blob: 13a6290c8d2548a7db45e19be1e6fb1f771ec5b2 [file] [log] [blame]
Eddie Jamese2f05d62019-01-28 10:23:23 -06001// SPDX-License-Identifier: GPL-2.0+
2// Copyright IBM Corp 2019
Eddie James5b5513b2018-11-08 15:05:24 -06003
4#include <linux/device.h>
Jean Delvare5679ed92019-04-10 12:47:26 +02005#include <linux/export.h>
Eddie James54076cb2018-11-08 15:05:28 -06006#include <linux/hwmon.h>
Eddie Jamesc10e7532018-11-08 15:05:27 -06007#include <linux/hwmon-sysfs.h>
8#include <linux/jiffies.h>
Eddie Jamesaa195fe2018-11-08 15:05:26 -06009#include <linux/kernel.h>
Eddie Jamesc10e7532018-11-08 15:05:27 -060010#include <linux/math64.h>
Jean Delvare5679ed92019-04-10 12:47:26 +020011#include <linux/module.h>
Eddie Jamesc10e7532018-11-08 15:05:27 -060012#include <linux/mutex.h>
Eddie James54076cb2018-11-08 15:05:28 -060013#include <linux/sysfs.h>
Eddie Jamesc10e7532018-11-08 15:05:27 -060014#include <asm/unaligned.h>
Eddie James5b5513b2018-11-08 15:05:24 -060015
16#include "common.h"
17
Eddie Jamesc10e7532018-11-08 15:05:27 -060018#define EXTN_FLAG_SENSOR_ID BIT(7)
19
Eddie Jamesdf04ced2018-11-08 15:05:29 -060020#define OCC_ERROR_COUNT_THRESHOLD 2 /* required by OCC spec */
21
22#define OCC_STATE_SAFE 4
23#define OCC_SAFE_TIMEOUT msecs_to_jiffies(60000) /* 1 min */
24
Eddie Jamesc10e7532018-11-08 15:05:27 -060025#define OCC_UPDATE_FREQUENCY msecs_to_jiffies(1000)
26
27#define OCC_TEMP_SENSOR_FAULT 0xFF
28
29#define OCC_FRU_TYPE_VRM 3
30
31/* OCC sensor type and version definitions */
32
33struct temp_sensor_1 {
34 u16 sensor_id;
35 u16 value;
36} __packed;
37
38struct temp_sensor_2 {
39 u32 sensor_id;
40 u8 fru_type;
41 u8 value;
42} __packed;
43
44struct freq_sensor_1 {
45 u16 sensor_id;
46 u16 value;
47} __packed;
48
49struct freq_sensor_2 {
50 u32 sensor_id;
51 u16 value;
52} __packed;
53
54struct power_sensor_1 {
55 u16 sensor_id;
56 u32 update_tag;
57 u32 accumulator;
58 u16 value;
59} __packed;
60
61struct power_sensor_2 {
62 u32 sensor_id;
63 u8 function_id;
64 u8 apss_channel;
65 u16 reserved;
66 u32 update_tag;
67 u64 accumulator;
68 u16 value;
69} __packed;
70
71struct power_sensor_data {
72 u16 value;
73 u32 update_tag;
74 u64 accumulator;
75} __packed;
76
77struct power_sensor_data_and_time {
78 u16 update_time;
79 u16 value;
80 u32 update_tag;
81 u64 accumulator;
82} __packed;
83
84struct power_sensor_a0 {
85 u32 sensor_id;
86 struct power_sensor_data_and_time system;
87 u32 reserved;
88 struct power_sensor_data_and_time proc;
89 struct power_sensor_data vdd;
90 struct power_sensor_data vdn;
91} __packed;
92
93struct caps_sensor_2 {
94 u16 cap;
95 u16 system_power;
96 u16 n_cap;
97 u16 max;
98 u16 min;
99 u16 user;
100 u8 user_source;
101} __packed;
102
103struct caps_sensor_3 {
104 u16 cap;
105 u16 system_power;
106 u16 n_cap;
107 u16 max;
108 u16 hard_min;
109 u16 soft_min;
110 u16 user;
111 u8 user_source;
112} __packed;
113
114struct extended_sensor {
115 union {
116 u8 name[4];
117 u32 sensor_id;
118 };
119 u8 flags;
120 u8 reserved;
121 u8 data[6];
122} __packed;
123
Eddie James5b5513b2018-11-08 15:05:24 -0600124static int occ_poll(struct occ *occ)
125{
Eddie Jamesdf04ced2018-11-08 15:05:29 -0600126 int rc;
Eddie James5b5513b2018-11-08 15:05:24 -0600127 u16 checksum = occ->poll_cmd_data + 1;
128 u8 cmd[8];
Eddie Jamesdf04ced2018-11-08 15:05:29 -0600129 struct occ_poll_response_header *header;
Eddie James5b5513b2018-11-08 15:05:24 -0600130
131 /* big endian */
132 cmd[0] = 0; /* sequence number */
133 cmd[1] = 0; /* cmd type */
134 cmd[2] = 0; /* data length msb */
135 cmd[3] = 1; /* data length lsb */
136 cmd[4] = occ->poll_cmd_data; /* data */
137 cmd[5] = checksum >> 8; /* checksum msb */
138 cmd[6] = checksum & 0xFF; /* checksum lsb */
139 cmd[7] = 0;
140
Eddie Jamesc10e7532018-11-08 15:05:27 -0600141 /* mutex should already be locked if necessary */
Eddie Jamesdf04ced2018-11-08 15:05:29 -0600142 rc = occ->send_cmd(occ, cmd);
143 if (rc) {
Eddie Jamesb5c46a52019-04-16 15:43:48 +0000144 occ->last_error = rc;
Eddie Jamesdf04ced2018-11-08 15:05:29 -0600145 if (occ->error_count++ > OCC_ERROR_COUNT_THRESHOLD)
146 occ->error = rc;
147
148 goto done;
149 }
150
151 /* clear error since communication was successful */
152 occ->error_count = 0;
Eddie Jamesb5c46a52019-04-16 15:43:48 +0000153 occ->last_error = 0;
Eddie Jamesdf04ced2018-11-08 15:05:29 -0600154 occ->error = 0;
155
156 /* check for safe state */
157 header = (struct occ_poll_response_header *)occ->resp.data;
158 if (header->occ_state == OCC_STATE_SAFE) {
159 if (occ->last_safe) {
160 if (time_after(jiffies,
161 occ->last_safe + OCC_SAFE_TIMEOUT))
162 occ->error = -EHOSTDOWN;
163 } else {
164 occ->last_safe = jiffies;
165 }
166 } else {
167 occ->last_safe = 0;
168 }
169
170done:
171 occ_sysfs_poll_done(occ);
172 return rc;
Eddie James5b5513b2018-11-08 15:05:24 -0600173}
174
Eddie Jamesc10e7532018-11-08 15:05:27 -0600175static int occ_set_user_power_cap(struct occ *occ, u16 user_power_cap)
176{
177 int rc;
178 u8 cmd[8];
179 u16 checksum = 0x24;
180 __be16 user_power_cap_be = cpu_to_be16(user_power_cap);
181
182 cmd[0] = 0;
183 cmd[1] = 0x22;
184 cmd[2] = 0;
185 cmd[3] = 2;
186
187 memcpy(&cmd[4], &user_power_cap_be, 2);
188
189 checksum += cmd[4] + cmd[5];
190 cmd[6] = checksum >> 8;
191 cmd[7] = checksum & 0xFF;
192
193 rc = mutex_lock_interruptible(&occ->lock);
194 if (rc)
195 return rc;
196
197 rc = occ->send_cmd(occ, cmd);
198
199 mutex_unlock(&occ->lock);
200
201 return rc;
202}
203
Eddie Jamesdf04ced2018-11-08 15:05:29 -0600204int occ_update_response(struct occ *occ)
Eddie Jamesc10e7532018-11-08 15:05:27 -0600205{
206 int rc = mutex_lock_interruptible(&occ->lock);
207
208 if (rc)
209 return rc;
210
211 /* limit the maximum rate of polling the OCC */
212 if (time_after(jiffies, occ->last_update + OCC_UPDATE_FREQUENCY)) {
213 rc = occ_poll(occ);
214 occ->last_update = jiffies;
Eddie Jamesb5c46a52019-04-16 15:43:48 +0000215 } else {
216 rc = occ->last_error;
Eddie Jamesc10e7532018-11-08 15:05:27 -0600217 }
218
219 mutex_unlock(&occ->lock);
220 return rc;
221}
222
223static ssize_t occ_show_temp_1(struct device *dev,
224 struct device_attribute *attr, char *buf)
225{
226 int rc;
227 u32 val = 0;
228 struct temp_sensor_1 *temp;
229 struct occ *occ = dev_get_drvdata(dev);
230 struct occ_sensors *sensors = &occ->sensors;
231 struct sensor_device_attribute_2 *sattr = to_sensor_dev_attr_2(attr);
232
233 rc = occ_update_response(occ);
234 if (rc)
235 return rc;
236
237 temp = ((struct temp_sensor_1 *)sensors->temp.data) + sattr->index;
238
239 switch (sattr->nr) {
240 case 0:
241 val = get_unaligned_be16(&temp->sensor_id);
242 break;
243 case 1:
244 val = get_unaligned_be16(&temp->value) * 1000;
245 break;
246 default:
247 return -EINVAL;
248 }
249
250 return snprintf(buf, PAGE_SIZE - 1, "%u\n", val);
251}
252
253static ssize_t occ_show_temp_2(struct device *dev,
254 struct device_attribute *attr, char *buf)
255{
256 int rc;
257 u32 val = 0;
258 struct temp_sensor_2 *temp;
259 struct occ *occ = dev_get_drvdata(dev);
260 struct occ_sensors *sensors = &occ->sensors;
261 struct sensor_device_attribute_2 *sattr = to_sensor_dev_attr_2(attr);
262
263 rc = occ_update_response(occ);
264 if (rc)
265 return rc;
266
267 temp = ((struct temp_sensor_2 *)sensors->temp.data) + sattr->index;
268
269 switch (sattr->nr) {
270 case 0:
271 val = get_unaligned_be32(&temp->sensor_id);
272 break;
273 case 1:
274 val = temp->value;
275 if (val == OCC_TEMP_SENSOR_FAULT)
276 return -EREMOTEIO;
277
278 /*
279 * VRM doesn't return temperature, only alarm bit. This
280 * attribute maps to tempX_alarm instead of tempX_input for
281 * VRM
282 */
283 if (temp->fru_type != OCC_FRU_TYPE_VRM) {
284 /* sensor not ready */
285 if (val == 0)
286 return -EAGAIN;
287
288 val *= 1000;
289 }
290 break;
291 case 2:
292 val = temp->fru_type;
293 break;
294 case 3:
295 val = temp->value == OCC_TEMP_SENSOR_FAULT;
296 break;
297 default:
298 return -EINVAL;
299 }
300
301 return snprintf(buf, PAGE_SIZE - 1, "%u\n", val);
302}
303
304static ssize_t occ_show_freq_1(struct device *dev,
305 struct device_attribute *attr, char *buf)
306{
307 int rc;
308 u16 val = 0;
309 struct freq_sensor_1 *freq;
310 struct occ *occ = dev_get_drvdata(dev);
311 struct occ_sensors *sensors = &occ->sensors;
312 struct sensor_device_attribute_2 *sattr = to_sensor_dev_attr_2(attr);
313
314 rc = occ_update_response(occ);
315 if (rc)
316 return rc;
317
318 freq = ((struct freq_sensor_1 *)sensors->freq.data) + sattr->index;
319
320 switch (sattr->nr) {
321 case 0:
322 val = get_unaligned_be16(&freq->sensor_id);
323 break;
324 case 1:
325 val = get_unaligned_be16(&freq->value);
326 break;
327 default:
328 return -EINVAL;
329 }
330
331 return snprintf(buf, PAGE_SIZE - 1, "%u\n", val);
332}
333
334static ssize_t occ_show_freq_2(struct device *dev,
335 struct device_attribute *attr, char *buf)
336{
337 int rc;
338 u32 val = 0;
339 struct freq_sensor_2 *freq;
340 struct occ *occ = dev_get_drvdata(dev);
341 struct occ_sensors *sensors = &occ->sensors;
342 struct sensor_device_attribute_2 *sattr = to_sensor_dev_attr_2(attr);
343
344 rc = occ_update_response(occ);
345 if (rc)
346 return rc;
347
348 freq = ((struct freq_sensor_2 *)sensors->freq.data) + sattr->index;
349
350 switch (sattr->nr) {
351 case 0:
352 val = get_unaligned_be32(&freq->sensor_id);
353 break;
354 case 1:
355 val = get_unaligned_be16(&freq->value);
356 break;
357 default:
358 return -EINVAL;
359 }
360
361 return snprintf(buf, PAGE_SIZE - 1, "%u\n", val);
362}
363
364static ssize_t occ_show_power_1(struct device *dev,
365 struct device_attribute *attr, char *buf)
366{
367 int rc;
368 u64 val = 0;
369 struct power_sensor_1 *power;
370 struct occ *occ = dev_get_drvdata(dev);
371 struct occ_sensors *sensors = &occ->sensors;
372 struct sensor_device_attribute_2 *sattr = to_sensor_dev_attr_2(attr);
373
374 rc = occ_update_response(occ);
375 if (rc)
376 return rc;
377
378 power = ((struct power_sensor_1 *)sensors->power.data) + sattr->index;
379
380 switch (sattr->nr) {
381 case 0:
382 val = get_unaligned_be16(&power->sensor_id);
383 break;
384 case 1:
385 val = get_unaligned_be32(&power->accumulator) /
386 get_unaligned_be32(&power->update_tag);
387 val *= 1000000ULL;
388 break;
389 case 2:
Gustavo A. R. Silvab0407d82019-01-07 12:34:31 -0600390 val = (u64)get_unaligned_be32(&power->update_tag) *
391 occ->powr_sample_time_us;
Eddie Jamesc10e7532018-11-08 15:05:27 -0600392 break;
393 case 3:
394 val = get_unaligned_be16(&power->value) * 1000000ULL;
395 break;
396 default:
397 return -EINVAL;
398 }
399
400 return snprintf(buf, PAGE_SIZE - 1, "%llu\n", val);
401}
402
403static u64 occ_get_powr_avg(u64 *accum, u32 *samples)
404{
405 return div64_u64(get_unaligned_be64(accum) * 1000000ULL,
406 get_unaligned_be32(samples));
407}
408
409static ssize_t occ_show_power_2(struct device *dev,
410 struct device_attribute *attr, char *buf)
411{
412 int rc;
413 u64 val = 0;
414 struct power_sensor_2 *power;
415 struct occ *occ = dev_get_drvdata(dev);
416 struct occ_sensors *sensors = &occ->sensors;
417 struct sensor_device_attribute_2 *sattr = to_sensor_dev_attr_2(attr);
418
419 rc = occ_update_response(occ);
420 if (rc)
421 return rc;
422
423 power = ((struct power_sensor_2 *)sensors->power.data) + sattr->index;
424
425 switch (sattr->nr) {
426 case 0:
427 return snprintf(buf, PAGE_SIZE - 1, "%u_%u_%u\n",
428 get_unaligned_be32(&power->sensor_id),
429 power->function_id, power->apss_channel);
430 case 1:
431 val = occ_get_powr_avg(&power->accumulator,
432 &power->update_tag);
433 break;
434 case 2:
Gustavo A. R. Silvab0407d82019-01-07 12:34:31 -0600435 val = (u64)get_unaligned_be32(&power->update_tag) *
436 occ->powr_sample_time_us;
Eddie Jamesc10e7532018-11-08 15:05:27 -0600437 break;
438 case 3:
439 val = get_unaligned_be16(&power->value) * 1000000ULL;
440 break;
441 default:
442 return -EINVAL;
443 }
444
445 return snprintf(buf, PAGE_SIZE - 1, "%llu\n", val);
446}
447
448static ssize_t occ_show_power_a0(struct device *dev,
449 struct device_attribute *attr, char *buf)
450{
451 int rc;
452 u64 val = 0;
453 struct power_sensor_a0 *power;
454 struct occ *occ = dev_get_drvdata(dev);
455 struct occ_sensors *sensors = &occ->sensors;
456 struct sensor_device_attribute_2 *sattr = to_sensor_dev_attr_2(attr);
457
458 rc = occ_update_response(occ);
459 if (rc)
460 return rc;
461
462 power = ((struct power_sensor_a0 *)sensors->power.data) + sattr->index;
463
464 switch (sattr->nr) {
465 case 0:
466 return snprintf(buf, PAGE_SIZE - 1, "%u_system\n",
467 get_unaligned_be32(&power->sensor_id));
468 case 1:
469 val = occ_get_powr_avg(&power->system.accumulator,
470 &power->system.update_tag);
471 break;
472 case 2:
Gustavo A. R. Silvab0407d82019-01-07 12:34:31 -0600473 val = (u64)get_unaligned_be32(&power->system.update_tag) *
474 occ->powr_sample_time_us;
Eddie Jamesc10e7532018-11-08 15:05:27 -0600475 break;
476 case 3:
477 val = get_unaligned_be16(&power->system.value) * 1000000ULL;
478 break;
479 case 4:
480 return snprintf(buf, PAGE_SIZE - 1, "%u_proc\n",
481 get_unaligned_be32(&power->sensor_id));
482 case 5:
483 val = occ_get_powr_avg(&power->proc.accumulator,
484 &power->proc.update_tag);
485 break;
486 case 6:
Gustavo A. R. Silvab0407d82019-01-07 12:34:31 -0600487 val = (u64)get_unaligned_be32(&power->proc.update_tag) *
488 occ->powr_sample_time_us;
Eddie Jamesc10e7532018-11-08 15:05:27 -0600489 break;
490 case 7:
491 val = get_unaligned_be16(&power->proc.value) * 1000000ULL;
492 break;
493 case 8:
494 return snprintf(buf, PAGE_SIZE - 1, "%u_vdd\n",
495 get_unaligned_be32(&power->sensor_id));
496 case 9:
497 val = occ_get_powr_avg(&power->vdd.accumulator,
498 &power->vdd.update_tag);
499 break;
500 case 10:
Gustavo A. R. Silvab0407d82019-01-07 12:34:31 -0600501 val = (u64)get_unaligned_be32(&power->vdd.update_tag) *
502 occ->powr_sample_time_us;
Eddie Jamesc10e7532018-11-08 15:05:27 -0600503 break;
504 case 11:
505 val = get_unaligned_be16(&power->vdd.value) * 1000000ULL;
506 break;
507 case 12:
508 return snprintf(buf, PAGE_SIZE - 1, "%u_vdn\n",
509 get_unaligned_be32(&power->sensor_id));
510 case 13:
511 val = occ_get_powr_avg(&power->vdn.accumulator,
512 &power->vdn.update_tag);
513 break;
514 case 14:
Gustavo A. R. Silvab0407d82019-01-07 12:34:31 -0600515 val = (u64)get_unaligned_be32(&power->vdn.update_tag) *
516 occ->powr_sample_time_us;
Eddie Jamesc10e7532018-11-08 15:05:27 -0600517 break;
518 case 15:
519 val = get_unaligned_be16(&power->vdn.value) * 1000000ULL;
520 break;
521 default:
522 return -EINVAL;
523 }
524
525 return snprintf(buf, PAGE_SIZE - 1, "%llu\n", val);
526}
527
528static ssize_t occ_show_caps_1_2(struct device *dev,
529 struct device_attribute *attr, char *buf)
530{
531 int rc;
532 u64 val = 0;
533 struct caps_sensor_2 *caps;
534 struct occ *occ = dev_get_drvdata(dev);
535 struct occ_sensors *sensors = &occ->sensors;
536 struct sensor_device_attribute_2 *sattr = to_sensor_dev_attr_2(attr);
537
538 rc = occ_update_response(occ);
539 if (rc)
540 return rc;
541
542 caps = ((struct caps_sensor_2 *)sensors->caps.data) + sattr->index;
543
544 switch (sattr->nr) {
545 case 0:
546 return snprintf(buf, PAGE_SIZE - 1, "system\n");
547 case 1:
548 val = get_unaligned_be16(&caps->cap) * 1000000ULL;
549 break;
550 case 2:
551 val = get_unaligned_be16(&caps->system_power) * 1000000ULL;
552 break;
553 case 3:
554 val = get_unaligned_be16(&caps->n_cap) * 1000000ULL;
555 break;
556 case 4:
557 val = get_unaligned_be16(&caps->max) * 1000000ULL;
558 break;
559 case 5:
560 val = get_unaligned_be16(&caps->min) * 1000000ULL;
561 break;
562 case 6:
563 val = get_unaligned_be16(&caps->user) * 1000000ULL;
564 break;
565 case 7:
566 if (occ->sensors.caps.version == 1)
567 return -EINVAL;
568
569 val = caps->user_source;
570 break;
571 default:
572 return -EINVAL;
573 }
574
575 return snprintf(buf, PAGE_SIZE - 1, "%llu\n", val);
576}
577
578static ssize_t occ_show_caps_3(struct device *dev,
579 struct device_attribute *attr, char *buf)
580{
581 int rc;
582 u64 val = 0;
583 struct caps_sensor_3 *caps;
584 struct occ *occ = dev_get_drvdata(dev);
585 struct occ_sensors *sensors = &occ->sensors;
586 struct sensor_device_attribute_2 *sattr = to_sensor_dev_attr_2(attr);
587
588 rc = occ_update_response(occ);
589 if (rc)
590 return rc;
591
592 caps = ((struct caps_sensor_3 *)sensors->caps.data) + sattr->index;
593
594 switch (sattr->nr) {
595 case 0:
596 return snprintf(buf, PAGE_SIZE - 1, "system\n");
597 case 1:
598 val = get_unaligned_be16(&caps->cap) * 1000000ULL;
599 break;
600 case 2:
601 val = get_unaligned_be16(&caps->system_power) * 1000000ULL;
602 break;
603 case 3:
604 val = get_unaligned_be16(&caps->n_cap) * 1000000ULL;
605 break;
606 case 4:
607 val = get_unaligned_be16(&caps->max) * 1000000ULL;
608 break;
609 case 5:
610 val = get_unaligned_be16(&caps->hard_min) * 1000000ULL;
611 break;
612 case 6:
613 val = get_unaligned_be16(&caps->user) * 1000000ULL;
614 break;
615 case 7:
616 val = caps->user_source;
617 break;
618 default:
619 return -EINVAL;
620 }
621
622 return snprintf(buf, PAGE_SIZE - 1, "%llu\n", val);
623}
624
625static ssize_t occ_store_caps_user(struct device *dev,
626 struct device_attribute *attr,
627 const char *buf, size_t count)
628{
629 int rc;
630 u16 user_power_cap;
631 unsigned long long value;
632 struct occ *occ = dev_get_drvdata(dev);
633
634 rc = kstrtoull(buf, 0, &value);
635 if (rc)
636 return rc;
637
638 user_power_cap = div64_u64(value, 1000000ULL); /* microwatt to watt */
639
640 rc = occ_set_user_power_cap(occ, user_power_cap);
641 if (rc)
642 return rc;
643
644 return count;
645}
646
647static ssize_t occ_show_extended(struct device *dev,
648 struct device_attribute *attr, char *buf)
649{
650 int rc;
651 struct extended_sensor *extn;
652 struct occ *occ = dev_get_drvdata(dev);
653 struct occ_sensors *sensors = &occ->sensors;
654 struct sensor_device_attribute_2 *sattr = to_sensor_dev_attr_2(attr);
655
656 rc = occ_update_response(occ);
657 if (rc)
658 return rc;
659
660 extn = ((struct extended_sensor *)sensors->extended.data) +
661 sattr->index;
662
663 switch (sattr->nr) {
664 case 0:
665 if (extn->flags & EXTN_FLAG_SENSOR_ID)
666 rc = snprintf(buf, PAGE_SIZE - 1, "%u",
667 get_unaligned_be32(&extn->sensor_id));
668 else
669 rc = snprintf(buf, PAGE_SIZE - 1, "%02x%02x%02x%02x\n",
670 extn->name[0], extn->name[1],
671 extn->name[2], extn->name[3]);
672 break;
673 case 1:
674 rc = snprintf(buf, PAGE_SIZE - 1, "%02x\n", extn->flags);
675 break;
676 case 2:
677 rc = snprintf(buf, PAGE_SIZE - 1, "%02x%02x%02x%02x%02x%02x\n",
678 extn->data[0], extn->data[1], extn->data[2],
679 extn->data[3], extn->data[4], extn->data[5]);
680 break;
681 default:
682 return -EINVAL;
683 }
684
685 return rc;
686}
687
Eddie James54076cb2018-11-08 15:05:28 -0600688/*
689 * Some helper macros to make it easier to define an occ_attribute. Since these
690 * are dynamically allocated, we shouldn't use the existing kernel macros which
691 * stringify the name argument.
692 */
693#define ATTR_OCC(_name, _mode, _show, _store) { \
694 .attr = { \
695 .name = _name, \
696 .mode = VERIFY_OCTAL_PERMISSIONS(_mode), \
697 }, \
698 .show = _show, \
699 .store = _store, \
700}
701
702#define SENSOR_ATTR_OCC(_name, _mode, _show, _store, _nr, _index) { \
703 .dev_attr = ATTR_OCC(_name, _mode, _show, _store), \
704 .index = _index, \
705 .nr = _nr, \
706}
707
708#define OCC_INIT_ATTR(_name, _mode, _show, _store, _nr, _index) \
709 ((struct sensor_device_attribute_2) \
710 SENSOR_ATTR_OCC(_name, _mode, _show, _store, _nr, _index))
711
712/*
713 * Allocate and instatiate sensor_device_attribute_2s. It's most efficient to
714 * use our own instead of the built-in hwmon attribute types.
715 */
716static int occ_setup_sensor_attrs(struct occ *occ)
717{
718 unsigned int i, s, num_attrs = 0;
719 struct device *dev = occ->bus_dev;
720 struct occ_sensors *sensors = &occ->sensors;
721 struct occ_attribute *attr;
722 struct temp_sensor_2 *temp;
723 ssize_t (*show_temp)(struct device *, struct device_attribute *,
724 char *) = occ_show_temp_1;
725 ssize_t (*show_freq)(struct device *, struct device_attribute *,
726 char *) = occ_show_freq_1;
727 ssize_t (*show_power)(struct device *, struct device_attribute *,
728 char *) = occ_show_power_1;
729 ssize_t (*show_caps)(struct device *, struct device_attribute *,
730 char *) = occ_show_caps_1_2;
731
732 switch (sensors->temp.version) {
733 case 1:
734 num_attrs += (sensors->temp.num_sensors * 2);
735 break;
736 case 2:
737 num_attrs += (sensors->temp.num_sensors * 4);
738 show_temp = occ_show_temp_2;
739 break;
740 default:
741 sensors->temp.num_sensors = 0;
742 }
743
744 switch (sensors->freq.version) {
745 case 2:
746 show_freq = occ_show_freq_2;
747 /* fall through */
748 case 1:
749 num_attrs += (sensors->freq.num_sensors * 2);
750 break;
751 default:
752 sensors->freq.num_sensors = 0;
753 }
754
755 switch (sensors->power.version) {
756 case 2:
757 show_power = occ_show_power_2;
758 /* fall through */
759 case 1:
760 num_attrs += (sensors->power.num_sensors * 4);
761 break;
762 case 0xA0:
763 num_attrs += (sensors->power.num_sensors * 16);
764 show_power = occ_show_power_a0;
765 break;
766 default:
767 sensors->power.num_sensors = 0;
768 }
769
770 switch (sensors->caps.version) {
771 case 1:
772 num_attrs += (sensors->caps.num_sensors * 7);
773 break;
774 case 3:
775 show_caps = occ_show_caps_3;
776 /* fall through */
777 case 2:
778 num_attrs += (sensors->caps.num_sensors * 8);
779 break;
780 default:
781 sensors->caps.num_sensors = 0;
782 }
783
784 switch (sensors->extended.version) {
785 case 1:
786 num_attrs += (sensors->extended.num_sensors * 3);
787 break;
788 default:
789 sensors->extended.num_sensors = 0;
790 }
791
792 occ->attrs = devm_kzalloc(dev, sizeof(*occ->attrs) * num_attrs,
793 GFP_KERNEL);
794 if (!occ->attrs)
795 return -ENOMEM;
796
797 /* null-terminated list */
798 occ->group.attrs = devm_kzalloc(dev, sizeof(*occ->group.attrs) *
799 num_attrs + 1, GFP_KERNEL);
800 if (!occ->group.attrs)
801 return -ENOMEM;
802
803 attr = occ->attrs;
804
805 for (i = 0; i < sensors->temp.num_sensors; ++i) {
806 s = i + 1;
807 temp = ((struct temp_sensor_2 *)sensors->temp.data) + i;
808
809 snprintf(attr->name, sizeof(attr->name), "temp%d_label", s);
810 attr->sensor = OCC_INIT_ATTR(attr->name, 0444, show_temp, NULL,
811 0, i);
812 attr++;
813
814 if (sensors->temp.version > 1 &&
815 temp->fru_type == OCC_FRU_TYPE_VRM) {
816 snprintf(attr->name, sizeof(attr->name),
817 "temp%d_alarm", s);
818 } else {
819 snprintf(attr->name, sizeof(attr->name),
820 "temp%d_input", s);
821 }
822
823 attr->sensor = OCC_INIT_ATTR(attr->name, 0444, show_temp, NULL,
824 1, i);
825 attr++;
826
827 if (sensors->temp.version > 1) {
828 snprintf(attr->name, sizeof(attr->name),
829 "temp%d_fru_type", s);
830 attr->sensor = OCC_INIT_ATTR(attr->name, 0444,
831 show_temp, NULL, 2, i);
832 attr++;
833
834 snprintf(attr->name, sizeof(attr->name),
835 "temp%d_fault", s);
836 attr->sensor = OCC_INIT_ATTR(attr->name, 0444,
837 show_temp, NULL, 3, i);
838 attr++;
839 }
840 }
841
842 for (i = 0; i < sensors->freq.num_sensors; ++i) {
843 s = i + 1;
844
845 snprintf(attr->name, sizeof(attr->name), "freq%d_label", s);
846 attr->sensor = OCC_INIT_ATTR(attr->name, 0444, show_freq, NULL,
847 0, i);
848 attr++;
849
850 snprintf(attr->name, sizeof(attr->name), "freq%d_input", s);
851 attr->sensor = OCC_INIT_ATTR(attr->name, 0444, show_freq, NULL,
852 1, i);
853 attr++;
854 }
855
856 if (sensors->power.version == 0xA0) {
857 /*
858 * Special case for many-attribute power sensor. Split it into
859 * a sensor number per power type, emulating several sensors.
860 */
861 for (i = 0; i < sensors->power.num_sensors; ++i) {
862 unsigned int j;
863 unsigned int nr = 0;
864
865 s = (i * 4) + 1;
866
867 for (j = 0; j < 4; ++j) {
868 snprintf(attr->name, sizeof(attr->name),
869 "power%d_label", s);
870 attr->sensor = OCC_INIT_ATTR(attr->name, 0444,
871 show_power, NULL,
872 nr++, i);
873 attr++;
874
875 snprintf(attr->name, sizeof(attr->name),
876 "power%d_average", s);
877 attr->sensor = OCC_INIT_ATTR(attr->name, 0444,
878 show_power, NULL,
879 nr++, i);
880 attr++;
881
882 snprintf(attr->name, sizeof(attr->name),
883 "power%d_average_interval", s);
884 attr->sensor = OCC_INIT_ATTR(attr->name, 0444,
885 show_power, NULL,
886 nr++, i);
887 attr++;
888
889 snprintf(attr->name, sizeof(attr->name),
890 "power%d_input", s);
891 attr->sensor = OCC_INIT_ATTR(attr->name, 0444,
892 show_power, NULL,
893 nr++, i);
894 attr++;
895
896 s++;
897 }
898 }
Eddie James8e6af452019-03-19 16:01:58 -0500899
900 s = (sensors->power.num_sensors * 4) + 1;
Eddie James54076cb2018-11-08 15:05:28 -0600901 } else {
902 for (i = 0; i < sensors->power.num_sensors; ++i) {
903 s = i + 1;
904
905 snprintf(attr->name, sizeof(attr->name),
906 "power%d_label", s);
907 attr->sensor = OCC_INIT_ATTR(attr->name, 0444,
908 show_power, NULL, 0, i);
909 attr++;
910
911 snprintf(attr->name, sizeof(attr->name),
912 "power%d_average", s);
913 attr->sensor = OCC_INIT_ATTR(attr->name, 0444,
914 show_power, NULL, 1, i);
915 attr++;
916
917 snprintf(attr->name, sizeof(attr->name),
918 "power%d_average_interval", s);
919 attr->sensor = OCC_INIT_ATTR(attr->name, 0444,
920 show_power, NULL, 2, i);
921 attr++;
922
923 snprintf(attr->name, sizeof(attr->name),
924 "power%d_input", s);
925 attr->sensor = OCC_INIT_ATTR(attr->name, 0444,
926 show_power, NULL, 3, i);
927 attr++;
928 }
Eddie James8e6af452019-03-19 16:01:58 -0500929
930 s = sensors->power.num_sensors + 1;
Eddie James54076cb2018-11-08 15:05:28 -0600931 }
932
933 if (sensors->caps.num_sensors >= 1) {
Eddie James54076cb2018-11-08 15:05:28 -0600934 snprintf(attr->name, sizeof(attr->name), "power%d_label", s);
935 attr->sensor = OCC_INIT_ATTR(attr->name, 0444, show_caps, NULL,
936 0, 0);
937 attr++;
938
939 snprintf(attr->name, sizeof(attr->name), "power%d_cap", s);
940 attr->sensor = OCC_INIT_ATTR(attr->name, 0444, show_caps, NULL,
941 1, 0);
942 attr++;
943
944 snprintf(attr->name, sizeof(attr->name), "power%d_input", s);
945 attr->sensor = OCC_INIT_ATTR(attr->name, 0444, show_caps, NULL,
946 2, 0);
947 attr++;
948
949 snprintf(attr->name, sizeof(attr->name),
950 "power%d_cap_not_redundant", s);
951 attr->sensor = OCC_INIT_ATTR(attr->name, 0444, show_caps, NULL,
952 3, 0);
953 attr++;
954
955 snprintf(attr->name, sizeof(attr->name), "power%d_cap_max", s);
956 attr->sensor = OCC_INIT_ATTR(attr->name, 0444, show_caps, NULL,
957 4, 0);
958 attr++;
959
960 snprintf(attr->name, sizeof(attr->name), "power%d_cap_min", s);
961 attr->sensor = OCC_INIT_ATTR(attr->name, 0444, show_caps, NULL,
962 5, 0);
963 attr++;
964
965 snprintf(attr->name, sizeof(attr->name), "power%d_cap_user",
966 s);
967 attr->sensor = OCC_INIT_ATTR(attr->name, 0644, show_caps,
968 occ_store_caps_user, 6, 0);
969 attr++;
970
971 if (sensors->caps.version > 1) {
972 snprintf(attr->name, sizeof(attr->name),
973 "power%d_cap_user_source", s);
974 attr->sensor = OCC_INIT_ATTR(attr->name, 0444,
975 show_caps, NULL, 7, 0);
976 attr++;
977 }
978 }
979
980 for (i = 0; i < sensors->extended.num_sensors; ++i) {
981 s = i + 1;
982
983 snprintf(attr->name, sizeof(attr->name), "extn%d_label", s);
984 attr->sensor = OCC_INIT_ATTR(attr->name, 0444,
985 occ_show_extended, NULL, 0, i);
986 attr++;
987
988 snprintf(attr->name, sizeof(attr->name), "extn%d_flags", s);
989 attr->sensor = OCC_INIT_ATTR(attr->name, 0444,
990 occ_show_extended, NULL, 1, i);
991 attr++;
992
993 snprintf(attr->name, sizeof(attr->name), "extn%d_input", s);
994 attr->sensor = OCC_INIT_ATTR(attr->name, 0444,
995 occ_show_extended, NULL, 2, i);
996 attr++;
997 }
998
999 /* put the sensors in the group */
1000 for (i = 0; i < num_attrs; ++i) {
1001 sysfs_attr_init(&occ->attrs[i].sensor.dev_attr.attr);
1002 occ->group.attrs[i] = &occ->attrs[i].sensor.dev_attr.attr;
1003 }
1004
1005 return 0;
1006}
1007
Eddie Jamesaa195fe2018-11-08 15:05:26 -06001008/* only need to do this once at startup, as OCC won't change sensors on us */
1009static void occ_parse_poll_response(struct occ *occ)
1010{
1011 unsigned int i, old_offset, offset = 0, size = 0;
1012 struct occ_sensor *sensor;
1013 struct occ_sensors *sensors = &occ->sensors;
1014 struct occ_response *resp = &occ->resp;
1015 struct occ_poll_response *poll =
1016 (struct occ_poll_response *)&resp->data[0];
1017 struct occ_poll_response_header *header = &poll->header;
1018 struct occ_sensor_data_block *block = &poll->block;
1019
1020 dev_info(occ->bus_dev, "OCC found, code level: %.16s\n",
1021 header->occ_code_level);
1022
1023 for (i = 0; i < header->num_sensor_data_blocks; ++i) {
1024 block = (struct occ_sensor_data_block *)((u8 *)block + offset);
1025 old_offset = offset;
1026 offset = (block->header.num_sensors *
1027 block->header.sensor_length) + sizeof(block->header);
1028 size += offset;
1029
1030 /* validate all the length/size fields */
1031 if ((size + sizeof(*header)) >= OCC_RESP_DATA_BYTES) {
1032 dev_warn(occ->bus_dev, "exceeded response buffer\n");
1033 return;
1034 }
1035
1036 dev_dbg(occ->bus_dev, " %04x..%04x: %.4s (%d sensors)\n",
1037 old_offset, offset - 1, block->header.eye_catcher,
1038 block->header.num_sensors);
1039
1040 /* match sensor block type */
1041 if (strncmp(block->header.eye_catcher, "TEMP", 4) == 0)
1042 sensor = &sensors->temp;
1043 else if (strncmp(block->header.eye_catcher, "FREQ", 4) == 0)
1044 sensor = &sensors->freq;
1045 else if (strncmp(block->header.eye_catcher, "POWR", 4) == 0)
1046 sensor = &sensors->power;
1047 else if (strncmp(block->header.eye_catcher, "CAPS", 4) == 0)
1048 sensor = &sensors->caps;
1049 else if (strncmp(block->header.eye_catcher, "EXTN", 4) == 0)
1050 sensor = &sensors->extended;
1051 else {
1052 dev_warn(occ->bus_dev, "sensor not supported %.4s\n",
1053 block->header.eye_catcher);
1054 continue;
1055 }
1056
1057 sensor->num_sensors = block->header.num_sensors;
1058 sensor->version = block->header.sensor_format;
1059 sensor->data = &block->data;
1060 }
1061
1062 dev_dbg(occ->bus_dev, "Max resp size: %u+%zd=%zd\n", size,
1063 sizeof(*header), size + sizeof(*header));
1064}
1065
Eddie James5b5513b2018-11-08 15:05:24 -06001066int occ_setup(struct occ *occ, const char *name)
1067{
1068 int rc;
1069
Eddie Jamesc10e7532018-11-08 15:05:27 -06001070 mutex_init(&occ->lock);
Eddie James54076cb2018-11-08 15:05:28 -06001071 occ->groups[0] = &occ->group;
Eddie Jamesc10e7532018-11-08 15:05:27 -06001072
1073 /* no need to lock */
Eddie James5b5513b2018-11-08 15:05:24 -06001074 rc = occ_poll(occ);
1075 if (rc == -ESHUTDOWN) {
1076 dev_info(occ->bus_dev, "host is not ready\n");
1077 return rc;
1078 } else if (rc < 0) {
1079 dev_err(occ->bus_dev, "failed to get OCC poll response: %d\n",
1080 rc);
1081 return rc;
1082 }
1083
Eddie Jamesaa195fe2018-11-08 15:05:26 -06001084 occ_parse_poll_response(occ);
1085
Eddie James54076cb2018-11-08 15:05:28 -06001086 rc = occ_setup_sensor_attrs(occ);
1087 if (rc) {
1088 dev_err(occ->bus_dev, "failed to setup sensor attrs: %d\n",
1089 rc);
1090 return rc;
1091 }
1092
1093 occ->hwmon = devm_hwmon_device_register_with_groups(occ->bus_dev, name,
1094 occ, occ->groups);
1095 if (IS_ERR(occ->hwmon)) {
1096 rc = PTR_ERR(occ->hwmon);
1097 dev_err(occ->bus_dev, "failed to register hwmon device: %d\n",
1098 rc);
1099 return rc;
1100 }
1101
Eddie Jamesdf04ced2018-11-08 15:05:29 -06001102 rc = occ_setup_sysfs(occ);
1103 if (rc)
1104 dev_err(occ->bus_dev, "failed to setup sysfs: %d\n", rc);
1105
1106 return rc;
Eddie James5b5513b2018-11-08 15:05:24 -06001107}
Jean Delvare5679ed92019-04-10 12:47:26 +02001108EXPORT_SYMBOL_GPL(occ_setup);
1109
1110MODULE_AUTHOR("Eddie James <eajames@linux.ibm.com>");
1111MODULE_DESCRIPTION("Common OCC hwmon code");
1112MODULE_LICENSE("GPL");