; \
  1293. } \
  1294. static DEVICE_ATTR_RO(_name)
  1295. UFS_ATTRIBUTE(boot_lun_enabled, _BOOT_LU_EN);
  1296. UFS_ATTRIBUTE(current_power_mode, _POWER_MODE);
  1297. UFS_ATTRIBUTE(active_icc_level, _ACTIVE_ICC_LVL);
  1298. UFS_ATTRIBUTE(ooo_data_enabled, _OOO_DATA_EN);
  1299. UFS_ATTRIBUTE(bkops_status, _BKOPS_STATUS);
  1300. UFS_ATTRIBUTE(purge_status, _PURGE_STATUS);
  1301. UFS_ATTRIBUTE(max_data_in_size, _MAX_DATA_IN);
  1302. UFS_ATTRIBUTE(max_data_out_size, _MAX_DATA_OUT);
  1303. UFS_ATTRIBUTE(reference_clock_frequency, _REF_CLK_FREQ);
  1304. UFS_ATTRIBUTE(configuration_descriptor_lock, _CONF_DESC_LOCK);
  1305. UFS_ATTRIBUTE(exception_event_control, _EE_CONTROL);
  1306. UFS_ATTRIBUTE(exception_event_status, _EE_STATUS);
  1307. UFS_ATTRIBUTE(ffu_status, _FFU_STATUS);
  1308. UFS_ATTRIBUTE(psa_state, _PSA_STATE);
  1309. UFS_ATTRIBUTE(psa_data_size, _PSA_DATA_SIZE);
  1310. UFS_ATTRIBUTE(wb_flush_status, _WB_FLUSH_STATUS);
  1311. UFS_ATTRIBUTE(wb_avail_buf, _AVAIL_WB_BUFF_SIZE);
  1312. UFS_ATTRIBUTE(wb_life_time_est, _WB_BUFF_LIFE_TIME_EST);
  1313. UFS_ATTRIBUTE(wb_cur_buf, _CURR_WB_BUFF_SIZE);
  1314. static struct attribute *ufs_sysfs_attributes[] = {
  1315. &dev_attr_boot_lun_enabled.attr,
  1316. &dev_attr_current_power_mode.attr,
  1317. &dev_attr_active_icc_level.attr,
  1318. &dev_attr_ooo_data_enabled.attr,
  1319. &dev_attr_bkops_status.attr,
  1320. &dev_attr_purge_status.attr,
  1321. &dev_attr_max_data_in_size.attr,
  1322. &dev_attr_max_data_out_size.attr,
  1323. &dev_attr_reference_clock_frequency.attr,
  1324. &dev_attr_configuration_descriptor_lock.attr,
  1325. &dev_attr_max_number_of_rtt.attr,
  1326. &dev_attr_exception_event_control.attr,
  1327. &dev_attr_exception_event_status.attr,
  1328. &dev_attr_ffu_status.attr,
  1329. &dev_attr_psa_state.attr,
  1330. &dev_attr_psa_data_size.attr,
  1331. &dev_attr_wb_flush_status.attr,
  1332. &dev_attr_wb_avail_buf.attr,
  1333. &dev_attr_wb_life_time_est.attr,
  1334. &dev_attr_wb_cur_buf.attr,
  1335. NULL,
  1336. };
  1337. static const struct attribute_group ufs_sysfs_attributes_group = {
  1338. .name = "attributes",
  1339. .attrs = ufs_sysfs_attributes,
  1340. };
  1341. static const struct attribute_group *ufs_sysfs_groups[] = {
  1342. &ufs_sysfs_default_group,
  1343. &ufs_sysfs_capabilities_group,
  1344. &ufs_sysfs_ufshci_group,
  1345. &ufs_sysfs_monitor_group,
  1346. &ufs_sysfs_power_info_group,
  1347. &ufs_sysfs_device_descriptor_group,
  1348. &ufs_sysfs_interconnect_descriptor_group,
  1349. &ufs_sysfs_geometry_descriptor_group,
  1350. &ufs_sysfs_health_descriptor_group,
  1351. &ufs_sysfs_power_descriptor_group,
  1352. &ufs_sysfs_string_descriptors_group,
  1353. &ufs_sysfs_flags_group,
  1354. &ufs_sysfs_attributes_group,
  1355. NULL,
  1356. };
  1357. #define UFS_LUN_DESC_PARAM(_pname, _puname, _duname, _size) \
  1358. static ssize_t _pname##_show(struct device *dev, \
  1359. struct device_attribute *attr, char *buf) \
  1360. { \
  1361. struct scsi_device *sdev = to_scsi_device(dev); \
  1362. struct ufs_hba *hba = shost_priv(sdev->host); \
  1363. u8 lun = ufshcd_scsi_to_upiu_lun(sdev->lun); \
  1364. if (!ufs_is_valid_unit_desc_lun(&hba->dev_info, lun)) \
  1365. return -EINVAL; \
  1366. return ufs_sysfs_read_desc_param(hba, QUERY_DESC_IDN_##_duname, \
  1367. lun, _duname##_DESC_PARAM##_puname, buf, _size); \
  1368. } \
  1369. static DEVICE_ATTR_RO(_pname)
  1370. #define UFS_UNIT_DESC_PARAM(_name, _uname, _size) \
  1371. UFS_LUN_DESC_PARAM(_name, _uname, UNIT, _size)
  1372. UFS_UNIT_DESC_PARAM(lu_enable, _LU_ENABLE, 1);
  1373. UFS_UNIT_DESC_PARAM(boot_lun_id, _BOOT_LUN_ID, 1);
  1374. UFS_UNIT_DESC_PARAM(lun_write_protect, _LU_WR_PROTECT, 1);
  1375. UFS_UNIT_DESC_PARAM(lun_queue_depth, _LU_Q_DEPTH, 1);
  1376. UFS_UNIT_DESC_PARAM(psa_sensitive, _PSA_SENSITIVE, 1);
  1377. UFS_UNIT_DESC_PARAM(lun_memory_type, _MEM_TYPE, 1);
  1378. UFS_UNIT_DESC_PARAM(data_reliability, _DATA_RELIABILITY, 1);
  1379. UFS_UNIT_DESC_PARAM(logical_block_size, _LOGICAL_BLK_SIZE, 1);
  1380. UFS_UNIT_DESC_PARAM(logical_block_count, _LOGICAL_BLK_COUNT, 8);
  1381. UFS_UNIT_DESC_PARAM(erase_block_size, _ERASE_BLK_SIZE, 4);
  1382. UFS_UNIT_DESC_PARAM(provisioning_type, _PROVISIONING_TYPE, 1);
  1383. UFS_UNIT_DESC_PARAM(physical_memory_resource_count, _PHY_MEM_RSRC_CNT, 8);
  1384. UFS_UNIT_DESC_PARAM(context_capabilities, _CTX_CAPABILITIES, 2);
  1385. UFS_UNIT_DESC_PARAM(large_unit_granularity, _LARGE_UNIT_SIZE_M1, 1);
  1386. UFS_UNIT_DESC_PARAM(wb_buf_alloc_units, _WB_BUF_ALLOC_UNITS, 4);
  1387. static struct attribute *ufs_sysfs_unit_descriptor[] = {
  1388. &dev_attr_lu_enable.attr,
  1389. &dev_attr_boot_lun_id.attr,
  1390. &dev_attr_lun_write_protect.attr,
  1391. &dev_attr_lun_queue_depth.attr,
  1392. &dev_attr_psa_sensitive.attr,
  1393. &dev_attr_lun_memory_type.attr,
  1394. &dev_attr_data_reliability.attr,
  1395. &dev_attr_logical_block_size.attr,
  1396. &dev_attr_logical_block_count.attr,
  1397. &dev_attr_erase_block_size.attr,
  1398. &dev_attr_provisioning_type.attr,
  1399. &dev_attr_physical_memory_resource_count.attr,
  1400. &dev_attr_context_capabilities.attr,
  1401. &dev_attr_large_unit_granularity.attr,
  1402. &dev_attr_wb_buf_alloc_units.attr,
  1403. NULL,
  1404. };
  1405. static umode_t ufs_unit_descriptor_is_visible(struct kobject *kobj, struct attribute *attr, int n)
  1406. {
  1407. struct device *dev = container_of(kobj, struct device, kobj);
  1408. struct scsi_device *sdev = to_scsi_device(dev);
  1409. u8 lun = ufshcd_scsi_to_upiu_lun(sdev->lun);
  1410. umode_t mode = attr->mode;
  1411. if (lun == UFS_UPIU_BOOT_WLUN || lun == UFS_UPIU_UFS_DEVICE_WLUN)
  1412. /* Boot and device WLUN have no unit descriptors */
  1413. mode = 0;
  1414. if (lun == UFS_UPIU_RPMB_WLUN && attr == &dev_attr_wb_buf_alloc_units.attr)
  1415. mode = 0;
  1416. return mode;
  1417. }
  1418. const struct attribute_group ufs_sysfs_unit_descriptor_group = {
  1419. .name = "unit_descriptor",
  1420. .attrs = ufs_sysfs_unit_descriptor,
  1421. .is_visible = ufs_unit_descriptor_is_visible,
  1422. };
  1423. static ssize_t dyn_cap_needed_attribute_show(struct device *dev,
  1424. struct device_attribute *attr, char *buf)
  1425. {
  1426. u32 value;
  1427. struct scsi_device *sdev = to_scsi_device(dev);
  1428. struct ufs_hba *hba = shost_priv(sdev->host);
  1429. u8 lun = ufshcd_scsi_to_upiu_lun(sdev->lun);
  1430. int ret;
  1431. down(&hba->host_sem);
  1432. if (!ufshcd_is_user_access_allowed(hba)) {
  1433. ret = -EBUSY;
  1434. goto out;
  1435. }
  1436. ufshcd_rpm_get_sync(hba);
  1437. ret = ufshcd_query_attr(hba, UPIU_QUERY_OPCODE_READ_ATTR,
  1438. QUERY_ATTR_IDN_DYN_CAP_NEEDED, lun, 0, &value);
  1439. ufshcd_rpm_put_sync(hba);
  1440. if (ret) {
  1441. ret = -EINVAL;
  1442. goto out;
  1443. }
  1444. ret = sysfs_emit(buf, "0x%08X\n", value);
  1445. out:
  1446. up(&hba->host_sem);
  1447. return ret;
  1448. }
  1449. static DEVICE_ATTR_RO(dyn_cap_needed_attribute);
  1450. static struct attribute *ufs_sysfs_lun_attributes[] = {
  1451. &dev_attr_dyn_cap_needed_attribute.attr,
  1452. NULL,
  1453. };
  1454. const struct attribute_group ufs_sysfs_lun_attributes_group = {
  1455. .attrs = ufs_sysfs_lun_attributes,
  1456. };
  1457. void ufs_sysfs_add_nodes(struct device *dev)
  1458. {
  1459. int ret;
  1460. ret = sysfs_create_groups(&dev->kobj, ufs_sysfs_groups);
  1461. if (ret)
  1462. dev_err(dev,
  1463. "%s: sysfs groups creation failed (err = %d)\n",
  1464. __func__, ret);
  1465. }
  1466. void ufs_sysfs_remove_nodes(struct device *dev)
  1467. {
  1468. sysfs_remove_groups(&dev->kobj, ufs_sysfs_groups);
  1469. }