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Ørjan Eidea76caf52015-09-10 18:09:30 +01001/*
2 * devfreq_cooling: Thermal cooling device implementation for devices using
3 * devfreq
4 *
5 * Copyright (C) 2014-2015 ARM Limited
6 *
7 * This program is free software; you can redistribute it and/or modify
8 * it under the terms of the GNU General Public License version 2 as
9 * published by the Free Software Foundation.
10 *
11 * This program is distributed "as is" WITHOUT ANY WARRANTY of any
12 * kind, whether express or implied; without even the implied warranty
13 * of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 * GNU General Public License for more details.
15 *
16 * TODO:
17 * - If OPPs are added or removed after devfreq cooling has
18 * registered, the devfreq cooling won't react to it.
19 */
20
21#include <linux/devfreq.h>
22#include <linux/devfreq_cooling.h>
23#include <linux/export.h>
Matthew Wilcox2f96c032016-12-21 09:47:06 -080024#include <linux/idr.h>
Ørjan Eidea76caf52015-09-10 18:09:30 +010025#include <linux/slab.h>
26#include <linux/pm_opp.h>
27#include <linux/thermal.h>
28
Javi Merino9876b1a2015-09-10 18:09:31 +010029#include <trace/events/thermal.h>
30
Matthew Wilcox2f96c032016-12-21 09:47:06 -080031static DEFINE_IDA(devfreq_ida);
Ørjan Eidea76caf52015-09-10 18:09:30 +010032
33/**
34 * struct devfreq_cooling_device - Devfreq cooling device
35 * @id: unique integer value corresponding to each
36 * devfreq_cooling_device registered.
37 * @cdev: Pointer to associated thermal cooling device.
38 * @devfreq: Pointer to associated devfreq device.
39 * @cooling_state: Current cooling state.
40 * @power_table: Pointer to table with maximum power draw for each
41 * cooling state. State is the index into the table, and
42 * the power is in mW.
43 * @freq_table: Pointer to a table with the frequencies sorted in descending
44 * order. You can index the table by cooling device state
45 * @freq_table_size: Size of the @freq_table and @power_table
46 * @power_ops: Pointer to devfreq_cooling_power, used to generate the
47 * @power_table.
48 */
49struct devfreq_cooling_device {
50 int id;
51 struct thermal_cooling_device *cdev;
52 struct devfreq *devfreq;
53 unsigned long cooling_state;
54 u32 *power_table;
55 u32 *freq_table;
56 size_t freq_table_size;
57 struct devfreq_cooling_power *power_ops;
58};
59
60/**
Ørjan Eidea76caf52015-09-10 18:09:30 +010061 * partition_enable_opps() - disable all opps above a given state
62 * @dfc: Pointer to devfreq we are operating on
63 * @cdev_state: cooling device state we're setting
64 *
65 * Go through the OPPs of the device, enabling all OPPs until
66 * @cdev_state and disabling those frequencies above it.
67 */
68static int partition_enable_opps(struct devfreq_cooling_device *dfc,
69 unsigned long cdev_state)
70{
71 int i;
72 struct device *dev = dfc->devfreq->dev.parent;
73
74 for (i = 0; i < dfc->freq_table_size; i++) {
75 struct dev_pm_opp *opp;
76 int ret = 0;
77 unsigned int freq = dfc->freq_table[i];
78 bool want_enable = i >= cdev_state ? true : false;
79
Ørjan Eidea76caf52015-09-10 18:09:30 +010080 opp = dev_pm_opp_find_freq_exact(dev, freq, !want_enable);
Ørjan Eidea76caf52015-09-10 18:09:30 +010081
82 if (PTR_ERR(opp) == -ERANGE)
83 continue;
84 else if (IS_ERR(opp))
85 return PTR_ERR(opp);
86
Viresh Kumar8a31d9d92017-01-23 10:11:47 +053087 dev_pm_opp_put(opp);
88
Ørjan Eidea76caf52015-09-10 18:09:30 +010089 if (want_enable)
90 ret = dev_pm_opp_enable(dev, freq);
91 else
92 ret = dev_pm_opp_disable(dev, freq);
93
94 if (ret)
95 return ret;
96 }
97
98 return 0;
99}
100
101static int devfreq_cooling_get_max_state(struct thermal_cooling_device *cdev,
102 unsigned long *state)
103{
104 struct devfreq_cooling_device *dfc = cdev->devdata;
105
106 *state = dfc->freq_table_size - 1;
107
108 return 0;
109}
110
111static int devfreq_cooling_get_cur_state(struct thermal_cooling_device *cdev,
112 unsigned long *state)
113{
114 struct devfreq_cooling_device *dfc = cdev->devdata;
115
116 *state = dfc->cooling_state;
117
118 return 0;
119}
120
121static int devfreq_cooling_set_cur_state(struct thermal_cooling_device *cdev,
122 unsigned long state)
123{
124 struct devfreq_cooling_device *dfc = cdev->devdata;
125 struct devfreq *df = dfc->devfreq;
126 struct device *dev = df->dev.parent;
127 int ret;
128
129 if (state == dfc->cooling_state)
130 return 0;
131
132 dev_dbg(dev, "Setting cooling state %lu\n", state);
133
134 if (state >= dfc->freq_table_size)
135 return -EINVAL;
136
137 ret = partition_enable_opps(dfc, state);
138 if (ret)
139 return ret;
140
141 dfc->cooling_state = state;
142
143 return 0;
144}
145
146/**
147 * freq_get_state() - get the cooling state corresponding to a frequency
148 * @dfc: Pointer to devfreq cooling device
149 * @freq: frequency in Hz
150 *
151 * Return: the cooling state associated with the @freq, or
152 * THERMAL_CSTATE_INVALID if it wasn't found.
153 */
154static unsigned long
155freq_get_state(struct devfreq_cooling_device *dfc, unsigned long freq)
156{
157 int i;
158
159 for (i = 0; i < dfc->freq_table_size; i++) {
160 if (dfc->freq_table[i] == freq)
161 return i;
162 }
163
164 return THERMAL_CSTATE_INVALID;
165}
166
167/**
168 * get_static_power() - calculate the static power
169 * @dfc: Pointer to devfreq cooling device
170 * @freq: Frequency in Hz
171 *
172 * Calculate the static power in milliwatts using the supplied
173 * get_static_power(). The current voltage is calculated using the
174 * OPP library. If no get_static_power() was supplied, assume the
175 * static power is negligible.
176 */
177static unsigned long
178get_static_power(struct devfreq_cooling_device *dfc, unsigned long freq)
179{
180 struct devfreq *df = dfc->devfreq;
181 struct device *dev = df->dev.parent;
182 unsigned long voltage;
183 struct dev_pm_opp *opp;
184
185 if (!dfc->power_ops->get_static_power)
186 return 0;
187
Ørjan Eidea76caf52015-09-10 18:09:30 +0100188 opp = dev_pm_opp_find_freq_exact(dev, freq, true);
189 if (IS_ERR(opp) && (PTR_ERR(opp) == -ERANGE))
190 opp = dev_pm_opp_find_freq_exact(dev, freq, false);
191
192 voltage = dev_pm_opp_get_voltage(opp) / 1000; /* mV */
Viresh Kumar8a31d9d92017-01-23 10:11:47 +0530193 dev_pm_opp_put(opp);
Ørjan Eidea76caf52015-09-10 18:09:30 +0100194
195 if (voltage == 0) {
196 dev_warn_ratelimited(dev,
197 "Failed to get voltage for frequency %lu: %ld\n",
198 freq, IS_ERR(opp) ? PTR_ERR(opp) : 0);
199 return 0;
200 }
201
Javi Merino3aa53742016-09-15 15:44:23 +0100202 return dfc->power_ops->get_static_power(df, voltage);
Ørjan Eidea76caf52015-09-10 18:09:30 +0100203}
204
205/**
206 * get_dynamic_power - calculate the dynamic power
207 * @dfc: Pointer to devfreq cooling device
208 * @freq: Frequency in Hz
209 * @voltage: Voltage in millivolts
210 *
211 * Calculate the dynamic power in milliwatts consumed by the device at
212 * frequency @freq and voltage @voltage. If the get_dynamic_power()
213 * was supplied as part of the devfreq_cooling_power struct, then that
214 * function is used. Otherwise, a simple power model (Pdyn = Coeff *
215 * Voltage^2 * Frequency) is used.
216 */
217static unsigned long
218get_dynamic_power(struct devfreq_cooling_device *dfc, unsigned long freq,
219 unsigned long voltage)
220{
Javi Merino61c8e8a2015-11-02 19:03:04 +0000221 u64 power;
Ørjan Eidea76caf52015-09-10 18:09:30 +0100222 u32 freq_mhz;
223 struct devfreq_cooling_power *dfc_power = dfc->power_ops;
224
225 if (dfc_power->get_dynamic_power)
Javi Merino3aa53742016-09-15 15:44:23 +0100226 return dfc_power->get_dynamic_power(dfc->devfreq, freq,
227 voltage);
Ørjan Eidea76caf52015-09-10 18:09:30 +0100228
229 freq_mhz = freq / 1000000;
230 power = (u64)dfc_power->dyn_power_coeff * freq_mhz * voltage * voltage;
231 do_div(power, 1000000000);
232
233 return power;
234}
235
236static int devfreq_cooling_get_requested_power(struct thermal_cooling_device *cdev,
237 struct thermal_zone_device *tz,
238 u32 *power)
239{
240 struct devfreq_cooling_device *dfc = cdev->devdata;
241 struct devfreq *df = dfc->devfreq;
242 struct devfreq_dev_status *status = &df->last_status;
243 unsigned long state;
244 unsigned long freq = status->current_frequency;
245 u32 dyn_power, static_power;
246
247 /* Get dynamic power for state */
248 state = freq_get_state(dfc, freq);
249 if (state == THERMAL_CSTATE_INVALID)
250 return -EAGAIN;
251
252 dyn_power = dfc->power_table[state];
253
254 /* Scale dynamic power for utilization */
255 dyn_power = (dyn_power * status->busy_time) / status->total_time;
256
257 /* Get static power */
258 static_power = get_static_power(dfc, freq);
259
Javi Merino9876b1a2015-09-10 18:09:31 +0100260 trace_thermal_power_devfreq_get_power(cdev, status, freq, dyn_power,
261 static_power);
262
Ørjan Eidea76caf52015-09-10 18:09:30 +0100263 *power = dyn_power + static_power;
264
265 return 0;
266}
267
268static int devfreq_cooling_state2power(struct thermal_cooling_device *cdev,
269 struct thermal_zone_device *tz,
270 unsigned long state,
271 u32 *power)
272{
273 struct devfreq_cooling_device *dfc = cdev->devdata;
274 unsigned long freq;
275 u32 static_power;
276
Shawn Line3da1cb2016-08-22 16:08:06 +0800277 if (state >= dfc->freq_table_size)
Ørjan Eidea76caf52015-09-10 18:09:30 +0100278 return -EINVAL;
279
280 freq = dfc->freq_table[state];
281 static_power = get_static_power(dfc, freq);
282
283 *power = dfc->power_table[state] + static_power;
284 return 0;
285}
286
287static int devfreq_cooling_power2state(struct thermal_cooling_device *cdev,
288 struct thermal_zone_device *tz,
289 u32 power, unsigned long *state)
290{
291 struct devfreq_cooling_device *dfc = cdev->devdata;
292 struct devfreq *df = dfc->devfreq;
293 struct devfreq_dev_status *status = &df->last_status;
294 unsigned long freq = status->current_frequency;
295 unsigned long busy_time;
296 s32 dyn_power;
297 u32 static_power;
298 int i;
299
300 static_power = get_static_power(dfc, freq);
301
302 dyn_power = power - static_power;
303 dyn_power = dyn_power > 0 ? dyn_power : 0;
304
305 /* Scale dynamic power for utilization */
306 busy_time = status->busy_time ?: 1;
307 dyn_power = (dyn_power * status->total_time) / busy_time;
308
309 /*
310 * Find the first cooling state that is within the power
311 * budget for dynamic power.
312 */
313 for (i = 0; i < dfc->freq_table_size - 1; i++)
314 if (dyn_power >= dfc->power_table[i])
315 break;
316
317 *state = i;
Javi Merino9876b1a2015-09-10 18:09:31 +0100318 trace_thermal_power_devfreq_limit(cdev, freq, *state, power);
Ørjan Eidea76caf52015-09-10 18:09:30 +0100319 return 0;
320}
321
322static struct thermal_cooling_device_ops devfreq_cooling_ops = {
323 .get_max_state = devfreq_cooling_get_max_state,
324 .get_cur_state = devfreq_cooling_get_cur_state,
325 .set_cur_state = devfreq_cooling_set_cur_state,
326};
327
328/**
329 * devfreq_cooling_gen_tables() - Generate power and freq tables.
330 * @dfc: Pointer to devfreq cooling device.
331 *
332 * Generate power and frequency tables: the power table hold the
333 * device's maximum power usage at each cooling state (OPP). The
334 * static and dynamic power using the appropriate voltage and
335 * frequency for the state, is acquired from the struct
336 * devfreq_cooling_power, and summed to make the maximum power draw.
337 *
338 * The frequency table holds the frequencies in descending order.
339 * That way its indexed by cooling device state.
340 *
341 * The tables are malloced, and pointers put in dfc. They must be
342 * freed when unregistering the devfreq cooling device.
343 *
344 * Return: 0 on success, negative error code on failure.
345 */
346static int devfreq_cooling_gen_tables(struct devfreq_cooling_device *dfc)
347{
348 struct devfreq *df = dfc->devfreq;
349 struct device *dev = df->dev.parent;
350 int ret, num_opps;
351 unsigned long freq;
352 u32 *power_table = NULL;
353 u32 *freq_table;
354 int i;
355
356 num_opps = dev_pm_opp_get_opp_count(dev);
357
358 if (dfc->power_ops) {
359 power_table = kcalloc(num_opps, sizeof(*power_table),
360 GFP_KERNEL);
361 if (!power_table)
Dan Carpenterce5ee162015-11-04 16:36:20 +0300362 return -ENOMEM;
Ørjan Eidea76caf52015-09-10 18:09:30 +0100363 }
364
365 freq_table = kcalloc(num_opps, sizeof(*freq_table),
366 GFP_KERNEL);
367 if (!freq_table) {
368 ret = -ENOMEM;
369 goto free_power_table;
370 }
371
372 for (i = 0, freq = ULONG_MAX; i < num_opps; i++, freq--) {
373 unsigned long power_dyn, voltage;
374 struct dev_pm_opp *opp;
375
Ørjan Eidea76caf52015-09-10 18:09:30 +0100376 opp = dev_pm_opp_find_freq_floor(dev, &freq);
377 if (IS_ERR(opp)) {
Ørjan Eidea76caf52015-09-10 18:09:30 +0100378 ret = PTR_ERR(opp);
379 goto free_tables;
380 }
381
382 voltage = dev_pm_opp_get_voltage(opp) / 1000; /* mV */
Viresh Kumar8a31d9d92017-01-23 10:11:47 +0530383 dev_pm_opp_put(opp);
Ørjan Eidea76caf52015-09-10 18:09:30 +0100384
385 if (dfc->power_ops) {
386 power_dyn = get_dynamic_power(dfc, freq, voltage);
387
388 dev_dbg(dev, "Dynamic power table: %lu MHz @ %lu mV: %lu = %lu mW\n",
389 freq / 1000000, voltage, power_dyn, power_dyn);
390
391 power_table[i] = power_dyn;
392 }
393
394 freq_table[i] = freq;
395 }
396
397 if (dfc->power_ops)
398 dfc->power_table = power_table;
399
400 dfc->freq_table = freq_table;
401 dfc->freq_table_size = num_opps;
402
403 return 0;
404
405free_tables:
406 kfree(freq_table);
407free_power_table:
408 kfree(power_table);
409
410 return ret;
411}
412
413/**
414 * of_devfreq_cooling_register_power() - Register devfreq cooling device,
415 * with OF and power information.
416 * @np: Pointer to OF device_node.
417 * @df: Pointer to devfreq device.
418 * @dfc_power: Pointer to devfreq_cooling_power.
419 *
420 * Register a devfreq cooling device. The available OPPs must be
421 * registered on the device.
422 *
423 * If @dfc_power is provided, the cooling device is registered with the
424 * power extensions. For the power extensions to work correctly,
425 * devfreq should use the simple_ondemand governor, other governors
426 * are not currently supported.
427 */
Javi Merino3c99c2c2015-11-02 19:03:03 +0000428struct thermal_cooling_device *
Ørjan Eidea76caf52015-09-10 18:09:30 +0100429of_devfreq_cooling_register_power(struct device_node *np, struct devfreq *df,
430 struct devfreq_cooling_power *dfc_power)
431{
432 struct thermal_cooling_device *cdev;
433 struct devfreq_cooling_device *dfc;
434 char dev_name[THERMAL_NAME_LENGTH];
435 int err;
436
437 dfc = kzalloc(sizeof(*dfc), GFP_KERNEL);
438 if (!dfc)
439 return ERR_PTR(-ENOMEM);
440
441 dfc->devfreq = df;
442
443 if (dfc_power) {
444 dfc->power_ops = dfc_power;
445
446 devfreq_cooling_ops.get_requested_power =
447 devfreq_cooling_get_requested_power;
448 devfreq_cooling_ops.state2power = devfreq_cooling_state2power;
449 devfreq_cooling_ops.power2state = devfreq_cooling_power2state;
450 }
451
452 err = devfreq_cooling_gen_tables(dfc);
453 if (err)
454 goto free_dfc;
455
Matthew Wilcox2f96c032016-12-21 09:47:06 -0800456 err = ida_simple_get(&devfreq_ida, 0, 0, GFP_KERNEL);
457 if (err < 0)
Ørjan Eidea76caf52015-09-10 18:09:30 +0100458 goto free_tables;
Matthew Wilcox2f96c032016-12-21 09:47:06 -0800459 dfc->id = err;
Ørjan Eidea76caf52015-09-10 18:09:30 +0100460
461 snprintf(dev_name, sizeof(dev_name), "thermal-devfreq-%d", dfc->id);
462
463 cdev = thermal_of_cooling_device_register(np, dev_name, dfc,
464 &devfreq_cooling_ops);
465 if (IS_ERR(cdev)) {
466 err = PTR_ERR(cdev);
467 dev_err(df->dev.parent,
468 "Failed to register devfreq cooling device (%d)\n",
469 err);
Matthew Wilcox2f96c032016-12-21 09:47:06 -0800470 goto release_ida;
Ørjan Eidea76caf52015-09-10 18:09:30 +0100471 }
472
473 dfc->cdev = cdev;
474
Javi Merino3c99c2c2015-11-02 19:03:03 +0000475 return cdev;
Ørjan Eidea76caf52015-09-10 18:09:30 +0100476
Matthew Wilcox2f96c032016-12-21 09:47:06 -0800477release_ida:
478 ida_simple_remove(&devfreq_ida, dfc->id);
Ørjan Eidea76caf52015-09-10 18:09:30 +0100479free_tables:
480 kfree(dfc->power_table);
481 kfree(dfc->freq_table);
482free_dfc:
483 kfree(dfc);
484
485 return ERR_PTR(err);
486}
487EXPORT_SYMBOL_GPL(of_devfreq_cooling_register_power);
488
489/**
490 * of_devfreq_cooling_register() - Register devfreq cooling device,
491 * with OF information.
492 * @np: Pointer to OF device_node.
493 * @df: Pointer to devfreq device.
494 */
Javi Merino3c99c2c2015-11-02 19:03:03 +0000495struct thermal_cooling_device *
Ørjan Eidea76caf52015-09-10 18:09:30 +0100496of_devfreq_cooling_register(struct device_node *np, struct devfreq *df)
497{
498 return of_devfreq_cooling_register_power(np, df, NULL);
499}
500EXPORT_SYMBOL_GPL(of_devfreq_cooling_register);
501
502/**
503 * devfreq_cooling_register() - Register devfreq cooling device.
504 * @df: Pointer to devfreq device.
505 */
Javi Merino3c99c2c2015-11-02 19:03:03 +0000506struct thermal_cooling_device *devfreq_cooling_register(struct devfreq *df)
Ørjan Eidea76caf52015-09-10 18:09:30 +0100507{
508 return of_devfreq_cooling_register(NULL, df);
509}
510EXPORT_SYMBOL_GPL(devfreq_cooling_register);
511
512/**
513 * devfreq_cooling_unregister() - Unregister devfreq cooling device.
514 * @dfc: Pointer to devfreq cooling device to unregister.
515 */
Javi Merino3c99c2c2015-11-02 19:03:03 +0000516void devfreq_cooling_unregister(struct thermal_cooling_device *cdev)
Ørjan Eidea76caf52015-09-10 18:09:30 +0100517{
Javi Merino3c99c2c2015-11-02 19:03:03 +0000518 struct devfreq_cooling_device *dfc;
519
520 if (!cdev)
Ørjan Eidea76caf52015-09-10 18:09:30 +0100521 return;
522
Javi Merino3c99c2c2015-11-02 19:03:03 +0000523 dfc = cdev->devdata;
524
Ørjan Eidea76caf52015-09-10 18:09:30 +0100525 thermal_cooling_device_unregister(dfc->cdev);
Matthew Wilcox2f96c032016-12-21 09:47:06 -0800526 ida_simple_remove(&devfreq_ida, dfc->id);
Ørjan Eidea76caf52015-09-10 18:09:30 +0100527 kfree(dfc->power_table);
528 kfree(dfc->freq_table);
529
530 kfree(dfc);
531}
532EXPORT_SYMBOL_GPL(devfreq_cooling_unregister);