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v5.9
  1// SPDX-License-Identifier: GPL-2.0
  2/*
  3 * Thermal sensor driver for Allwinner SOC
  4 * Copyright (C) 2019 Yangtao Li
  5 *
  6 * Based on the work of Icenowy Zheng <icenowy@aosc.io>
  7 * Based on the work of Ondrej Jirman <megous@megous.com>
  8 * Based on the work of Josef Gajdusek <atx@atx.name>
  9 */
 10
 
 11#include <linux/clk.h>
 12#include <linux/device.h>
 13#include <linux/interrupt.h>
 14#include <linux/module.h>
 15#include <linux/nvmem-consumer.h>
 16#include <linux/of_device.h>
 17#include <linux/platform_device.h>
 18#include <linux/regmap.h>
 19#include <linux/reset.h>
 20#include <linux/slab.h>
 21#include <linux/thermal.h>
 22
 23#include "thermal_hwmon.h"
 24
 25#define MAX_SENSOR_NUM	4
 26
 27#define FT_TEMP_MASK				GENMASK(11, 0)
 28#define TEMP_CALIB_MASK				GENMASK(11, 0)
 29#define CALIBRATE_DEFAULT			0x800
 30
 31#define SUN8I_THS_CTRL0				0x00
 32#define SUN8I_THS_CTRL2				0x40
 33#define SUN8I_THS_IC				0x44
 34#define SUN8I_THS_IS				0x48
 35#define SUN8I_THS_MFC				0x70
 36#define SUN8I_THS_TEMP_CALIB			0x74
 37#define SUN8I_THS_TEMP_DATA			0x80
 38
 39#define SUN50I_THS_CTRL0			0x00
 40#define SUN50I_H6_THS_ENABLE			0x04
 41#define SUN50I_H6_THS_PC			0x08
 42#define SUN50I_H6_THS_DIC			0x10
 43#define SUN50I_H6_THS_DIS			0x20
 44#define SUN50I_H6_THS_MFC			0x30
 45#define SUN50I_H6_THS_TEMP_CALIB		0xa0
 46#define SUN50I_H6_THS_TEMP_DATA			0xc0
 47
 48#define SUN8I_THS_CTRL0_T_ACQ0(x)		(GENMASK(15, 0) & (x))
 49#define SUN8I_THS_CTRL2_T_ACQ1(x)		((GENMASK(15, 0) & (x)) << 16)
 50#define SUN8I_THS_DATA_IRQ_STS(x)		BIT(x + 8)
 51
 52#define SUN50I_THS_CTRL0_T_ACQ(x)		((GENMASK(15, 0) & (x)) << 16)
 53#define SUN50I_THS_FILTER_EN			BIT(2)
 54#define SUN50I_THS_FILTER_TYPE(x)		(GENMASK(1, 0) & (x))
 55#define SUN50I_H6_THS_PC_TEMP_PERIOD(x)		((GENMASK(19, 0) & (x)) << 12)
 56#define SUN50I_H6_THS_DATA_IRQ_STS(x)		BIT(x)
 57
 58/* millidegree celsius */
 59
 60struct tsensor {
 61	struct ths_device		*tmdev;
 62	struct thermal_zone_device	*tzd;
 63	int				id;
 64};
 65
 66struct ths_thermal_chip {
 67	bool            has_mod_clk;
 68	bool            has_bus_clk_reset;
 69	int		sensor_num;
 70	int		offset;
 71	int		scale;
 72	int		ft_deviation;
 73	int		temp_data_base;
 74	int		(*calibrate)(struct ths_device *tmdev,
 75				     u16 *caldata, int callen);
 76	int		(*init)(struct ths_device *tmdev);
 77	int             (*irq_ack)(struct ths_device *tmdev);
 78	int		(*calc_temp)(struct ths_device *tmdev,
 79				     int id, int reg);
 80};
 81
 82struct ths_device {
 83	const struct ths_thermal_chip		*chip;
 84	struct device				*dev;
 85	struct regmap				*regmap;
 86	struct reset_control			*reset;
 87	struct clk				*bus_clk;
 88	struct clk                              *mod_clk;
 89	struct tsensor				sensor[MAX_SENSOR_NUM];
 90};
 91
 92/* Temp Unit: millidegree Celsius */
 93static int sun8i_ths_calc_temp(struct ths_device *tmdev,
 94			       int id, int reg)
 95{
 96	return tmdev->chip->offset - (reg * tmdev->chip->scale / 10);
 97}
 98
 99static int sun50i_h5_calc_temp(struct ths_device *tmdev,
100			       int id, int reg)
101{
102	if (reg >= 0x500)
103		return -1191 * reg / 10 + 223000;
104	else if (!id)
105		return -1452 * reg / 10 + 259000;
106	else
107		return -1590 * reg / 10 + 276000;
108}
109
110static int sun8i_ths_get_temp(void *data, int *temp)
111{
112	struct tsensor *s = data;
113	struct ths_device *tmdev = s->tmdev;
114	int val = 0;
115
116	regmap_read(tmdev->regmap, tmdev->chip->temp_data_base +
117		    0x4 * s->id, &val);
118
119	/* ths have no data yet */
120	if (!val)
121		return -EAGAIN;
122
123	*temp = tmdev->chip->calc_temp(tmdev, s->id, val);
124	/*
125	 * According to the original sdk, there are some platforms(rarely)
126	 * that add a fixed offset value after calculating the temperature
127	 * value. We can't simply put it on the formula for calculating the
128	 * temperature above, because the formula for calculating the
129	 * temperature above is also used when the sensor is calibrated. If
130	 * do this, the correct calibration formula is hard to know.
131	 */
132	*temp += tmdev->chip->ft_deviation;
133
134	return 0;
135}
136
137static const struct thermal_zone_of_device_ops ths_ops = {
138	.get_temp = sun8i_ths_get_temp,
139};
140
141static const struct regmap_config config = {
142	.reg_bits = 32,
143	.val_bits = 32,
144	.reg_stride = 4,
145	.fast_io = true,
146	.max_register = 0xfc,
147};
148
149static int sun8i_h3_irq_ack(struct ths_device *tmdev)
150{
151	int i, state, ret = 0;
 
152
153	regmap_read(tmdev->regmap, SUN8I_THS_IS, &state);
154
155	for (i = 0; i < tmdev->chip->sensor_num; i++) {
156		if (state & SUN8I_THS_DATA_IRQ_STS(i)) {
157			regmap_write(tmdev->regmap, SUN8I_THS_IS,
158				     SUN8I_THS_DATA_IRQ_STS(i));
159			ret |= BIT(i);
160		}
161	}
162
163	return ret;
164}
165
166static int sun50i_h6_irq_ack(struct ths_device *tmdev)
167{
168	int i, state, ret = 0;
 
169
170	regmap_read(tmdev->regmap, SUN50I_H6_THS_DIS, &state);
171
172	for (i = 0; i < tmdev->chip->sensor_num; i++) {
173		if (state & SUN50I_H6_THS_DATA_IRQ_STS(i)) {
174			regmap_write(tmdev->regmap, SUN50I_H6_THS_DIS,
175				     SUN50I_H6_THS_DATA_IRQ_STS(i));
176			ret |= BIT(i);
177		}
178	}
179
180	return ret;
181}
182
183static irqreturn_t sun8i_irq_thread(int irq, void *data)
184{
185	struct ths_device *tmdev = data;
186	int i, state;
187
188	state = tmdev->chip->irq_ack(tmdev);
189
190	for (i = 0; i < tmdev->chip->sensor_num; i++) {
191		if (state & BIT(i))
192			thermal_zone_device_update(tmdev->sensor[i].tzd,
193						   THERMAL_EVENT_UNSPECIFIED);
194	}
195
196	return IRQ_HANDLED;
197}
198
199static int sun8i_h3_ths_calibrate(struct ths_device *tmdev,
200				  u16 *caldata, int callen)
201{
202	int i;
203
204	if (!caldata[0] || callen < 2 * tmdev->chip->sensor_num)
205		return -EINVAL;
206
207	for (i = 0; i < tmdev->chip->sensor_num; i++) {
208		int offset = (i % 2) << 4;
209
210		regmap_update_bits(tmdev->regmap,
211				   SUN8I_THS_TEMP_CALIB + (4 * (i >> 1)),
212				   0xfff << offset,
213				   caldata[i] << offset);
214	}
215
216	return 0;
217}
218
219static int sun50i_h6_ths_calibrate(struct ths_device *tmdev,
220				   u16 *caldata, int callen)
221{
222	struct device *dev = tmdev->dev;
223	int i, ft_temp;
224
225	if (!caldata[0] || callen < 2 + 2 * tmdev->chip->sensor_num)
226		return -EINVAL;
227
228	/*
229	 * efuse layout:
230	 *
231	 *	0   11  16	 32
232	 *	+-------+-------+-------+
233	 *	|temp|  |sensor0|sensor1|
234	 *	+-------+-------+-------+
235	 *
236	 * The calibration data on the H6 is the ambient temperature and
237	 * sensor values that are filled during the factory test stage.
238	 *
239	 * The unit of stored FT temperature is 0.1 degreee celusis.
240	 *
241	 * We need to calculate a delta between measured and caluclated
242	 * register values and this will become a calibration offset.
243	 */
244	ft_temp = (caldata[0] & FT_TEMP_MASK) * 100;
245
246	for (i = 0; i < tmdev->chip->sensor_num; i++) {
247		int sensor_reg = caldata[i + 1];
248		int cdata, offset;
249		int sensor_temp = tmdev->chip->calc_temp(tmdev, i, sensor_reg);
250
251		/*
252		 * Calibration data is CALIBRATE_DEFAULT - (calculated
253		 * temperature from sensor reading at factory temperature
254		 * minus actual factory temperature) * 14.88 (scale from
255		 * temperature to register values)
256		 */
257		cdata = CALIBRATE_DEFAULT -
258			((sensor_temp - ft_temp) * 10 / tmdev->chip->scale);
259		if (cdata & ~TEMP_CALIB_MASK) {
260			/*
261			 * Calibration value more than 12-bit, but calibration
262			 * register is 12-bit. In this case, ths hardware can
263			 * still work without calibration, although the data
264			 * won't be so accurate.
265			 */
266			dev_warn(dev, "sensor%d is not calibrated.\n", i);
267			continue;
268		}
269
270		offset = (i % 2) * 16;
271		regmap_update_bits(tmdev->regmap,
272				   SUN50I_H6_THS_TEMP_CALIB + (i / 2 * 4),
273				   0xfff << offset,
274				   cdata << offset);
275	}
276
277	return 0;
278}
279
280static int sun8i_ths_calibrate(struct ths_device *tmdev)
281{
282	struct nvmem_cell *calcell;
283	struct device *dev = tmdev->dev;
284	u16 *caldata;
285	size_t callen;
286	int ret = 0;
287
288	calcell = devm_nvmem_cell_get(dev, "calibration");
289	if (IS_ERR(calcell)) {
290		if (PTR_ERR(calcell) == -EPROBE_DEFER)
291			return -EPROBE_DEFER;
292		/*
293		 * Even if the external calibration data stored in sid is
294		 * not accessible, the THS hardware can still work, although
295		 * the data won't be so accurate.
296		 *
297		 * The default value of calibration register is 0x800 for
298		 * every sensor, and the calibration value is usually 0x7xx
299		 * or 0x8xx, so they won't be away from the default value
300		 * for a lot.
301		 *
302		 * So here we do not return error if the calibartion data is
303		 * not available, except the probe needs deferring.
304		 */
305		goto out;
306	}
307
308	caldata = nvmem_cell_read(calcell, &callen);
309	if (IS_ERR(caldata)) {
310		ret = PTR_ERR(caldata);
311		goto out;
312	}
313
314	tmdev->chip->calibrate(tmdev, caldata, callen);
315
316	kfree(caldata);
317out:
318	return ret;
319}
320
321static int sun8i_ths_resource_init(struct ths_device *tmdev)
322{
323	struct device *dev = tmdev->dev;
324	struct platform_device *pdev = to_platform_device(dev);
325	void __iomem *base;
326	int ret;
327
328	base = devm_platform_ioremap_resource(pdev, 0);
329	if (IS_ERR(base))
330		return PTR_ERR(base);
331
332	tmdev->regmap = devm_regmap_init_mmio(dev, base, &config);
333	if (IS_ERR(tmdev->regmap))
334		return PTR_ERR(tmdev->regmap);
335
336	if (tmdev->chip->has_bus_clk_reset) {
337		tmdev->reset = devm_reset_control_get(dev, NULL);
338		if (IS_ERR(tmdev->reset))
339			return PTR_ERR(tmdev->reset);
340
341		tmdev->bus_clk = devm_clk_get(&pdev->dev, "bus");
342		if (IS_ERR(tmdev->bus_clk))
343			return PTR_ERR(tmdev->bus_clk);
344	}
345
346	if (tmdev->chip->has_mod_clk) {
347		tmdev->mod_clk = devm_clk_get(&pdev->dev, "mod");
348		if (IS_ERR(tmdev->mod_clk))
349			return PTR_ERR(tmdev->mod_clk);
350	}
351
352	ret = reset_control_deassert(tmdev->reset);
353	if (ret)
354		return ret;
355
356	ret = clk_prepare_enable(tmdev->bus_clk);
357	if (ret)
358		goto assert_reset;
359
360	ret = clk_set_rate(tmdev->mod_clk, 24000000);
361	if (ret)
362		goto bus_disable;
363
364	ret = clk_prepare_enable(tmdev->mod_clk);
365	if (ret)
366		goto bus_disable;
367
368	ret = sun8i_ths_calibrate(tmdev);
369	if (ret)
370		goto mod_disable;
371
372	return 0;
373
374mod_disable:
375	clk_disable_unprepare(tmdev->mod_clk);
376bus_disable:
377	clk_disable_unprepare(tmdev->bus_clk);
378assert_reset:
379	reset_control_assert(tmdev->reset);
380
381	return ret;
382}
383
384static int sun8i_h3_thermal_init(struct ths_device *tmdev)
385{
386	int val;
387
388	/* average over 4 samples */
389	regmap_write(tmdev->regmap, SUN8I_THS_MFC,
390		     SUN50I_THS_FILTER_EN |
391		     SUN50I_THS_FILTER_TYPE(1));
392	/*
393	 * clkin = 24MHz
394	 * filter_samples = 4
395	 * period = 0.25s
396	 *
397	 * x = period * clkin / 4096 / filter_samples - 1
398	 *   = 365
399	 */
400	val = GENMASK(7 + tmdev->chip->sensor_num, 8);
401	regmap_write(tmdev->regmap, SUN8I_THS_IC,
402		     SUN50I_H6_THS_PC_TEMP_PERIOD(365) | val);
403	/*
404	 * T_acq = 20us
405	 * clkin = 24MHz
406	 *
407	 * x = T_acq * clkin - 1
408	 *   = 479
409	 */
410	regmap_write(tmdev->regmap, SUN8I_THS_CTRL0,
411		     SUN8I_THS_CTRL0_T_ACQ0(479));
412	val = GENMASK(tmdev->chip->sensor_num - 1, 0);
413	regmap_write(tmdev->regmap, SUN8I_THS_CTRL2,
414		     SUN8I_THS_CTRL2_T_ACQ1(479) | val);
415
416	return 0;
417}
418
419/*
420 * Without this undocummented value, the returned temperatures would
421 * be higher than real ones by about 20C.
422 */
423#define SUN50I_H6_CTRL0_UNK 0x0000002f
424
425static int sun50i_h6_thermal_init(struct ths_device *tmdev)
426{
427	int val;
428
429	/*
430	 * T_acq = 20us
431	 * clkin = 24MHz
432	 *
433	 * x = T_acq * clkin - 1
434	 *   = 479
435	 */
436	regmap_write(tmdev->regmap, SUN50I_THS_CTRL0,
437		     SUN50I_H6_CTRL0_UNK | SUN50I_THS_CTRL0_T_ACQ(479));
438	/* average over 4 samples */
439	regmap_write(tmdev->regmap, SUN50I_H6_THS_MFC,
440		     SUN50I_THS_FILTER_EN |
441		     SUN50I_THS_FILTER_TYPE(1));
442	/*
443	 * clkin = 24MHz
444	 * filter_samples = 4
445	 * period = 0.25s
446	 *
447	 * x = period * clkin / 4096 / filter_samples - 1
448	 *   = 365
449	 */
450	regmap_write(tmdev->regmap, SUN50I_H6_THS_PC,
451		     SUN50I_H6_THS_PC_TEMP_PERIOD(365));
452	/* enable sensor */
453	val = GENMASK(tmdev->chip->sensor_num - 1, 0);
454	regmap_write(tmdev->regmap, SUN50I_H6_THS_ENABLE, val);
455	/* thermal data interrupt enable */
456	val = GENMASK(tmdev->chip->sensor_num - 1, 0);
457	regmap_write(tmdev->regmap, SUN50I_H6_THS_DIC, val);
458
459	return 0;
460}
461
462static int sun8i_ths_register(struct ths_device *tmdev)
463{
464	int i;
465
466	for (i = 0; i < tmdev->chip->sensor_num; i++) {
467		tmdev->sensor[i].tmdev = tmdev;
468		tmdev->sensor[i].id = i;
469		tmdev->sensor[i].tzd =
470			devm_thermal_zone_of_sensor_register(tmdev->dev,
471							     i,
472							     &tmdev->sensor[i],
473							     &ths_ops);
474		if (IS_ERR(tmdev->sensor[i].tzd))
475			return PTR_ERR(tmdev->sensor[i].tzd);
476
477		if (devm_thermal_add_hwmon_sysfs(tmdev->sensor[i].tzd))
478			dev_warn(tmdev->dev,
479				 "Failed to add hwmon sysfs attributes\n");
480	}
481
482	return 0;
483}
484
485static int sun8i_ths_probe(struct platform_device *pdev)
486{
487	struct ths_device *tmdev;
488	struct device *dev = &pdev->dev;
489	int ret, irq;
490
491	tmdev = devm_kzalloc(dev, sizeof(*tmdev), GFP_KERNEL);
492	if (!tmdev)
493		return -ENOMEM;
494
495	tmdev->dev = dev;
496	tmdev->chip = of_device_get_match_data(&pdev->dev);
497	if (!tmdev->chip)
498		return -EINVAL;
499
500	platform_set_drvdata(pdev, tmdev);
501
502	ret = sun8i_ths_resource_init(tmdev);
503	if (ret)
504		return ret;
505
506	irq = platform_get_irq(pdev, 0);
507	if (irq < 0)
508		return irq;
509
510	ret = tmdev->chip->init(tmdev);
511	if (ret)
512		return ret;
513
514	ret = sun8i_ths_register(tmdev);
515	if (ret)
516		return ret;
517
518	/*
519	 * Avoid entering the interrupt handler, the thermal device is not
520	 * registered yet, we deffer the registration of the interrupt to
521	 * the end.
522	 */
523	ret = devm_request_threaded_irq(dev, irq, NULL,
524					sun8i_irq_thread,
525					IRQF_ONESHOT, "ths", tmdev);
526	if (ret)
527		return ret;
528
529	return 0;
530}
531
532static int sun8i_ths_remove(struct platform_device *pdev)
533{
534	struct ths_device *tmdev = platform_get_drvdata(pdev);
535
536	clk_disable_unprepare(tmdev->mod_clk);
537	clk_disable_unprepare(tmdev->bus_clk);
538	reset_control_assert(tmdev->reset);
539
540	return 0;
541}
542
543static const struct ths_thermal_chip sun8i_a83t_ths = {
544	.sensor_num = 3,
545	.scale = 705,
546	.offset = 191668,
547	.temp_data_base = SUN8I_THS_TEMP_DATA,
548	.calibrate = sun8i_h3_ths_calibrate,
549	.init = sun8i_h3_thermal_init,
550	.irq_ack = sun8i_h3_irq_ack,
551	.calc_temp = sun8i_ths_calc_temp,
552};
553
554static const struct ths_thermal_chip sun8i_h3_ths = {
555	.sensor_num = 1,
556	.scale = 1211,
557	.offset = 217000,
558	.has_mod_clk = true,
559	.has_bus_clk_reset = true,
560	.temp_data_base = SUN8I_THS_TEMP_DATA,
561	.calibrate = sun8i_h3_ths_calibrate,
562	.init = sun8i_h3_thermal_init,
563	.irq_ack = sun8i_h3_irq_ack,
564	.calc_temp = sun8i_ths_calc_temp,
565};
566
567static const struct ths_thermal_chip sun8i_r40_ths = {
568	.sensor_num = 2,
569	.offset = 251086,
570	.scale = 1130,
571	.has_mod_clk = true,
572	.has_bus_clk_reset = true,
573	.temp_data_base = SUN8I_THS_TEMP_DATA,
574	.calibrate = sun8i_h3_ths_calibrate,
575	.init = sun8i_h3_thermal_init,
576	.irq_ack = sun8i_h3_irq_ack,
577	.calc_temp = sun8i_ths_calc_temp,
578};
579
580static const struct ths_thermal_chip sun50i_a64_ths = {
581	.sensor_num = 3,
582	.offset = 260890,
583	.scale = 1170,
584	.has_mod_clk = true,
585	.has_bus_clk_reset = true,
586	.temp_data_base = SUN8I_THS_TEMP_DATA,
587	.calibrate = sun8i_h3_ths_calibrate,
588	.init = sun8i_h3_thermal_init,
589	.irq_ack = sun8i_h3_irq_ack,
590	.calc_temp = sun8i_ths_calc_temp,
591};
592
 
 
 
 
 
 
 
 
 
 
 
 
 
593static const struct ths_thermal_chip sun50i_h5_ths = {
594	.sensor_num = 2,
595	.has_mod_clk = true,
596	.has_bus_clk_reset = true,
597	.temp_data_base = SUN8I_THS_TEMP_DATA,
598	.calibrate = sun8i_h3_ths_calibrate,
599	.init = sun8i_h3_thermal_init,
600	.irq_ack = sun8i_h3_irq_ack,
601	.calc_temp = sun50i_h5_calc_temp,
602};
603
604static const struct ths_thermal_chip sun50i_h6_ths = {
605	.sensor_num = 2,
606	.has_bus_clk_reset = true,
607	.ft_deviation = 7000,
608	.offset = 187744,
609	.scale = 672,
610	.temp_data_base = SUN50I_H6_THS_TEMP_DATA,
611	.calibrate = sun50i_h6_ths_calibrate,
612	.init = sun50i_h6_thermal_init,
613	.irq_ack = sun50i_h6_irq_ack,
614	.calc_temp = sun8i_ths_calc_temp,
615};
616
617static const struct of_device_id of_ths_match[] = {
618	{ .compatible = "allwinner,sun8i-a83t-ths", .data = &sun8i_a83t_ths },
619	{ .compatible = "allwinner,sun8i-h3-ths", .data = &sun8i_h3_ths },
620	{ .compatible = "allwinner,sun8i-r40-ths", .data = &sun8i_r40_ths },
621	{ .compatible = "allwinner,sun50i-a64-ths", .data = &sun50i_a64_ths },
 
622	{ .compatible = "allwinner,sun50i-h5-ths", .data = &sun50i_h5_ths },
623	{ .compatible = "allwinner,sun50i-h6-ths", .data = &sun50i_h6_ths },
624	{ /* sentinel */ },
625};
626MODULE_DEVICE_TABLE(of, of_ths_match);
627
628static struct platform_driver ths_driver = {
629	.probe = sun8i_ths_probe,
630	.remove = sun8i_ths_remove,
631	.driver = {
632		.name = "sun8i-thermal",
633		.of_match_table = of_ths_match,
634	},
635};
636module_platform_driver(ths_driver);
637
638MODULE_DESCRIPTION("Thermal sensor driver for Allwinner SOC");
639MODULE_LICENSE("GPL v2");
v6.2
  1// SPDX-License-Identifier: GPL-2.0
  2/*
  3 * Thermal sensor driver for Allwinner SOC
  4 * Copyright (C) 2019 Yangtao Li
  5 *
  6 * Based on the work of Icenowy Zheng <icenowy@aosc.io>
  7 * Based on the work of Ondrej Jirman <megous@megous.com>
  8 * Based on the work of Josef Gajdusek <atx@atx.name>
  9 */
 10
 11#include <linux/bitmap.h>
 12#include <linux/clk.h>
 13#include <linux/device.h>
 14#include <linux/interrupt.h>
 15#include <linux/module.h>
 16#include <linux/nvmem-consumer.h>
 17#include <linux/of_device.h>
 18#include <linux/platform_device.h>
 19#include <linux/regmap.h>
 20#include <linux/reset.h>
 21#include <linux/slab.h>
 22#include <linux/thermal.h>
 23
 24#include "thermal_hwmon.h"
 25
 26#define MAX_SENSOR_NUM	4
 27
 28#define FT_TEMP_MASK				GENMASK(11, 0)
 29#define TEMP_CALIB_MASK				GENMASK(11, 0)
 30#define CALIBRATE_DEFAULT			0x800
 31
 32#define SUN8I_THS_CTRL0				0x00
 33#define SUN8I_THS_CTRL2				0x40
 34#define SUN8I_THS_IC				0x44
 35#define SUN8I_THS_IS				0x48
 36#define SUN8I_THS_MFC				0x70
 37#define SUN8I_THS_TEMP_CALIB			0x74
 38#define SUN8I_THS_TEMP_DATA			0x80
 39
 40#define SUN50I_THS_CTRL0			0x00
 41#define SUN50I_H6_THS_ENABLE			0x04
 42#define SUN50I_H6_THS_PC			0x08
 43#define SUN50I_H6_THS_DIC			0x10
 44#define SUN50I_H6_THS_DIS			0x20
 45#define SUN50I_H6_THS_MFC			0x30
 46#define SUN50I_H6_THS_TEMP_CALIB		0xa0
 47#define SUN50I_H6_THS_TEMP_DATA			0xc0
 48
 49#define SUN8I_THS_CTRL0_T_ACQ0(x)		(GENMASK(15, 0) & (x))
 50#define SUN8I_THS_CTRL2_T_ACQ1(x)		((GENMASK(15, 0) & (x)) << 16)
 51#define SUN8I_THS_DATA_IRQ_STS(x)		BIT(x + 8)
 52
 53#define SUN50I_THS_CTRL0_T_ACQ(x)		((GENMASK(15, 0) & (x)) << 16)
 54#define SUN50I_THS_FILTER_EN			BIT(2)
 55#define SUN50I_THS_FILTER_TYPE(x)		(GENMASK(1, 0) & (x))
 56#define SUN50I_H6_THS_PC_TEMP_PERIOD(x)		((GENMASK(19, 0) & (x)) << 12)
 57#define SUN50I_H6_THS_DATA_IRQ_STS(x)		BIT(x)
 58
 59/* millidegree celsius */
 60
 61struct tsensor {
 62	struct ths_device		*tmdev;
 63	struct thermal_zone_device	*tzd;
 64	int				id;
 65};
 66
 67struct ths_thermal_chip {
 68	bool            has_mod_clk;
 69	bool            has_bus_clk_reset;
 70	int		sensor_num;
 71	int		offset;
 72	int		scale;
 73	int		ft_deviation;
 74	int		temp_data_base;
 75	int		(*calibrate)(struct ths_device *tmdev,
 76				     u16 *caldata, int callen);
 77	int		(*init)(struct ths_device *tmdev);
 78	unsigned long	(*irq_ack)(struct ths_device *tmdev);
 79	int		(*calc_temp)(struct ths_device *tmdev,
 80				     int id, int reg);
 81};
 82
 83struct ths_device {
 84	const struct ths_thermal_chip		*chip;
 85	struct device				*dev;
 86	struct regmap				*regmap;
 87	struct reset_control			*reset;
 88	struct clk				*bus_clk;
 89	struct clk                              *mod_clk;
 90	struct tsensor				sensor[MAX_SENSOR_NUM];
 91};
 92
 93/* Temp Unit: millidegree Celsius */
 94static int sun8i_ths_calc_temp(struct ths_device *tmdev,
 95			       int id, int reg)
 96{
 97	return tmdev->chip->offset - (reg * tmdev->chip->scale / 10);
 98}
 99
100static int sun50i_h5_calc_temp(struct ths_device *tmdev,
101			       int id, int reg)
102{
103	if (reg >= 0x500)
104		return -1191 * reg / 10 + 223000;
105	else if (!id)
106		return -1452 * reg / 10 + 259000;
107	else
108		return -1590 * reg / 10 + 276000;
109}
110
111static int sun8i_ths_get_temp(struct thermal_zone_device *tz, int *temp)
112{
113	struct tsensor *s = tz->devdata;
114	struct ths_device *tmdev = s->tmdev;
115	int val = 0;
116
117	regmap_read(tmdev->regmap, tmdev->chip->temp_data_base +
118		    0x4 * s->id, &val);
119
120	/* ths have no data yet */
121	if (!val)
122		return -EAGAIN;
123
124	*temp = tmdev->chip->calc_temp(tmdev, s->id, val);
125	/*
126	 * According to the original sdk, there are some platforms(rarely)
127	 * that add a fixed offset value after calculating the temperature
128	 * value. We can't simply put it on the formula for calculating the
129	 * temperature above, because the formula for calculating the
130	 * temperature above is also used when the sensor is calibrated. If
131	 * do this, the correct calibration formula is hard to know.
132	 */
133	*temp += tmdev->chip->ft_deviation;
134
135	return 0;
136}
137
138static const struct thermal_zone_device_ops ths_ops = {
139	.get_temp = sun8i_ths_get_temp,
140};
141
142static const struct regmap_config config = {
143	.reg_bits = 32,
144	.val_bits = 32,
145	.reg_stride = 4,
146	.fast_io = true,
147	.max_register = 0xfc,
148};
149
150static unsigned long sun8i_h3_irq_ack(struct ths_device *tmdev)
151{
152	unsigned long irq_bitmap = 0;
153	int i, state;
154
155	regmap_read(tmdev->regmap, SUN8I_THS_IS, &state);
156
157	for (i = 0; i < tmdev->chip->sensor_num; i++) {
158		if (state & SUN8I_THS_DATA_IRQ_STS(i)) {
159			regmap_write(tmdev->regmap, SUN8I_THS_IS,
160				     SUN8I_THS_DATA_IRQ_STS(i));
161			bitmap_set(&irq_bitmap, i, 1);
162		}
163	}
164
165	return irq_bitmap;
166}
167
168static unsigned long sun50i_h6_irq_ack(struct ths_device *tmdev)
169{
170	unsigned long irq_bitmap = 0;
171	int i, state;
172
173	regmap_read(tmdev->regmap, SUN50I_H6_THS_DIS, &state);
174
175	for (i = 0; i < tmdev->chip->sensor_num; i++) {
176		if (state & SUN50I_H6_THS_DATA_IRQ_STS(i)) {
177			regmap_write(tmdev->regmap, SUN50I_H6_THS_DIS,
178				     SUN50I_H6_THS_DATA_IRQ_STS(i));
179			bitmap_set(&irq_bitmap, i, 1);
180		}
181	}
182
183	return irq_bitmap;
184}
185
186static irqreturn_t sun8i_irq_thread(int irq, void *data)
187{
188	struct ths_device *tmdev = data;
189	unsigned long irq_bitmap = tmdev->chip->irq_ack(tmdev);
190	int i;
 
191
192	for_each_set_bit(i, &irq_bitmap, tmdev->chip->sensor_num) {
193		thermal_zone_device_update(tmdev->sensor[i].tzd,
194					   THERMAL_EVENT_UNSPECIFIED);
 
195	}
196
197	return IRQ_HANDLED;
198}
199
200static int sun8i_h3_ths_calibrate(struct ths_device *tmdev,
201				  u16 *caldata, int callen)
202{
203	int i;
204
205	if (!caldata[0] || callen < 2 * tmdev->chip->sensor_num)
206		return -EINVAL;
207
208	for (i = 0; i < tmdev->chip->sensor_num; i++) {
209		int offset = (i % 2) << 4;
210
211		regmap_update_bits(tmdev->regmap,
212				   SUN8I_THS_TEMP_CALIB + (4 * (i >> 1)),
213				   0xfff << offset,
214				   caldata[i] << offset);
215	}
216
217	return 0;
218}
219
220static int sun50i_h6_ths_calibrate(struct ths_device *tmdev,
221				   u16 *caldata, int callen)
222{
223	struct device *dev = tmdev->dev;
224	int i, ft_temp;
225
226	if (!caldata[0] || callen < 2 + 2 * tmdev->chip->sensor_num)
227		return -EINVAL;
228
229	/*
230	 * efuse layout:
231	 *
232	 *	0   11  16	 32
233	 *	+-------+-------+-------+
234	 *	|temp|  |sensor0|sensor1|
235	 *	+-------+-------+-------+
236	 *
237	 * The calibration data on the H6 is the ambient temperature and
238	 * sensor values that are filled during the factory test stage.
239	 *
240	 * The unit of stored FT temperature is 0.1 degree celsius.
241	 *
242	 * We need to calculate a delta between measured and caluclated
243	 * register values and this will become a calibration offset.
244	 */
245	ft_temp = (caldata[0] & FT_TEMP_MASK) * 100;
246
247	for (i = 0; i < tmdev->chip->sensor_num; i++) {
248		int sensor_reg = caldata[i + 1] & TEMP_CALIB_MASK;
249		int cdata, offset;
250		int sensor_temp = tmdev->chip->calc_temp(tmdev, i, sensor_reg);
251
252		/*
253		 * Calibration data is CALIBRATE_DEFAULT - (calculated
254		 * temperature from sensor reading at factory temperature
255		 * minus actual factory temperature) * 14.88 (scale from
256		 * temperature to register values)
257		 */
258		cdata = CALIBRATE_DEFAULT -
259			((sensor_temp - ft_temp) * 10 / tmdev->chip->scale);
260		if (cdata & ~TEMP_CALIB_MASK) {
261			/*
262			 * Calibration value more than 12-bit, but calibration
263			 * register is 12-bit. In this case, ths hardware can
264			 * still work without calibration, although the data
265			 * won't be so accurate.
266			 */
267			dev_warn(dev, "sensor%d is not calibrated.\n", i);
268			continue;
269		}
270
271		offset = (i % 2) * 16;
272		regmap_update_bits(tmdev->regmap,
273				   SUN50I_H6_THS_TEMP_CALIB + (i / 2 * 4),
274				   0xfff << offset,
275				   cdata << offset);
276	}
277
278	return 0;
279}
280
281static int sun8i_ths_calibrate(struct ths_device *tmdev)
282{
283	struct nvmem_cell *calcell;
284	struct device *dev = tmdev->dev;
285	u16 *caldata;
286	size_t callen;
287	int ret = 0;
288
289	calcell = devm_nvmem_cell_get(dev, "calibration");
290	if (IS_ERR(calcell)) {
291		if (PTR_ERR(calcell) == -EPROBE_DEFER)
292			return -EPROBE_DEFER;
293		/*
294		 * Even if the external calibration data stored in sid is
295		 * not accessible, the THS hardware can still work, although
296		 * the data won't be so accurate.
297		 *
298		 * The default value of calibration register is 0x800 for
299		 * every sensor, and the calibration value is usually 0x7xx
300		 * or 0x8xx, so they won't be away from the default value
301		 * for a lot.
302		 *
303		 * So here we do not return error if the calibration data is
304		 * not available, except the probe needs deferring.
305		 */
306		goto out;
307	}
308
309	caldata = nvmem_cell_read(calcell, &callen);
310	if (IS_ERR(caldata)) {
311		ret = PTR_ERR(caldata);
312		goto out;
313	}
314
315	tmdev->chip->calibrate(tmdev, caldata, callen);
316
317	kfree(caldata);
318out:
319	return ret;
320}
321
322static int sun8i_ths_resource_init(struct ths_device *tmdev)
323{
324	struct device *dev = tmdev->dev;
325	struct platform_device *pdev = to_platform_device(dev);
326	void __iomem *base;
327	int ret;
328
329	base = devm_platform_ioremap_resource(pdev, 0);
330	if (IS_ERR(base))
331		return PTR_ERR(base);
332
333	tmdev->regmap = devm_regmap_init_mmio(dev, base, &config);
334	if (IS_ERR(tmdev->regmap))
335		return PTR_ERR(tmdev->regmap);
336
337	if (tmdev->chip->has_bus_clk_reset) {
338		tmdev->reset = devm_reset_control_get(dev, NULL);
339		if (IS_ERR(tmdev->reset))
340			return PTR_ERR(tmdev->reset);
341
342		tmdev->bus_clk = devm_clk_get(&pdev->dev, "bus");
343		if (IS_ERR(tmdev->bus_clk))
344			return PTR_ERR(tmdev->bus_clk);
345	}
346
347	if (tmdev->chip->has_mod_clk) {
348		tmdev->mod_clk = devm_clk_get(&pdev->dev, "mod");
349		if (IS_ERR(tmdev->mod_clk))
350			return PTR_ERR(tmdev->mod_clk);
351	}
352
353	ret = reset_control_deassert(tmdev->reset);
354	if (ret)
355		return ret;
356
357	ret = clk_prepare_enable(tmdev->bus_clk);
358	if (ret)
359		goto assert_reset;
360
361	ret = clk_set_rate(tmdev->mod_clk, 24000000);
362	if (ret)
363		goto bus_disable;
364
365	ret = clk_prepare_enable(tmdev->mod_clk);
366	if (ret)
367		goto bus_disable;
368
369	ret = sun8i_ths_calibrate(tmdev);
370	if (ret)
371		goto mod_disable;
372
373	return 0;
374
375mod_disable:
376	clk_disable_unprepare(tmdev->mod_clk);
377bus_disable:
378	clk_disable_unprepare(tmdev->bus_clk);
379assert_reset:
380	reset_control_assert(tmdev->reset);
381
382	return ret;
383}
384
385static int sun8i_h3_thermal_init(struct ths_device *tmdev)
386{
387	int val;
388
389	/* average over 4 samples */
390	regmap_write(tmdev->regmap, SUN8I_THS_MFC,
391		     SUN50I_THS_FILTER_EN |
392		     SUN50I_THS_FILTER_TYPE(1));
393	/*
394	 * clkin = 24MHz
395	 * filter_samples = 4
396	 * period = 0.25s
397	 *
398	 * x = period * clkin / 4096 / filter_samples - 1
399	 *   = 365
400	 */
401	val = GENMASK(7 + tmdev->chip->sensor_num, 8);
402	regmap_write(tmdev->regmap, SUN8I_THS_IC,
403		     SUN50I_H6_THS_PC_TEMP_PERIOD(365) | val);
404	/*
405	 * T_acq = 20us
406	 * clkin = 24MHz
407	 *
408	 * x = T_acq * clkin - 1
409	 *   = 479
410	 */
411	regmap_write(tmdev->regmap, SUN8I_THS_CTRL0,
412		     SUN8I_THS_CTRL0_T_ACQ0(479));
413	val = GENMASK(tmdev->chip->sensor_num - 1, 0);
414	regmap_write(tmdev->regmap, SUN8I_THS_CTRL2,
415		     SUN8I_THS_CTRL2_T_ACQ1(479) | val);
416
417	return 0;
418}
419
420/*
421 * Without this undocumented value, the returned temperatures would
422 * be higher than real ones by about 20C.
423 */
424#define SUN50I_H6_CTRL0_UNK 0x0000002f
425
426static int sun50i_h6_thermal_init(struct ths_device *tmdev)
427{
428	int val;
429
430	/*
431	 * T_acq = 20us
432	 * clkin = 24MHz
433	 *
434	 * x = T_acq * clkin - 1
435	 *   = 479
436	 */
437	regmap_write(tmdev->regmap, SUN50I_THS_CTRL0,
438		     SUN50I_H6_CTRL0_UNK | SUN50I_THS_CTRL0_T_ACQ(479));
439	/* average over 4 samples */
440	regmap_write(tmdev->regmap, SUN50I_H6_THS_MFC,
441		     SUN50I_THS_FILTER_EN |
442		     SUN50I_THS_FILTER_TYPE(1));
443	/*
444	 * clkin = 24MHz
445	 * filter_samples = 4
446	 * period = 0.25s
447	 *
448	 * x = period * clkin / 4096 / filter_samples - 1
449	 *   = 365
450	 */
451	regmap_write(tmdev->regmap, SUN50I_H6_THS_PC,
452		     SUN50I_H6_THS_PC_TEMP_PERIOD(365));
453	/* enable sensor */
454	val = GENMASK(tmdev->chip->sensor_num - 1, 0);
455	regmap_write(tmdev->regmap, SUN50I_H6_THS_ENABLE, val);
456	/* thermal data interrupt enable */
457	val = GENMASK(tmdev->chip->sensor_num - 1, 0);
458	regmap_write(tmdev->regmap, SUN50I_H6_THS_DIC, val);
459
460	return 0;
461}
462
463static int sun8i_ths_register(struct ths_device *tmdev)
464{
465	int i;
466
467	for (i = 0; i < tmdev->chip->sensor_num; i++) {
468		tmdev->sensor[i].tmdev = tmdev;
469		tmdev->sensor[i].id = i;
470		tmdev->sensor[i].tzd =
471			devm_thermal_of_zone_register(tmdev->dev,
472						      i,
473						      &tmdev->sensor[i],
474						      &ths_ops);
475		if (IS_ERR(tmdev->sensor[i].tzd))
476			return PTR_ERR(tmdev->sensor[i].tzd);
477
478		if (devm_thermal_add_hwmon_sysfs(tmdev->sensor[i].tzd))
479			dev_warn(tmdev->dev,
480				 "Failed to add hwmon sysfs attributes\n");
481	}
482
483	return 0;
484}
485
486static int sun8i_ths_probe(struct platform_device *pdev)
487{
488	struct ths_device *tmdev;
489	struct device *dev = &pdev->dev;
490	int ret, irq;
491
492	tmdev = devm_kzalloc(dev, sizeof(*tmdev), GFP_KERNEL);
493	if (!tmdev)
494		return -ENOMEM;
495
496	tmdev->dev = dev;
497	tmdev->chip = of_device_get_match_data(&pdev->dev);
498	if (!tmdev->chip)
499		return -EINVAL;
500
501	platform_set_drvdata(pdev, tmdev);
502
503	ret = sun8i_ths_resource_init(tmdev);
504	if (ret)
505		return ret;
506
507	irq = platform_get_irq(pdev, 0);
508	if (irq < 0)
509		return irq;
510
511	ret = tmdev->chip->init(tmdev);
512	if (ret)
513		return ret;
514
515	ret = sun8i_ths_register(tmdev);
516	if (ret)
517		return ret;
518
519	/*
520	 * Avoid entering the interrupt handler, the thermal device is not
521	 * registered yet, we deffer the registration of the interrupt to
522	 * the end.
523	 */
524	ret = devm_request_threaded_irq(dev, irq, NULL,
525					sun8i_irq_thread,
526					IRQF_ONESHOT, "ths", tmdev);
527	if (ret)
528		return ret;
529
530	return 0;
531}
532
533static int sun8i_ths_remove(struct platform_device *pdev)
534{
535	struct ths_device *tmdev = platform_get_drvdata(pdev);
536
537	clk_disable_unprepare(tmdev->mod_clk);
538	clk_disable_unprepare(tmdev->bus_clk);
539	reset_control_assert(tmdev->reset);
540
541	return 0;
542}
543
544static const struct ths_thermal_chip sun8i_a83t_ths = {
545	.sensor_num = 3,
546	.scale = 705,
547	.offset = 191668,
548	.temp_data_base = SUN8I_THS_TEMP_DATA,
549	.calibrate = sun8i_h3_ths_calibrate,
550	.init = sun8i_h3_thermal_init,
551	.irq_ack = sun8i_h3_irq_ack,
552	.calc_temp = sun8i_ths_calc_temp,
553};
554
555static const struct ths_thermal_chip sun8i_h3_ths = {
556	.sensor_num = 1,
557	.scale = 1211,
558	.offset = 217000,
559	.has_mod_clk = true,
560	.has_bus_clk_reset = true,
561	.temp_data_base = SUN8I_THS_TEMP_DATA,
562	.calibrate = sun8i_h3_ths_calibrate,
563	.init = sun8i_h3_thermal_init,
564	.irq_ack = sun8i_h3_irq_ack,
565	.calc_temp = sun8i_ths_calc_temp,
566};
567
568static const struct ths_thermal_chip sun8i_r40_ths = {
569	.sensor_num = 2,
570	.offset = 251086,
571	.scale = 1130,
572	.has_mod_clk = true,
573	.has_bus_clk_reset = true,
574	.temp_data_base = SUN8I_THS_TEMP_DATA,
575	.calibrate = sun8i_h3_ths_calibrate,
576	.init = sun8i_h3_thermal_init,
577	.irq_ack = sun8i_h3_irq_ack,
578	.calc_temp = sun8i_ths_calc_temp,
579};
580
581static const struct ths_thermal_chip sun50i_a64_ths = {
582	.sensor_num = 3,
583	.offset = 260890,
584	.scale = 1170,
585	.has_mod_clk = true,
586	.has_bus_clk_reset = true,
587	.temp_data_base = SUN8I_THS_TEMP_DATA,
588	.calibrate = sun8i_h3_ths_calibrate,
589	.init = sun8i_h3_thermal_init,
590	.irq_ack = sun8i_h3_irq_ack,
591	.calc_temp = sun8i_ths_calc_temp,
592};
593
594static const struct ths_thermal_chip sun50i_a100_ths = {
595	.sensor_num = 3,
596	.has_bus_clk_reset = true,
597	.ft_deviation = 8000,
598	.offset = 187744,
599	.scale = 672,
600	.temp_data_base = SUN50I_H6_THS_TEMP_DATA,
601	.calibrate = sun50i_h6_ths_calibrate,
602	.init = sun50i_h6_thermal_init,
603	.irq_ack = sun50i_h6_irq_ack,
604	.calc_temp = sun8i_ths_calc_temp,
605};
606
607static const struct ths_thermal_chip sun50i_h5_ths = {
608	.sensor_num = 2,
609	.has_mod_clk = true,
610	.has_bus_clk_reset = true,
611	.temp_data_base = SUN8I_THS_TEMP_DATA,
612	.calibrate = sun8i_h3_ths_calibrate,
613	.init = sun8i_h3_thermal_init,
614	.irq_ack = sun8i_h3_irq_ack,
615	.calc_temp = sun50i_h5_calc_temp,
616};
617
618static const struct ths_thermal_chip sun50i_h6_ths = {
619	.sensor_num = 2,
620	.has_bus_clk_reset = true,
621	.ft_deviation = 7000,
622	.offset = 187744,
623	.scale = 672,
624	.temp_data_base = SUN50I_H6_THS_TEMP_DATA,
625	.calibrate = sun50i_h6_ths_calibrate,
626	.init = sun50i_h6_thermal_init,
627	.irq_ack = sun50i_h6_irq_ack,
628	.calc_temp = sun8i_ths_calc_temp,
629};
630
631static const struct of_device_id of_ths_match[] = {
632	{ .compatible = "allwinner,sun8i-a83t-ths", .data = &sun8i_a83t_ths },
633	{ .compatible = "allwinner,sun8i-h3-ths", .data = &sun8i_h3_ths },
634	{ .compatible = "allwinner,sun8i-r40-ths", .data = &sun8i_r40_ths },
635	{ .compatible = "allwinner,sun50i-a64-ths", .data = &sun50i_a64_ths },
636	{ .compatible = "allwinner,sun50i-a100-ths", .data = &sun50i_a100_ths },
637	{ .compatible = "allwinner,sun50i-h5-ths", .data = &sun50i_h5_ths },
638	{ .compatible = "allwinner,sun50i-h6-ths", .data = &sun50i_h6_ths },
639	{ /* sentinel */ },
640};
641MODULE_DEVICE_TABLE(of, of_ths_match);
642
643static struct platform_driver ths_driver = {
644	.probe = sun8i_ths_probe,
645	.remove = sun8i_ths_remove,
646	.driver = {
647		.name = "sun8i-thermal",
648		.of_match_table = of_ths_match,
649	},
650};
651module_platform_driver(ths_driver);
652
653MODULE_DESCRIPTION("Thermal sensor driver for Allwinner SOC");
654MODULE_LICENSE("GPL v2");