xref: /linux/drivers/iio/common/hid-sensors/hid-sensor-attributes.c (revision 914a1fe5f818bff5abb0e792bc0addf0c7c274f4)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * HID Sensors Driver
4  * Copyright (c) 2012, Intel Corporation.
5  */
6 #include <linux/module.h>
7 #include <linux/kernel.h>
8 #include <linux/time.h>
9 #include <linux/units.h>
10 
11 #include <linux/hid-sensor-hub.h>
12 #include <linux/iio/iio.h>
13 
14 static struct {
15 	u32 usage_id;
16 	int unit; /* 0 for default others from HID sensor spec */
17 	int scale_val0; /* scale, whole number */
18 	int scale_val1; /* scale, fraction in nanos */
19 } unit_conversion[] = {
20 	{HID_USAGE_SENSOR_ACCEL_3D, 0, 9, 806650000},
21 	{HID_USAGE_SENSOR_ACCEL_3D,
22 		HID_USAGE_SENSOR_UNITS_METERS_PER_SEC_SQRD, 1, 0},
23 	{HID_USAGE_SENSOR_ACCEL_3D,
24 		HID_USAGE_SENSOR_UNITS_G, 9, 806650000},
25 
26 	{HID_USAGE_SENSOR_GRAVITY_VECTOR, 0, 9, 806650000},
27 	{HID_USAGE_SENSOR_GRAVITY_VECTOR,
28 		HID_USAGE_SENSOR_UNITS_METERS_PER_SEC_SQRD, 1, 0},
29 	{HID_USAGE_SENSOR_GRAVITY_VECTOR,
30 		HID_USAGE_SENSOR_UNITS_G, 9, 806650000},
31 
32 	{HID_USAGE_SENSOR_GYRO_3D, 0, 0, 17453293},
33 	{HID_USAGE_SENSOR_GYRO_3D,
34 		HID_USAGE_SENSOR_UNITS_RADIANS_PER_SECOND, 1, 0},
35 	{HID_USAGE_SENSOR_GYRO_3D,
36 		HID_USAGE_SENSOR_UNITS_DEGREES_PER_SECOND, 0, 17453293},
37 
38 	{HID_USAGE_SENSOR_COMPASS_3D, 0, 0, 1000000},
39 	{HID_USAGE_SENSOR_COMPASS_3D, HID_USAGE_SENSOR_UNITS_GAUSS, 1, 0},
40 
41 	{HID_USAGE_SENSOR_INCLINOMETER_3D, 0, 0, 17453293},
42 	{HID_USAGE_SENSOR_INCLINOMETER_3D,
43 		HID_USAGE_SENSOR_UNITS_DEGREES, 0, 17453293},
44 	{HID_USAGE_SENSOR_INCLINOMETER_3D,
45 		HID_USAGE_SENSOR_UNITS_RADIANS, 1, 0},
46 
47 	{HID_USAGE_SENSOR_ALS, 0, 1, 0},
48 	{HID_USAGE_SENSOR_ALS, HID_USAGE_SENSOR_UNITS_LUX, 1, 0},
49 
50 	{HID_USAGE_SENSOR_PRESSURE, 0, 100, 0},
51 	{HID_USAGE_SENSOR_PRESSURE, HID_USAGE_SENSOR_UNITS_PASCAL, 0, 1000000},
52 
53 	{HID_USAGE_SENSOR_TIME_TIMESTAMP, 0, 1000000000, 0},
54 	{HID_USAGE_SENSOR_TIME_TIMESTAMP, HID_USAGE_SENSOR_UNITS_MILLISECOND,
55 		1000000, 0},
56 
57 	{HID_USAGE_SENSOR_DEVICE_ORIENTATION, 0, 1, 0},
58 
59 	{HID_USAGE_SENSOR_RELATIVE_ORIENTATION, 0, 1, 0},
60 
61 	{HID_USAGE_SENSOR_GEOMAGNETIC_ORIENTATION, 0, 1, 0},
62 
63 	{HID_USAGE_SENSOR_TEMPERATURE, 0, 1000, 0},
64 	{HID_USAGE_SENSOR_TEMPERATURE, HID_USAGE_SENSOR_UNITS_DEGREES, 1000, 0},
65 
66 	{HID_USAGE_SENSOR_HUMIDITY, 0, 1000, 0},
67 	{HID_USAGE_SENSOR_HINGE, 0, 0, 17453293},
68 	{HID_USAGE_SENSOR_HINGE, HID_USAGE_SENSOR_UNITS_DEGREES, 0, 17453293},
69 
70 	{HID_USAGE_SENSOR_HUMAN_PRESENCE, 0, 1, 0},
71 	{HID_USAGE_SENSOR_HUMAN_PROXIMITY, 0, 1, 0},
72 	{HID_USAGE_SENSOR_HUMAN_ATTENTION, 0, 1, 0},
73 };
74 
simple_div(int dividend,int divisor,int * whole,int * micro_frac)75 static void simple_div(int dividend, int divisor, int *whole,
76 				int *micro_frac)
77 {
78 	int rem;
79 	int exp = 0;
80 
81 	*micro_frac = 0;
82 	if (divisor == 0) {
83 		*whole = 0;
84 		return;
85 	}
86 	*whole = dividend/divisor;
87 	rem = dividend % divisor;
88 	if (rem) {
89 		while (rem <= divisor) {
90 			rem *= 10;
91 			exp++;
92 		}
93 		*micro_frac = (rem / divisor) * int_pow(10, 6 - exp);
94 	}
95 }
96 
split_micro_fraction(unsigned int no,int exp,int * val1,int * val2)97 static void split_micro_fraction(unsigned int no, int exp, int *val1, int *val2)
98 {
99 	int divisor = int_pow(10, exp);
100 
101 	*val1 = no / divisor;
102 	*val2 = no % divisor * int_pow(10, 6 - exp);
103 }
104 
105 /*
106 VTF format uses exponent and variable size format.
107 For example if the size is 2 bytes
108 0x0067 with VTF16E14 format -> +1.03
109 To convert just change to 0x67 to decimal and use two decimal as E14 stands
110 for 10^-2.
111 Negative numbers are 2's complement
112 */
convert_from_vtf_format(u32 value,int size,int exp,int * val1,int * val2)113 static void convert_from_vtf_format(u32 value, int size, int exp,
114 					int *val1, int *val2)
115 {
116 	int sign = 1;
117 
118 	if (value & BIT(size*8 - 1)) {
119 		value =  ((1LL << (size * 8)) - value);
120 		sign = -1;
121 	}
122 	exp = hid_sensor_convert_exponent(exp);
123 	if (exp >= 0) {
124 		*val1 = sign * value * int_pow(10, exp);
125 		*val2 = 0;
126 	} else {
127 		split_micro_fraction(value, -exp, val1, val2);
128 		if (*val1)
129 			*val1 = sign * (*val1);
130 		else
131 			*val2 = sign * (*val2);
132 	}
133 }
134 
convert_to_vtf_format(int size,int exp,int val1,int val2)135 static u32 convert_to_vtf_format(int size, int exp, int val1, int val2)
136 {
137 	int divisor;
138 	u32 value;
139 	int sign = 1;
140 
141 	if (val1 < 0 || val2 < 0)
142 		sign = -1;
143 	exp = hid_sensor_convert_exponent(exp);
144 	if (exp < 0) {
145 		divisor = int_pow(10, 6 + exp);
146 		value = abs(val1) * int_pow(10, -exp);
147 		value += abs(val2) / divisor;
148 	} else {
149 		divisor = int_pow(10, exp);
150 		value = abs(val1) / divisor;
151 	}
152 	if (sign < 0)
153 		value =  ((1LL << (size * 8)) - value);
154 
155 	return value;
156 }
157 
hid_sensor_read_poll_value(struct hid_sensor_common * st)158 s32 hid_sensor_read_poll_value(struct hid_sensor_common *st)
159 {
160 	s32 value = 0;
161 	int ret;
162 
163 	ret = sensor_hub_get_feature(st->hsdev,
164 				     st->poll.report_id,
165 				     st->poll.index, sizeof(value), &value);
166 
167 	if (ret < 0 || value < 0) {
168 		return -EINVAL;
169 	} else {
170 		if (st->poll.units == HID_USAGE_SENSOR_UNITS_SECOND)
171 			value = value * 1000;
172 	}
173 
174 	return value;
175 }
176 EXPORT_SYMBOL_NS(hid_sensor_read_poll_value, "IIO_HID_ATTRIBUTES");
177 
hid_sensor_read_samp_freq_value(struct hid_sensor_common * st,int * val1,int * val2)178 int hid_sensor_read_samp_freq_value(struct hid_sensor_common *st,
179 				int *val1, int *val2)
180 {
181 	s32 value;
182 	int ret;
183 
184 	ret = sensor_hub_get_feature(st->hsdev,
185 				     st->poll.report_id,
186 				     st->poll.index, sizeof(value), &value);
187 	if (ret < 0 || value < 0) {
188 		*val1 = *val2 = 0;
189 		return -EINVAL;
190 	} else {
191 		if (st->poll.units == HID_USAGE_SENSOR_UNITS_MILLISECOND)
192 			simple_div(1000, value, val1, val2);
193 		else if (st->poll.units == HID_USAGE_SENSOR_UNITS_SECOND)
194 			simple_div(1, value, val1, val2);
195 		else {
196 			*val1 = *val2 = 0;
197 			return -EINVAL;
198 		}
199 	}
200 
201 	return IIO_VAL_INT_PLUS_MICRO;
202 }
203 EXPORT_SYMBOL_NS(hid_sensor_read_samp_freq_value, "IIO_HID");
204 
hid_sensor_write_samp_freq_value(struct hid_sensor_common * st,int val1,int val2)205 int hid_sensor_write_samp_freq_value(struct hid_sensor_common *st,
206 				int val1, int val2)
207 {
208 	s32 value;
209 	int ret;
210 
211 	if (val1 < 0 || val2 < 0)
212 		return -EINVAL;
213 
214 	value = val1 * HZ_PER_MHZ + val2;
215 	if (value) {
216 		if (st->poll.units == HID_USAGE_SENSOR_UNITS_MILLISECOND)
217 			value = NSEC_PER_SEC / value;
218 		else if (st->poll.units == HID_USAGE_SENSOR_UNITS_SECOND)
219 			value = USEC_PER_SEC / value;
220 		else
221 			value = 0;
222 	}
223 	ret = sensor_hub_set_feature(st->hsdev, st->poll.report_id,
224 				     st->poll.index, sizeof(value), &value);
225 	if (ret < 0 || value < 0)
226 		return -EINVAL;
227 
228 	ret = sensor_hub_get_feature(st->hsdev,
229 				     st->poll.report_id,
230 				     st->poll.index, sizeof(value), &value);
231 	if (ret < 0 || value < 0)
232 		return -EINVAL;
233 
234 	st->poll_interval = value;
235 
236 	return 0;
237 }
238 EXPORT_SYMBOL_NS(hid_sensor_write_samp_freq_value, "IIO_HID");
239 
hid_sensor_read_raw_hyst_value(struct hid_sensor_common * st,int * val1,int * val2)240 int hid_sensor_read_raw_hyst_value(struct hid_sensor_common *st,
241 				int *val1, int *val2)
242 {
243 	s32 value;
244 	int ret;
245 
246 	ret = sensor_hub_get_feature(st->hsdev,
247 				     st->sensitivity.report_id,
248 				     st->sensitivity.index, sizeof(value),
249 				     &value);
250 	if (ret < 0 || value < 0) {
251 		*val1 = *val2 = 0;
252 		return -EINVAL;
253 	} else {
254 		convert_from_vtf_format(value, st->sensitivity.size,
255 					st->sensitivity.unit_expo,
256 					val1, val2);
257 	}
258 
259 	return IIO_VAL_INT_PLUS_MICRO;
260 }
261 EXPORT_SYMBOL_NS(hid_sensor_read_raw_hyst_value, "IIO_HID");
262 
hid_sensor_read_raw_hyst_rel_value(struct hid_sensor_common * st,int * val1,int * val2)263 int hid_sensor_read_raw_hyst_rel_value(struct hid_sensor_common *st, int *val1,
264 				       int *val2)
265 {
266 	s32 value;
267 	int ret;
268 
269 	ret = sensor_hub_get_feature(st->hsdev,
270 				     st->sensitivity_rel.report_id,
271 				     st->sensitivity_rel.index, sizeof(value),
272 				     &value);
273 	if (ret < 0 || value < 0) {
274 		*val1 = *val2 = 0;
275 		return -EINVAL;
276 	}
277 
278 	convert_from_vtf_format(value, st->sensitivity_rel.size,
279 				st->sensitivity_rel.unit_expo, val1, val2);
280 
281 	return IIO_VAL_INT_PLUS_MICRO;
282 }
283 EXPORT_SYMBOL_NS(hid_sensor_read_raw_hyst_rel_value, "IIO_HID");
284 
285 
hid_sensor_write_raw_hyst_value(struct hid_sensor_common * st,int val1,int val2)286 int hid_sensor_write_raw_hyst_value(struct hid_sensor_common *st,
287 					int val1, int val2)
288 {
289 	s32 value;
290 	int ret;
291 
292 	if (val1 < 0 || val2 < 0)
293 		return -EINVAL;
294 
295 	value = convert_to_vtf_format(st->sensitivity.size,
296 				st->sensitivity.unit_expo,
297 				val1, val2);
298 	ret = sensor_hub_set_feature(st->hsdev, st->sensitivity.report_id,
299 				     st->sensitivity.index, sizeof(value),
300 				     &value);
301 	if (ret < 0 || value < 0)
302 		return -EINVAL;
303 
304 	ret = sensor_hub_get_feature(st->hsdev,
305 				     st->sensitivity.report_id,
306 				     st->sensitivity.index, sizeof(value),
307 				     &value);
308 	if (ret < 0 || value < 0)
309 		return -EINVAL;
310 
311 	st->raw_hystersis = value;
312 
313 	return 0;
314 }
315 EXPORT_SYMBOL_NS(hid_sensor_write_raw_hyst_value, "IIO_HID");
316 
hid_sensor_write_raw_hyst_rel_value(struct hid_sensor_common * st,int val1,int val2)317 int hid_sensor_write_raw_hyst_rel_value(struct hid_sensor_common *st,
318 					int val1, int val2)
319 {
320 	s32 value;
321 	int ret;
322 
323 	if (val1 < 0 || val2 < 0)
324 		return -EINVAL;
325 
326 	value = convert_to_vtf_format(st->sensitivity_rel.size,
327 				st->sensitivity_rel.unit_expo,
328 				val1, val2);
329 	ret = sensor_hub_set_feature(st->hsdev, st->sensitivity_rel.report_id,
330 				     st->sensitivity_rel.index, sizeof(value),
331 				     &value);
332 	if (ret < 0 || value < 0)
333 		return -EINVAL;
334 
335 	ret = sensor_hub_get_feature(st->hsdev,
336 				     st->sensitivity_rel.report_id,
337 				     st->sensitivity_rel.index, sizeof(value),
338 				     &value);
339 	if (ret < 0 || value < 0)
340 		return -EINVAL;
341 
342 	st->raw_hystersis = value;
343 
344 	return 0;
345 }
346 EXPORT_SYMBOL_NS(hid_sensor_write_raw_hyst_rel_value, "IIO_HID");
347 
348 /*
349  * This fuction applies the unit exponent to the scale.
350  * For example:
351  * 9.806650000 ->exp:2-> val0[980]val1[665000000]
352  * 9.000806000 ->exp:2-> val0[900]val1[80600000]
353  * 0.174535293 ->exp:2-> val0[17]val1[453529300]
354  * 1.001745329 ->exp:0-> val0[1]val1[1745329]
355  * 1.001745329 ->exp:2-> val0[100]val1[174532900]
356  * 1.001745329 ->exp:4-> val0[10017]val1[453290000]
357  * 9.806650000 ->exp:-2-> val0[0]val1[98066500]
358  */
adjust_exponent_nano(int * val0,int * val1,int scale0,int scale1,int exp)359 static void adjust_exponent_nano(int *val0, int *val1, int scale0,
360 				  int scale1, int exp)
361 {
362 	int divisor;
363 	int i;
364 	int x;
365 	int res;
366 	int rem;
367 
368 	if (exp > 0) {
369 		*val0 = scale0 * int_pow(10, exp);
370 		res = 0;
371 		if (exp > 9) {
372 			*val1 = 0;
373 			return;
374 		}
375 		for (i = 0; i < exp; ++i) {
376 			divisor = int_pow(10, 8 - i);
377 			x = scale1 / divisor;
378 			res += int_pow(10, exp - 1 - i) * x;
379 			scale1 = scale1 % divisor;
380 		}
381 		*val0 += res;
382 		*val1 = scale1 * int_pow(10, exp);
383 	} else if (exp < 0) {
384 		exp = abs(exp);
385 		if (exp > 9) {
386 			*val0 = *val1 = 0;
387 			return;
388 		}
389 		divisor = int_pow(10, exp);
390 		*val0 = scale0 / divisor;
391 		rem = scale0 % divisor;
392 		res = 0;
393 		for (i = 0; i < (9 - exp); ++i) {
394 			divisor = int_pow(10, 8 - i);
395 			x = scale1 / divisor;
396 			res += int_pow(10, 8 - exp - i) * x;
397 			scale1 = scale1 % divisor;
398 		}
399 		*val1 = rem * int_pow(10, 9 - exp) + res;
400 	} else {
401 		*val0 = scale0;
402 		*val1 = scale1;
403 	}
404 }
405 
hid_sensor_format_scale(u32 usage_id,struct hid_sensor_hub_attribute_info * attr_info,int * val0,int * val1)406 int hid_sensor_format_scale(u32 usage_id,
407 			struct hid_sensor_hub_attribute_info *attr_info,
408 			int *val0, int *val1)
409 {
410 	int i;
411 	int exp;
412 
413 	*val0 = 1;
414 	*val1 = 0;
415 
416 	for (i = 0; i < ARRAY_SIZE(unit_conversion); ++i) {
417 		if (unit_conversion[i].usage_id == usage_id &&
418 			unit_conversion[i].unit == attr_info->units) {
419 			exp  = hid_sensor_convert_exponent(
420 						attr_info->unit_expo);
421 			adjust_exponent_nano(val0, val1,
422 					unit_conversion[i].scale_val0,
423 					unit_conversion[i].scale_val1, exp);
424 			break;
425 		}
426 	}
427 
428 	return IIO_VAL_INT_PLUS_NANO;
429 }
430 EXPORT_SYMBOL_NS(hid_sensor_format_scale, "IIO_HID");
431 
hid_sensor_convert_timestamp(struct hid_sensor_common * st,int64_t raw_value)432 int64_t hid_sensor_convert_timestamp(struct hid_sensor_common *st,
433 				     int64_t raw_value)
434 {
435 	return st->timestamp_ns_scale * raw_value;
436 }
437 EXPORT_SYMBOL_NS(hid_sensor_convert_timestamp, "IIO_HID");
438 
439 static
hid_sensor_get_reporting_interval(struct hid_sensor_hub_device * hsdev,u32 usage_id,struct hid_sensor_common * st)440 int hid_sensor_get_reporting_interval(struct hid_sensor_hub_device *hsdev,
441 					u32 usage_id,
442 					struct hid_sensor_common *st)
443 {
444 	sensor_hub_input_get_attribute_info(hsdev,
445 					HID_FEATURE_REPORT, usage_id,
446 					HID_USAGE_SENSOR_PROP_REPORT_INTERVAL,
447 					&st->poll);
448 	/* Default unit of measure is milliseconds */
449 	if (st->poll.units == 0)
450 		st->poll.units = HID_USAGE_SENSOR_UNITS_MILLISECOND;
451 
452 	st->poll_interval = -1;
453 
454 	return 0;
455 
456 }
457 
hid_sensor_get_report_latency_info(struct hid_sensor_hub_device * hsdev,u32 usage_id,struct hid_sensor_common * st)458 static void hid_sensor_get_report_latency_info(struct hid_sensor_hub_device *hsdev,
459 					       u32 usage_id,
460 					       struct hid_sensor_common *st)
461 {
462 	sensor_hub_input_get_attribute_info(hsdev, HID_FEATURE_REPORT,
463 					    usage_id,
464 					    HID_USAGE_SENSOR_PROP_REPORT_LATENCY,
465 					    &st->report_latency);
466 
467 	hid_dbg(hsdev->hdev, "Report latency attributes: %x:%x\n",
468 		st->report_latency.index, st->report_latency.report_id);
469 }
470 
hid_sensor_get_report_latency(struct hid_sensor_common * st)471 int hid_sensor_get_report_latency(struct hid_sensor_common *st)
472 {
473 	int ret;
474 	int value;
475 
476 	ret = sensor_hub_get_feature(st->hsdev, st->report_latency.report_id,
477 				     st->report_latency.index, sizeof(value),
478 				     &value);
479 	if (ret < 0)
480 		return ret;
481 
482 	return value;
483 }
484 EXPORT_SYMBOL_NS(hid_sensor_get_report_latency, "IIO_HID_ATTRIBUTES");
485 
hid_sensor_set_report_latency(struct hid_sensor_common * st,int latency_ms)486 int hid_sensor_set_report_latency(struct hid_sensor_common *st, int latency_ms)
487 {
488 	return sensor_hub_set_feature(st->hsdev, st->report_latency.report_id,
489 				      st->report_latency.index,
490 				      sizeof(latency_ms), &latency_ms);
491 }
492 EXPORT_SYMBOL_NS(hid_sensor_set_report_latency, "IIO_HID_ATTRIBUTES");
493 
hid_sensor_batch_mode_supported(struct hid_sensor_common * st)494 bool hid_sensor_batch_mode_supported(struct hid_sensor_common *st)
495 {
496 	return st->report_latency.index > 0 && st->report_latency.report_id > 0;
497 }
498 EXPORT_SYMBOL_NS(hid_sensor_batch_mode_supported, "IIO_HID_ATTRIBUTES");
499 
hid_sensor_parse_common_attributes(struct hid_sensor_hub_device * hsdev,u32 usage_id,struct hid_sensor_common * st,const u32 * sensitivity_addresses,u32 sensitivity_addresses_len)500 int hid_sensor_parse_common_attributes(struct hid_sensor_hub_device *hsdev,
501 					u32 usage_id,
502 					struct hid_sensor_common *st,
503 					const u32 *sensitivity_addresses,
504 					u32 sensitivity_addresses_len)
505 {
506 
507 	struct hid_sensor_hub_attribute_info timestamp;
508 	s32 value;
509 	int ret;
510 	int i;
511 
512 	hid_sensor_get_reporting_interval(hsdev, usage_id, st);
513 
514 	sensor_hub_input_get_attribute_info(hsdev,
515 					HID_FEATURE_REPORT, usage_id,
516 					HID_USAGE_SENSOR_PROP_REPORT_STATE,
517 					&st->report_state);
518 
519 	sensor_hub_input_get_attribute_info(hsdev,
520 					HID_FEATURE_REPORT, usage_id,
521 					HID_USAGE_SENSOR_PROY_POWER_STATE,
522 					&st->power_state);
523 
524 	st->power_state.logical_minimum = 1;
525 	st->report_state.logical_minimum = 1;
526 
527 	sensor_hub_input_get_attribute_info(hsdev,
528 			HID_FEATURE_REPORT, usage_id,
529 			HID_USAGE_SENSOR_PROP_SENSITIVITY_ABS,
530 			 &st->sensitivity);
531 
532 	sensor_hub_input_get_attribute_info(hsdev,
533 			HID_FEATURE_REPORT, usage_id,
534 			HID_USAGE_SENSOR_PROP_SENSITIVITY_REL_PCT,
535 			&st->sensitivity_rel);
536 	/*
537 	 * Set Sensitivity field ids, when there is no individual modifier, will
538 	 * check absolute sensitivity and relative sensitivity of data field
539 	 */
540 	for (i = 0; i < sensitivity_addresses_len; i++) {
541 		if (st->sensitivity.index < 0)
542 			sensor_hub_input_get_attribute_info(
543 				hsdev, HID_FEATURE_REPORT, usage_id,
544 				HID_USAGE_SENSOR_DATA_MOD_CHANGE_SENSITIVITY_ABS |
545 					sensitivity_addresses[i],
546 				&st->sensitivity);
547 
548 		if (st->sensitivity_rel.index < 0)
549 			sensor_hub_input_get_attribute_info(
550 				hsdev, HID_FEATURE_REPORT, usage_id,
551 				HID_USAGE_SENSOR_DATA_MOD_CHANGE_SENSITIVITY_REL_PCT |
552 					sensitivity_addresses[i],
553 				&st->sensitivity_rel);
554 	}
555 
556 	st->raw_hystersis = -1;
557 
558 	sensor_hub_input_get_attribute_info(hsdev,
559 					    HID_INPUT_REPORT, usage_id,
560 					    HID_USAGE_SENSOR_TIME_TIMESTAMP,
561 					    &timestamp);
562 	if (timestamp.index >= 0 && timestamp.report_id) {
563 		int val0, val1;
564 
565 		hid_sensor_format_scale(HID_USAGE_SENSOR_TIME_TIMESTAMP,
566 					&timestamp, &val0, &val1);
567 		st->timestamp_ns_scale = val0;
568 	} else
569 		st->timestamp_ns_scale = 1000000000;
570 
571 	hid_sensor_get_report_latency_info(hsdev, usage_id, st);
572 
573 	hid_dbg(hsdev->hdev, "common attributes: %x:%x, %x:%x, %x:%x %x:%x %x:%x\n",
574 		st->poll.index, st->poll.report_id,
575 		st->report_state.index, st->report_state.report_id,
576 		st->power_state.index, st->power_state.report_id,
577 		st->sensitivity.index, st->sensitivity.report_id,
578 		timestamp.index, timestamp.report_id);
579 
580 	ret = sensor_hub_get_feature(hsdev,
581 				st->power_state.report_id,
582 				st->power_state.index, sizeof(value), &value);
583 	if (ret < 0)
584 		return ret;
585 	if (value < 0)
586 		return -EINVAL;
587 
588 	return 0;
589 }
590 EXPORT_SYMBOL_NS(hid_sensor_parse_common_attributes, "IIO_HID");
591 
592 MODULE_AUTHOR("Srinivas Pandruvada <srinivas.pandruvada@intel.com>");
593 MODULE_DESCRIPTION("HID Sensor common attribute processing");
594 MODULE_LICENSE("GPL");
595