1 // SPDX-License-Identifier: GPL-2.0
2 // Copyright (C) 2018 Western Digital Corporation
3
4 #include <linux/err.h>
5 #include <linux/string.h>
6 #include <linux/bitfield.h>
7 #include <linux/unaligned.h>
8 #include <linux/string_choices.h>
9
10 #include <ufs/ufs.h>
11 #include <ufs/unipro.h>
12 #include "ufs-sysfs.h"
13 #include "ufshcd-priv.h"
14
ufs_pa_pwr_mode_to_string(enum ufs_pa_pwr_mode mode)15 static const char *ufs_pa_pwr_mode_to_string(enum ufs_pa_pwr_mode mode)
16 {
17 switch (mode) {
18 case FAST_MODE: return "FAST_MODE";
19 case SLOW_MODE: return "SLOW_MODE";
20 case FASTAUTO_MODE: return "FASTAUTO_MODE";
21 case SLOWAUTO_MODE: return "SLOWAUTO_MODE";
22 default: return "UNKNOWN";
23 }
24 }
25
ufs_hs_gear_rate_to_string(enum ufs_hs_gear_rate rate)26 static const char *ufs_hs_gear_rate_to_string(enum ufs_hs_gear_rate rate)
27 {
28 switch (rate) {
29 case PA_HS_MODE_A: return "HS_RATE_A";
30 case PA_HS_MODE_B: return "HS_RATE_B";
31 default: return "UNKNOWN";
32 }
33 }
34
ufs_pwm_gear_to_string(enum ufs_pwm_gear_tag gear)35 static const char *ufs_pwm_gear_to_string(enum ufs_pwm_gear_tag gear)
36 {
37 switch (gear) {
38 case UFS_PWM_G1: return "PWM_GEAR1";
39 case UFS_PWM_G2: return "PWM_GEAR2";
40 case UFS_PWM_G3: return "PWM_GEAR3";
41 case UFS_PWM_G4: return "PWM_GEAR4";
42 case UFS_PWM_G5: return "PWM_GEAR5";
43 case UFS_PWM_G6: return "PWM_GEAR6";
44 case UFS_PWM_G7: return "PWM_GEAR7";
45 default: return "UNKNOWN";
46 }
47 }
48
ufs_hs_gear_to_string(enum ufs_hs_gear_tag gear)49 static const char *ufs_hs_gear_to_string(enum ufs_hs_gear_tag gear)
50 {
51 switch (gear) {
52 case UFS_HS_G1: return "HS_GEAR1";
53 case UFS_HS_G2: return "HS_GEAR2";
54 case UFS_HS_G3: return "HS_GEAR3";
55 case UFS_HS_G4: return "HS_GEAR4";
56 case UFS_HS_G5: return "HS_GEAR5";
57 default: return "UNKNOWN";
58 }
59 }
60
ufs_wb_resize_hint_to_string(enum wb_resize_hint hint)61 static const char *ufs_wb_resize_hint_to_string(enum wb_resize_hint hint)
62 {
63 switch (hint) {
64 case WB_RESIZE_HINT_KEEP:
65 return "keep";
66 case WB_RESIZE_HINT_DECREASE:
67 return "decrease";
68 case WB_RESIZE_HINT_INCREASE:
69 return "increase";
70 default:
71 return "unknown";
72 }
73 }
74
ufs_wb_resize_status_to_string(enum wb_resize_status status)75 static const char *ufs_wb_resize_status_to_string(enum wb_resize_status status)
76 {
77 switch (status) {
78 case WB_RESIZE_STATUS_IDLE:
79 return "idle";
80 case WB_RESIZE_STATUS_IN_PROGRESS:
81 return "in_progress";
82 case WB_RESIZE_STATUS_COMPLETE_SUCCESS:
83 return "complete_success";
84 case WB_RESIZE_STATUS_GENERAL_FAILURE:
85 return "general_failure";
86 default:
87 return "unknown";
88 }
89 }
90
91 static const char * const ufs_hid_states[] = {
92 [HID_IDLE] = "idle",
93 [ANALYSIS_IN_PROGRESS] = "analysis_in_progress",
94 [DEFRAG_REQUIRED] = "defrag_required",
95 [DEFRAG_IN_PROGRESS] = "defrag_in_progress",
96 [DEFRAG_COMPLETED] = "defrag_completed",
97 [DEFRAG_NOT_REQUIRED] = "defrag_not_required",
98 };
99
ufs_hid_state_to_string(enum ufs_hid_state state)100 static const char *ufs_hid_state_to_string(enum ufs_hid_state state)
101 {
102 if (state < NUM_UFS_HID_STATES)
103 return ufs_hid_states[state];
104
105 return "unknown";
106 }
107
ufshcd_uic_link_state_to_string(enum uic_link_state state)108 static const char *ufshcd_uic_link_state_to_string(
109 enum uic_link_state state)
110 {
111 switch (state) {
112 case UIC_LINK_OFF_STATE: return "OFF";
113 case UIC_LINK_ACTIVE_STATE: return "ACTIVE";
114 case UIC_LINK_HIBERN8_STATE: return "HIBERN8";
115 case UIC_LINK_BROKEN_STATE: return "BROKEN";
116 default: return "UNKNOWN";
117 }
118 }
119
ufshcd_ufs_dev_pwr_mode_to_string(enum ufs_dev_pwr_mode state)120 static const char *ufshcd_ufs_dev_pwr_mode_to_string(
121 enum ufs_dev_pwr_mode state)
122 {
123 switch (state) {
124 case UFS_ACTIVE_PWR_MODE: return "ACTIVE";
125 case UFS_SLEEP_PWR_MODE: return "SLEEP";
126 case UFS_POWERDOWN_PWR_MODE: return "POWERDOWN";
127 case UFS_DEEPSLEEP_PWR_MODE: return "DEEPSLEEP";
128 default: return "UNKNOWN";
129 }
130 }
131
ufs_sysfs_pm_lvl_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count,bool rpm)132 static inline ssize_t ufs_sysfs_pm_lvl_store(struct device *dev,
133 struct device_attribute *attr,
134 const char *buf, size_t count,
135 bool rpm)
136 {
137 struct ufs_hba *hba = dev_get_drvdata(dev);
138 struct ufs_dev_info *dev_info = &hba->dev_info;
139 unsigned long flags, value;
140
141 if (kstrtoul(buf, 0, &value))
142 return -EINVAL;
143
144 if (value >= UFS_PM_LVL_MAX)
145 return -EINVAL;
146
147 if (ufs_pm_lvl_states[value].dev_state == UFS_DEEPSLEEP_PWR_MODE &&
148 (!(hba->caps & UFSHCD_CAP_DEEPSLEEP) ||
149 !(dev_info->wspecversion >= 0x310)))
150 return -EINVAL;
151
152 spin_lock_irqsave(hba->host->host_lock, flags);
153 if (rpm)
154 hba->rpm_lvl = value;
155 else
156 hba->spm_lvl = value;
157 spin_unlock_irqrestore(hba->host->host_lock, flags);
158 return count;
159 }
160
rpm_lvl_show(struct device * dev,struct device_attribute * attr,char * buf)161 static ssize_t rpm_lvl_show(struct device *dev,
162 struct device_attribute *attr, char *buf)
163 {
164 struct ufs_hba *hba = dev_get_drvdata(dev);
165
166 return sysfs_emit(buf, "%d\n", hba->rpm_lvl);
167 }
168
rpm_lvl_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)169 static ssize_t rpm_lvl_store(struct device *dev,
170 struct device_attribute *attr, const char *buf, size_t count)
171 {
172 return ufs_sysfs_pm_lvl_store(dev, attr, buf, count, true);
173 }
174
rpm_target_dev_state_show(struct device * dev,struct device_attribute * attr,char * buf)175 static ssize_t rpm_target_dev_state_show(struct device *dev,
176 struct device_attribute *attr, char *buf)
177 {
178 struct ufs_hba *hba = dev_get_drvdata(dev);
179
180 return sysfs_emit(buf, "%s\n", ufshcd_ufs_dev_pwr_mode_to_string(
181 ufs_pm_lvl_states[hba->rpm_lvl].dev_state));
182 }
183
rpm_target_link_state_show(struct device * dev,struct device_attribute * attr,char * buf)184 static ssize_t rpm_target_link_state_show(struct device *dev,
185 struct device_attribute *attr, char *buf)
186 {
187 struct ufs_hba *hba = dev_get_drvdata(dev);
188
189 return sysfs_emit(buf, "%s\n", ufshcd_uic_link_state_to_string(
190 ufs_pm_lvl_states[hba->rpm_lvl].link_state));
191 }
192
spm_lvl_show(struct device * dev,struct device_attribute * attr,char * buf)193 static ssize_t spm_lvl_show(struct device *dev,
194 struct device_attribute *attr, char *buf)
195 {
196 struct ufs_hba *hba = dev_get_drvdata(dev);
197
198 return sysfs_emit(buf, "%d\n", hba->spm_lvl);
199 }
200
spm_lvl_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)201 static ssize_t spm_lvl_store(struct device *dev,
202 struct device_attribute *attr, const char *buf, size_t count)
203 {
204 return ufs_sysfs_pm_lvl_store(dev, attr, buf, count, false);
205 }
206
spm_target_dev_state_show(struct device * dev,struct device_attribute * attr,char * buf)207 static ssize_t spm_target_dev_state_show(struct device *dev,
208 struct device_attribute *attr, char *buf)
209 {
210 struct ufs_hba *hba = dev_get_drvdata(dev);
211
212 return sysfs_emit(buf, "%s\n", ufshcd_ufs_dev_pwr_mode_to_string(
213 ufs_pm_lvl_states[hba->spm_lvl].dev_state));
214 }
215
spm_target_link_state_show(struct device * dev,struct device_attribute * attr,char * buf)216 static ssize_t spm_target_link_state_show(struct device *dev,
217 struct device_attribute *attr, char *buf)
218 {
219 struct ufs_hba *hba = dev_get_drvdata(dev);
220
221 return sysfs_emit(buf, "%s\n", ufshcd_uic_link_state_to_string(
222 ufs_pm_lvl_states[hba->spm_lvl].link_state));
223 }
224
225 /* Convert Auto-Hibernate Idle Timer register value to microseconds */
ufshcd_ahit_to_us(u32 ahit)226 static int ufshcd_ahit_to_us(u32 ahit)
227 {
228 int timer = FIELD_GET(UFSHCI_AHIBERN8_TIMER_MASK, ahit);
229 int scale = FIELD_GET(UFSHCI_AHIBERN8_SCALE_MASK, ahit);
230
231 for (; scale > 0; --scale)
232 timer *= UFSHCI_AHIBERN8_SCALE_FACTOR;
233
234 return timer;
235 }
236
237 /* Convert microseconds to Auto-Hibernate Idle Timer register value */
ufshcd_us_to_ahit(unsigned int timer)238 static u32 ufshcd_us_to_ahit(unsigned int timer)
239 {
240 unsigned int scale;
241
242 for (scale = 0; timer > UFSHCI_AHIBERN8_TIMER_MASK; ++scale)
243 timer /= UFSHCI_AHIBERN8_SCALE_FACTOR;
244
245 return FIELD_PREP(UFSHCI_AHIBERN8_TIMER_MASK, timer) |
246 FIELD_PREP(UFSHCI_AHIBERN8_SCALE_MASK, scale);
247 }
248
ufshcd_read_hci_reg(struct ufs_hba * hba,u32 * val,unsigned int reg)249 static int ufshcd_read_hci_reg(struct ufs_hba *hba, u32 *val, unsigned int reg)
250 {
251 down(&hba->host_sem);
252 if (!ufshcd_is_user_access_allowed(hba)) {
253 up(&hba->host_sem);
254 return -EBUSY;
255 }
256
257 ufshcd_rpm_get_sync(hba);
258 ufshcd_hold(hba);
259 *val = ufshcd_readl(hba, reg);
260 ufshcd_release(hba);
261 ufshcd_rpm_put_sync(hba);
262
263 up(&hba->host_sem);
264 return 0;
265 }
266
auto_hibern8_show(struct device * dev,struct device_attribute * attr,char * buf)267 static ssize_t auto_hibern8_show(struct device *dev,
268 struct device_attribute *attr, char *buf)
269 {
270 u32 ahit;
271 int ret;
272 struct ufs_hba *hba = dev_get_drvdata(dev);
273
274 if (!ufshcd_is_auto_hibern8_supported(hba))
275 return -EOPNOTSUPP;
276
277 ret = ufshcd_read_hci_reg(hba, &ahit, REG_AUTO_HIBERNATE_IDLE_TIMER);
278 if (ret)
279 return ret;
280
281 return sysfs_emit(buf, "%d\n", ufshcd_ahit_to_us(ahit));
282 }
283
auto_hibern8_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)284 static ssize_t auto_hibern8_store(struct device *dev,
285 struct device_attribute *attr,
286 const char *buf, size_t count)
287 {
288 struct ufs_hba *hba = dev_get_drvdata(dev);
289 unsigned int timer;
290 int ret = 0;
291
292 if (!ufshcd_is_auto_hibern8_supported(hba))
293 return -EOPNOTSUPP;
294
295 if (kstrtouint(buf, 0, &timer))
296 return -EINVAL;
297
298 if (timer > UFSHCI_AHIBERN8_MAX)
299 return -EINVAL;
300
301 down(&hba->host_sem);
302 if (!ufshcd_is_user_access_allowed(hba)) {
303 ret = -EBUSY;
304 goto out;
305 }
306
307 ufshcd_auto_hibern8_update(hba, ufshcd_us_to_ahit(timer));
308
309 out:
310 up(&hba->host_sem);
311 return ret ? ret : count;
312 }
313
wb_on_show(struct device * dev,struct device_attribute * attr,char * buf)314 static ssize_t wb_on_show(struct device *dev, struct device_attribute *attr,
315 char *buf)
316 {
317 struct ufs_hba *hba = dev_get_drvdata(dev);
318
319 return sysfs_emit(buf, "%d\n", hba->dev_info.wb_enabled);
320 }
321
wb_on_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)322 static ssize_t wb_on_store(struct device *dev, struct device_attribute *attr,
323 const char *buf, size_t count)
324 {
325 struct ufs_hba *hba = dev_get_drvdata(dev);
326 unsigned int wb_enable;
327 ssize_t res;
328
329 if (!ufshcd_is_wb_allowed(hba) || (ufshcd_is_clkscaling_supported(hba)
330 && ufshcd_enable_wb_if_scaling_up(hba))) {
331 /*
332 * If the platform supports UFSHCD_CAP_CLK_SCALING, turn WB
333 * on/off will be done while clock scaling up/down.
334 */
335 dev_warn(dev, "It is not allowed to configure WB!\n");
336 return -EOPNOTSUPP;
337 }
338
339 if (kstrtouint(buf, 0, &wb_enable))
340 return -EINVAL;
341
342 if (wb_enable != 0 && wb_enable != 1)
343 return -EINVAL;
344
345 down(&hba->host_sem);
346 if (!ufshcd_is_user_access_allowed(hba)) {
347 res = -EBUSY;
348 goto out;
349 }
350
351 ufshcd_rpm_get_sync(hba);
352 res = ufshcd_wb_toggle(hba, wb_enable);
353 ufshcd_rpm_put_sync(hba);
354 out:
355 up(&hba->host_sem);
356 return res < 0 ? res : count;
357 }
358
rtc_update_ms_show(struct device * dev,struct device_attribute * attr,char * buf)359 static ssize_t rtc_update_ms_show(struct device *dev, struct device_attribute *attr,
360 char *buf)
361 {
362 struct ufs_hba *hba = dev_get_drvdata(dev);
363
364 return sysfs_emit(buf, "%d\n", hba->dev_info.rtc_update_period);
365 }
366
rtc_update_ms_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)367 static ssize_t rtc_update_ms_store(struct device *dev, struct device_attribute *attr,
368 const char *buf, size_t count)
369 {
370 struct ufs_hba *hba = dev_get_drvdata(dev);
371 unsigned int ms;
372 bool resume_period_update = false;
373
374 if (kstrtouint(buf, 0, &ms))
375 return -EINVAL;
376
377 if (!hba->dev_info.rtc_update_period && ms > 0)
378 resume_period_update = true;
379 /* Minimum and maximum update frequency should be synchronized with all UFS vendors */
380 hba->dev_info.rtc_update_period = ms;
381
382 if (resume_period_update)
383 schedule_delayed_work(&hba->ufs_rtc_update_work,
384 msecs_to_jiffies(hba->dev_info.rtc_update_period));
385 return count;
386 }
387
enable_wb_buf_flush_show(struct device * dev,struct device_attribute * attr,char * buf)388 static ssize_t enable_wb_buf_flush_show(struct device *dev,
389 struct device_attribute *attr,
390 char *buf)
391 {
392 struct ufs_hba *hba = dev_get_drvdata(dev);
393
394 return sysfs_emit(buf, "%d\n", hba->dev_info.wb_buf_flush_enabled);
395 }
396
enable_wb_buf_flush_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)397 static ssize_t enable_wb_buf_flush_store(struct device *dev,
398 struct device_attribute *attr,
399 const char *buf, size_t count)
400 {
401 struct ufs_hba *hba = dev_get_drvdata(dev);
402 unsigned int enable_wb_buf_flush;
403 ssize_t res;
404
405 if (!ufshcd_is_wb_buf_flush_allowed(hba)) {
406 dev_warn(dev, "It is not allowed to configure WB buf flushing!\n");
407 return -EOPNOTSUPP;
408 }
409
410 if (kstrtouint(buf, 0, &enable_wb_buf_flush))
411 return -EINVAL;
412
413 if (enable_wb_buf_flush != 0 && enable_wb_buf_flush != 1)
414 return -EINVAL;
415
416 down(&hba->host_sem);
417 if (!ufshcd_is_user_access_allowed(hba)) {
418 res = -EBUSY;
419 goto out;
420 }
421
422 ufshcd_rpm_get_sync(hba);
423 res = ufshcd_wb_toggle_buf_flush(hba, enable_wb_buf_flush);
424 ufshcd_rpm_put_sync(hba);
425
426 out:
427 up(&hba->host_sem);
428 return res < 0 ? res : count;
429 }
430
wb_flush_threshold_show(struct device * dev,struct device_attribute * attr,char * buf)431 static ssize_t wb_flush_threshold_show(struct device *dev,
432 struct device_attribute *attr,
433 char *buf)
434 {
435 struct ufs_hba *hba = dev_get_drvdata(dev);
436
437 return sysfs_emit(buf, "%u\n", hba->vps->wb_flush_threshold);
438 }
439
wb_flush_threshold_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)440 static ssize_t wb_flush_threshold_store(struct device *dev,
441 struct device_attribute *attr,
442 const char *buf, size_t count)
443 {
444 struct ufs_hba *hba = dev_get_drvdata(dev);
445 unsigned int wb_flush_threshold;
446
447 if (kstrtouint(buf, 0, &wb_flush_threshold))
448 return -EINVAL;
449
450 /* The range of values for wb_flush_threshold is (0,10] */
451 if (wb_flush_threshold > UFS_WB_BUF_REMAIN_PERCENT(100) ||
452 wb_flush_threshold == 0) {
453 dev_err(dev, "The value of wb_flush_threshold is invalid!\n");
454 return -EINVAL;
455 }
456
457 hba->vps->wb_flush_threshold = wb_flush_threshold;
458
459 return count;
460 }
461
462 static const char * const wb_resize_en_mode[] = {
463 [WB_RESIZE_EN_IDLE] = "idle",
464 [WB_RESIZE_EN_DECREASE] = "decrease",
465 [WB_RESIZE_EN_INCREASE] = "increase",
466 };
467
wb_resize_enable_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)468 static ssize_t wb_resize_enable_store(struct device *dev,
469 struct device_attribute *attr,
470 const char *buf, size_t count)
471 {
472 struct ufs_hba *hba = dev_get_drvdata(dev);
473 int mode;
474 ssize_t res;
475
476 if (!ufshcd_is_wb_allowed(hba) || !hba->dev_info.wb_enabled
477 || !hba->dev_info.b_presrv_uspc_en
478 || !(hba->dev_info.ext_wb_sup & UFS_DEV_WB_BUF_RESIZE))
479 return -EOPNOTSUPP;
480
481 mode = sysfs_match_string(wb_resize_en_mode, buf);
482 if (mode < 0)
483 return -EINVAL;
484
485 down(&hba->host_sem);
486 if (!ufshcd_is_user_access_allowed(hba)) {
487 res = -EBUSY;
488 goto out;
489 }
490
491 ufshcd_rpm_get_sync(hba);
492 res = ufshcd_wb_set_resize_en(hba, mode);
493 ufshcd_rpm_put_sync(hba);
494
495 out:
496 up(&hba->host_sem);
497 return res < 0 ? res : count;
498 }
499
500 /**
501 * pm_qos_enable_show - sysfs handler to show pm qos enable value
502 * @dev: device associated with the UFS controller
503 * @attr: sysfs attribute handle
504 * @buf: buffer for sysfs file
505 *
506 * Print 1 if PM QoS feature is enabled, 0 if disabled.
507 *
508 * Returns number of characters written to @buf.
509 */
pm_qos_enable_show(struct device * dev,struct device_attribute * attr,char * buf)510 static ssize_t pm_qos_enable_show(struct device *dev,
511 struct device_attribute *attr, char *buf)
512 {
513 struct ufs_hba *hba = dev_get_drvdata(dev);
514
515 guard(mutex)(&hba->pm_qos_mutex);
516
517 return sysfs_emit(buf, "%d\n", hba->pm_qos_enabled);
518 }
519
520 /**
521 * pm_qos_enable_store - sysfs handler to store value
522 * @dev: device associated with the UFS controller
523 * @attr: sysfs attribute handle
524 * @buf: buffer for sysfs file
525 * @count: stores buffer characters count
526 *
527 * Input 0 to disable PM QoS and 1 value to enable.
528 * Default state: 1
529 *
530 * Return: number of characters written to @buf on success, < 0 upon failure.
531 */
pm_qos_enable_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)532 static ssize_t pm_qos_enable_store(struct device *dev,
533 struct device_attribute *attr, const char *buf, size_t count)
534 {
535 struct ufs_hba *hba = dev_get_drvdata(dev);
536 bool value;
537
538 if (kstrtobool(buf, &value))
539 return -EINVAL;
540
541 if (value)
542 ufshcd_pm_qos_init(hba);
543 else
544 ufshcd_pm_qos_exit(hba);
545
546 return count;
547 }
548
critical_health_show(struct device * dev,struct device_attribute * attr,char * buf)549 static ssize_t critical_health_show(struct device *dev,
550 struct device_attribute *attr, char *buf)
551 {
552 struct ufs_hba *hba = dev_get_drvdata(dev);
553
554 return sysfs_emit(buf, "%d\n", hba->critical_health_count);
555 }
556
device_lvl_exception_count_show(struct device * dev,struct device_attribute * attr,char * buf)557 static ssize_t device_lvl_exception_count_show(struct device *dev,
558 struct device_attribute *attr,
559 char *buf)
560 {
561 struct ufs_hba *hba = dev_get_drvdata(dev);
562
563 if (hba->dev_info.wspecversion < 0x410)
564 return -EOPNOTSUPP;
565
566 return sysfs_emit(buf, "%u\n", atomic_read(&hba->dev_lvl_exception_count));
567 }
568
device_lvl_exception_count_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)569 static ssize_t device_lvl_exception_count_store(struct device *dev,
570 struct device_attribute *attr,
571 const char *buf, size_t count)
572 {
573 struct ufs_hba *hba = dev_get_drvdata(dev);
574 unsigned int value;
575
576 if (kstrtouint(buf, 0, &value))
577 return -EINVAL;
578
579 /* the only supported usecase is to reset the dev_lvl_exception_count */
580 if (value)
581 return -EINVAL;
582
583 atomic_set(&hba->dev_lvl_exception_count, 0);
584
585 return count;
586 }
587
device_lvl_exception_id_show(struct device * dev,struct device_attribute * attr,char * buf)588 static ssize_t device_lvl_exception_id_show(struct device *dev,
589 struct device_attribute *attr,
590 char *buf)
591 {
592 struct ufs_hba *hba = dev_get_drvdata(dev);
593 u64 exception_id;
594 int err;
595
596 ufshcd_rpm_get_sync(hba);
597 err = ufshcd_read_device_lvl_exception_id(hba, &exception_id);
598 ufshcd_rpm_put_sync(hba);
599
600 if (err)
601 return err;
602
603 hba->dev_lvl_exception_id = exception_id;
604 return sysfs_emit(buf, "%llu\n", exception_id);
605 }
606
607 static DEVICE_ATTR_RW(rpm_lvl);
608 static DEVICE_ATTR_RO(rpm_target_dev_state);
609 static DEVICE_ATTR_RO(rpm_target_link_state);
610 static DEVICE_ATTR_RW(spm_lvl);
611 static DEVICE_ATTR_RO(spm_target_dev_state);
612 static DEVICE_ATTR_RO(spm_target_link_state);
613 static DEVICE_ATTR_RW(auto_hibern8);
614 static DEVICE_ATTR_RW(wb_on);
615 static DEVICE_ATTR_RW(enable_wb_buf_flush);
616 static DEVICE_ATTR_RW(wb_flush_threshold);
617 static DEVICE_ATTR_WO(wb_resize_enable);
618 static DEVICE_ATTR_RW(rtc_update_ms);
619 static DEVICE_ATTR_RW(pm_qos_enable);
620 static DEVICE_ATTR_RO(critical_health);
621 static DEVICE_ATTR_RW(device_lvl_exception_count);
622 static DEVICE_ATTR_RO(device_lvl_exception_id);
623
624 static struct attribute *ufs_sysfs_ufshcd_attrs[] = {
625 &dev_attr_rpm_lvl.attr,
626 &dev_attr_rpm_target_dev_state.attr,
627 &dev_attr_rpm_target_link_state.attr,
628 &dev_attr_spm_lvl.attr,
629 &dev_attr_spm_target_dev_state.attr,
630 &dev_attr_spm_target_link_state.attr,
631 &dev_attr_auto_hibern8.attr,
632 &dev_attr_wb_on.attr,
633 &dev_attr_enable_wb_buf_flush.attr,
634 &dev_attr_wb_flush_threshold.attr,
635 &dev_attr_wb_resize_enable.attr,
636 &dev_attr_rtc_update_ms.attr,
637 &dev_attr_pm_qos_enable.attr,
638 &dev_attr_critical_health.attr,
639 &dev_attr_device_lvl_exception_count.attr,
640 &dev_attr_device_lvl_exception_id.attr,
641 NULL
642 };
643
644 static const struct attribute_group ufs_sysfs_default_group = {
645 .attrs = ufs_sysfs_ufshcd_attrs,
646 };
647
clock_scaling_show(struct device * dev,struct device_attribute * attr,char * buf)648 static ssize_t clock_scaling_show(struct device *dev, struct device_attribute *attr,
649 char *buf)
650 {
651 struct ufs_hba *hba = dev_get_drvdata(dev);
652
653 return sysfs_emit(buf, "%d\n", ufshcd_is_clkscaling_supported(hba));
654 }
655
write_booster_show(struct device * dev,struct device_attribute * attr,char * buf)656 static ssize_t write_booster_show(struct device *dev, struct device_attribute *attr,
657 char *buf)
658 {
659 struct ufs_hba *hba = dev_get_drvdata(dev);
660
661 return sysfs_emit(buf, "%d\n", ufshcd_is_wb_allowed(hba));
662 }
663
664 static DEVICE_ATTR_RO(clock_scaling);
665 static DEVICE_ATTR_RO(write_booster);
666
667 /*
668 * See Documentation/ABI/testing/sysfs-driver-ufs for the semantics of this
669 * group.
670 */
671 static struct attribute *ufs_sysfs_capabilities_attrs[] = {
672 &dev_attr_clock_scaling.attr,
673 &dev_attr_write_booster.attr,
674 NULL
675 };
676
677 static const struct attribute_group ufs_sysfs_capabilities_group = {
678 .name = "capabilities",
679 .attrs = ufs_sysfs_capabilities_attrs,
680 };
681
version_show(struct device * dev,struct device_attribute * attr,char * buf)682 static ssize_t version_show(struct device *dev,
683 struct device_attribute *attr, char *buf)
684 {
685 struct ufs_hba *hba = dev_get_drvdata(dev);
686
687 return sysfs_emit(buf, "0x%x\n", hba->ufs_version);
688 }
689
product_id_show(struct device * dev,struct device_attribute * attr,char * buf)690 static ssize_t product_id_show(struct device *dev,
691 struct device_attribute *attr, char *buf)
692 {
693 int ret;
694 u32 val;
695 struct ufs_hba *hba = dev_get_drvdata(dev);
696
697 ret = ufshcd_read_hci_reg(hba, &val, REG_CONTROLLER_PID);
698 if (ret)
699 return ret;
700
701 return sysfs_emit(buf, "0x%x\n", val);
702 }
703
man_id_show(struct device * dev,struct device_attribute * attr,char * buf)704 static ssize_t man_id_show(struct device *dev,
705 struct device_attribute *attr, char *buf)
706 {
707 int ret;
708 u32 val;
709 struct ufs_hba *hba = dev_get_drvdata(dev);
710
711 ret = ufshcd_read_hci_reg(hba, &val, REG_CONTROLLER_MID);
712 if (ret)
713 return ret;
714
715 return sysfs_emit(buf, "0x%x\n", val);
716 }
717
718 static DEVICE_ATTR_RO(version);
719 static DEVICE_ATTR_RO(product_id);
720 static DEVICE_ATTR_RO(man_id);
721
722 static struct attribute *ufs_sysfs_ufshci_cap_attrs[] = {
723 &dev_attr_version.attr,
724 &dev_attr_product_id.attr,
725 &dev_attr_man_id.attr,
726 NULL
727 };
728
729 static const struct attribute_group ufs_sysfs_ufshci_group = {
730 .name = "ufshci_capabilities",
731 .attrs = ufs_sysfs_ufshci_cap_attrs,
732 };
733
monitor_enable_show(struct device * dev,struct device_attribute * attr,char * buf)734 static ssize_t monitor_enable_show(struct device *dev,
735 struct device_attribute *attr, char *buf)
736 {
737 struct ufs_hba *hba = dev_get_drvdata(dev);
738
739 return sysfs_emit(buf, "%d\n", hba->monitor.enabled);
740 }
741
monitor_enable_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)742 static ssize_t monitor_enable_store(struct device *dev,
743 struct device_attribute *attr,
744 const char *buf, size_t count)
745 {
746 struct ufs_hba *hba = dev_get_drvdata(dev);
747 unsigned long value, flags;
748
749 if (kstrtoul(buf, 0, &value))
750 return -EINVAL;
751
752 value = !!value;
753 spin_lock_irqsave(hba->host->host_lock, flags);
754 if (value == hba->monitor.enabled)
755 goto out_unlock;
756
757 if (!value) {
758 memset(&hba->monitor, 0, sizeof(hba->monitor));
759 } else {
760 hba->monitor.enabled = true;
761 hba->monitor.enabled_ts = ktime_get();
762 }
763
764 out_unlock:
765 spin_unlock_irqrestore(hba->host->host_lock, flags);
766 return count;
767 }
768
monitor_chunk_size_show(struct device * dev,struct device_attribute * attr,char * buf)769 static ssize_t monitor_chunk_size_show(struct device *dev,
770 struct device_attribute *attr, char *buf)
771 {
772 struct ufs_hba *hba = dev_get_drvdata(dev);
773
774 return sysfs_emit(buf, "%lu\n", hba->monitor.chunk_size);
775 }
776
monitor_chunk_size_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)777 static ssize_t monitor_chunk_size_store(struct device *dev,
778 struct device_attribute *attr,
779 const char *buf, size_t count)
780 {
781 struct ufs_hba *hba = dev_get_drvdata(dev);
782 unsigned long value, flags;
783
784 if (kstrtoul(buf, 0, &value))
785 return -EINVAL;
786
787 spin_lock_irqsave(hba->host->host_lock, flags);
788 /* Only allow chunk size change when monitor is disabled */
789 if (!hba->monitor.enabled)
790 hba->monitor.chunk_size = value;
791 spin_unlock_irqrestore(hba->host->host_lock, flags);
792 return count;
793 }
794
read_total_sectors_show(struct device * dev,struct device_attribute * attr,char * buf)795 static ssize_t read_total_sectors_show(struct device *dev,
796 struct device_attribute *attr, char *buf)
797 {
798 struct ufs_hba *hba = dev_get_drvdata(dev);
799
800 return sysfs_emit(buf, "%lu\n", hba->monitor.nr_sec_rw[READ]);
801 }
802
read_total_busy_show(struct device * dev,struct device_attribute * attr,char * buf)803 static ssize_t read_total_busy_show(struct device *dev,
804 struct device_attribute *attr, char *buf)
805 {
806 struct ufs_hba *hba = dev_get_drvdata(dev);
807
808 return sysfs_emit(buf, "%llu\n",
809 ktime_to_us(hba->monitor.total_busy[READ]));
810 }
811
read_nr_requests_show(struct device * dev,struct device_attribute * attr,char * buf)812 static ssize_t read_nr_requests_show(struct device *dev,
813 struct device_attribute *attr, char *buf)
814 {
815 struct ufs_hba *hba = dev_get_drvdata(dev);
816
817 return sysfs_emit(buf, "%lu\n", hba->monitor.nr_req[READ]);
818 }
819
read_req_latency_avg_show(struct device * dev,struct device_attribute * attr,char * buf)820 static ssize_t read_req_latency_avg_show(struct device *dev,
821 struct device_attribute *attr,
822 char *buf)
823 {
824 struct ufs_hba *hba = dev_get_drvdata(dev);
825 struct ufs_hba_monitor *m = &hba->monitor;
826
827 if (!m->nr_req[READ])
828 return sysfs_emit(buf, "0\n");
829
830 return sysfs_emit(buf, "%llu\n", div_u64(ktime_to_us(m->lat_sum[READ]),
831 m->nr_req[READ]));
832 }
833
read_req_latency_max_show(struct device * dev,struct device_attribute * attr,char * buf)834 static ssize_t read_req_latency_max_show(struct device *dev,
835 struct device_attribute *attr,
836 char *buf)
837 {
838 struct ufs_hba *hba = dev_get_drvdata(dev);
839
840 return sysfs_emit(buf, "%llu\n",
841 ktime_to_us(hba->monitor.lat_max[READ]));
842 }
843
read_req_latency_min_show(struct device * dev,struct device_attribute * attr,char * buf)844 static ssize_t read_req_latency_min_show(struct device *dev,
845 struct device_attribute *attr,
846 char *buf)
847 {
848 struct ufs_hba *hba = dev_get_drvdata(dev);
849
850 return sysfs_emit(buf, "%llu\n",
851 ktime_to_us(hba->monitor.lat_min[READ]));
852 }
853
read_req_latency_sum_show(struct device * dev,struct device_attribute * attr,char * buf)854 static ssize_t read_req_latency_sum_show(struct device *dev,
855 struct device_attribute *attr,
856 char *buf)
857 {
858 struct ufs_hba *hba = dev_get_drvdata(dev);
859
860 return sysfs_emit(buf, "%llu\n",
861 ktime_to_us(hba->monitor.lat_sum[READ]));
862 }
863
write_total_sectors_show(struct device * dev,struct device_attribute * attr,char * buf)864 static ssize_t write_total_sectors_show(struct device *dev,
865 struct device_attribute *attr,
866 char *buf)
867 {
868 struct ufs_hba *hba = dev_get_drvdata(dev);
869
870 return sysfs_emit(buf, "%lu\n", hba->monitor.nr_sec_rw[WRITE]);
871 }
872
write_total_busy_show(struct device * dev,struct device_attribute * attr,char * buf)873 static ssize_t write_total_busy_show(struct device *dev,
874 struct device_attribute *attr, char *buf)
875 {
876 struct ufs_hba *hba = dev_get_drvdata(dev);
877
878 return sysfs_emit(buf, "%llu\n",
879 ktime_to_us(hba->monitor.total_busy[WRITE]));
880 }
881
write_nr_requests_show(struct device * dev,struct device_attribute * attr,char * buf)882 static ssize_t write_nr_requests_show(struct device *dev,
883 struct device_attribute *attr, char *buf)
884 {
885 struct ufs_hba *hba = dev_get_drvdata(dev);
886
887 return sysfs_emit(buf, "%lu\n", hba->monitor.nr_req[WRITE]);
888 }
889
write_req_latency_avg_show(struct device * dev,struct device_attribute * attr,char * buf)890 static ssize_t write_req_latency_avg_show(struct device *dev,
891 struct device_attribute *attr,
892 char *buf)
893 {
894 struct ufs_hba *hba = dev_get_drvdata(dev);
895 struct ufs_hba_monitor *m = &hba->monitor;
896
897 if (!m->nr_req[WRITE])
898 return sysfs_emit(buf, "0\n");
899
900 return sysfs_emit(buf, "%llu\n", div_u64(ktime_to_us(m->lat_sum[WRITE]),
901 m->nr_req[WRITE]));
902 }
903
write_req_latency_max_show(struct device * dev,struct device_attribute * attr,char * buf)904 static ssize_t write_req_latency_max_show(struct device *dev,
905 struct device_attribute *attr,
906 char *buf)
907 {
908 struct ufs_hba *hba = dev_get_drvdata(dev);
909
910 return sysfs_emit(buf, "%llu\n",
911 ktime_to_us(hba->monitor.lat_max[WRITE]));
912 }
913
write_req_latency_min_show(struct device * dev,struct device_attribute * attr,char * buf)914 static ssize_t write_req_latency_min_show(struct device *dev,
915 struct device_attribute *attr,
916 char *buf)
917 {
918 struct ufs_hba *hba = dev_get_drvdata(dev);
919
920 return sysfs_emit(buf, "%llu\n",
921 ktime_to_us(hba->monitor.lat_min[WRITE]));
922 }
923
write_req_latency_sum_show(struct device * dev,struct device_attribute * attr,char * buf)924 static ssize_t write_req_latency_sum_show(struct device *dev,
925 struct device_attribute *attr,
926 char *buf)
927 {
928 struct ufs_hba *hba = dev_get_drvdata(dev);
929
930 return sysfs_emit(buf, "%llu\n",
931 ktime_to_us(hba->monitor.lat_sum[WRITE]));
932 }
933
934 static DEVICE_ATTR_RW(monitor_enable);
935 static DEVICE_ATTR_RW(monitor_chunk_size);
936 static DEVICE_ATTR_RO(read_total_sectors);
937 static DEVICE_ATTR_RO(read_total_busy);
938 static DEVICE_ATTR_RO(read_nr_requests);
939 static DEVICE_ATTR_RO(read_req_latency_avg);
940 static DEVICE_ATTR_RO(read_req_latency_max);
941 static DEVICE_ATTR_RO(read_req_latency_min);
942 static DEVICE_ATTR_RO(read_req_latency_sum);
943 static DEVICE_ATTR_RO(write_total_sectors);
944 static DEVICE_ATTR_RO(write_total_busy);
945 static DEVICE_ATTR_RO(write_nr_requests);
946 static DEVICE_ATTR_RO(write_req_latency_avg);
947 static DEVICE_ATTR_RO(write_req_latency_max);
948 static DEVICE_ATTR_RO(write_req_latency_min);
949 static DEVICE_ATTR_RO(write_req_latency_sum);
950
951 static struct attribute *ufs_sysfs_monitor_attrs[] = {
952 &dev_attr_monitor_enable.attr,
953 &dev_attr_monitor_chunk_size.attr,
954 &dev_attr_read_total_sectors.attr,
955 &dev_attr_read_total_busy.attr,
956 &dev_attr_read_nr_requests.attr,
957 &dev_attr_read_req_latency_avg.attr,
958 &dev_attr_read_req_latency_max.attr,
959 &dev_attr_read_req_latency_min.attr,
960 &dev_attr_read_req_latency_sum.attr,
961 &dev_attr_write_total_sectors.attr,
962 &dev_attr_write_total_busy.attr,
963 &dev_attr_write_nr_requests.attr,
964 &dev_attr_write_req_latency_avg.attr,
965 &dev_attr_write_req_latency_max.attr,
966 &dev_attr_write_req_latency_min.attr,
967 &dev_attr_write_req_latency_sum.attr,
968 NULL
969 };
970
971 static const struct attribute_group ufs_sysfs_monitor_group = {
972 .name = "monitor",
973 .attrs = ufs_sysfs_monitor_attrs,
974 };
975
lane_show(struct device * dev,struct device_attribute * attr,char * buf)976 static ssize_t lane_show(struct device *dev, struct device_attribute *attr,
977 char *buf)
978 {
979 struct ufs_hba *hba = dev_get_drvdata(dev);
980
981 return sysfs_emit(buf, "%u\n", hba->pwr_info.lane_rx);
982 }
983
mode_show(struct device * dev,struct device_attribute * attr,char * buf)984 static ssize_t mode_show(struct device *dev, struct device_attribute *attr,
985 char *buf)
986 {
987 struct ufs_hba *hba = dev_get_drvdata(dev);
988
989 return sysfs_emit(buf, "%s\n", ufs_pa_pwr_mode_to_string(hba->pwr_info.pwr_rx));
990 }
991
rate_show(struct device * dev,struct device_attribute * attr,char * buf)992 static ssize_t rate_show(struct device *dev, struct device_attribute *attr,
993 char *buf)
994 {
995 struct ufs_hba *hba = dev_get_drvdata(dev);
996
997 return sysfs_emit(buf, "%s\n", ufs_hs_gear_rate_to_string(hba->pwr_info.hs_rate));
998 }
999
gear_show(struct device * dev,struct device_attribute * attr,char * buf)1000 static ssize_t gear_show(struct device *dev, struct device_attribute *attr,
1001 char *buf)
1002 {
1003 struct ufs_hba *hba = dev_get_drvdata(dev);
1004
1005 return sysfs_emit(buf, "%s\n", hba->pwr_info.hs_rate ?
1006 ufs_hs_gear_to_string(hba->pwr_info.gear_rx) :
1007 ufs_pwm_gear_to_string(hba->pwr_info.gear_rx));
1008 }
1009
dev_pm_show(struct device * dev,struct device_attribute * attr,char * buf)1010 static ssize_t dev_pm_show(struct device *dev, struct device_attribute *attr,
1011 char *buf)
1012 {
1013 struct ufs_hba *hba = dev_get_drvdata(dev);
1014
1015 return sysfs_emit(buf, "%s\n", ufshcd_ufs_dev_pwr_mode_to_string(hba->curr_dev_pwr_mode));
1016 }
1017
link_state_show(struct device * dev,struct device_attribute * attr,char * buf)1018 static ssize_t link_state_show(struct device *dev,
1019 struct device_attribute *attr, char *buf)
1020 {
1021 struct ufs_hba *hba = dev_get_drvdata(dev);
1022
1023 return sysfs_emit(buf, "%s\n", ufshcd_uic_link_state_to_string(hba->uic_link_state));
1024 }
1025
1026 static DEVICE_ATTR_RO(lane);
1027 static DEVICE_ATTR_RO(mode);
1028 static DEVICE_ATTR_RO(rate);
1029 static DEVICE_ATTR_RO(gear);
1030 static DEVICE_ATTR_RO(dev_pm);
1031 static DEVICE_ATTR_RO(link_state);
1032
1033 static struct attribute *ufs_power_info_attrs[] = {
1034 &dev_attr_lane.attr,
1035 &dev_attr_mode.attr,
1036 &dev_attr_rate.attr,
1037 &dev_attr_gear.attr,
1038 &dev_attr_dev_pm.attr,
1039 &dev_attr_link_state.attr,
1040 NULL
1041 };
1042
1043 static const struct attribute_group ufs_sysfs_power_info_group = {
1044 .name = "power_info",
1045 .attrs = ufs_power_info_attrs,
1046 };
1047
ufs_sysfs_read_desc_param(struct ufs_hba * hba,enum desc_idn desc_id,u8 desc_index,u8 param_offset,u8 * sysfs_buf,u8 param_size)1048 static ssize_t ufs_sysfs_read_desc_param(struct ufs_hba *hba,
1049 enum desc_idn desc_id,
1050 u8 desc_index,
1051 u8 param_offset,
1052 u8 *sysfs_buf,
1053 u8 param_size)
1054 {
1055 u8 desc_buf[8] = {0};
1056 int ret;
1057
1058 if (param_size > 8)
1059 return -EINVAL;
1060
1061 down(&hba->host_sem);
1062 if (!ufshcd_is_user_access_allowed(hba)) {
1063 ret = -EBUSY;
1064 goto out;
1065 }
1066
1067 ufshcd_rpm_get_sync(hba);
1068 ret = ufshcd_read_desc_param(hba, desc_id, desc_index,
1069 param_offset, desc_buf, param_size);
1070 ufshcd_rpm_put_sync(hba);
1071 if (ret) {
1072 ret = -EINVAL;
1073 goto out;
1074 }
1075
1076 switch (param_size) {
1077 case 1:
1078 ret = sysfs_emit(sysfs_buf, "0x%02X\n", *desc_buf);
1079 break;
1080 case 2:
1081 ret = sysfs_emit(sysfs_buf, "0x%04X\n",
1082 get_unaligned_be16(desc_buf));
1083 break;
1084 case 4:
1085 ret = sysfs_emit(sysfs_buf, "0x%08X\n",
1086 get_unaligned_be32(desc_buf));
1087 break;
1088 case 8:
1089 ret = sysfs_emit(sysfs_buf, "0x%016llX\n",
1090 get_unaligned_be64(desc_buf));
1091 break;
1092 }
1093
1094 out:
1095 up(&hba->host_sem);
1096 return ret;
1097 }
1098
1099 #define UFS_DESC_PARAM(_name, _puname, _duname, _size) \
1100 static ssize_t _name##_show(struct device *dev, \
1101 struct device_attribute *attr, char *buf) \
1102 { \
1103 struct ufs_hba *hba = dev_get_drvdata(dev); \
1104 return ufs_sysfs_read_desc_param(hba, QUERY_DESC_IDN_##_duname, \
1105 0, _duname##_DESC_PARAM##_puname, buf, _size); \
1106 } \
1107 static DEVICE_ATTR_RO(_name)
1108
1109 #define UFS_DEVICE_DESC_PARAM(_name, _uname, _size) \
1110 UFS_DESC_PARAM(_name, _uname, DEVICE, _size)
1111
1112 UFS_DEVICE_DESC_PARAM(device_type, _DEVICE_TYPE, 1);
1113 UFS_DEVICE_DESC_PARAM(device_class, _DEVICE_CLASS, 1);
1114 UFS_DEVICE_DESC_PARAM(device_sub_class, _DEVICE_SUB_CLASS, 1);
1115 UFS_DEVICE_DESC_PARAM(protocol, _PRTCL, 1);
1116 UFS_DEVICE_DESC_PARAM(number_of_luns, _NUM_LU, 1);
1117 UFS_DEVICE_DESC_PARAM(number_of_wluns, _NUM_WLU, 1);
1118 UFS_DEVICE_DESC_PARAM(boot_enable, _BOOT_ENBL, 1);
1119 UFS_DEVICE_DESC_PARAM(descriptor_access_enable, _DESC_ACCSS_ENBL, 1);
1120 UFS_DEVICE_DESC_PARAM(initial_power_mode, _INIT_PWR_MODE, 1);
1121 UFS_DEVICE_DESC_PARAM(high_priority_lun, _HIGH_PR_LUN, 1);
1122 UFS_DEVICE_DESC_PARAM(secure_removal_type, _SEC_RMV_TYPE, 1);
1123 UFS_DEVICE_DESC_PARAM(support_security_lun, _SEC_LU, 1);
1124 UFS_DEVICE_DESC_PARAM(bkops_termination_latency, _BKOP_TERM_LT, 1);
1125 UFS_DEVICE_DESC_PARAM(initial_active_icc_level, _ACTVE_ICC_LVL, 1);
1126 UFS_DEVICE_DESC_PARAM(specification_version, _SPEC_VER, 2);
1127 UFS_DEVICE_DESC_PARAM(manufacturing_date, _MANF_DATE, 2);
1128 UFS_DEVICE_DESC_PARAM(manufacturer_id, _MANF_ID, 2);
1129 UFS_DEVICE_DESC_PARAM(rtt_capability, _RTT_CAP, 1);
1130 UFS_DEVICE_DESC_PARAM(rtc_update, _FRQ_RTC, 2);
1131 UFS_DEVICE_DESC_PARAM(ufs_features, _UFS_FEAT, 1);
1132 UFS_DEVICE_DESC_PARAM(ffu_timeout, _FFU_TMT, 1);
1133 UFS_DEVICE_DESC_PARAM(queue_depth, _Q_DPTH, 1);
1134 UFS_DEVICE_DESC_PARAM(device_version, _DEV_VER, 2);
1135 UFS_DEVICE_DESC_PARAM(number_of_secure_wpa, _NUM_SEC_WPA, 1);
1136 UFS_DEVICE_DESC_PARAM(psa_max_data_size, _PSA_MAX_DATA, 4);
1137 UFS_DEVICE_DESC_PARAM(psa_state_timeout, _PSA_TMT, 1);
1138 UFS_DEVICE_DESC_PARAM(ext_feature_sup, _EXT_UFS_FEATURE_SUP, 4);
1139 UFS_DEVICE_DESC_PARAM(wb_presv_us_en, _WB_PRESRV_USRSPC_EN, 1);
1140 UFS_DEVICE_DESC_PARAM(wb_type, _WB_TYPE, 1);
1141 UFS_DEVICE_DESC_PARAM(wb_shared_alloc_units, _WB_SHARED_ALLOC_UNITS, 4);
1142
1143 static struct attribute *ufs_sysfs_device_descriptor[] = {
1144 &dev_attr_device_type.attr,
1145 &dev_attr_device_class.attr,
1146 &dev_attr_device_sub_class.attr,
1147 &dev_attr_protocol.attr,
1148 &dev_attr_number_of_luns.attr,
1149 &dev_attr_number_of_wluns.attr,
1150 &dev_attr_boot_enable.attr,
1151 &dev_attr_descriptor_access_enable.attr,
1152 &dev_attr_initial_power_mode.attr,
1153 &dev_attr_high_priority_lun.attr,
1154 &dev_attr_secure_removal_type.attr,
1155 &dev_attr_support_security_lun.attr,
1156 &dev_attr_bkops_termination_latency.attr,
1157 &dev_attr_initial_active_icc_level.attr,
1158 &dev_attr_specification_version.attr,
1159 &dev_attr_manufacturing_date.attr,
1160 &dev_attr_manufacturer_id.attr,
1161 &dev_attr_rtt_capability.attr,
1162 &dev_attr_rtc_update.attr,
1163 &dev_attr_ufs_features.attr,
1164 &dev_attr_ffu_timeout.attr,
1165 &dev_attr_queue_depth.attr,
1166 &dev_attr_device_version.attr,
1167 &dev_attr_number_of_secure_wpa.attr,
1168 &dev_attr_psa_max_data_size.attr,
1169 &dev_attr_psa_state_timeout.attr,
1170 &dev_attr_ext_feature_sup.attr,
1171 &dev_attr_wb_presv_us_en.attr,
1172 &dev_attr_wb_type.attr,
1173 &dev_attr_wb_shared_alloc_units.attr,
1174 NULL,
1175 };
1176
1177 static const struct attribute_group ufs_sysfs_device_descriptor_group = {
1178 .name = "device_descriptor",
1179 .attrs = ufs_sysfs_device_descriptor,
1180 };
1181
1182 #define UFS_INTERCONNECT_DESC_PARAM(_name, _uname, _size) \
1183 UFS_DESC_PARAM(_name, _uname, INTERCONNECT, _size)
1184
1185 UFS_INTERCONNECT_DESC_PARAM(unipro_version, _UNIPRO_VER, 2);
1186 UFS_INTERCONNECT_DESC_PARAM(mphy_version, _MPHY_VER, 2);
1187
1188 static struct attribute *ufs_sysfs_interconnect_descriptor[] = {
1189 &dev_attr_unipro_version.attr,
1190 &dev_attr_mphy_version.attr,
1191 NULL,
1192 };
1193
1194 static const struct attribute_group ufs_sysfs_interconnect_descriptor_group = {
1195 .name = "interconnect_descriptor",
1196 .attrs = ufs_sysfs_interconnect_descriptor,
1197 };
1198
1199 #define UFS_GEOMETRY_DESC_PARAM(_name, _uname, _size) \
1200 UFS_DESC_PARAM(_name, _uname, GEOMETRY, _size)
1201
1202 UFS_GEOMETRY_DESC_PARAM(raw_device_capacity, _DEV_CAP, 8);
1203 UFS_GEOMETRY_DESC_PARAM(max_number_of_luns, _MAX_NUM_LUN, 1);
1204 UFS_GEOMETRY_DESC_PARAM(segment_size, _SEG_SIZE, 4);
1205 UFS_GEOMETRY_DESC_PARAM(allocation_unit_size, _ALLOC_UNIT_SIZE, 1);
1206 UFS_GEOMETRY_DESC_PARAM(min_addressable_block_size, _MIN_BLK_SIZE, 1);
1207 UFS_GEOMETRY_DESC_PARAM(optimal_read_block_size, _OPT_RD_BLK_SIZE, 1);
1208 UFS_GEOMETRY_DESC_PARAM(optimal_write_block_size, _OPT_WR_BLK_SIZE, 1);
1209 UFS_GEOMETRY_DESC_PARAM(max_in_buffer_size, _MAX_IN_BUF_SIZE, 1);
1210 UFS_GEOMETRY_DESC_PARAM(max_out_buffer_size, _MAX_OUT_BUF_SIZE, 1);
1211 UFS_GEOMETRY_DESC_PARAM(rpmb_rw_size, _RPMB_RW_SIZE, 1);
1212 UFS_GEOMETRY_DESC_PARAM(dyn_capacity_resource_policy, _DYN_CAP_RSRC_PLC, 1);
1213 UFS_GEOMETRY_DESC_PARAM(data_ordering, _DATA_ORDER, 1);
1214 UFS_GEOMETRY_DESC_PARAM(max_number_of_contexts, _MAX_NUM_CTX, 1);
1215 UFS_GEOMETRY_DESC_PARAM(sys_data_tag_unit_size, _TAG_UNIT_SIZE, 1);
1216 UFS_GEOMETRY_DESC_PARAM(sys_data_tag_resource_size, _TAG_RSRC_SIZE, 1);
1217 UFS_GEOMETRY_DESC_PARAM(secure_removal_types, _SEC_RM_TYPES, 1);
1218 UFS_GEOMETRY_DESC_PARAM(memory_types, _MEM_TYPES, 2);
1219 UFS_GEOMETRY_DESC_PARAM(sys_code_memory_max_alloc_units,
1220 _SCM_MAX_NUM_UNITS, 4);
1221 UFS_GEOMETRY_DESC_PARAM(sys_code_memory_capacity_adjustment_factor,
1222 _SCM_CAP_ADJ_FCTR, 2);
1223 UFS_GEOMETRY_DESC_PARAM(non_persist_memory_max_alloc_units,
1224 _NPM_MAX_NUM_UNITS, 4);
1225 UFS_GEOMETRY_DESC_PARAM(non_persist_memory_capacity_adjustment_factor,
1226 _NPM_CAP_ADJ_FCTR, 2);
1227 UFS_GEOMETRY_DESC_PARAM(enh1_memory_max_alloc_units,
1228 _ENM1_MAX_NUM_UNITS, 4);
1229 UFS_GEOMETRY_DESC_PARAM(enh1_memory_capacity_adjustment_factor,
1230 _ENM1_CAP_ADJ_FCTR, 2);
1231 UFS_GEOMETRY_DESC_PARAM(enh2_memory_max_alloc_units,
1232 _ENM2_MAX_NUM_UNITS, 4);
1233 UFS_GEOMETRY_DESC_PARAM(enh2_memory_capacity_adjustment_factor,
1234 _ENM2_CAP_ADJ_FCTR, 2);
1235 UFS_GEOMETRY_DESC_PARAM(enh3_memory_max_alloc_units,
1236 _ENM3_MAX_NUM_UNITS, 4);
1237 UFS_GEOMETRY_DESC_PARAM(enh3_memory_capacity_adjustment_factor,
1238 _ENM3_CAP_ADJ_FCTR, 2);
1239 UFS_GEOMETRY_DESC_PARAM(enh4_memory_max_alloc_units,
1240 _ENM4_MAX_NUM_UNITS, 4);
1241 UFS_GEOMETRY_DESC_PARAM(enh4_memory_capacity_adjustment_factor,
1242 _ENM4_CAP_ADJ_FCTR, 2);
1243 UFS_GEOMETRY_DESC_PARAM(wb_max_alloc_units, _WB_MAX_ALLOC_UNITS, 4);
1244 UFS_GEOMETRY_DESC_PARAM(wb_max_wb_luns, _WB_MAX_WB_LUNS, 1);
1245 UFS_GEOMETRY_DESC_PARAM(wb_buff_cap_adj, _WB_BUFF_CAP_ADJ, 1);
1246 UFS_GEOMETRY_DESC_PARAM(wb_sup_red_type, _WB_SUP_RED_TYPE, 1);
1247 UFS_GEOMETRY_DESC_PARAM(wb_sup_wb_type, _WB_SUP_WB_TYPE, 1);
1248
1249
1250 static struct attribute *ufs_sysfs_geometry_descriptor[] = {
1251 &dev_attr_raw_device_capacity.attr,
1252 &dev_attr_max_number_of_luns.attr,
1253 &dev_attr_segment_size.attr,
1254 &dev_attr_allocation_unit_size.attr,
1255 &dev_attr_min_addressable_block_size.attr,
1256 &dev_attr_optimal_read_block_size.attr,
1257 &dev_attr_optimal_write_block_size.attr,
1258 &dev_attr_max_in_buffer_size.attr,
1259 &dev_attr_max_out_buffer_size.attr,
1260 &dev_attr_rpmb_rw_size.attr,
1261 &dev_attr_dyn_capacity_resource_policy.attr,
1262 &dev_attr_data_ordering.attr,
1263 &dev_attr_max_number_of_contexts.attr,
1264 &dev_attr_sys_data_tag_unit_size.attr,
1265 &dev_attr_sys_data_tag_resource_size.attr,
1266 &dev_attr_secure_removal_types.attr,
1267 &dev_attr_memory_types.attr,
1268 &dev_attr_sys_code_memory_max_alloc_units.attr,
1269 &dev_attr_sys_code_memory_capacity_adjustment_factor.attr,
1270 &dev_attr_non_persist_memory_max_alloc_units.attr,
1271 &dev_attr_non_persist_memory_capacity_adjustment_factor.attr,
1272 &dev_attr_enh1_memory_max_alloc_units.attr,
1273 &dev_attr_enh1_memory_capacity_adjustment_factor.attr,
1274 &dev_attr_enh2_memory_max_alloc_units.attr,
1275 &dev_attr_enh2_memory_capacity_adjustment_factor.attr,
1276 &dev_attr_enh3_memory_max_alloc_units.attr,
1277 &dev_attr_enh3_memory_capacity_adjustment_factor.attr,
1278 &dev_attr_enh4_memory_max_alloc_units.attr,
1279 &dev_attr_enh4_memory_capacity_adjustment_factor.attr,
1280 &dev_attr_wb_max_alloc_units.attr,
1281 &dev_attr_wb_max_wb_luns.attr,
1282 &dev_attr_wb_buff_cap_adj.attr,
1283 &dev_attr_wb_sup_red_type.attr,
1284 &dev_attr_wb_sup_wb_type.attr,
1285 NULL,
1286 };
1287
1288 static const struct attribute_group ufs_sysfs_geometry_descriptor_group = {
1289 .name = "geometry_descriptor",
1290 .attrs = ufs_sysfs_geometry_descriptor,
1291 };
1292
1293 #define UFS_HEALTH_DESC_PARAM(_name, _uname, _size) \
1294 UFS_DESC_PARAM(_name, _uname, HEALTH, _size)
1295
1296 UFS_HEALTH_DESC_PARAM(eol_info, _EOL_INFO, 1);
1297 UFS_HEALTH_DESC_PARAM(life_time_estimation_a, _LIFE_TIME_EST_A, 1);
1298 UFS_HEALTH_DESC_PARAM(life_time_estimation_b, _LIFE_TIME_EST_B, 1);
1299
1300 static struct attribute *ufs_sysfs_health_descriptor[] = {
1301 &dev_attr_eol_info.attr,
1302 &dev_attr_life_time_estimation_a.attr,
1303 &dev_attr_life_time_estimation_b.attr,
1304 NULL,
1305 };
1306
1307 static const struct attribute_group ufs_sysfs_health_descriptor_group = {
1308 .name = "health_descriptor",
1309 .attrs = ufs_sysfs_health_descriptor,
1310 };
1311
1312 #define UFS_POWER_DESC_PARAM(_name, _uname, _index) \
1313 static ssize_t _name##_index##_show(struct device *dev, \
1314 struct device_attribute *attr, char *buf) \
1315 { \
1316 struct ufs_hba *hba = dev_get_drvdata(dev); \
1317 return ufs_sysfs_read_desc_param(hba, QUERY_DESC_IDN_POWER, 0, \
1318 PWR_DESC##_uname##_0 + _index * 2, buf, 2); \
1319 } \
1320 static DEVICE_ATTR_RO(_name##_index)
1321
1322 UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 0);
1323 UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 1);
1324 UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 2);
1325 UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 3);
1326 UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 4);
1327 UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 5);
1328 UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 6);
1329 UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 7);
1330 UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 8);
1331 UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 9);
1332 UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 10);
1333 UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 11);
1334 UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 12);
1335 UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 13);
1336 UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 14);
1337 UFS_POWER_DESC_PARAM(active_icc_levels_vcc, _ACTIVE_LVLS_VCC, 15);
1338 UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 0);
1339 UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 1);
1340 UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 2);
1341 UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 3);
1342 UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 4);
1343 UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 5);
1344 UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 6);
1345 UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 7);
1346 UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 8);
1347 UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 9);
1348 UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 10);
1349 UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 11);
1350 UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 12);
1351 UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 13);
1352 UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 14);
1353 UFS_POWER_DESC_PARAM(active_icc_levels_vccq, _ACTIVE_LVLS_VCCQ, 15);
1354 UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 0);
1355 UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 1);
1356 UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 2);
1357 UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 3);
1358 UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 4);
1359 UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 5);
1360 UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 6);
1361 UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 7);
1362 UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 8);
1363 UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 9);
1364 UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 10);
1365 UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 11);
1366 UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 12);
1367 UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 13);
1368 UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 14);
1369 UFS_POWER_DESC_PARAM(active_icc_levels_vccq2, _ACTIVE_LVLS_VCCQ2, 15);
1370
1371 static struct attribute *ufs_sysfs_power_descriptor[] = {
1372 &dev_attr_active_icc_levels_vcc0.attr,
1373 &dev_attr_active_icc_levels_vcc1.attr,
1374 &dev_attr_active_icc_levels_vcc2.attr,
1375 &dev_attr_active_icc_levels_vcc3.attr,
1376 &dev_attr_active_icc_levels_vcc4.attr,
1377 &dev_attr_active_icc_levels_vcc5.attr,
1378 &dev_attr_active_icc_levels_vcc6.attr,
1379 &dev_attr_active_icc_levels_vcc7.attr,
1380 &dev_attr_active_icc_levels_vcc8.attr,
1381 &dev_attr_active_icc_levels_vcc9.attr,
1382 &dev_attr_active_icc_levels_vcc10.attr,
1383 &dev_attr_active_icc_levels_vcc11.attr,
1384 &dev_attr_active_icc_levels_vcc12.attr,
1385 &dev_attr_active_icc_levels_vcc13.attr,
1386 &dev_attr_active_icc_levels_vcc14.attr,
1387 &dev_attr_active_icc_levels_vcc15.attr,
1388 &dev_attr_active_icc_levels_vccq0.attr,
1389 &dev_attr_active_icc_levels_vccq1.attr,
1390 &dev_attr_active_icc_levels_vccq2.attr,
1391 &dev_attr_active_icc_levels_vccq3.attr,
1392 &dev_attr_active_icc_levels_vccq4.attr,
1393 &dev_attr_active_icc_levels_vccq5.attr,
1394 &dev_attr_active_icc_levels_vccq6.attr,
1395 &dev_attr_active_icc_levels_vccq7.attr,
1396 &dev_attr_active_icc_levels_vccq8.attr,
1397 &dev_attr_active_icc_levels_vccq9.attr,
1398 &dev_attr_active_icc_levels_vccq10.attr,
1399 &dev_attr_active_icc_levels_vccq11.attr,
1400 &dev_attr_active_icc_levels_vccq12.attr,
1401 &dev_attr_active_icc_levels_vccq13.attr,
1402 &dev_attr_active_icc_levels_vccq14.attr,
1403 &dev_attr_active_icc_levels_vccq15.attr,
1404 &dev_attr_active_icc_levels_vccq20.attr,
1405 &dev_attr_active_icc_levels_vccq21.attr,
1406 &dev_attr_active_icc_levels_vccq22.attr,
1407 &dev_attr_active_icc_levels_vccq23.attr,
1408 &dev_attr_active_icc_levels_vccq24.attr,
1409 &dev_attr_active_icc_levels_vccq25.attr,
1410 &dev_attr_active_icc_levels_vccq26.attr,
1411 &dev_attr_active_icc_levels_vccq27.attr,
1412 &dev_attr_active_icc_levels_vccq28.attr,
1413 &dev_attr_active_icc_levels_vccq29.attr,
1414 &dev_attr_active_icc_levels_vccq210.attr,
1415 &dev_attr_active_icc_levels_vccq211.attr,
1416 &dev_attr_active_icc_levels_vccq212.attr,
1417 &dev_attr_active_icc_levels_vccq213.attr,
1418 &dev_attr_active_icc_levels_vccq214.attr,
1419 &dev_attr_active_icc_levels_vccq215.attr,
1420 NULL,
1421 };
1422
1423 static const struct attribute_group ufs_sysfs_power_descriptor_group = {
1424 .name = "power_descriptor",
1425 .attrs = ufs_sysfs_power_descriptor,
1426 };
1427
1428 #define UFS_STRING_DESCRIPTOR(_name, _pname) \
1429 static ssize_t _name##_show(struct device *dev, \
1430 struct device_attribute *attr, char *buf) \
1431 { \
1432 u8 index; \
1433 struct ufs_hba *hba = dev_get_drvdata(dev); \
1434 int ret; \
1435 int desc_len = QUERY_DESC_MAX_SIZE; \
1436 u8 *desc_buf; \
1437 \
1438 down(&hba->host_sem); \
1439 if (!ufshcd_is_user_access_allowed(hba)) { \
1440 up(&hba->host_sem); \
1441 return -EBUSY; \
1442 } \
1443 desc_buf = kzalloc(QUERY_DESC_MAX_SIZE, GFP_ATOMIC); \
1444 if (!desc_buf) { \
1445 up(&hba->host_sem); \
1446 return -ENOMEM; \
1447 } \
1448 ufshcd_rpm_get_sync(hba); \
1449 ret = ufshcd_query_descriptor_retry(hba, \
1450 UPIU_QUERY_OPCODE_READ_DESC, QUERY_DESC_IDN_DEVICE, \
1451 0, 0, desc_buf, &desc_len); \
1452 if (ret) { \
1453 ret = -EINVAL; \
1454 goto out; \
1455 } \
1456 index = desc_buf[DEVICE_DESC_PARAM##_pname]; \
1457 kfree(desc_buf); \
1458 desc_buf = NULL; \
1459 ret = ufshcd_read_string_desc(hba, index, &desc_buf, \
1460 SD_ASCII_STD); \
1461 if (ret < 0) \
1462 goto out; \
1463 ret = sysfs_emit(buf, "%s\n", desc_buf); \
1464 out: \
1465 ufshcd_rpm_put_sync(hba); \
1466 kfree(desc_buf); \
1467 up(&hba->host_sem); \
1468 return ret; \
1469 } \
1470 static DEVICE_ATTR_RO(_name)
1471
1472 UFS_STRING_DESCRIPTOR(manufacturer_name, _MANF_NAME);
1473 UFS_STRING_DESCRIPTOR(product_name, _PRDCT_NAME);
1474 UFS_STRING_DESCRIPTOR(oem_id, _OEM_ID);
1475 UFS_STRING_DESCRIPTOR(serial_number, _SN);
1476 UFS_STRING_DESCRIPTOR(product_revision, _PRDCT_REV);
1477
1478 static struct attribute *ufs_sysfs_string_descriptors[] = {
1479 &dev_attr_manufacturer_name.attr,
1480 &dev_attr_product_name.attr,
1481 &dev_attr_oem_id.attr,
1482 &dev_attr_serial_number.attr,
1483 &dev_attr_product_revision.attr,
1484 NULL,
1485 };
1486
1487 static const struct attribute_group ufs_sysfs_string_descriptors_group = {
1488 .name = "string_descriptors",
1489 .attrs = ufs_sysfs_string_descriptors,
1490 };
1491
ufshcd_is_wb_flags(enum flag_idn idn)1492 static inline bool ufshcd_is_wb_flags(enum flag_idn idn)
1493 {
1494 return idn >= QUERY_FLAG_IDN_WB_EN &&
1495 idn <= QUERY_FLAG_IDN_WB_BUFF_FLUSH_DURING_HIBERN8;
1496 }
1497
1498 #define UFS_FLAG(_name, _uname) \
1499 static ssize_t _name##_show(struct device *dev, \
1500 struct device_attribute *attr, char *buf) \
1501 { \
1502 bool flag; \
1503 u8 index = 0; \
1504 int ret; \
1505 struct ufs_hba *hba = dev_get_drvdata(dev); \
1506 \
1507 down(&hba->host_sem); \
1508 if (!ufshcd_is_user_access_allowed(hba)) { \
1509 up(&hba->host_sem); \
1510 return -EBUSY; \
1511 } \
1512 if (ufshcd_is_wb_flags(QUERY_FLAG_IDN##_uname)) \
1513 index = ufshcd_wb_get_query_index(hba); \
1514 ufshcd_rpm_get_sync(hba); \
1515 ret = ufshcd_query_flag(hba, UPIU_QUERY_OPCODE_READ_FLAG, \
1516 QUERY_FLAG_IDN##_uname, index, &flag); \
1517 ufshcd_rpm_put_sync(hba); \
1518 if (ret) { \
1519 ret = -EINVAL; \
1520 goto out; \
1521 } \
1522 ret = sysfs_emit(buf, "%s\n", str_true_false(flag)); \
1523 out: \
1524 up(&hba->host_sem); \
1525 return ret; \
1526 } \
1527 static DEVICE_ATTR_RO(_name)
1528
1529 UFS_FLAG(device_init, _FDEVICEINIT);
1530 UFS_FLAG(permanent_wpe, _PERMANENT_WPE);
1531 UFS_FLAG(power_on_wpe, _PWR_ON_WPE);
1532 UFS_FLAG(bkops_enable, _BKOPS_EN);
1533 UFS_FLAG(life_span_mode_enable, _LIFE_SPAN_MODE_ENABLE);
1534 UFS_FLAG(phy_resource_removal, _FPHYRESOURCEREMOVAL);
1535 UFS_FLAG(busy_rtc, _BUSY_RTC);
1536 UFS_FLAG(disable_fw_update, _PERMANENTLY_DISABLE_FW_UPDATE);
1537 UFS_FLAG(wb_enable, _WB_EN);
1538 UFS_FLAG(wb_flush_en, _WB_BUFF_FLUSH_EN);
1539 UFS_FLAG(wb_flush_during_h8, _WB_BUFF_FLUSH_DURING_HIBERN8);
1540
1541 static struct attribute *ufs_sysfs_device_flags[] = {
1542 &dev_attr_device_init.attr,
1543 &dev_attr_permanent_wpe.attr,
1544 &dev_attr_power_on_wpe.attr,
1545 &dev_attr_bkops_enable.attr,
1546 &dev_attr_life_span_mode_enable.attr,
1547 &dev_attr_phy_resource_removal.attr,
1548 &dev_attr_busy_rtc.attr,
1549 &dev_attr_disable_fw_update.attr,
1550 &dev_attr_wb_enable.attr,
1551 &dev_attr_wb_flush_en.attr,
1552 &dev_attr_wb_flush_during_h8.attr,
1553 NULL,
1554 };
1555
1556 static const struct attribute_group ufs_sysfs_flags_group = {
1557 .name = "flags",
1558 .attrs = ufs_sysfs_device_flags,
1559 };
1560
max_number_of_rtt_show(struct device * dev,struct device_attribute * attr,char * buf)1561 static ssize_t max_number_of_rtt_show(struct device *dev,
1562 struct device_attribute *attr, char *buf)
1563 {
1564 struct ufs_hba *hba = dev_get_drvdata(dev);
1565 u32 rtt;
1566 int ret;
1567
1568 down(&hba->host_sem);
1569 if (!ufshcd_is_user_access_allowed(hba)) {
1570 up(&hba->host_sem);
1571 return -EBUSY;
1572 }
1573
1574 ufshcd_rpm_get_sync(hba);
1575 ret = ufshcd_query_attr(hba, UPIU_QUERY_OPCODE_READ_ATTR,
1576 QUERY_ATTR_IDN_MAX_NUM_OF_RTT, 0, 0, &rtt);
1577 ufshcd_rpm_put_sync(hba);
1578
1579 if (ret)
1580 goto out;
1581
1582 ret = sysfs_emit(buf, "0x%08X\n", rtt);
1583
1584 out:
1585 up(&hba->host_sem);
1586 return ret;
1587 }
1588
max_number_of_rtt_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1589 static ssize_t max_number_of_rtt_store(struct device *dev,
1590 struct device_attribute *attr,
1591 const char *buf, size_t count)
1592 {
1593 struct ufs_hba *hba = dev_get_drvdata(dev);
1594 struct ufs_dev_info *dev_info = &hba->dev_info;
1595 struct scsi_device *sdev;
1596 unsigned int memflags;
1597 unsigned int rtt;
1598 int ret;
1599
1600 if (kstrtouint(buf, 0, &rtt))
1601 return -EINVAL;
1602
1603 if (rtt > dev_info->rtt_cap) {
1604 dev_err(dev, "rtt can be at most bDeviceRTTCap\n");
1605 return -EINVAL;
1606 }
1607
1608 down(&hba->host_sem);
1609 if (!ufshcd_is_user_access_allowed(hba)) {
1610 ret = -EBUSY;
1611 goto out;
1612 }
1613
1614 ufshcd_rpm_get_sync(hba);
1615
1616 memflags = memalloc_noio_save();
1617 shost_for_each_device(sdev, hba->host)
1618 blk_mq_freeze_queue_nomemsave(sdev->request_queue);
1619
1620 ret = ufshcd_query_attr(hba, UPIU_QUERY_OPCODE_WRITE_ATTR,
1621 QUERY_ATTR_IDN_MAX_NUM_OF_RTT, 0, 0, &rtt);
1622
1623 shost_for_each_device(sdev, hba->host)
1624 blk_mq_unfreeze_queue_nomemrestore(sdev->request_queue);
1625 memalloc_noio_restore(memflags);
1626
1627 ufshcd_rpm_put_sync(hba);
1628
1629 out:
1630 up(&hba->host_sem);
1631 return ret < 0 ? ret : count;
1632 }
1633
1634 static DEVICE_ATTR_RW(max_number_of_rtt);
1635
ufshcd_is_wb_attrs(enum attr_idn idn)1636 static inline bool ufshcd_is_wb_attrs(enum attr_idn idn)
1637 {
1638 return idn >= QUERY_ATTR_IDN_WB_FLUSH_STATUS &&
1639 idn <= QUERY_ATTR_IDN_CURR_WB_BUFF_SIZE;
1640 }
1641
wb_read_resize_attrs(struct ufs_hba * hba,enum attr_idn idn,u32 * attr_val)1642 static int wb_read_resize_attrs(struct ufs_hba *hba,
1643 enum attr_idn idn, u32 *attr_val)
1644 {
1645 u8 index = 0;
1646 int ret;
1647
1648 if (!ufshcd_is_wb_allowed(hba) || !hba->dev_info.wb_enabled
1649 || !hba->dev_info.b_presrv_uspc_en
1650 || !(hba->dev_info.ext_wb_sup & UFS_DEV_WB_BUF_RESIZE))
1651 return -EOPNOTSUPP;
1652
1653 down(&hba->host_sem);
1654 if (!ufshcd_is_user_access_allowed(hba)) {
1655 up(&hba->host_sem);
1656 return -EBUSY;
1657 }
1658
1659 index = ufshcd_wb_get_query_index(hba);
1660 ufshcd_rpm_get_sync(hba);
1661 ret = ufshcd_query_attr(hba, UPIU_QUERY_OPCODE_READ_ATTR,
1662 idn, index, 0, attr_val);
1663 ufshcd_rpm_put_sync(hba);
1664
1665 up(&hba->host_sem);
1666 return ret;
1667 }
1668
wb_resize_hint_show(struct device * dev,struct device_attribute * attr,char * buf)1669 static ssize_t wb_resize_hint_show(struct device *dev,
1670 struct device_attribute *attr, char *buf)
1671 {
1672 struct ufs_hba *hba = dev_get_drvdata(dev);
1673 int ret;
1674 u32 value;
1675
1676 ret = wb_read_resize_attrs(hba,
1677 QUERY_ATTR_IDN_WB_BUF_RESIZE_HINT, &value);
1678 if (ret)
1679 return ret;
1680
1681 return sysfs_emit(buf, "%s\n", ufs_wb_resize_hint_to_string(value));
1682 }
1683
1684 static DEVICE_ATTR_RO(wb_resize_hint);
1685
wb_resize_status_show(struct device * dev,struct device_attribute * attr,char * buf)1686 static ssize_t wb_resize_status_show(struct device *dev,
1687 struct device_attribute *attr, char *buf)
1688 {
1689 struct ufs_hba *hba = dev_get_drvdata(dev);
1690 int ret;
1691 u32 value;
1692
1693 ret = wb_read_resize_attrs(hba,
1694 QUERY_ATTR_IDN_WB_BUF_RESIZE_STATUS, &value);
1695 if (ret)
1696 return ret;
1697
1698 return sysfs_emit(buf, "%s\n", ufs_wb_resize_status_to_string(value));
1699 }
1700
1701 static DEVICE_ATTR_RO(wb_resize_status);
1702
1703 #define UFS_ATTRIBUTE(_name, _uname) \
1704 static ssize_t _name##_show(struct device *dev, \
1705 struct device_attribute *attr, char *buf) \
1706 { \
1707 struct ufs_hba *hba = dev_get_drvdata(dev); \
1708 u32 value; \
1709 int ret; \
1710 u8 index = 0; \
1711 \
1712 down(&hba->host_sem); \
1713 if (!ufshcd_is_user_access_allowed(hba)) { \
1714 up(&hba->host_sem); \
1715 return -EBUSY; \
1716 } \
1717 if (ufshcd_is_wb_attrs(QUERY_ATTR_IDN##_uname)) \
1718 index = ufshcd_wb_get_query_index(hba); \
1719 ufshcd_rpm_get_sync(hba); \
1720 ret = ufshcd_query_attr(hba, UPIU_QUERY_OPCODE_READ_ATTR, \
1721 QUERY_ATTR_IDN##_uname, index, 0, &value); \
1722 ufshcd_rpm_put_sync(hba); \
1723 if (ret) { \
1724 ret = -EINVAL; \
1725 goto out; \
1726 } \
1727 ret = sysfs_emit(buf, "0x%08X\n", value); \
1728 out: \
1729 up(&hba->host_sem); \
1730 return ret; \
1731 } \
1732 static DEVICE_ATTR_RO(_name)
1733
1734 UFS_ATTRIBUTE(boot_lun_enabled, _BOOT_LU_EN);
1735 UFS_ATTRIBUTE(current_power_mode, _POWER_MODE);
1736 UFS_ATTRIBUTE(active_icc_level, _ACTIVE_ICC_LVL);
1737 UFS_ATTRIBUTE(ooo_data_enabled, _OOO_DATA_EN);
1738 UFS_ATTRIBUTE(bkops_status, _BKOPS_STATUS);
1739 UFS_ATTRIBUTE(purge_status, _PURGE_STATUS);
1740 UFS_ATTRIBUTE(max_data_in_size, _MAX_DATA_IN);
1741 UFS_ATTRIBUTE(max_data_out_size, _MAX_DATA_OUT);
1742 UFS_ATTRIBUTE(reference_clock_frequency, _REF_CLK_FREQ);
1743 UFS_ATTRIBUTE(configuration_descriptor_lock, _CONF_DESC_LOCK);
1744 UFS_ATTRIBUTE(exception_event_control, _EE_CONTROL);
1745 UFS_ATTRIBUTE(exception_event_status, _EE_STATUS);
1746 UFS_ATTRIBUTE(ffu_status, _FFU_STATUS);
1747 UFS_ATTRIBUTE(psa_state, _PSA_STATE);
1748 UFS_ATTRIBUTE(psa_data_size, _PSA_DATA_SIZE);
1749 UFS_ATTRIBUTE(wb_flush_status, _WB_FLUSH_STATUS);
1750 UFS_ATTRIBUTE(wb_avail_buf, _AVAIL_WB_BUFF_SIZE);
1751 UFS_ATTRIBUTE(wb_life_time_est, _WB_BUFF_LIFE_TIME_EST);
1752 UFS_ATTRIBUTE(wb_cur_buf, _CURR_WB_BUFF_SIZE);
1753
1754
1755 static struct attribute *ufs_sysfs_attributes[] = {
1756 &dev_attr_boot_lun_enabled.attr,
1757 &dev_attr_current_power_mode.attr,
1758 &dev_attr_active_icc_level.attr,
1759 &dev_attr_ooo_data_enabled.attr,
1760 &dev_attr_bkops_status.attr,
1761 &dev_attr_purge_status.attr,
1762 &dev_attr_max_data_in_size.attr,
1763 &dev_attr_max_data_out_size.attr,
1764 &dev_attr_reference_clock_frequency.attr,
1765 &dev_attr_configuration_descriptor_lock.attr,
1766 &dev_attr_max_number_of_rtt.attr,
1767 &dev_attr_exception_event_control.attr,
1768 &dev_attr_exception_event_status.attr,
1769 &dev_attr_ffu_status.attr,
1770 &dev_attr_psa_state.attr,
1771 &dev_attr_psa_data_size.attr,
1772 &dev_attr_wb_flush_status.attr,
1773 &dev_attr_wb_avail_buf.attr,
1774 &dev_attr_wb_life_time_est.attr,
1775 &dev_attr_wb_cur_buf.attr,
1776 &dev_attr_wb_resize_hint.attr,
1777 &dev_attr_wb_resize_status.attr,
1778 NULL,
1779 };
1780
1781 static const struct attribute_group ufs_sysfs_attributes_group = {
1782 .name = "attributes",
1783 .attrs = ufs_sysfs_attributes,
1784 };
1785
hid_query_attr(struct ufs_hba * hba,enum query_opcode opcode,enum attr_idn idn,u32 * attr_val)1786 static int hid_query_attr(struct ufs_hba *hba, enum query_opcode opcode,
1787 enum attr_idn idn, u32 *attr_val)
1788 {
1789 int ret;
1790
1791 down(&hba->host_sem);
1792 if (!ufshcd_is_user_access_allowed(hba)) {
1793 up(&hba->host_sem);
1794 return -EBUSY;
1795 }
1796
1797 ufshcd_rpm_get_sync(hba);
1798 ret = ufshcd_query_attr(hba, opcode, idn, 0, 0, attr_val);
1799 ufshcd_rpm_put_sync(hba);
1800
1801 up(&hba->host_sem);
1802 return ret;
1803 }
1804
analysis_trigger_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1805 static ssize_t analysis_trigger_store(struct device *dev,
1806 struct device_attribute *attr, const char *buf, size_t count)
1807 {
1808 struct ufs_hba *hba = dev_get_drvdata(dev);
1809 int mode;
1810 int ret;
1811
1812 if (sysfs_streq(buf, "enable"))
1813 mode = HID_ANALYSIS_ENABLE;
1814 else if (sysfs_streq(buf, "disable"))
1815 mode = HID_ANALYSIS_AND_DEFRAG_DISABLE;
1816 else
1817 return -EINVAL;
1818
1819 ret = hid_query_attr(hba, UPIU_QUERY_OPCODE_WRITE_ATTR,
1820 QUERY_ATTR_IDN_HID_DEFRAG_OPERATION, &mode);
1821
1822 return ret < 0 ? ret : count;
1823 }
1824
1825 static DEVICE_ATTR_WO(analysis_trigger);
1826
defrag_trigger_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1827 static ssize_t defrag_trigger_store(struct device *dev,
1828 struct device_attribute *attr, const char *buf, size_t count)
1829 {
1830 struct ufs_hba *hba = dev_get_drvdata(dev);
1831 int mode;
1832 int ret;
1833
1834 if (sysfs_streq(buf, "enable"))
1835 mode = HID_ANALYSIS_AND_DEFRAG_ENABLE;
1836 else if (sysfs_streq(buf, "disable"))
1837 mode = HID_ANALYSIS_AND_DEFRAG_DISABLE;
1838 else
1839 return -EINVAL;
1840
1841 ret = hid_query_attr(hba, UPIU_QUERY_OPCODE_WRITE_ATTR,
1842 QUERY_ATTR_IDN_HID_DEFRAG_OPERATION, &mode);
1843
1844 return ret < 0 ? ret : count;
1845 }
1846
1847 static DEVICE_ATTR_WO(defrag_trigger);
1848
fragmented_size_show(struct device * dev,struct device_attribute * attr,char * buf)1849 static ssize_t fragmented_size_show(struct device *dev,
1850 struct device_attribute *attr, char *buf)
1851 {
1852 struct ufs_hba *hba = dev_get_drvdata(dev);
1853 u32 value;
1854 int ret;
1855
1856 ret = hid_query_attr(hba, UPIU_QUERY_OPCODE_READ_ATTR,
1857 QUERY_ATTR_IDN_HID_AVAILABLE_SIZE, &value);
1858 if (ret)
1859 return ret;
1860
1861 return sysfs_emit(buf, "%u\n", value);
1862 }
1863
1864 static DEVICE_ATTR_RO(fragmented_size);
1865
defrag_size_show(struct device * dev,struct device_attribute * attr,char * buf)1866 static ssize_t defrag_size_show(struct device *dev,
1867 struct device_attribute *attr, char *buf)
1868 {
1869 struct ufs_hba *hba = dev_get_drvdata(dev);
1870 u32 value;
1871 int ret;
1872
1873 ret = hid_query_attr(hba, UPIU_QUERY_OPCODE_READ_ATTR,
1874 QUERY_ATTR_IDN_HID_SIZE, &value);
1875 if (ret)
1876 return ret;
1877
1878 return sysfs_emit(buf, "%u\n", value);
1879 }
1880
defrag_size_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1881 static ssize_t defrag_size_store(struct device *dev,
1882 struct device_attribute *attr, const char *buf, size_t count)
1883 {
1884 struct ufs_hba *hba = dev_get_drvdata(dev);
1885 u32 value;
1886 int ret;
1887
1888 if (kstrtou32(buf, 0, &value))
1889 return -EINVAL;
1890
1891 ret = hid_query_attr(hba, UPIU_QUERY_OPCODE_WRITE_ATTR,
1892 QUERY_ATTR_IDN_HID_SIZE, &value);
1893
1894 return ret < 0 ? ret : count;
1895 }
1896
1897 static DEVICE_ATTR_RW(defrag_size);
1898
progress_ratio_show(struct device * dev,struct device_attribute * attr,char * buf)1899 static ssize_t progress_ratio_show(struct device *dev,
1900 struct device_attribute *attr, char *buf)
1901 {
1902 struct ufs_hba *hba = dev_get_drvdata(dev);
1903 u32 value;
1904 int ret;
1905
1906 ret = hid_query_attr(hba, UPIU_QUERY_OPCODE_READ_ATTR,
1907 QUERY_ATTR_IDN_HID_PROGRESS_RATIO, &value);
1908 if (ret)
1909 return ret;
1910
1911 return sysfs_emit(buf, "%u\n", value);
1912 }
1913
1914 static DEVICE_ATTR_RO(progress_ratio);
1915
state_show(struct device * dev,struct device_attribute * attr,char * buf)1916 static ssize_t state_show(struct device *dev,
1917 struct device_attribute *attr, char *buf)
1918 {
1919 struct ufs_hba *hba = dev_get_drvdata(dev);
1920 u32 value;
1921 int ret;
1922
1923 ret = hid_query_attr(hba, UPIU_QUERY_OPCODE_READ_ATTR,
1924 QUERY_ATTR_IDN_HID_STATE, &value);
1925 if (ret)
1926 return ret;
1927
1928 return sysfs_emit(buf, "%s\n", ufs_hid_state_to_string(value));
1929 }
1930
1931 static DEVICE_ATTR_RO(state);
1932
1933 static struct attribute *ufs_sysfs_hid[] = {
1934 &dev_attr_analysis_trigger.attr,
1935 &dev_attr_defrag_trigger.attr,
1936 &dev_attr_fragmented_size.attr,
1937 &dev_attr_defrag_size.attr,
1938 &dev_attr_progress_ratio.attr,
1939 &dev_attr_state.attr,
1940 NULL,
1941 };
1942
ufs_sysfs_hid_is_visible(struct kobject * kobj,struct attribute * attr,int n)1943 static umode_t ufs_sysfs_hid_is_visible(struct kobject *kobj,
1944 struct attribute *attr, int n)
1945 {
1946 struct device *dev = container_of(kobj, struct device, kobj);
1947 struct ufs_hba *hba = dev_get_drvdata(dev);
1948
1949 return hba->dev_info.hid_sup ? attr->mode : 0;
1950 }
1951
1952 const struct attribute_group ufs_sysfs_hid_group = {
1953 .name = "hid",
1954 .attrs = ufs_sysfs_hid,
1955 .is_visible = ufs_sysfs_hid_is_visible,
1956 };
1957
1958 static const struct attribute_group *ufs_sysfs_groups[] = {
1959 &ufs_sysfs_default_group,
1960 &ufs_sysfs_capabilities_group,
1961 &ufs_sysfs_ufshci_group,
1962 &ufs_sysfs_monitor_group,
1963 &ufs_sysfs_power_info_group,
1964 &ufs_sysfs_device_descriptor_group,
1965 &ufs_sysfs_interconnect_descriptor_group,
1966 &ufs_sysfs_geometry_descriptor_group,
1967 &ufs_sysfs_health_descriptor_group,
1968 &ufs_sysfs_power_descriptor_group,
1969 &ufs_sysfs_string_descriptors_group,
1970 &ufs_sysfs_flags_group,
1971 &ufs_sysfs_attributes_group,
1972 &ufs_sysfs_hid_group,
1973 NULL,
1974 };
1975
1976 #define UFS_LUN_DESC_PARAM(_pname, _puname, _duname, _size) \
1977 static ssize_t _pname##_show(struct device *dev, \
1978 struct device_attribute *attr, char *buf) \
1979 { \
1980 struct scsi_device *sdev = to_scsi_device(dev); \
1981 struct ufs_hba *hba = shost_priv(sdev->host); \
1982 u8 lun = ufshcd_scsi_to_upiu_lun(sdev->lun); \
1983 if (!ufs_is_valid_unit_desc_lun(&hba->dev_info, lun)) \
1984 return -EINVAL; \
1985 return ufs_sysfs_read_desc_param(hba, QUERY_DESC_IDN_##_duname, \
1986 lun, _duname##_DESC_PARAM##_puname, buf, _size); \
1987 } \
1988 static DEVICE_ATTR_RO(_pname)
1989
1990 #define UFS_UNIT_DESC_PARAM(_name, _uname, _size) \
1991 UFS_LUN_DESC_PARAM(_name, _uname, UNIT, _size)
1992
1993 UFS_UNIT_DESC_PARAM(lu_enable, _LU_ENABLE, 1);
1994 UFS_UNIT_DESC_PARAM(boot_lun_id, _BOOT_LUN_ID, 1);
1995 UFS_UNIT_DESC_PARAM(lun_write_protect, _LU_WR_PROTECT, 1);
1996 UFS_UNIT_DESC_PARAM(lun_queue_depth, _LU_Q_DEPTH, 1);
1997 UFS_UNIT_DESC_PARAM(psa_sensitive, _PSA_SENSITIVE, 1);
1998 UFS_UNIT_DESC_PARAM(lun_memory_type, _MEM_TYPE, 1);
1999 UFS_UNIT_DESC_PARAM(data_reliability, _DATA_RELIABILITY, 1);
2000 UFS_UNIT_DESC_PARAM(logical_block_size, _LOGICAL_BLK_SIZE, 1);
2001 UFS_UNIT_DESC_PARAM(logical_block_count, _LOGICAL_BLK_COUNT, 8);
2002 UFS_UNIT_DESC_PARAM(erase_block_size, _ERASE_BLK_SIZE, 4);
2003 UFS_UNIT_DESC_PARAM(provisioning_type, _PROVISIONING_TYPE, 1);
2004 UFS_UNIT_DESC_PARAM(physical_memory_resource_count, _PHY_MEM_RSRC_CNT, 8);
2005 UFS_UNIT_DESC_PARAM(context_capabilities, _CTX_CAPABILITIES, 2);
2006 UFS_UNIT_DESC_PARAM(large_unit_granularity, _LARGE_UNIT_SIZE_M1, 1);
2007 UFS_UNIT_DESC_PARAM(wb_buf_alloc_units, _WB_BUF_ALLOC_UNITS, 4);
2008
2009 static struct attribute *ufs_sysfs_unit_descriptor[] = {
2010 &dev_attr_lu_enable.attr,
2011 &dev_attr_boot_lun_id.attr,
2012 &dev_attr_lun_write_protect.attr,
2013 &dev_attr_lun_queue_depth.attr,
2014 &dev_attr_psa_sensitive.attr,
2015 &dev_attr_lun_memory_type.attr,
2016 &dev_attr_data_reliability.attr,
2017 &dev_attr_logical_block_size.attr,
2018 &dev_attr_logical_block_count.attr,
2019 &dev_attr_erase_block_size.attr,
2020 &dev_attr_provisioning_type.attr,
2021 &dev_attr_physical_memory_resource_count.attr,
2022 &dev_attr_context_capabilities.attr,
2023 &dev_attr_large_unit_granularity.attr,
2024 &dev_attr_wb_buf_alloc_units.attr,
2025 NULL,
2026 };
2027
ufs_unit_descriptor_is_visible(struct kobject * kobj,struct attribute * attr,int n)2028 static umode_t ufs_unit_descriptor_is_visible(struct kobject *kobj, struct attribute *attr, int n)
2029 {
2030 struct device *dev = container_of(kobj, struct device, kobj);
2031 struct scsi_device *sdev = to_scsi_device(dev);
2032 u8 lun = ufshcd_scsi_to_upiu_lun(sdev->lun);
2033 umode_t mode = attr->mode;
2034
2035 if (lun == UFS_UPIU_BOOT_WLUN || lun == UFS_UPIU_UFS_DEVICE_WLUN)
2036 /* Boot and device WLUN have no unit descriptors */
2037 mode = 0;
2038 if (lun == UFS_UPIU_RPMB_WLUN && attr == &dev_attr_wb_buf_alloc_units.attr)
2039 mode = 0;
2040
2041 return mode;
2042 }
2043
2044
2045 const struct attribute_group ufs_sysfs_unit_descriptor_group = {
2046 .name = "unit_descriptor",
2047 .attrs = ufs_sysfs_unit_descriptor,
2048 .is_visible = ufs_unit_descriptor_is_visible,
2049 };
2050
dyn_cap_needed_attribute_show(struct device * dev,struct device_attribute * attr,char * buf)2051 static ssize_t dyn_cap_needed_attribute_show(struct device *dev,
2052 struct device_attribute *attr, char *buf)
2053 {
2054 u32 value;
2055 struct scsi_device *sdev = to_scsi_device(dev);
2056 struct ufs_hba *hba = shost_priv(sdev->host);
2057 u8 lun = ufshcd_scsi_to_upiu_lun(sdev->lun);
2058 int ret;
2059
2060 down(&hba->host_sem);
2061 if (!ufshcd_is_user_access_allowed(hba)) {
2062 ret = -EBUSY;
2063 goto out;
2064 }
2065
2066 ufshcd_rpm_get_sync(hba);
2067 ret = ufshcd_query_attr(hba, UPIU_QUERY_OPCODE_READ_ATTR,
2068 QUERY_ATTR_IDN_DYN_CAP_NEEDED, lun, 0, &value);
2069 ufshcd_rpm_put_sync(hba);
2070 if (ret) {
2071 ret = -EINVAL;
2072 goto out;
2073 }
2074
2075 ret = sysfs_emit(buf, "0x%08X\n", value);
2076
2077 out:
2078 up(&hba->host_sem);
2079 return ret;
2080 }
2081 static DEVICE_ATTR_RO(dyn_cap_needed_attribute);
2082
2083 static struct attribute *ufs_sysfs_lun_attributes[] = {
2084 &dev_attr_dyn_cap_needed_attribute.attr,
2085 NULL,
2086 };
2087
2088 const struct attribute_group ufs_sysfs_lun_attributes_group = {
2089 .attrs = ufs_sysfs_lun_attributes,
2090 };
2091
ufs_sysfs_add_nodes(struct device * dev)2092 void ufs_sysfs_add_nodes(struct device *dev)
2093 {
2094 int ret;
2095
2096 ret = sysfs_create_groups(&dev->kobj, ufs_sysfs_groups);
2097 if (ret)
2098 dev_err(dev,
2099 "%s: sysfs groups creation failed (err = %d)\n",
2100 __func__, ret);
2101 }
2102
ufs_sysfs_remove_nodes(struct device * dev)2103 void ufs_sysfs_remove_nodes(struct device *dev)
2104 {
2105 sysfs_remove_groups(&dev->kobj, ufs_sysfs_groups);
2106 }
2107