1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Generic OPP OF helpers
4 *
5 * Copyright (C) 2009-2010 Texas Instruments Incorporated.
6 * Nishanth Menon
7 * Romit Dasgupta
8 * Kevin Hilman
9 */
10
11 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
12
13 #include <linux/cpu.h>
14 #include <linux/errno.h>
15 #include <linux/device.h>
16 #include <linux/of.h>
17 #include <linux/pm_domain.h>
18 #include <linux/slab.h>
19 #include <linux/export.h>
20 #include <linux/energy_model.h>
21
22 #include "opp.h"
23
24 /* OPP tables with uninitialized required OPPs, protected by opp_table_lock */
25 static LIST_HEAD(lazy_opp_tables);
26
27 /*
28 * Returns opp descriptor node for a device node, caller must
29 * do of_node_put().
30 */
_opp_of_get_opp_desc_node(struct device_node * np,int index)31 static struct device_node *_opp_of_get_opp_desc_node(struct device_node *np,
32 int index)
33 {
34 /* "operating-points-v2" can be an array for power domain providers */
35 return of_parse_phandle(np, "operating-points-v2", index);
36 }
37
38 /* Returns opp descriptor node for a device, caller must do of_node_put() */
dev_pm_opp_of_get_opp_desc_node(struct device * dev)39 struct device_node *dev_pm_opp_of_get_opp_desc_node(struct device *dev)
40 {
41 return _opp_of_get_opp_desc_node(dev->of_node, 0);
42 }
43 EXPORT_SYMBOL_GPL(dev_pm_opp_of_get_opp_desc_node);
44
_managed_opp(struct device * dev,int index)45 struct opp_table *_managed_opp(struct device *dev, int index)
46 {
47 struct opp_table *opp_table, *managed_table = NULL;
48
49 struct device_node *np __free(device_node) =
50 _opp_of_get_opp_desc_node(dev->of_node, index);
51
52 if (!np)
53 return NULL;
54
55 list_for_each_entry(opp_table, &opp_tables, node) {
56 if (opp_table->np == np) {
57 /*
58 * Multiple devices can point to the same OPP table and
59 * so will have same node-pointer, np.
60 *
61 * But the OPPs will be considered as shared only if the
62 * OPP table contains a "opp-shared" property.
63 */
64 if (opp_table->shared_opp == OPP_TABLE_ACCESS_SHARED)
65 managed_table = dev_pm_opp_get_opp_table_ref(opp_table);
66
67 break;
68 }
69 }
70
71 return managed_table;
72 }
73
74 /* The caller must call dev_pm_opp_put() after the OPP is used */
_find_opp_of_np(struct opp_table * opp_table,struct device_node * opp_np)75 static struct dev_pm_opp *_find_opp_of_np(struct opp_table *opp_table,
76 struct device_node *opp_np)
77 {
78 struct dev_pm_opp *opp;
79
80 guard(mutex)(&opp_table->lock);
81
82 list_for_each_entry(opp, &opp_table->opp_list, node) {
83 if (opp->np == opp_np)
84 return dev_pm_opp_get(opp);
85 }
86
87 return NULL;
88 }
89
of_parse_required_opp(struct device_node * np,int index)90 static struct device_node *of_parse_required_opp(struct device_node *np,
91 int index)
92 {
93 return of_parse_phandle(np, "required-opps", index);
94 }
95
96 /* The caller must call dev_pm_opp_put_opp_table() after the table is used */
_find_table_of_opp_np(struct device_node * opp_np)97 static struct opp_table *_find_table_of_opp_np(struct device_node *opp_np)
98 {
99 struct opp_table *opp_table;
100
101 struct device_node *opp_table_np __free(device_node) =
102 of_get_parent(opp_np);
103
104 if (!opp_table_np)
105 return ERR_PTR(-ENODEV);
106
107 guard(mutex)(&opp_table_lock);
108
109 list_for_each_entry(opp_table, &opp_tables, node) {
110 if (opp_table_np == opp_table->np)
111 return dev_pm_opp_get_opp_table_ref(opp_table);
112 }
113
114 return ERR_PTR(-ENODEV);
115 }
116
117 /* Free resources previously acquired by _opp_table_alloc_required_tables() */
_opp_table_free_required_tables(struct opp_table * opp_table)118 static void _opp_table_free_required_tables(struct opp_table *opp_table)
119 {
120 struct opp_table **required_opp_tables = opp_table->required_opp_tables;
121 int i;
122
123 if (!required_opp_tables)
124 return;
125
126 for (i = 0; i < opp_table->required_opp_count; i++) {
127 if (IS_ERR_OR_NULL(required_opp_tables[i]))
128 continue;
129
130 dev_pm_opp_put_opp_table(required_opp_tables[i]);
131 }
132
133 kfree(required_opp_tables);
134
135 opp_table->required_opp_count = 0;
136 opp_table->required_opp_tables = NULL;
137
138 guard(mutex)(&opp_table_lock);
139 list_del(&opp_table->lazy);
140 }
141
142 /*
143 * Populate all devices and opp tables which are part of "required-opps" list.
144 * Checking only the first OPP node should be enough.
145 */
_opp_table_alloc_required_tables(struct opp_table * opp_table,struct device * dev,struct device_node * opp_np)146 static void _opp_table_alloc_required_tables(struct opp_table *opp_table,
147 struct device *dev,
148 struct device_node *opp_np)
149 {
150 struct opp_table **required_opp_tables;
151 bool lazy = false;
152 int count, i, size;
153
154 /* Traversing the first OPP node is all we need */
155 struct device_node *np __free(device_node) =
156 of_get_next_available_child(opp_np, NULL);
157
158 if (!np) {
159 dev_warn(dev, "Empty OPP table\n");
160 return;
161 }
162
163 count = of_count_phandle_with_args(np, "required-opps", NULL);
164 if (count <= 0)
165 return;
166
167 size = sizeof(*required_opp_tables) + sizeof(*opp_table->required_devs);
168 required_opp_tables = kcalloc(count, size, GFP_KERNEL);
169 if (!required_opp_tables)
170 return;
171
172 opp_table->required_opp_tables = required_opp_tables;
173 opp_table->required_devs = (void *)(required_opp_tables + count);
174 opp_table->required_opp_count = count;
175
176 for (i = 0; i < count; i++) {
177 struct device_node *required_np __free(device_node) =
178 of_parse_required_opp(np, i);
179
180 if (!required_np) {
181 _opp_table_free_required_tables(opp_table);
182 return;
183 }
184
185 required_opp_tables[i] = _find_table_of_opp_np(required_np);
186
187 if (IS_ERR(required_opp_tables[i]))
188 lazy = true;
189 }
190
191 /* Let's do the linking later on */
192 if (lazy) {
193 /*
194 * The OPP table is not held while allocating the table, take it
195 * now to avoid corruption to the lazy_opp_tables list.
196 */
197 guard(mutex)(&opp_table_lock);
198 list_add(&opp_table->lazy, &lazy_opp_tables);
199 }
200 }
201
_of_init_opp_table(struct opp_table * opp_table,struct device * dev,int index)202 void _of_init_opp_table(struct opp_table *opp_table, struct device *dev,
203 int index)
204 {
205 struct device_node *opp_np;
206 u32 val;
207
208 /*
209 * Only required for backward compatibility with v1 bindings, but isn't
210 * harmful for other cases. And so we do it unconditionally.
211 */
212 struct device_node *np __free(device_node) = of_node_get(dev->of_node);
213
214 if (!np)
215 return;
216
217 if (!of_property_read_u32(np, "clock-latency", &val))
218 opp_table->clock_latency_ns_max = val;
219 of_property_read_u32(np, "voltage-tolerance",
220 &opp_table->voltage_tolerance_v1);
221
222 if (of_property_present(np, "#power-domain-cells"))
223 opp_table->is_genpd = true;
224
225 /* Get OPP table node */
226 opp_np = _opp_of_get_opp_desc_node(np, index);
227 if (!opp_np)
228 return;
229
230 if (of_property_read_bool(opp_np, "opp-shared"))
231 opp_table->shared_opp = OPP_TABLE_ACCESS_SHARED;
232 else
233 opp_table->shared_opp = OPP_TABLE_ACCESS_EXCLUSIVE;
234
235 opp_table->np = opp_np;
236
237 _opp_table_alloc_required_tables(opp_table, dev, opp_np);
238 }
239
_of_clear_opp_table(struct opp_table * opp_table)240 void _of_clear_opp_table(struct opp_table *opp_table)
241 {
242 _opp_table_free_required_tables(opp_table);
243 of_node_put(opp_table->np);
244 }
245
246 /*
247 * Release all resources previously acquired with a call to
248 * _of_opp_alloc_required_opps().
249 */
_of_opp_free_required_opps(struct opp_table * opp_table,struct dev_pm_opp * opp)250 static void _of_opp_free_required_opps(struct opp_table *opp_table,
251 struct dev_pm_opp *opp)
252 {
253 struct dev_pm_opp **required_opps = opp->required_opps;
254 int i;
255
256 if (!required_opps)
257 return;
258
259 for (i = 0; i < opp_table->required_opp_count; i++) {
260 if (!required_opps[i])
261 continue;
262
263 /* Put the reference back */
264 dev_pm_opp_put(required_opps[i]);
265 }
266
267 opp->required_opps = NULL;
268 kfree(required_opps);
269 }
270
_of_clear_opp(struct opp_table * opp_table,struct dev_pm_opp * opp)271 void _of_clear_opp(struct opp_table *opp_table, struct dev_pm_opp *opp)
272 {
273 _of_opp_free_required_opps(opp_table, opp);
274 of_node_put(opp->np);
275 }
276
_link_required_opps(struct dev_pm_opp * opp,struct opp_table * required_table,int index)277 static int _link_required_opps(struct dev_pm_opp *opp,
278 struct opp_table *required_table, int index)
279 {
280 struct device_node *np __free(device_node) =
281 of_parse_required_opp(opp->np, index);
282
283 if (unlikely(!np))
284 return -ENODEV;
285
286 opp->required_opps[index] = _find_opp_of_np(required_table, np);
287 if (!opp->required_opps[index]) {
288 pr_err("%s: Unable to find required OPP node: %pOF (%d)\n",
289 __func__, opp->np, index);
290 return -ENODEV;
291 }
292
293 return 0;
294 }
295
296 /* Populate all required OPPs which are part of "required-opps" list */
_of_opp_alloc_required_opps(struct opp_table * opp_table,struct dev_pm_opp * opp)297 static int _of_opp_alloc_required_opps(struct opp_table *opp_table,
298 struct dev_pm_opp *opp)
299 {
300 struct opp_table *required_table;
301 int i, ret, count = opp_table->required_opp_count;
302
303 if (!count)
304 return 0;
305
306 opp->required_opps = kzalloc_objs(*opp->required_opps, count);
307 if (!opp->required_opps)
308 return -ENOMEM;
309
310 for (i = 0; i < count; i++) {
311 required_table = opp_table->required_opp_tables[i];
312
313 /* Required table not added yet, we will link later */
314 if (IS_ERR_OR_NULL(required_table))
315 continue;
316
317 ret = _link_required_opps(opp, required_table, i);
318 if (ret)
319 goto free_required_opps;
320 }
321
322 return 0;
323
324 free_required_opps:
325 _of_opp_free_required_opps(opp_table, opp);
326
327 return ret;
328 }
329
330 /* Link required OPPs for an individual OPP */
lazy_link_required_opps(struct opp_table * opp_table,struct opp_table * new_table,int index)331 static int lazy_link_required_opps(struct opp_table *opp_table,
332 struct opp_table *new_table, int index)
333 {
334 struct dev_pm_opp *opp;
335 int ret;
336
337 list_for_each_entry(opp, &opp_table->opp_list, node) {
338 ret = _link_required_opps(opp, new_table, index);
339 if (ret)
340 return ret;
341 }
342
343 return 0;
344 }
345
346 /* Link required OPPs for all OPPs of the newly added OPP table */
lazy_link_required_opp_table(struct opp_table * new_table)347 static void lazy_link_required_opp_table(struct opp_table *new_table)
348 {
349 struct opp_table *opp_table, *temp, **required_opp_tables;
350 struct dev_pm_opp *opp;
351 int i, ret;
352
353 guard(mutex)(&opp_table_lock);
354
355 list_for_each_entry_safe(opp_table, temp, &lazy_opp_tables, lazy) {
356 bool lazy = false;
357
358 /* opp_np can't be invalid here */
359 struct device_node *opp_np __free(device_node) =
360 of_get_next_available_child(opp_table->np, NULL);
361
362 for (i = 0; i < opp_table->required_opp_count; i++) {
363 required_opp_tables = opp_table->required_opp_tables;
364
365 /* Required opp-table is already parsed */
366 if (!IS_ERR(required_opp_tables[i]))
367 continue;
368
369 /* required_np can't be invalid here */
370 struct device_node *required_np __free(device_node) =
371 of_parse_required_opp(opp_np, i);
372 struct device_node *required_table_np __free(device_node) =
373 of_get_parent(required_np);
374
375 /*
376 * Newly added table isn't the required opp-table for
377 * opp_table.
378 */
379 if (required_table_np != new_table->np) {
380 lazy = true;
381 continue;
382 }
383
384 required_opp_tables[i] = dev_pm_opp_get_opp_table_ref(new_table);
385
386 /* Link OPPs now */
387 ret = lazy_link_required_opps(opp_table, new_table, i);
388 if (ret) {
389 /* The OPPs will be marked unusable */
390 lazy = false;
391 break;
392 }
393 }
394
395 /* All required opp-tables found, remove from lazy list */
396 if (!lazy) {
397 list_del_init(&opp_table->lazy);
398
399 list_for_each_entry(opp, &opp_table->opp_list, node)
400 _required_opps_available(opp, opp_table->required_opp_count);
401 }
402 }
403 }
404
_bandwidth_supported(struct device * dev,struct opp_table * opp_table)405 static int _bandwidth_supported(struct device *dev, struct opp_table *opp_table)
406 {
407 struct device_node *opp_np __free(device_node) = NULL;
408 struct property *prop;
409
410 if (!opp_table) {
411 struct device_node *np __free(device_node) =
412 of_node_get(dev->of_node);
413
414 if (!np)
415 return -ENODEV;
416
417 opp_np = _opp_of_get_opp_desc_node(np, 0);
418 } else {
419 opp_np = of_node_get(opp_table->np);
420 }
421
422 /* Lets not fail in case we are parsing opp-v1 bindings */
423 if (!opp_np)
424 return 0;
425
426 /* Checking only first OPP is sufficient */
427 struct device_node *np __free(device_node) =
428 of_get_next_available_child(opp_np, NULL);
429
430 if (!np) {
431 dev_err(dev, "OPP table empty\n");
432 return -EINVAL;
433 }
434
435 prop = of_find_property(np, "opp-peak-kBps", NULL);
436 if (!prop || !prop->length)
437 return 0;
438
439 return 1;
440 }
441
dev_pm_opp_of_find_icc_paths(struct device * dev,struct opp_table * opp_table)442 int dev_pm_opp_of_find_icc_paths(struct device *dev,
443 struct opp_table *opp_table)
444 {
445 struct device_node *np __free(device_node) = of_node_get(dev->of_node);
446 int ret, i, count, num_paths;
447 struct icc_path **paths;
448
449 ret = _bandwidth_supported(dev, opp_table);
450 if (ret == -EINVAL)
451 return 0; /* Empty OPP table is a valid corner-case, let's not fail */
452 else if (ret <= 0)
453 return ret;
454
455 if (!np)
456 return 0;
457
458 ret = 0;
459
460 count = of_count_phandle_with_args(np, "interconnects",
461 "#interconnect-cells");
462 if (count < 0)
463 return 0;
464
465 /* two phandles when #interconnect-cells = <1> */
466 if (count % 2) {
467 dev_err(dev, "%s: Invalid interconnects values\n", __func__);
468 return -EINVAL;
469 }
470
471 num_paths = count / 2;
472 paths = kzalloc_objs(*paths, num_paths);
473 if (!paths)
474 return -ENOMEM;
475
476 for (i = 0; i < num_paths; i++) {
477 paths[i] = of_icc_get_by_index(dev, i);
478 if (IS_ERR(paths[i])) {
479 ret = dev_err_probe(dev, PTR_ERR(paths[i]), "%s: Unable to get path%d\n", __func__, i);
480 goto err;
481 }
482 }
483
484 if (opp_table) {
485 opp_table->paths = paths;
486 opp_table->path_count = num_paths;
487 return 0;
488 }
489
490 err:
491 while (i--)
492 icc_put(paths[i]);
493
494 kfree(paths);
495
496 return ret;
497 }
498 EXPORT_SYMBOL_GPL(dev_pm_opp_of_find_icc_paths);
499
_opp_is_supported(struct device * dev,struct opp_table * opp_table,struct device_node * np)500 static bool _opp_is_supported(struct device *dev, struct opp_table *opp_table,
501 struct device_node *np)
502 {
503 unsigned int levels = opp_table->supported_hw_count;
504 int count, versions, ret, i, j;
505 u32 val;
506
507 if (!opp_table->supported_hw) {
508 /*
509 * In the case that no supported_hw has been set by the
510 * platform but there is an opp-supported-hw value set for
511 * an OPP then the OPP should not be enabled as there is
512 * no way to see if the hardware supports it.
513 */
514 if (of_property_present(np, "opp-supported-hw"))
515 return false;
516 else
517 return true;
518 }
519
520 count = of_property_count_u32_elems(np, "opp-supported-hw");
521 if (count <= 0 || count % levels) {
522 dev_err(dev, "%s: Invalid opp-supported-hw property (%d)\n",
523 __func__, count);
524 return false;
525 }
526
527 versions = count / levels;
528
529 /* All levels in at least one of the versions should match */
530 for (i = 0; i < versions; i++) {
531 bool supported = true;
532
533 for (j = 0; j < levels; j++) {
534 ret = of_property_read_u32_index(np, "opp-supported-hw",
535 i * levels + j, &val);
536 if (ret) {
537 dev_warn(dev, "%s: failed to read opp-supported-hw property at index %d: %d\n",
538 __func__, i * levels + j, ret);
539 return false;
540 }
541
542 /* Check if the level is supported */
543 if (!(val & opp_table->supported_hw[j])) {
544 supported = false;
545 break;
546 }
547 }
548
549 if (supported)
550 return true;
551 }
552
553 return false;
554 }
555
_parse_named_prop(struct dev_pm_opp * opp,struct device * dev,struct opp_table * opp_table,const char * prop_type,bool * triplet)556 static u32 *_parse_named_prop(struct dev_pm_opp *opp, struct device *dev,
557 struct opp_table *opp_table,
558 const char *prop_type, bool *triplet)
559 {
560 struct property *prop = NULL;
561 char name[NAME_MAX];
562 int count, ret;
563 u32 *out;
564
565 /* Search for "opp-<prop_type>-<name>" */
566 if (opp_table->prop_name) {
567 snprintf(name, sizeof(name), "opp-%s-%s", prop_type,
568 opp_table->prop_name);
569 prop = of_find_property(opp->np, name, NULL);
570 }
571
572 if (!prop) {
573 /* Search for "opp-<prop_type>" */
574 snprintf(name, sizeof(name), "opp-%s", prop_type);
575 prop = of_find_property(opp->np, name, NULL);
576 if (!prop)
577 return NULL;
578 }
579
580 count = of_property_count_u32_elems(opp->np, name);
581 if (count < 0) {
582 dev_err(dev, "%s: Invalid %s property (%d)\n", __func__, name,
583 count);
584 return ERR_PTR(count);
585 }
586
587 /*
588 * Initialize regulator_count, if regulator information isn't provided
589 * by the platform. Now that one of the properties is available, fix the
590 * regulator_count to 1.
591 */
592 if (unlikely(opp_table->regulator_count == -1))
593 opp_table->regulator_count = 1;
594
595 if (count != opp_table->regulator_count &&
596 (!triplet || count != opp_table->regulator_count * 3)) {
597 dev_err(dev, "%s: Invalid number of elements in %s property (%u) with supplies (%d)\n",
598 __func__, prop_type, count, opp_table->regulator_count);
599 return ERR_PTR(-EINVAL);
600 }
601
602 out = kmalloc_array(count, sizeof(*out), GFP_KERNEL);
603 if (!out)
604 return ERR_PTR(-EINVAL);
605
606 ret = of_property_read_u32_array(opp->np, name, out, count);
607 if (ret) {
608 dev_err(dev, "%s: error parsing %s: %d\n", __func__, name, ret);
609 kfree(out);
610 return ERR_PTR(-EINVAL);
611 }
612
613 if (triplet)
614 *triplet = count != opp_table->regulator_count;
615
616 return out;
617 }
618
opp_parse_microvolt(struct dev_pm_opp * opp,struct device * dev,struct opp_table * opp_table,bool * triplet)619 static u32 *opp_parse_microvolt(struct dev_pm_opp *opp, struct device *dev,
620 struct opp_table *opp_table, bool *triplet)
621 {
622 u32 *microvolt;
623
624 microvolt = _parse_named_prop(opp, dev, opp_table, "microvolt", triplet);
625 if (IS_ERR(microvolt))
626 return microvolt;
627
628 if (!microvolt) {
629 /*
630 * Missing property isn't a problem, but an invalid
631 * entry is. This property isn't optional if regulator
632 * information is provided. Check only for the first OPP, as
633 * regulator_count may get initialized after that to a valid
634 * value.
635 */
636 if (list_empty(&opp_table->opp_list) &&
637 opp_table->regulator_count > 0) {
638 dev_err(dev, "%s: opp-microvolt missing although OPP managing regulators\n",
639 __func__);
640 return ERR_PTR(-EINVAL);
641 }
642 }
643
644 return microvolt;
645 }
646
opp_parse_supplies(struct dev_pm_opp * opp,struct device * dev,struct opp_table * opp_table)647 static int opp_parse_supplies(struct dev_pm_opp *opp, struct device *dev,
648 struct opp_table *opp_table)
649 {
650 u32 *microvolt, *microamp, *microwatt;
651 int ret = 0, i, j;
652 bool triplet;
653
654 microvolt = opp_parse_microvolt(opp, dev, opp_table, &triplet);
655 if (IS_ERR(microvolt))
656 return PTR_ERR(microvolt);
657
658 microamp = _parse_named_prop(opp, dev, opp_table, "microamp", NULL);
659 if (IS_ERR(microamp)) {
660 ret = PTR_ERR(microamp);
661 goto free_microvolt;
662 }
663
664 microwatt = _parse_named_prop(opp, dev, opp_table, "microwatt", NULL);
665 if (IS_ERR(microwatt)) {
666 ret = PTR_ERR(microwatt);
667 goto free_microamp;
668 }
669
670 /*
671 * Initialize regulator_count if it is uninitialized and no properties
672 * are found.
673 */
674 if (unlikely(opp_table->regulator_count == -1)) {
675 opp_table->regulator_count = 0;
676 return 0;
677 }
678
679 for (i = 0, j = 0; i < opp_table->regulator_count; i++) {
680 if (microvolt) {
681 opp->supplies[i].u_volt = microvolt[j++];
682
683 if (triplet) {
684 opp->supplies[i].u_volt_min = microvolt[j++];
685 opp->supplies[i].u_volt_max = microvolt[j++];
686 } else {
687 opp->supplies[i].u_volt_min = opp->supplies[i].u_volt;
688 opp->supplies[i].u_volt_max = opp->supplies[i].u_volt;
689 }
690 }
691
692 if (microamp)
693 opp->supplies[i].u_amp = microamp[i];
694
695 if (microwatt)
696 opp->supplies[i].u_watt = microwatt[i];
697 }
698
699 kfree(microwatt);
700 free_microamp:
701 kfree(microamp);
702 free_microvolt:
703 kfree(microvolt);
704
705 return ret;
706 }
707
708 /**
709 * dev_pm_opp_of_remove_table() - Free OPP table entries created from static DT
710 * entries
711 * @dev: device pointer used to lookup OPP table.
712 *
713 * Free OPPs created using static entries present in DT.
714 */
dev_pm_opp_of_remove_table(struct device * dev)715 void dev_pm_opp_of_remove_table(struct device *dev)
716 {
717 dev_pm_opp_remove_table(dev);
718 }
719 EXPORT_SYMBOL_GPL(dev_pm_opp_of_remove_table);
720
_read_rate(struct dev_pm_opp * new_opp,struct opp_table * opp_table,struct device_node * np)721 static int _read_rate(struct dev_pm_opp *new_opp, struct opp_table *opp_table,
722 struct device_node *np)
723 {
724 struct property *prop;
725 int i, count, ret;
726 u64 *rates;
727
728 prop = of_find_property(np, "opp-hz", NULL);
729 if (!prop)
730 return -ENODEV;
731
732 count = prop->length / sizeof(u64);
733 if (opp_table->clk_count != count) {
734 pr_err("%s: Count mismatch between opp-hz and clk_count (%d %d)\n",
735 __func__, count, opp_table->clk_count);
736 return -EINVAL;
737 }
738
739 rates = kmalloc_array(count, sizeof(*rates), GFP_KERNEL);
740 if (!rates)
741 return -ENOMEM;
742
743 ret = of_property_read_u64_array(np, "opp-hz", rates, count);
744 if (ret) {
745 pr_err("%s: Error parsing opp-hz: %d\n", __func__, ret);
746 } else {
747 /*
748 * Rate is defined as an unsigned long in clk API, and so
749 * casting explicitly to its type. Must be fixed once rate is 64
750 * bit guaranteed in clk API.
751 */
752 for (i = 0; i < count; i++) {
753 new_opp->rates[i] = (unsigned long)rates[i];
754
755 /* This will happen for frequencies > 4.29 GHz */
756 WARN_ON(new_opp->rates[i] != rates[i]);
757 }
758 }
759
760 kfree(rates);
761
762 return ret;
763 }
764
_read_bw(struct dev_pm_opp * new_opp,struct opp_table * opp_table,struct device_node * np,bool peak)765 static int _read_bw(struct dev_pm_opp *new_opp, struct opp_table *opp_table,
766 struct device_node *np, bool peak)
767 {
768 const char *name = peak ? "opp-peak-kBps" : "opp-avg-kBps";
769 struct property *prop;
770 int i, count, ret;
771 u32 *bw;
772
773 prop = of_find_property(np, name, NULL);
774 if (!prop)
775 return -ENODEV;
776
777 count = prop->length / sizeof(u32);
778 if (opp_table->path_count != count) {
779 pr_err("%s: Mismatch between %s and paths (%d %d)\n",
780 __func__, name, count, opp_table->path_count);
781 return -EINVAL;
782 }
783
784 bw = kmalloc_array(count, sizeof(*bw), GFP_KERNEL);
785 if (!bw)
786 return -ENOMEM;
787
788 ret = of_property_read_u32_array(np, name, bw, count);
789 if (ret) {
790 pr_err("%s: Error parsing %s: %d\n", __func__, name, ret);
791 goto out;
792 }
793
794 for (i = 0; i < count; i++) {
795 if (peak)
796 new_opp->bandwidth[i].peak = kBps_to_icc(bw[i]);
797 else
798 new_opp->bandwidth[i].avg = kBps_to_icc(bw[i]);
799 }
800
801 out:
802 kfree(bw);
803 return ret;
804 }
805
_read_opp_key(struct dev_pm_opp * new_opp,struct opp_table * opp_table,struct device_node * np)806 static int _read_opp_key(struct dev_pm_opp *new_opp,
807 struct opp_table *opp_table, struct device_node *np)
808 {
809 bool found = false;
810 int ret;
811
812 ret = _read_rate(new_opp, opp_table, np);
813 if (!ret)
814 found = true;
815 else if (ret != -ENODEV)
816 return ret;
817
818 /*
819 * Bandwidth consists of peak and average (optional) values:
820 * opp-peak-kBps = <path1_value path2_value>;
821 * opp-avg-kBps = <path1_value path2_value>;
822 */
823 ret = _read_bw(new_opp, opp_table, np, true);
824 if (!ret) {
825 found = true;
826 ret = _read_bw(new_opp, opp_table, np, false);
827 }
828
829 /* The properties were found but we failed to parse them */
830 if (ret && ret != -ENODEV)
831 return ret;
832
833 if (!of_property_read_u32(np, "opp-level", &new_opp->level))
834 found = true;
835
836 if (found)
837 return 0;
838
839 return ret;
840 }
841
842 /**
843 * _opp_add_static_v2() - Allocate static OPPs (As per 'v2' DT bindings)
844 * @opp_table: OPP table
845 * @dev: device for which we do this operation
846 * @np: device node
847 *
848 * This function adds an opp definition to the opp table and returns status. The
849 * opp can be controlled using dev_pm_opp_enable/disable functions and may be
850 * removed by dev_pm_opp_remove.
851 *
852 * Return:
853 * Valid OPP pointer:
854 * On success
855 * NULL:
856 * Duplicate OPPs (both freq and volt are same) and opp->available
857 * OR if the OPP is not supported by hardware.
858 * ERR_PTR(-EEXIST):
859 * Freq are same and volt are different OR
860 * Duplicate OPPs (both freq and volt are same) and !opp->available
861 * ERR_PTR(-ENOMEM):
862 * Memory allocation failure
863 * ERR_PTR(-EINVAL):
864 * Failed parsing the OPP node
865 */
_opp_add_static_v2(struct opp_table * opp_table,struct device * dev,struct device_node * np)866 static struct dev_pm_opp *_opp_add_static_v2(struct opp_table *opp_table,
867 struct device *dev, struct device_node *np)
868 {
869 struct dev_pm_opp *new_opp;
870 u32 val;
871 int ret;
872
873 new_opp = _opp_allocate(opp_table);
874 if (!new_opp)
875 return ERR_PTR(-ENOMEM);
876
877 ret = _read_opp_key(new_opp, opp_table, np);
878 if (ret < 0) {
879 dev_err(dev, "%s: opp key field not found\n", __func__);
880 goto free_opp;
881 }
882
883 /* Check if the OPP supports hardware's hierarchy of versions or not */
884 if (!_opp_is_supported(dev, opp_table, np)) {
885 dev_dbg(dev, "OPP not supported by hardware: %s\n",
886 of_node_full_name(np));
887 goto free_opp;
888 }
889
890 new_opp->turbo = of_property_read_bool(np, "turbo-mode");
891
892 new_opp->np = of_node_get(np);
893 new_opp->dynamic = false;
894 new_opp->available = true;
895
896 ret = _of_opp_alloc_required_opps(opp_table, new_opp);
897 if (ret)
898 goto put_node;
899
900 if (!of_property_read_u32(np, "clock-latency-ns", &val))
901 new_opp->clock_latency_ns = val;
902
903 ret = opp_parse_supplies(new_opp, dev, opp_table);
904 if (ret)
905 goto free_required_opps;
906
907 ret = _opp_add(dev, new_opp, opp_table);
908 if (ret) {
909 /* Don't return error for duplicate OPPs */
910 if (ret == -EBUSY)
911 ret = 0;
912 goto free_required_opps;
913 }
914
915 /* OPP to select on device suspend */
916 if (of_property_read_bool(np, "opp-suspend")) {
917 if (opp_table->suspend_opp) {
918 /* Pick the OPP with higher rate/bw/level as suspend OPP */
919 if (_opp_compare_key(opp_table, new_opp, opp_table->suspend_opp) == 1) {
920 opp_table->suspend_opp->suspend = false;
921 new_opp->suspend = true;
922 opp_table->suspend_opp = new_opp;
923 }
924 } else {
925 new_opp->suspend = true;
926 opp_table->suspend_opp = new_opp;
927 }
928 }
929
930 if (new_opp->clock_latency_ns > opp_table->clock_latency_ns_max)
931 opp_table->clock_latency_ns_max = new_opp->clock_latency_ns;
932
933 pr_debug("%s: turbo:%d rate:%lu uv:%lu uvmin:%lu uvmax:%lu latency:%lu level:%u\n",
934 __func__, new_opp->turbo, new_opp->rates[0],
935 new_opp->supplies[0].u_volt, new_opp->supplies[0].u_volt_min,
936 new_opp->supplies[0].u_volt_max, new_opp->clock_latency_ns,
937 new_opp->level);
938
939 /*
940 * Notify the changes in the availability of the operable
941 * frequency/voltage list.
942 */
943 blocking_notifier_call_chain(&opp_table->head, OPP_EVENT_ADD, new_opp);
944 return new_opp;
945
946 free_required_opps:
947 _of_opp_free_required_opps(opp_table, new_opp);
948 put_node:
949 of_node_put(np);
950 free_opp:
951 _opp_free(new_opp);
952
953 return ret ? ERR_PTR(ret) : NULL;
954 }
955
956 /* Initializes OPP tables based on new bindings */
_of_add_opp_table_v2(struct device * dev,struct opp_table * opp_table)957 static int _of_add_opp_table_v2(struct device *dev, struct opp_table *opp_table)
958 {
959 int ret, count = 0;
960 struct dev_pm_opp *opp;
961
962 /* OPP table is already initialized for the device */
963 scoped_guard(mutex, &opp_table->lock) {
964 if (opp_table->parsed_static_opps) {
965 opp_table->parsed_static_opps++;
966 return 0;
967 }
968
969 opp_table->parsed_static_opps = 1;
970 }
971
972 /* We have opp-table node now, iterate over it and add OPPs */
973 for_each_available_child_of_node_scoped(opp_table->np, np) {
974 opp = _opp_add_static_v2(opp_table, dev, np);
975 if (IS_ERR(opp)) {
976 ret = PTR_ERR(opp);
977 dev_err(dev, "%s: Failed to add OPP, %d\n", __func__,
978 ret);
979 goto remove_static_opp;
980 } else if (opp) {
981 count++;
982 }
983 }
984
985 /* There should be one or more OPPs defined */
986 if (!count) {
987 dev_err(dev, "%s: no supported OPPs", __func__);
988 ret = -ENOENT;
989 goto remove_static_opp;
990 }
991
992 lazy_link_required_opp_table(opp_table);
993
994 return 0;
995
996 remove_static_opp:
997 _opp_remove_all_static(opp_table);
998
999 return ret;
1000 }
1001
1002 /* Initializes OPP tables based on old-deprecated bindings */
_of_add_opp_table_v1(struct device * dev,struct opp_table * opp_table)1003 static int _of_add_opp_table_v1(struct device *dev, struct opp_table *opp_table)
1004 {
1005 const struct property *prop;
1006 const __be32 *val;
1007 int nr, ret = 0;
1008
1009 scoped_guard(mutex, &opp_table->lock) {
1010 if (opp_table->parsed_static_opps) {
1011 opp_table->parsed_static_opps++;
1012 return 0;
1013 }
1014
1015 opp_table->parsed_static_opps = 1;
1016 }
1017
1018 prop = of_find_property(dev->of_node, "operating-points", NULL);
1019 if (!prop) {
1020 ret = -ENODEV;
1021 goto remove_static_opp;
1022 }
1023 if (!prop->value) {
1024 ret = -ENODATA;
1025 goto remove_static_opp;
1026 }
1027
1028 /*
1029 * Each OPP is a set of tuples consisting of frequency and
1030 * voltage like <freq-kHz vol-uV>.
1031 */
1032 nr = prop->length / sizeof(u32);
1033 if (nr % 2) {
1034 dev_err(dev, "%s: Invalid OPP table\n", __func__);
1035 ret = -EINVAL;
1036 goto remove_static_opp;
1037 }
1038
1039 val = prop->value;
1040 while (nr) {
1041 unsigned long freq = be32_to_cpup(val++) * 1000;
1042 unsigned long volt = be32_to_cpup(val++);
1043 struct dev_pm_opp_data data = {
1044 .freq = freq,
1045 .u_volt = volt,
1046 };
1047
1048 ret = _opp_add_v1(opp_table, dev, &data, false);
1049 if (ret) {
1050 dev_err(dev, "%s: Failed to add OPP %ld (%d)\n",
1051 __func__, data.freq, ret);
1052 goto remove_static_opp;
1053 }
1054 nr -= 2;
1055 }
1056
1057 return 0;
1058
1059 remove_static_opp:
1060 _opp_remove_all_static(opp_table);
1061
1062 return ret;
1063 }
1064
_of_add_table_indexed(struct device * dev,int index)1065 static int _of_add_table_indexed(struct device *dev, int index)
1066 {
1067 struct opp_table *opp_table;
1068 int ret, count;
1069
1070 if (index) {
1071 /*
1072 * If only one phandle is present, then the same OPP table
1073 * applies for all index requests.
1074 */
1075 count = of_count_phandle_with_args(dev->of_node,
1076 "operating-points-v2", NULL);
1077 if (count == 1)
1078 index = 0;
1079 }
1080
1081 opp_table = _add_opp_table_indexed(dev, index, true);
1082 if (IS_ERR(opp_table))
1083 return PTR_ERR(opp_table);
1084
1085 /*
1086 * OPPs have two version of bindings now. Also try the old (v1)
1087 * bindings for backward compatibility with older dtbs.
1088 */
1089 if (opp_table->np)
1090 ret = _of_add_opp_table_v2(dev, opp_table);
1091 else
1092 ret = _of_add_opp_table_v1(dev, opp_table);
1093
1094 if (ret)
1095 dev_pm_opp_put_opp_table(opp_table);
1096
1097 return ret;
1098 }
1099
devm_pm_opp_of_table_release(void * data)1100 static void devm_pm_opp_of_table_release(void *data)
1101 {
1102 dev_pm_opp_of_remove_table(data);
1103 }
1104
_devm_of_add_table_indexed(struct device * dev,int index)1105 static int _devm_of_add_table_indexed(struct device *dev, int index)
1106 {
1107 int ret;
1108
1109 ret = _of_add_table_indexed(dev, index);
1110 if (ret)
1111 return ret;
1112
1113 return devm_add_action_or_reset(dev, devm_pm_opp_of_table_release, dev);
1114 }
1115
1116 /**
1117 * devm_pm_opp_of_add_table() - Initialize opp table from device tree
1118 * @dev: device pointer used to lookup OPP table.
1119 *
1120 * Register the initial OPP table with the OPP library for given device.
1121 *
1122 * The opp_table structure will be freed after the device is destroyed.
1123 *
1124 * Return:
1125 * 0 On success OR
1126 * Duplicate OPPs (both freq and volt are same) and opp->available
1127 * -EEXIST Freq are same and volt are different OR
1128 * Duplicate OPPs (both freq and volt are same) and !opp->available
1129 * -ENOMEM Memory allocation failure
1130 * -ENODEV when 'operating-points' property is not found or is invalid data
1131 * in device node.
1132 * -ENODATA when empty 'operating-points' property is found
1133 * -EINVAL when invalid entries are found in opp-v2 table
1134 */
devm_pm_opp_of_add_table(struct device * dev)1135 int devm_pm_opp_of_add_table(struct device *dev)
1136 {
1137 return _devm_of_add_table_indexed(dev, 0);
1138 }
1139 EXPORT_SYMBOL_GPL(devm_pm_opp_of_add_table);
1140
1141 /**
1142 * dev_pm_opp_of_add_table() - Initialize opp table from device tree
1143 * @dev: device pointer used to lookup OPP table.
1144 *
1145 * Register the initial OPP table with the OPP library for given device.
1146 *
1147 * Return:
1148 * 0 On success OR
1149 * Duplicate OPPs (both freq and volt are same) and opp->available
1150 * -EEXIST Freq are same and volt are different OR
1151 * Duplicate OPPs (both freq and volt are same) and !opp->available
1152 * -ENOMEM Memory allocation failure
1153 * -ENODEV when 'operating-points' property is not found or is invalid data
1154 * in device node.
1155 * -ENODATA when empty 'operating-points' property is found
1156 * -EINVAL when invalid entries are found in opp-v2 table
1157 */
dev_pm_opp_of_add_table(struct device * dev)1158 int dev_pm_opp_of_add_table(struct device *dev)
1159 {
1160 return _of_add_table_indexed(dev, 0);
1161 }
1162 EXPORT_SYMBOL_GPL(dev_pm_opp_of_add_table);
1163
1164 /**
1165 * dev_pm_opp_of_add_table_indexed() - Initialize indexed opp table from device tree
1166 * @dev: device pointer used to lookup OPP table.
1167 * @index: Index number.
1168 *
1169 * Register the initial OPP table with the OPP library for given device only
1170 * using the "operating-points-v2" property.
1171 *
1172 * Return: Refer to dev_pm_opp_of_add_table() for return values.
1173 */
dev_pm_opp_of_add_table_indexed(struct device * dev,int index)1174 int dev_pm_opp_of_add_table_indexed(struct device *dev, int index)
1175 {
1176 return _of_add_table_indexed(dev, index);
1177 }
1178 EXPORT_SYMBOL_GPL(dev_pm_opp_of_add_table_indexed);
1179
1180 /**
1181 * devm_pm_opp_of_add_table_indexed() - Initialize indexed opp table from device tree
1182 * @dev: device pointer used to lookup OPP table.
1183 * @index: Index number.
1184 *
1185 * This is a resource-managed variant of dev_pm_opp_of_add_table_indexed().
1186 */
devm_pm_opp_of_add_table_indexed(struct device * dev,int index)1187 int devm_pm_opp_of_add_table_indexed(struct device *dev, int index)
1188 {
1189 return _devm_of_add_table_indexed(dev, index);
1190 }
1191 EXPORT_SYMBOL_GPL(devm_pm_opp_of_add_table_indexed);
1192
1193 /* CPU device specific helpers */
1194
1195 /**
1196 * dev_pm_opp_of_cpumask_remove_table() - Removes OPP table for @cpumask
1197 * @cpumask: cpumask for which OPP table needs to be removed
1198 *
1199 * This removes the OPP tables for CPUs present in the @cpumask.
1200 * This should be used only to remove static entries created from DT.
1201 */
dev_pm_opp_of_cpumask_remove_table(const struct cpumask * cpumask)1202 void dev_pm_opp_of_cpumask_remove_table(const struct cpumask *cpumask)
1203 {
1204 _dev_pm_opp_cpumask_remove_table(cpumask, -1);
1205 }
1206 EXPORT_SYMBOL_GPL(dev_pm_opp_of_cpumask_remove_table);
1207
1208 /**
1209 * dev_pm_opp_of_cpumask_add_table() - Adds OPP table for @cpumask
1210 * @cpumask: cpumask for which OPP table needs to be added.
1211 *
1212 * This adds the OPP tables for CPUs present in the @cpumask.
1213 */
dev_pm_opp_of_cpumask_add_table(const struct cpumask * cpumask)1214 int dev_pm_opp_of_cpumask_add_table(const struct cpumask *cpumask)
1215 {
1216 struct device *cpu_dev;
1217 int cpu, ret;
1218
1219 if (WARN_ON(cpumask_empty(cpumask)))
1220 return -ENODEV;
1221
1222 for_each_cpu(cpu, cpumask) {
1223 cpu_dev = get_cpu_device(cpu);
1224 if (!cpu_dev) {
1225 pr_err("%s: failed to get cpu%d device\n", __func__,
1226 cpu);
1227 ret = -ENODEV;
1228 goto remove_table;
1229 }
1230
1231 ret = dev_pm_opp_of_add_table(cpu_dev);
1232 if (ret) {
1233 /*
1234 * OPP may get registered dynamically, don't print error
1235 * message here.
1236 */
1237 pr_debug("%s: couldn't find opp table for cpu:%d, %d\n",
1238 __func__, cpu, ret);
1239
1240 goto remove_table;
1241 }
1242 }
1243
1244 return 0;
1245
1246 remove_table:
1247 /* Free all other OPPs */
1248 _dev_pm_opp_cpumask_remove_table(cpumask, cpu);
1249
1250 return ret;
1251 }
1252 EXPORT_SYMBOL_GPL(dev_pm_opp_of_cpumask_add_table);
1253
1254 /*
1255 * Works only for OPP v2 bindings.
1256 *
1257 * Returns -ENOENT if operating-points-v2 bindings aren't supported.
1258 */
1259 /**
1260 * dev_pm_opp_of_get_sharing_cpus() - Get cpumask of CPUs sharing OPPs with
1261 * @cpu_dev using operating-points-v2
1262 * bindings.
1263 *
1264 * @cpu_dev: CPU device for which we do this operation
1265 * @cpumask: cpumask to update with information of sharing CPUs
1266 *
1267 * This updates the @cpumask with CPUs that are sharing OPPs with @cpu_dev.
1268 *
1269 * Returns -ENOENT if operating-points-v2 isn't present for @cpu_dev.
1270 */
dev_pm_opp_of_get_sharing_cpus(struct device * cpu_dev,struct cpumask * cpumask)1271 int dev_pm_opp_of_get_sharing_cpus(struct device *cpu_dev,
1272 struct cpumask *cpumask)
1273 {
1274 int cpu;
1275
1276 /* Get OPP descriptor node */
1277 struct device_node *np __free(device_node) =
1278 dev_pm_opp_of_get_opp_desc_node(cpu_dev);
1279
1280 if (!np) {
1281 dev_dbg(cpu_dev, "%s: Couldn't find opp node.\n", __func__);
1282 return -ENOENT;
1283 }
1284
1285 cpumask_set_cpu(cpu_dev->id, cpumask);
1286
1287 /* OPPs are shared ? */
1288 if (!of_property_read_bool(np, "opp-shared"))
1289 return 0;
1290
1291 for_each_possible_cpu(cpu) {
1292 if (cpu == cpu_dev->id)
1293 continue;
1294
1295 struct device_node *cpu_np __free(device_node) =
1296 of_cpu_device_node_get(cpu);
1297
1298 if (!cpu_np) {
1299 dev_err(cpu_dev, "%s: failed to get cpu%d node\n",
1300 __func__, cpu);
1301 return -ENOENT;
1302 }
1303
1304 /* Get OPP descriptor node */
1305 struct device_node *tmp_np __free(device_node) =
1306 _opp_of_get_opp_desc_node(cpu_np, 0);
1307
1308 if (!tmp_np) {
1309 pr_err("%pOF: Couldn't find opp node\n", cpu_np);
1310 return -ENOENT;
1311 }
1312
1313 /* CPUs are sharing opp node */
1314 if (np == tmp_np)
1315 cpumask_set_cpu(cpu, cpumask);
1316 }
1317
1318 return 0;
1319 }
1320 EXPORT_SYMBOL_GPL(dev_pm_opp_of_get_sharing_cpus);
1321
1322 /**
1323 * of_get_required_opp_performance_state() - Search for required OPP and return its performance state.
1324 * @np: Node that contains the "required-opps" property.
1325 * @index: Index of the phandle to parse.
1326 *
1327 * Returns the performance state of the OPP pointed out by the "required-opps"
1328 * property at @index in @np.
1329 *
1330 * Return: Zero or positive performance state on success, otherwise negative
1331 * value on errors.
1332 */
of_get_required_opp_performance_state(struct device_node * np,int index)1333 int of_get_required_opp_performance_state(struct device_node *np, int index)
1334 {
1335 int pstate = -EINVAL;
1336
1337 struct device_node *required_np __free(device_node) =
1338 of_parse_required_opp(np, index);
1339
1340 if (!required_np)
1341 return -ENODEV;
1342
1343 struct opp_table *opp_table __free(put_opp_table) =
1344 _find_table_of_opp_np(required_np);
1345
1346 if (IS_ERR(opp_table)) {
1347 pr_err("%s: Failed to find required OPP table %pOF: %ld\n",
1348 __func__, np, PTR_ERR(opp_table));
1349 return PTR_ERR(opp_table);
1350 }
1351
1352 /* The OPP tables must belong to a genpd */
1353 if (unlikely(!opp_table->is_genpd)) {
1354 pr_err("%s: Performance state is only valid for genpds.\n", __func__);
1355 return -EINVAL;
1356 }
1357
1358 struct dev_pm_opp *opp __free(put_opp) =
1359 _find_opp_of_np(opp_table, required_np);
1360
1361 if (opp) {
1362 if (opp->level == OPP_LEVEL_UNSET) {
1363 pr_err("%s: OPP levels aren't available for %pOF\n",
1364 __func__, np);
1365 } else {
1366 pstate = opp->level;
1367 }
1368 }
1369
1370 return pstate;
1371 }
1372 EXPORT_SYMBOL_GPL(of_get_required_opp_performance_state);
1373
1374 /**
1375 * dev_pm_opp_of_has_required_opp - Find out if a required-opps exists.
1376 * @dev: The device to investigate.
1377 *
1378 * Returns true if the device's node has a "operating-points-v2" property and if
1379 * the corresponding node for the opp-table describes opp nodes that uses the
1380 * "required-opps" property.
1381 *
1382 * Return: True if a required-opps is present, else false.
1383 */
dev_pm_opp_of_has_required_opp(struct device * dev)1384 bool dev_pm_opp_of_has_required_opp(struct device *dev)
1385 {
1386 int count;
1387
1388 struct device_node *opp_np __free(device_node) =
1389 _opp_of_get_opp_desc_node(dev->of_node, 0);
1390
1391 if (!opp_np)
1392 return false;
1393
1394 struct device_node *np __free(device_node) =
1395 of_get_next_available_child(opp_np, NULL);
1396
1397 if (!np) {
1398 dev_warn(dev, "Empty OPP table\n");
1399 return false;
1400 }
1401
1402 count = of_count_phandle_with_args(np, "required-opps", NULL);
1403
1404 return count > 0;
1405 }
1406
1407 /**
1408 * dev_pm_opp_get_of_node() - Gets the DT node corresponding to an opp
1409 * @opp: opp for which DT node has to be returned for
1410 *
1411 * Return: DT node corresponding to the opp, else 0 on success.
1412 *
1413 * The caller needs to put the node with of_node_put() after using it.
1414 */
dev_pm_opp_get_of_node(struct dev_pm_opp * opp)1415 struct device_node *dev_pm_opp_get_of_node(struct dev_pm_opp *opp)
1416 {
1417 if (IS_ERR_OR_NULL(opp)) {
1418 pr_err("%s: Invalid parameters\n", __func__);
1419 return NULL;
1420 }
1421
1422 return of_node_get(opp->np);
1423 }
1424 EXPORT_SYMBOL_GPL(dev_pm_opp_get_of_node);
1425
1426 /*
1427 * Callback function provided to the Energy Model framework upon registration.
1428 * It provides the power used by @dev at @kHz if it is the frequency of an
1429 * existing OPP, or at the frequency of the first OPP above @kHz otherwise
1430 * (see dev_pm_opp_find_freq_ceil()). This function updates @kHz to the ceiled
1431 * frequency and @uW to the associated power.
1432 *
1433 * Returns 0 on success or a proper -EINVAL value in case of error.
1434 */
1435 static int __maybe_unused
_get_dt_power(struct device * dev,unsigned long * uW,unsigned long * kHz)1436 _get_dt_power(struct device *dev, unsigned long *uW, unsigned long *kHz)
1437 {
1438 unsigned long opp_freq, opp_power;
1439
1440 /* Find the right frequency and related OPP */
1441 opp_freq = *kHz * 1000;
1442
1443 struct dev_pm_opp *opp __free(put_opp) =
1444 dev_pm_opp_find_freq_ceil(dev, &opp_freq);
1445
1446 if (IS_ERR(opp))
1447 return -EINVAL;
1448
1449 opp_power = dev_pm_opp_get_power(opp);
1450 if (!opp_power)
1451 return -EINVAL;
1452
1453 *kHz = opp_freq / 1000;
1454 *uW = opp_power;
1455
1456 return 0;
1457 }
1458
1459 /**
1460 * dev_pm_opp_calc_power() - Calculate power value for device with EM
1461 * @dev : Device for which an Energy Model has to be registered
1462 * @uW : New power value that is calculated
1463 * @kHz : Frequency for which the new power is calculated
1464 *
1465 * This computes the power estimated by @dev at @kHz if it is the frequency
1466 * of an existing OPP, or at the frequency of the first OPP above @kHz otherwise
1467 * (see dev_pm_opp_find_freq_ceil()). This function updates @kHz to the ceiled
1468 * frequency and @uW to the associated power. The power is estimated as
1469 * P = C * V^2 * f with C being the device's capacitance and V and f
1470 * respectively the voltage and frequency of the OPP.
1471 * It is also used as a callback function provided to the Energy Model
1472 * framework upon registration.
1473 *
1474 * Returns -EINVAL if the power calculation failed because of missing
1475 * parameters, 0 otherwise.
1476 */
dev_pm_opp_calc_power(struct device * dev,unsigned long * uW,unsigned long * kHz)1477 int dev_pm_opp_calc_power(struct device *dev, unsigned long *uW,
1478 unsigned long *kHz)
1479 {
1480 unsigned long mV, Hz;
1481 u32 cap;
1482 u64 tmp;
1483 int ret;
1484
1485 struct device_node *np __free(device_node) = of_node_get(dev->of_node);
1486
1487 if (!np)
1488 return -EINVAL;
1489
1490 ret = of_property_read_u32(np, "dynamic-power-coefficient", &cap);
1491 if (ret)
1492 return -EINVAL;
1493
1494 Hz = *kHz * 1000;
1495
1496 struct dev_pm_opp *opp __free(put_opp) =
1497 dev_pm_opp_find_freq_ceil(dev, &Hz);
1498
1499 if (IS_ERR(opp))
1500 return -EINVAL;
1501
1502 mV = dev_pm_opp_get_voltage(opp) / 1000;
1503 if (!mV)
1504 return -EINVAL;
1505
1506 tmp = (u64)cap * mV * mV * (Hz / 1000000);
1507 /* Provide power in micro-Watts */
1508 do_div(tmp, 1000000);
1509
1510 *uW = (unsigned long)tmp;
1511 *kHz = Hz / 1000;
1512
1513 return 0;
1514 }
1515 EXPORT_SYMBOL_GPL(dev_pm_opp_calc_power);
1516
_of_has_opp_microwatt_property(struct device * dev)1517 static bool _of_has_opp_microwatt_property(struct device *dev)
1518 {
1519 unsigned long freq = 0;
1520
1521 /* Check if at least one OPP has needed property */
1522 struct dev_pm_opp *opp __free(put_opp) =
1523 dev_pm_opp_find_freq_ceil(dev, &freq);
1524
1525 if (IS_ERR(opp))
1526 return false;
1527
1528 return !!dev_pm_opp_get_power(opp);
1529 }
1530
1531 /**
1532 * dev_pm_opp_of_register_em() - Attempt to register an Energy Model
1533 * @dev : Device for which an Energy Model has to be registered
1534 * @cpus : CPUs for which an Energy Model has to be registered. For
1535 * other type of devices it should be set to NULL.
1536 *
1537 * This checks whether the "dynamic-power-coefficient" devicetree property has
1538 * been specified, and tries to register an Energy Model with it if it has.
1539 * Having this property means the voltages are known for OPPs and the EM
1540 * might be calculated.
1541 */
dev_pm_opp_of_register_em(struct device * dev,struct cpumask * cpus)1542 int dev_pm_opp_of_register_em(struct device *dev, struct cpumask *cpus)
1543 {
1544 struct em_data_callback em_cb;
1545 int ret, nr_opp;
1546 u32 cap;
1547
1548 if (IS_ERR_OR_NULL(dev))
1549 return -EINVAL;
1550
1551 struct device_node *np __free(device_node) = of_node_get(dev->of_node);
1552
1553 if (!np) {
1554 ret = -EINVAL;
1555 goto failed;
1556 }
1557
1558 nr_opp = dev_pm_opp_get_opp_count(dev);
1559 if (nr_opp <= 0) {
1560 ret = -EINVAL;
1561 goto failed;
1562 }
1563
1564 /* First, try to find more precised Energy Model in DT */
1565 if (_of_has_opp_microwatt_property(dev)) {
1566 EM_SET_ACTIVE_POWER_CB(em_cb, _get_dt_power);
1567 goto register_em;
1568 }
1569
1570 /*
1571 * Register an EM only if the 'dynamic-power-coefficient' property is
1572 * set in devicetree. It is assumed the voltage values are known if that
1573 * property is set since it is useless otherwise. If voltages are not
1574 * known, just let the EM registration fail with an error to alert the
1575 * user about the inconsistent configuration.
1576 */
1577 ret = of_property_read_u32(np, "dynamic-power-coefficient", &cap);
1578 if (ret || !cap) {
1579 dev_dbg(dev, "Couldn't find proper 'dynamic-power-coefficient' in DT\n");
1580 ret = -EINVAL;
1581 goto failed;
1582 }
1583
1584 EM_SET_ACTIVE_POWER_CB(em_cb, dev_pm_opp_calc_power);
1585
1586 register_em:
1587 ret = em_dev_register_perf_domain(dev, nr_opp, &em_cb, cpus, true);
1588 if (ret)
1589 goto failed;
1590
1591 return 0;
1592
1593 failed:
1594 dev_dbg(dev, "Couldn't register Energy Model %d\n", ret);
1595 return ret;
1596 }
1597 EXPORT_SYMBOL_GPL(dev_pm_opp_of_register_em);
1598