blob: 01e553c577bbf82f7bdbd1e939d9a9632c3b3f1f [file] [log] [blame]
David Collins8885f792017-01-26 14:36:34 -08001/* Copyright (c) 2016-2017, The Linux Foundation. All rights reserved.
2 *
3 * This program is free software; you can redistribute it and/or modify
4 * it under the terms of the GNU General Public License version 2 and
5 * only version 2 as published by the Free Software Foundation.
6 *
7 * This program is distributed in the hope that it will be useful,
8 * but WITHOUT ANY WARRANTY; without even the implied warranty of
9 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
10 * GNU General Public License for more details.
11 */
12
13#define pr_fmt(fmt) "flashv2: %s: " fmt, __func__
14
15#include <linux/module.h>
16#include <linux/init.h>
17#include <linux/kernel.h>
18#include <linux/errno.h>
19#include <linux/delay.h>
20#include <linux/slab.h>
21#include <linux/of.h>
22#include <linux/of_irq.h>
23#include <linux/of_gpio.h>
24#include <linux/gpio.h>
25#include <linux/regmap.h>
26#include <linux/power_supply.h>
27#include <linux/platform_device.h>
28#include <linux/interrupt.h>
29#include <linux/regulator/consumer.h>
30#include <linux/leds-qpnp-flash.h>
31#include <linux/leds-qpnp-flash-v2.h>
32#include <linux/qpnp/qpnp-revid.h>
33#include <linux/log2.h>
34#include "leds.h"
35
36#define FLASH_LED_REG_LED_STATUS1(base) (base + 0x08)
37#define FLASH_LED_REG_LED_STATUS2(base) (base + 0x09)
38#define FLASH_LED_REG_INT_RT_STS(base) (base + 0x10)
39#define FLASH_LED_REG_SAFETY_TMR(base) (base + 0x40)
40#define FLASH_LED_REG_TGR_CURRENT(base) (base + 0x43)
41#define FLASH_LED_REG_MOD_CTRL(base) (base + 0x46)
42#define FLASH_LED_REG_IRES(base) (base + 0x47)
43#define FLASH_LED_REG_STROBE_CFG(base) (base + 0x48)
44#define FLASH_LED_REG_STROBE_CTRL(base) (base + 0x49)
45#define FLASH_LED_EN_LED_CTRL(base) (base + 0x4C)
46#define FLASH_LED_REG_HDRM_PRGM(base) (base + 0x4D)
47#define FLASH_LED_REG_HDRM_AUTO_MODE_CTRL(base) (base + 0x50)
48#define FLASH_LED_REG_WARMUP_DELAY(base) (base + 0x51)
49#define FLASH_LED_REG_ISC_DELAY(base) (base + 0x52)
50#define FLASH_LED_REG_THERMAL_RMP_DN_RATE(base) (base + 0x55)
51#define FLASH_LED_REG_THERMAL_THRSH1(base) (base + 0x56)
52#define FLASH_LED_REG_THERMAL_THRSH2(base) (base + 0x57)
53#define FLASH_LED_REG_THERMAL_THRSH3(base) (base + 0x58)
54#define FLASH_LED_REG_THERMAL_HYSTERESIS(base) (base + 0x59)
55#define FLASH_LED_REG_THERMAL_DEBOUNCE(base) (base + 0x5A)
56#define FLASH_LED_REG_VPH_DROOP_THRESHOLD(base) (base + 0x61)
57#define FLASH_LED_REG_VPH_DROOP_DEBOUNCE(base) (base + 0x62)
58#define FLASH_LED_REG_ILED_GRT_THRSH(base) (base + 0x67)
59#define FLASH_LED_REG_LED1N2_ICLAMP_LOW(base) (base + 0x68)
60#define FLASH_LED_REG_LED1N2_ICLAMP_MID(base) (base + 0x69)
61#define FLASH_LED_REG_LED3_ICLAMP_LOW(base) (base + 0x6A)
62#define FLASH_LED_REG_LED3_ICLAMP_MID(base) (base + 0x6B)
63#define FLASH_LED_REG_MITIGATION_SEL(base) (base + 0x6E)
64#define FLASH_LED_REG_MITIGATION_SW(base) (base + 0x6F)
65#define FLASH_LED_REG_LMH_LEVEL(base) (base + 0x70)
66#define FLASH_LED_REG_CURRENT_DERATE_EN(base) (base + 0x76)
67
68#define FLASH_LED_HDRM_VOL_MASK GENMASK(7, 4)
69#define FLASH_LED_CURRENT_MASK GENMASK(6, 0)
70#define FLASH_LED_ENABLE_MASK GENMASK(2, 0)
71#define FLASH_HW_STROBE_MASK GENMASK(2, 0)
72#define FLASH_LED_ISC_WARMUP_DELAY_MASK GENMASK(1, 0)
73#define FLASH_LED_CURRENT_DERATE_EN_MASK GENMASK(2, 0)
74#define FLASH_LED_VPH_DROOP_DEBOUNCE_MASK GENMASK(1, 0)
75#define FLASH_LED_CHGR_MITIGATION_SEL_MASK GENMASK(5, 4)
76#define FLASH_LED_LMH_MITIGATION_SEL_MASK GENMASK(1, 0)
77#define FLASH_LED_ILED_GRT_THRSH_MASK GENMASK(5, 0)
78#define FLASH_LED_LMH_LEVEL_MASK GENMASK(1, 0)
79#define FLASH_LED_VPH_DROOP_HYSTERESIS_MASK GENMASK(5, 4)
80#define FLASH_LED_VPH_DROOP_THRESHOLD_MASK GENMASK(2, 0)
81#define FLASH_LED_THERMAL_HYSTERESIS_MASK GENMASK(1, 0)
82#define FLASH_LED_THERMAL_DEBOUNCE_MASK GENMASK(1, 0)
83#define FLASH_LED_THERMAL_THRSH_MASK GENMASK(2, 0)
84#define FLASH_LED_MOD_CTRL_MASK BIT(7)
85#define FLASH_LED_HW_SW_STROBE_SEL_BIT BIT(2)
86#define FLASH_LED_VPH_DROOP_FAULT_MASK BIT(4)
87#define FLASH_LED_LMH_MITIGATION_EN_MASK BIT(0)
88#define FLASH_LED_CHGR_MITIGATION_EN_MASK BIT(4)
89#define THERMAL_OTST1_RAMP_CTRL_MASK BIT(7)
90#define THERMAL_OTST1_RAMP_CTRL_SHIFT 7
91#define THERMAL_DERATE_SLOW_SHIFT 4
92#define THERMAL_DERATE_SLOW_MASK GENMASK(6, 4)
93#define THERMAL_DERATE_FAST_MASK GENMASK(2, 0)
94
95#define VPH_DROOP_DEBOUNCE_US_TO_VAL(val_us) (val_us / 8)
96#define VPH_DROOP_HYST_MV_TO_VAL(val_mv) (val_mv / 25)
97#define VPH_DROOP_THRESH_MV_TO_VAL(val_mv) ((val_mv / 100) - 25)
98#define VPH_DROOP_THRESH_VAL_TO_UV(val) ((val + 25) * 100000)
99#define MITIGATION_THRSH_MA_TO_VAL(val_ma) (val_ma / 100)
100#define CURRENT_MA_TO_REG_VAL(curr_ma, ires_ua) ((curr_ma * 1000) / ires_ua - 1)
101#define SAFETY_TMR_TO_REG_VAL(duration_ms) ((duration_ms / 10) - 1)
102#define THERMAL_HYST_TEMP_TO_VAL(val, divisor) (val / divisor)
103
104#define FLASH_LED_ISC_WARMUP_DELAY_SHIFT 6
105#define FLASH_LED_WARMUP_DELAY_DEFAULT 2
106#define FLASH_LED_ISC_DELAY_DEFAULT 3
107#define FLASH_LED_VPH_DROOP_DEBOUNCE_DEFAULT 2
108#define FLASH_LED_VPH_DROOP_HYST_SHIFT 4
109#define FLASH_LED_VPH_DROOP_HYST_DEFAULT 2
110#define FLASH_LED_VPH_DROOP_THRESH_DEFAULT 5
111#define FLASH_LED_DEBOUNCE_MAX 3
112#define FLASH_LED_HYSTERESIS_MAX 3
113#define FLASH_LED_VPH_DROOP_THRESH_MAX 7
114#define THERMAL_DERATE_SLOW_MAX 314592
115#define THERMAL_DERATE_FAST_MAX 512
116#define THERMAL_DEBOUNCE_TIME_MAX 64
117#define THERMAL_DERATE_HYSTERESIS_MAX 3
118#define FLASH_LED_THERMAL_THRSH_MIN 3
119#define FLASH_LED_THERMAL_THRSH_MAX 7
120#define FLASH_LED_THERMAL_OTST_LEVELS 3
121#define FLASH_LED_VLED_MAX_DEFAULT_UV 3500000
122#define FLASH_LED_IBATT_OCP_THRESH_DEFAULT_UA 4500000
123#define FLASH_LED_RPARA_DEFAULT_UOHM 0
124#define FLASH_LED_SAFETY_TMR_ENABLE BIT(7)
125#define FLASH_LED_LMH_LEVEL_DEFAULT 0
126#define FLASH_LED_LMH_MITIGATION_ENABLE 1
127#define FLASH_LED_LMH_MITIGATION_DISABLE 0
128#define FLASH_LED_CHGR_MITIGATION_ENABLE BIT(4)
129#define FLASH_LED_CHGR_MITIGATION_DISABLE 0
130#define FLASH_LED_MITIGATION_SEL_DEFAULT 2
131#define FLASH_LED_MITIGATION_SEL_MAX 2
132#define FLASH_LED_CHGR_MITIGATION_SEL_SHIFT 4
133#define FLASH_LED_MITIGATION_THRSH_DEFAULT 0xA
134#define FLASH_LED_MITIGATION_THRSH_MAX 0x1F
135#define FLASH_LED_LMH_OCV_THRESH_DEFAULT_UV 3700000
136#define FLASH_LED_LMH_RBATT_THRESH_DEFAULT_UOHM 400000
137#define FLASH_LED_IRES_BASE 3
138#define FLASH_LED_IRES_DIVISOR 2500
139#define FLASH_LED_IRES_MIN_UA 5000
140#define FLASH_LED_IRES_DEFAULT_UA 12500
141#define FLASH_LED_IRES_DEFAULT_VAL 0x00
142#define FLASH_LED_HDRM_VOL_SHIFT 4
143#define FLASH_LED_HDRM_VOL_DEFAULT_MV 0x80
144#define FLASH_LED_HDRM_VOL_HI_LO_WIN_DEFAULT_MV 0x04
145#define FLASH_LED_HDRM_VOL_BASE_MV 125
146#define FLASH_LED_HDRM_VOL_STEP_MV 25
147#define FLASH_LED_STROBE_CFG_DEFAULT 0x00
148#define FLASH_LED_HW_STROBE_OPTION_1 0x00
149#define FLASH_LED_HW_STROBE_OPTION_2 0x01
150#define FLASH_LED_HW_STROBE_OPTION_3 0x02
151#define FLASH_LED_ENABLE BIT(0)
152#define FLASH_LED_MOD_ENABLE BIT(7)
153#define FLASH_LED_DISABLE 0x00
154#define FLASH_LED_SAFETY_TMR_DISABLED 0x13
155#define FLASH_LED_MIN_CURRENT_MA 25
156#define FLASH_LED_MAX_TOTAL_CURRENT_MA 3750
157
158/* notifier call chain for flash-led irqs */
159static ATOMIC_NOTIFIER_HEAD(irq_notifier_list);
160
161enum flash_led_type {
162 FLASH_LED_TYPE_FLASH,
163 FLASH_LED_TYPE_TORCH,
164};
165
166enum {
167 LED1 = 0,
168 LED2,
169 LED3,
170};
171
172/*
173 * Configurations for each individual LED
174 */
175struct flash_node_data {
176 struct platform_device *pdev;
177 struct led_classdev cdev;
178 struct pinctrl *pinctrl;
179 struct pinctrl_state *gpio_state_active;
180 struct pinctrl_state *gpio_state_suspend;
181 struct pinctrl_state *hw_strobe_state_active;
182 struct pinctrl_state *hw_strobe_state_suspend;
183 int hw_strobe_gpio;
184 int ires_ua;
185 int max_current;
186 int current_ma;
187 u8 duration;
188 u8 id;
189 u8 type;
190 u8 ires;
191 u8 hdrm_val;
192 u8 current_reg_val;
193 u8 trigger;
194 bool led_on;
195};
196
197
198struct flash_switch_data {
199 struct platform_device *pdev;
200 struct regulator *vreg;
201 struct led_classdev cdev;
202 int led_mask;
203 bool regulator_on;
204 bool enabled;
205};
206
207/*
208 * Flash LED configuration read from device tree
209 */
210struct flash_led_platform_data {
211 struct pmic_revid_data *pmic_rev_id;
212 int *thermal_derate_current;
213 int all_ramp_up_done_irq;
214 int all_ramp_down_done_irq;
215 int led_fault_irq;
216 int ibatt_ocp_threshold_ua;
217 int vled_max_uv;
218 int rpara_uohm;
219 int lmh_rbatt_threshold_uohm;
220 int lmh_ocv_threshold_uv;
221 int thermal_derate_slow;
222 int thermal_derate_fast;
223 int thermal_hysteresis;
224 int thermal_debounce;
225 int thermal_thrsh1;
226 int thermal_thrsh2;
227 int thermal_thrsh3;
228 u32 led1n2_iclamp_low_ma;
229 u32 led1n2_iclamp_mid_ma;
230 u32 led3_iclamp_low_ma;
231 u32 led3_iclamp_mid_ma;
232 u8 isc_delay;
233 u8 warmup_delay;
234 u8 current_derate_en_cfg;
235 u8 vph_droop_threshold;
236 u8 vph_droop_hysteresis;
237 u8 vph_droop_debounce;
238 u8 lmh_mitigation_sel;
239 u8 chgr_mitigation_sel;
240 u8 lmh_level;
241 u8 iled_thrsh_val;
242 u8 hw_strobe_option;
243 bool hdrm_auto_mode_en;
244 bool thermal_derate_en;
245 bool otst_ramp_bkup_en;
246};
247
248/*
249 * Flash LED data structure containing flash LED attributes
250 */
251struct qpnp_flash_led {
252 struct flash_led_platform_data *pdata;
253 struct platform_device *pdev;
254 struct regmap *regmap;
255 struct flash_node_data *fnode;
256 struct flash_switch_data *snode;
257 struct power_supply *bms_psy;
258 struct notifier_block nb;
259 spinlock_t lock;
260 int num_fnodes;
261 int num_snodes;
262 int enable;
263 u16 base;
264 bool trigger_lmh;
265 bool trigger_chgr;
266};
267
268static int thermal_derate_slow_table[] = {
269 128, 256, 512, 1024, 2048, 4096, 8192, 314592,
270};
271
272static int thermal_derate_fast_table[] = {
273 32, 64, 96, 128, 256, 384, 512,
274};
275
276static int otst1_threshold_table[] = {
277 85, 79, 73, 67, 109, 103, 97, 91,
278};
279
280static int otst2_threshold_table[] = {
281 110, 104, 98, 92, 134, 128, 122, 116,
282};
283
284static int otst3_threshold_table[] = {
285 125, 119, 113, 107, 149, 143, 137, 131,
286};
287
288static int qpnp_flash_led_read(struct qpnp_flash_led *led, u16 addr, u8 *data)
289{
290 int rc;
291 uint val;
292
293 rc = regmap_read(led->regmap, addr, &val);
294 if (rc < 0) {
295 pr_err("Unable to read from 0x%04X rc = %d\n", addr, rc);
296 return rc;
297 }
298
299 pr_debug("Read 0x%02X from addr 0x%04X\n", val, addr);
300 *data = (u8)val;
301 return 0;
302}
303
304static int qpnp_flash_led_write(struct qpnp_flash_led *led, u16 addr, u8 data)
305{
306 int rc;
307
308 rc = regmap_write(led->regmap, addr, data);
309 if (rc < 0) {
310 pr_err("Unable to write to 0x%04X rc = %d\n", addr, rc);
311 return rc;
312 }
313
314 pr_debug("Wrote 0x%02X to addr 0x%04X\n", data, addr);
315 return 0;
316}
317
318static int
319qpnp_flash_led_masked_read(struct qpnp_flash_led *led, u16 addr, u8 mask,
320 u8 *val)
321{
322 int rc;
323
324 rc = qpnp_flash_led_read(led, addr, val);
325 if (rc < 0)
326 return rc;
327
328 *val &= mask;
329 return rc;
330}
331
332static int
333qpnp_flash_led_masked_write(struct qpnp_flash_led *led, u16 addr, u8 mask,
334 u8 val)
335{
336 int rc;
337
338 rc = regmap_update_bits(led->regmap, addr, mask, val);
339 if (rc < 0)
340 pr_err("Unable to update bits from 0x%04X, rc = %d\n", addr,
341 rc);
342 else
343 pr_debug("Wrote 0x%02X to addr 0x%04X\n", val, addr);
344
345 return rc;
346}
347
348static enum
349led_brightness qpnp_flash_led_brightness_get(struct led_classdev *led_cdev)
350{
351 return led_cdev->brightness;
352}
353
354static int qpnp_flash_led_init_settings(struct qpnp_flash_led *led)
355{
356 int rc, i, addr_offset;
357 u8 val = 0, mask;
358
359 for (i = 0; i < led->num_fnodes; i++) {
360 addr_offset = led->fnode[i].id;
361 rc = qpnp_flash_led_write(led,
362 FLASH_LED_REG_HDRM_PRGM(led->base + addr_offset),
363 led->fnode[i].hdrm_val);
364 if (rc < 0)
365 return rc;
366
367 val |= 0x1 << led->fnode[i].id;
368 }
369
370 rc = qpnp_flash_led_write(led,
371 FLASH_LED_REG_HDRM_AUTO_MODE_CTRL(led->base),
372 val);
373 if (rc < 0)
374 return rc;
375
376 rc = qpnp_flash_led_masked_write(led,
377 FLASH_LED_REG_ISC_DELAY(led->base),
378 FLASH_LED_ISC_WARMUP_DELAY_MASK,
379 led->pdata->isc_delay);
380 if (rc < 0)
381 return rc;
382
383 rc = qpnp_flash_led_masked_write(led,
384 FLASH_LED_REG_WARMUP_DELAY(led->base),
385 FLASH_LED_ISC_WARMUP_DELAY_MASK,
386 led->pdata->warmup_delay);
387 if (rc < 0)
388 return rc;
389
390 rc = qpnp_flash_led_masked_write(led,
391 FLASH_LED_REG_CURRENT_DERATE_EN(led->base),
392 FLASH_LED_CURRENT_DERATE_EN_MASK,
393 led->pdata->current_derate_en_cfg);
394 if (rc < 0)
395 return rc;
396
397 val = (led->pdata->otst_ramp_bkup_en << THERMAL_OTST1_RAMP_CTRL_SHIFT);
398 mask = THERMAL_OTST1_RAMP_CTRL_MASK;
399 if (led->pdata->thermal_derate_slow >= 0) {
400 val |= (led->pdata->thermal_derate_slow <<
401 THERMAL_DERATE_SLOW_SHIFT);
402 mask |= THERMAL_DERATE_SLOW_MASK;
403 }
404
405 if (led->pdata->thermal_derate_fast >= 0) {
406 val |= led->pdata->thermal_derate_fast;
407 mask |= THERMAL_DERATE_FAST_MASK;
408 }
409
410 rc = qpnp_flash_led_masked_write(led,
411 FLASH_LED_REG_THERMAL_RMP_DN_RATE(led->base),
412 mask, val);
413 if (rc < 0)
414 return rc;
415
416 if (led->pdata->thermal_debounce >= 0) {
417 rc = qpnp_flash_led_masked_write(led,
418 FLASH_LED_REG_THERMAL_DEBOUNCE(led->base),
419 FLASH_LED_THERMAL_DEBOUNCE_MASK,
420 led->pdata->thermal_debounce);
421 if (rc < 0)
422 return rc;
423 }
424
425 if (led->pdata->thermal_hysteresis >= 0) {
426 rc = qpnp_flash_led_masked_write(led,
427 FLASH_LED_REG_THERMAL_HYSTERESIS(led->base),
428 FLASH_LED_THERMAL_HYSTERESIS_MASK,
429 led->pdata->thermal_hysteresis);
430 if (rc < 0)
431 return rc;
432 }
433
434 if (led->pdata->thermal_thrsh1 >= 0) {
435 rc = qpnp_flash_led_masked_write(led,
436 FLASH_LED_REG_THERMAL_THRSH1(led->base),
437 FLASH_LED_THERMAL_THRSH_MASK,
438 led->pdata->thermal_thrsh1);
439 if (rc < 0)
440 return rc;
441 }
442
443 if (led->pdata->thermal_thrsh2 >= 0) {
444 rc = qpnp_flash_led_masked_write(led,
445 FLASH_LED_REG_THERMAL_THRSH2(led->base),
446 FLASH_LED_THERMAL_THRSH_MASK,
447 led->pdata->thermal_thrsh2);
448 if (rc < 0)
449 return rc;
450 }
451
452 if (led->pdata->thermal_thrsh3 >= 0) {
453 rc = qpnp_flash_led_masked_write(led,
454 FLASH_LED_REG_THERMAL_THRSH3(led->base),
455 FLASH_LED_THERMAL_THRSH_MASK,
456 led->pdata->thermal_thrsh3);
457 if (rc < 0)
458 return rc;
459 }
460
461 rc = qpnp_flash_led_masked_write(led,
462 FLASH_LED_REG_VPH_DROOP_DEBOUNCE(led->base),
463 FLASH_LED_VPH_DROOP_DEBOUNCE_MASK,
464 led->pdata->vph_droop_debounce);
465 if (rc < 0)
466 return rc;
467
468 rc = qpnp_flash_led_masked_write(led,
469 FLASH_LED_REG_VPH_DROOP_THRESHOLD(led->base),
470 FLASH_LED_VPH_DROOP_THRESHOLD_MASK,
471 led->pdata->vph_droop_threshold);
472 if (rc < 0)
473 return rc;
474
475 rc = qpnp_flash_led_masked_write(led,
476 FLASH_LED_REG_VPH_DROOP_THRESHOLD(led->base),
477 FLASH_LED_VPH_DROOP_HYSTERESIS_MASK,
478 led->pdata->vph_droop_hysteresis);
479 if (rc < 0)
480 return rc;
481
482 rc = qpnp_flash_led_masked_write(led,
483 FLASH_LED_REG_MITIGATION_SEL(led->base),
484 FLASH_LED_LMH_MITIGATION_SEL_MASK,
485 led->pdata->lmh_mitigation_sel);
486 if (rc < 0)
487 return rc;
488
489 rc = qpnp_flash_led_masked_write(led,
490 FLASH_LED_REG_MITIGATION_SEL(led->base),
491 FLASH_LED_CHGR_MITIGATION_SEL_MASK,
492 led->pdata->chgr_mitigation_sel);
493 if (rc < 0)
494 return rc;
495
496 rc = qpnp_flash_led_masked_write(led,
497 FLASH_LED_REG_LMH_LEVEL(led->base),
498 FLASH_LED_LMH_LEVEL_MASK,
499 led->pdata->lmh_level);
500 if (rc < 0)
501 return rc;
502
503 rc = qpnp_flash_led_masked_write(led,
504 FLASH_LED_REG_ILED_GRT_THRSH(led->base),
505 FLASH_LED_ILED_GRT_THRSH_MASK,
506 led->pdata->iled_thrsh_val);
507 if (rc < 0)
508 return rc;
509
510 if (led->pdata->led1n2_iclamp_low_ma) {
511 val = CURRENT_MA_TO_REG_VAL(led->pdata->led1n2_iclamp_low_ma,
512 led->fnode[0].ires_ua);
513 rc = qpnp_flash_led_masked_write(led,
514 FLASH_LED_REG_LED1N2_ICLAMP_LOW(led->base),
515 FLASH_LED_CURRENT_MASK, val);
516 if (rc < 0)
517 return rc;
518 }
519
520 if (led->pdata->led1n2_iclamp_mid_ma) {
521 val = CURRENT_MA_TO_REG_VAL(led->pdata->led1n2_iclamp_mid_ma,
522 led->fnode[0].ires_ua);
523 rc = qpnp_flash_led_masked_write(led,
524 FLASH_LED_REG_LED1N2_ICLAMP_MID(led->base),
525 FLASH_LED_CURRENT_MASK, val);
526 if (rc < 0)
527 return rc;
528 }
529
530 if (led->pdata->led3_iclamp_low_ma) {
531 val = CURRENT_MA_TO_REG_VAL(led->pdata->led3_iclamp_low_ma,
532 led->fnode[3].ires_ua);
533 rc = qpnp_flash_led_masked_write(led,
534 FLASH_LED_REG_LED3_ICLAMP_LOW(led->base),
535 FLASH_LED_CURRENT_MASK, val);
536 if (rc < 0)
537 return rc;
538 }
539
540 if (led->pdata->led3_iclamp_mid_ma) {
541 val = CURRENT_MA_TO_REG_VAL(led->pdata->led3_iclamp_mid_ma,
542 led->fnode[3].ires_ua);
543 rc = qpnp_flash_led_masked_write(led,
544 FLASH_LED_REG_LED3_ICLAMP_MID(led->base),
545 FLASH_LED_CURRENT_MASK, val);
546 if (rc < 0)
547 return rc;
548 }
549
550 return 0;
551}
552
553static int qpnp_flash_led_hw_strobe_enable(struct flash_node_data *fnode,
554 int hw_strobe_option, bool on)
555{
556 int rc = 0;
557
558 /*
559 * If the LED controlled by this fnode is not GPIO controlled
560 * for the given strobe_option, return.
561 */
562 if (hw_strobe_option == FLASH_LED_HW_STROBE_OPTION_1)
563 return 0;
564 else if (hw_strobe_option == FLASH_LED_HW_STROBE_OPTION_2
565 && fnode->id != LED3)
566 return 0;
567 else if (hw_strobe_option == FLASH_LED_HW_STROBE_OPTION_3
568 && fnode->id == LED1)
569 return 0;
570
571 if (gpio_is_valid(fnode->hw_strobe_gpio)) {
572 gpio_set_value(fnode->hw_strobe_gpio, on ? 1 : 0);
573 } else if (fnode->hw_strobe_state_active &&
574 fnode->hw_strobe_state_suspend) {
575 rc = pinctrl_select_state(fnode->pinctrl,
576 on ? fnode->hw_strobe_state_active :
577 fnode->hw_strobe_state_suspend);
578 if (rc < 0) {
579 pr_err("failed to change hw strobe pin state\n");
580 return rc;
581 }
582 }
583
584 return rc;
585}
586
587static int qpnp_flash_led_regulator_enable(struct qpnp_flash_led *led,
588 struct flash_switch_data *snode, bool on)
589{
590 int rc = 0;
591
592 if (!snode || !snode->vreg)
593 return 0;
594
595 if (snode->regulator_on == on)
596 return 0;
597
598 if (on)
599 rc = regulator_enable(snode->vreg);
600 else
601 rc = regulator_disable(snode->vreg);
602
603 if (rc < 0) {
604 pr_err("regulator_%s failed, rc=%d\n",
605 on ? "enable" : "disable", rc);
606 return rc;
607 }
608
609 snode->regulator_on = on ? true : false;
610 return 0;
611}
612
613static int get_property_from_fg(struct qpnp_flash_led *led,
614 enum power_supply_property prop, int *val)
615{
616 int rc;
617 union power_supply_propval pval = {0, };
618
619 if (!led->bms_psy) {
620 pr_err("no bms psy found\n");
621 return -EINVAL;
622 }
623
624 rc = power_supply_get_property(led->bms_psy, prop, &pval);
625 if (rc) {
626 pr_err("bms psy doesn't support reading prop %d rc = %d\n",
627 prop, rc);
628 return rc;
629 }
630
631 *val = pval.intval;
632 return rc;
633}
634
635#define VOLTAGE_HDRM_DEFAULT_MV 350
636static int qpnp_flash_led_get_voltage_headroom(struct qpnp_flash_led *led)
637{
638 int i, voltage_hdrm_mv = 0, voltage_hdrm_max = 0;
639
640 for (i = 0; i < led->num_fnodes; i++) {
641 if (led->fnode[i].led_on) {
642 if (led->fnode[i].id < 2) {
643 if (led->fnode[i].current_ma < 750)
644 voltage_hdrm_mv = 125;
645 else if (led->fnode[i].current_ma < 1000)
646 voltage_hdrm_mv = 175;
647 else if (led->fnode[i].current_ma < 1250)
648 voltage_hdrm_mv = 250;
649 else
650 voltage_hdrm_mv = 350;
651 } else {
652 if (led->fnode[i].current_ma < 375)
653 voltage_hdrm_mv = 125;
654 else if (led->fnode[i].current_ma < 500)
655 voltage_hdrm_mv = 175;
656 else if (led->fnode[i].current_ma < 625)
657 voltage_hdrm_mv = 250;
658 else
659 voltage_hdrm_mv = 350;
660 }
661
662 voltage_hdrm_max = max(voltage_hdrm_max,
663 voltage_hdrm_mv);
664 }
665 }
666
667 if (!voltage_hdrm_max)
668 return VOLTAGE_HDRM_DEFAULT_MV;
669
670 return voltage_hdrm_max;
671}
672
673#define UCONV 1000000LL
674#define MCONV 1000LL
675#define FLASH_VDIP_MARGIN 50000
676#define BOB_EFFICIENCY 900LL
677#define VIN_FLASH_MIN_UV 3300000LL
678static int qpnp_flash_led_calc_max_current(struct qpnp_flash_led *led)
679{
Kyle Yan74fdd732017-03-22 13:37:08 -0700680 int ocv_uv, ibat_now, voltage_hdrm_mv, rc;
681 int rbatt_uohm = 0;
David Collins8885f792017-01-26 14:36:34 -0800682 int64_t ibat_flash_ua, avail_flash_ua, avail_flash_power_fw;
683 int64_t ibat_safe_ua, vin_flash_uv, vph_flash_uv, vph_flash_vdip;
684
685 /* RESISTANCE = esr_uohm + rslow_uohm */
686 rc = get_property_from_fg(led, POWER_SUPPLY_PROP_RESISTANCE,
687 &rbatt_uohm);
688 if (rc < 0) {
689 pr_err("bms psy does not support resistance, rc=%d\n", rc);
690 return rc;
691 }
692
693 /* If no battery is connected, return max possible flash current */
694 if (!rbatt_uohm)
695 return FLASH_LED_MAX_TOTAL_CURRENT_MA;
696
697 rc = get_property_from_fg(led, POWER_SUPPLY_PROP_VOLTAGE_OCV, &ocv_uv);
698 if (rc < 0) {
699 pr_err("bms psy does not support OCV, rc=%d\n", rc);
700 return rc;
701 }
702
703 rc = get_property_from_fg(led, POWER_SUPPLY_PROP_CURRENT_NOW,
704 &ibat_now);
705 if (rc < 0) {
706 pr_err("bms psy does not support current, rc=%d\n", rc);
707 return rc;
708 }
709
710 rbatt_uohm += led->pdata->rpara_uohm;
711 voltage_hdrm_mv = qpnp_flash_led_get_voltage_headroom(led);
712 vph_flash_vdip =
713 VPH_DROOP_THRESH_VAL_TO_UV(led->pdata->vph_droop_threshold)
714 + FLASH_VDIP_MARGIN;
715
716 /* Check if LMH_MITIGATION needs to be triggered */
717 if (!led->trigger_lmh && (ocv_uv < led->pdata->lmh_ocv_threshold_uv ||
718 rbatt_uohm > led->pdata->lmh_rbatt_threshold_uohm)) {
719 led->trigger_lmh = true;
720 rc = qpnp_flash_led_masked_write(led,
721 FLASH_LED_REG_MITIGATION_SW(led->base),
722 FLASH_LED_LMH_MITIGATION_EN_MASK,
723 FLASH_LED_LMH_MITIGATION_ENABLE);
724 if (rc < 0) {
725 pr_err("trigger lmh mitigation failed, rc=%d\n", rc);
726 return rc;
727 }
728
729 /* Wait for LMH mitigation to take effect */
730 udelay(100);
731
732 return qpnp_flash_led_calc_max_current(led);
733 }
734
735 /*
736 * Calculate the maximum current that can pulled out of the battery
737 * before the battery voltage dips below a safe threshold.
738 */
739 ibat_safe_ua = div_s64((ocv_uv - vph_flash_vdip) * UCONV,
740 rbatt_uohm);
741
742 if (ibat_safe_ua <= led->pdata->ibatt_ocp_threshold_ua) {
743 /*
744 * If the calculated current is below the OCP threshold, then
745 * use it as the possible flash current.
746 */
747 ibat_flash_ua = ibat_safe_ua - ibat_now;
748 vph_flash_uv = vph_flash_vdip;
749 } else {
750 /*
751 * If the calculated current is above the OCP threshold, then
752 * use the ocp threshold instead.
753 *
754 * Any higher current will be tripping the battery OCP.
755 */
756 ibat_flash_ua = led->pdata->ibatt_ocp_threshold_ua - ibat_now;
757 vph_flash_uv = ocv_uv - div64_s64((int64_t)rbatt_uohm
758 * led->pdata->ibatt_ocp_threshold_ua, UCONV);
759 }
760 /* Calculate the input voltage of the flash module. */
761 vin_flash_uv = max((led->pdata->vled_max_uv +
762 (voltage_hdrm_mv * MCONV)), VIN_FLASH_MIN_UV);
763 /* Calculate the available power for the flash module. */
764 avail_flash_power_fw = BOB_EFFICIENCY * vph_flash_uv * ibat_flash_ua;
765 /*
766 * Calculate the available amount of current the flash module can draw
767 * before collapsing the battery. (available power/ flash input voltage)
768 */
769 avail_flash_ua = div64_s64(avail_flash_power_fw, vin_flash_uv * MCONV);
770 pr_debug("avail_iflash=%lld, ocv=%d, ibat=%d, rbatt=%d, trigger_lmh=%d\n",
771 avail_flash_ua, ocv_uv, ibat_now, rbatt_uohm, led->trigger_lmh);
772 return min(FLASH_LED_MAX_TOTAL_CURRENT_MA,
773 (int)(div64_s64(avail_flash_ua, MCONV)));
774}
775
776static int qpnp_flash_led_calc_thermal_current_lim(struct qpnp_flash_led *led)
777{
778 int thermal_current_lim = 0;
779 int rc;
780 u8 thermal_thrsh1, thermal_thrsh2, thermal_thrsh3, otst_status;
781
782 /* Store THERMAL_THRSHx register values */
783 rc = qpnp_flash_led_masked_read(led,
784 FLASH_LED_REG_THERMAL_THRSH1(led->base),
785 FLASH_LED_THERMAL_THRSH_MASK,
786 &thermal_thrsh1);
787 if (rc < 0)
788 return rc;
789
790 rc = qpnp_flash_led_masked_read(led,
791 FLASH_LED_REG_THERMAL_THRSH2(led->base),
792 FLASH_LED_THERMAL_THRSH_MASK,
793 &thermal_thrsh2);
794 if (rc < 0)
795 return rc;
796
797 rc = qpnp_flash_led_masked_read(led,
798 FLASH_LED_REG_THERMAL_THRSH3(led->base),
799 FLASH_LED_THERMAL_THRSH_MASK,
800 &thermal_thrsh3);
801 if (rc < 0)
802 return rc;
803
804 /* Lower THERMAL_THRSHx thresholds to minimum */
805 rc = qpnp_flash_led_masked_write(led,
806 FLASH_LED_REG_THERMAL_THRSH1(led->base),
807 FLASH_LED_THERMAL_THRSH_MASK,
808 FLASH_LED_THERMAL_THRSH_MIN);
809 if (rc < 0)
810 return rc;
811
812 rc = qpnp_flash_led_masked_write(led,
813 FLASH_LED_REG_THERMAL_THRSH2(led->base),
814 FLASH_LED_THERMAL_THRSH_MASK,
815 FLASH_LED_THERMAL_THRSH_MIN);
816 if (rc < 0)
817 return rc;
818
819 rc = qpnp_flash_led_masked_write(led,
820 FLASH_LED_REG_THERMAL_THRSH3(led->base),
821 FLASH_LED_THERMAL_THRSH_MASK,
822 FLASH_LED_THERMAL_THRSH_MIN);
823 if (rc < 0)
824 return rc;
825
826 /* Check THERMAL_OTST status */
827 rc = qpnp_flash_led_read(led,
828 FLASH_LED_REG_LED_STATUS2(led->base),
829 &otst_status);
830 if (rc < 0)
831 return rc;
832
833 /* Look up current limit based on THERMAL_OTST status */
834 if (otst_status)
835 thermal_current_lim =
836 led->pdata->thermal_derate_current[otst_status >> 1];
837
838 /* Restore THERMAL_THRESHx registers to original values */
839 rc = qpnp_flash_led_masked_write(led,
840 FLASH_LED_REG_THERMAL_THRSH1(led->base),
841 FLASH_LED_THERMAL_THRSH_MASK,
842 thermal_thrsh1);
843 if (rc < 0)
844 return rc;
845
846 rc = qpnp_flash_led_masked_write(led,
847 FLASH_LED_REG_THERMAL_THRSH2(led->base),
848 FLASH_LED_THERMAL_THRSH_MASK,
849 thermal_thrsh2);
850 if (rc < 0)
851 return rc;
852
853 rc = qpnp_flash_led_masked_write(led,
854 FLASH_LED_REG_THERMAL_THRSH3(led->base),
855 FLASH_LED_THERMAL_THRSH_MASK,
856 thermal_thrsh3);
857 if (rc < 0)
858 return rc;
859
860 return thermal_current_lim;
861}
862
863static int qpnp_flash_led_get_max_avail_current(struct qpnp_flash_led *led)
864{
865 int max_avail_current, thermal_current_lim = 0;
866
867 led->trigger_lmh = false;
868 max_avail_current = qpnp_flash_led_calc_max_current(led);
869 if (led->pdata->thermal_derate_en)
870 thermal_current_lim =
871 qpnp_flash_led_calc_thermal_current_lim(led);
872
873 if (thermal_current_lim)
874 max_avail_current = min(max_avail_current, thermal_current_lim);
875
876 return max_avail_current;
877}
878
879static void qpnp_flash_led_node_set(struct flash_node_data *fnode, int value)
880{
881 int prgm_current_ma = value;
882
883 if (value <= 0)
884 prgm_current_ma = 0;
885 else if (value < FLASH_LED_MIN_CURRENT_MA)
886 prgm_current_ma = FLASH_LED_MIN_CURRENT_MA;
887
888 prgm_current_ma = min(prgm_current_ma, fnode->max_current);
889 fnode->current_ma = prgm_current_ma;
890 fnode->cdev.brightness = prgm_current_ma;
891 fnode->current_reg_val = CURRENT_MA_TO_REG_VAL(prgm_current_ma,
892 fnode->ires_ua);
893 fnode->led_on = prgm_current_ma != 0;
894}
895
896static int qpnp_flash_led_switch_disable(struct flash_switch_data *snode)
897{
898 struct qpnp_flash_led *led = dev_get_drvdata(&snode->pdev->dev);
899 int i, rc, addr_offset;
900
901 rc = qpnp_flash_led_masked_write(led,
902 FLASH_LED_EN_LED_CTRL(led->base),
903 snode->led_mask, FLASH_LED_DISABLE);
904 if (rc < 0)
905 return rc;
906
907 if (led->trigger_lmh) {
908 rc = qpnp_flash_led_masked_write(led,
909 FLASH_LED_REG_MITIGATION_SW(led->base),
910 FLASH_LED_LMH_MITIGATION_EN_MASK,
911 FLASH_LED_LMH_MITIGATION_DISABLE);
912 if (rc < 0) {
913 pr_err("disable lmh mitigation failed, rc=%d\n", rc);
914 return rc;
915 }
916 }
917
918 if (!led->trigger_chgr) {
919 rc = qpnp_flash_led_masked_write(led,
920 FLASH_LED_REG_MITIGATION_SW(led->base),
921 FLASH_LED_CHGR_MITIGATION_EN_MASK,
922 FLASH_LED_CHGR_MITIGATION_DISABLE);
923 if (rc < 0) {
924 pr_err("disable chgr mitigation failed, rc=%d\n", rc);
925 return rc;
926 }
927 }
928
929 led->enable--;
930 if (led->enable == 0) {
931 rc = qpnp_flash_led_masked_write(led,
932 FLASH_LED_REG_MOD_CTRL(led->base),
933 FLASH_LED_MOD_CTRL_MASK, FLASH_LED_DISABLE);
934 if (rc < 0)
935 return rc;
936 }
937
938 for (i = 0; i < led->num_fnodes; i++) {
939 if (!led->fnode[i].led_on ||
940 !(snode->led_mask & BIT(led->fnode[i].id)))
941 continue;
942
943 addr_offset = led->fnode[i].id;
944 rc = qpnp_flash_led_masked_write(led,
945 FLASH_LED_REG_TGR_CURRENT(led->base + addr_offset),
946 FLASH_LED_CURRENT_MASK, 0);
947 if (rc < 0)
948 return rc;
949
950 led->fnode[i].led_on = false;
951
952 if (led->fnode[i].pinctrl) {
953 rc = pinctrl_select_state(led->fnode[i].pinctrl,
954 led->fnode[i].gpio_state_suspend);
955 if (rc < 0) {
956 pr_err("failed to disable GPIO, rc=%d\n", rc);
957 return rc;
958 }
959 }
960
961 if (led->fnode[i].trigger & FLASH_LED_HW_SW_STROBE_SEL_BIT) {
962 rc = qpnp_flash_led_hw_strobe_enable(&led->fnode[i],
963 led->pdata->hw_strobe_option, false);
964 if (rc < 0) {
965 pr_err("Unable to disable hw strobe, rc=%d\n",
966 rc);
967 return rc;
968 }
969 }
970 }
971
972 snode->enabled = false;
973 return 0;
974}
975
976static int qpnp_flash_led_switch_set(struct flash_switch_data *snode, bool on)
977{
978 struct qpnp_flash_led *led = dev_get_drvdata(&snode->pdev->dev);
979 int rc, i, addr_offset;
980 u8 val, mask;
981
982 if (snode->enabled == on) {
983 pr_debug("Switch node is already %s!\n",
984 on ? "enabled" : "disabled");
985 return 0;
986 }
987
988 if (!on) {
989 rc = qpnp_flash_led_switch_disable(snode);
990 return rc;
991 }
992
993 /* Iterate over all leds for this switch node */
994 val = 0;
995 for (i = 0; i < led->num_fnodes; i++)
996 if (snode->led_mask & BIT(led->fnode[i].id))
997 val |= led->fnode[i].ires << (led->fnode[i].id * 2);
998
999 rc = qpnp_flash_led_masked_write(led, FLASH_LED_REG_IRES(led->base),
1000 FLASH_LED_CURRENT_MASK, val);
1001 if (rc < 0)
1002 return rc;
1003
1004 rc = qpnp_flash_led_masked_write(led,
1005 FLASH_LED_REG_STROBE_CFG(led->base),
1006 FLASH_LED_ENABLE_MASK,
1007 led->pdata->hw_strobe_option);
1008 if (rc < 0)
1009 return rc;
1010
1011 val = 0;
1012 for (i = 0; i < led->num_fnodes; i++) {
1013 if (!led->fnode[i].led_on ||
1014 !(snode->led_mask & BIT(led->fnode[i].id)))
1015 continue;
1016
1017 addr_offset = led->fnode[i].id;
1018 if (led->fnode[i].trigger & FLASH_LED_HW_SW_STROBE_SEL_BIT)
1019 mask = FLASH_HW_STROBE_MASK;
1020 else
1021 mask = FLASH_LED_HW_SW_STROBE_SEL_BIT;
1022 rc = qpnp_flash_led_masked_write(led,
1023 FLASH_LED_REG_STROBE_CTRL(led->base + addr_offset),
1024 mask, led->fnode[i].trigger);
1025 if (rc < 0)
1026 return rc;
1027
1028 rc = qpnp_flash_led_masked_write(led,
1029 FLASH_LED_REG_TGR_CURRENT(led->base + addr_offset),
1030 FLASH_LED_CURRENT_MASK, led->fnode[i].current_reg_val);
1031 if (rc < 0)
1032 return rc;
1033
1034 rc = qpnp_flash_led_write(led,
1035 FLASH_LED_REG_SAFETY_TMR(led->base + addr_offset),
1036 led->fnode[i].duration);
1037 if (rc < 0)
1038 return rc;
1039
1040 val |= FLASH_LED_ENABLE << led->fnode[i].id;
1041
1042 if (led->fnode[i].pinctrl) {
1043 rc = pinctrl_select_state(led->fnode[i].pinctrl,
1044 led->fnode[i].gpio_state_active);
1045 if (rc < 0) {
1046 pr_err("failed to enable GPIO rc=%d\n", rc);
1047 return rc;
1048 }
1049 }
1050
1051 if (led->fnode[i].trigger & FLASH_LED_HW_SW_STROBE_SEL_BIT) {
1052 rc = qpnp_flash_led_hw_strobe_enable(&led->fnode[i],
1053 led->pdata->hw_strobe_option, true);
1054 if (rc < 0) {
1055 pr_err("Unable to enable hw strobe rc=%d\n",
1056 rc);
1057 return rc;
1058 }
1059 }
1060 }
1061
1062 if (led->enable == 0) {
1063 rc = qpnp_flash_led_masked_write(led,
1064 FLASH_LED_REG_MOD_CTRL(led->base),
1065 FLASH_LED_MOD_CTRL_MASK, FLASH_LED_MOD_ENABLE);
1066 if (rc < 0)
1067 return rc;
1068 }
1069 led->enable++;
1070
1071 if (led->trigger_lmh) {
1072 rc = qpnp_flash_led_masked_write(led,
1073 FLASH_LED_REG_MITIGATION_SW(led->base),
1074 FLASH_LED_LMH_MITIGATION_EN_MASK,
1075 FLASH_LED_LMH_MITIGATION_ENABLE);
1076 if (rc < 0) {
1077 pr_err("trigger lmh mitigation failed, rc=%d\n", rc);
1078 return rc;
1079 }
1080 }
1081
1082 if (led->trigger_chgr) {
1083 rc = qpnp_flash_led_masked_write(led,
1084 FLASH_LED_REG_MITIGATION_SW(led->base),
1085 FLASH_LED_CHGR_MITIGATION_EN_MASK,
1086 FLASH_LED_CHGR_MITIGATION_ENABLE);
1087 if (rc < 0) {
1088 pr_err("trigger chgr mitigation failed, rc=%d\n", rc);
1089 return rc;
1090 }
1091 }
1092
1093 rc = qpnp_flash_led_masked_write(led,
1094 FLASH_LED_EN_LED_CTRL(led->base),
1095 snode->led_mask, val);
1096 if (rc < 0)
1097 return rc;
1098
1099 snode->enabled = true;
1100 return 0;
1101}
1102
1103int qpnp_flash_led_prepare(struct led_trigger *trig, int options,
1104 int *max_current)
1105{
1106 struct led_classdev *led_cdev;
1107 struct flash_switch_data *snode;
1108 struct qpnp_flash_led *led;
1109 int rc;
1110
1111 if (!trig) {
1112 pr_err("Invalid led_trigger provided\n");
1113 return -EINVAL;
1114 }
1115
1116 led_cdev = trigger_to_lcdev(trig);
1117 if (!led_cdev) {
1118 pr_err("Invalid led_cdev in trigger %s\n", trig->name);
1119 return -EINVAL;
1120 }
1121
1122 snode = container_of(led_cdev, struct flash_switch_data, cdev);
1123 led = dev_get_drvdata(&snode->pdev->dev);
1124
1125 if (!(options & FLASH_LED_PREPARE_OPTIONS_MASK)) {
1126 pr_err("Invalid options %d\n", options);
1127 return -EINVAL;
1128 }
1129
1130 if (options & ENABLE_REGULATOR) {
1131 rc = qpnp_flash_led_regulator_enable(led, snode, true);
1132 if (rc < 0) {
1133 pr_err("enable regulator failed, rc=%d\n", rc);
1134 return rc;
1135 }
1136 }
1137
1138 if (options & DISABLE_REGULATOR) {
1139 rc = qpnp_flash_led_regulator_enable(led, snode, false);
1140 if (rc < 0) {
1141 pr_err("disable regulator failed, rc=%d\n", rc);
1142 return rc;
1143 }
1144 }
1145
1146 if (options & QUERY_MAX_CURRENT) {
1147 rc = qpnp_flash_led_get_max_avail_current(led);
1148 if (rc < 0) {
1149 pr_err("query max current failed, rc=%d\n", rc);
1150 return rc;
1151 }
1152 *max_current = rc;
1153 }
1154
1155 led->trigger_chgr = false;
1156 if (options & PRE_FLASH)
1157 led->trigger_chgr = true;
1158
1159 return 0;
1160}
1161
1162static void qpnp_flash_led_brightness_set(struct led_classdev *led_cdev,
1163 enum led_brightness value)
1164{
1165 struct flash_node_data *fnode = NULL;
1166 struct flash_switch_data *snode = NULL;
1167 struct qpnp_flash_led *led = NULL;
1168 int rc;
1169
1170 /*
1171 * strncmp() must be used here since a prefix comparison is required
1172 * in order to support names like led:switch_0 and led:flash_1.
1173 */
1174 if (!strncmp(led_cdev->name, "led:switch", strlen("led:switch"))) {
1175 snode = container_of(led_cdev, struct flash_switch_data, cdev);
1176 led = dev_get_drvdata(&snode->pdev->dev);
1177 } else if (!strncmp(led_cdev->name, "led:flash", strlen("led:flash")) ||
1178 !strncmp(led_cdev->name, "led:torch",
1179 strlen("led:torch"))) {
1180 fnode = container_of(led_cdev, struct flash_node_data, cdev);
1181 led = dev_get_drvdata(&fnode->pdev->dev);
1182 }
1183
1184 if (!led) {
1185 pr_err("Failed to get flash driver data\n");
1186 return;
1187 }
1188
1189 spin_lock(&led->lock);
1190 if (snode) {
1191 rc = qpnp_flash_led_switch_set(snode, value > 0);
1192 if (rc < 0)
1193 pr_err("Failed to set flash LED switch rc=%d\n", rc);
1194 } else if (fnode) {
1195 qpnp_flash_led_node_set(fnode, value);
1196 }
1197
1198 spin_unlock(&led->lock);
1199}
1200
1201/* sysfs show function for flash_max_current */
1202static ssize_t qpnp_flash_led_max_current_show(struct device *dev,
1203 struct device_attribute *attr, char *buf)
1204{
1205 int rc;
1206 struct flash_switch_data *snode;
1207 struct qpnp_flash_led *led;
1208 struct led_classdev *led_cdev = dev_get_drvdata(dev);
1209
1210 snode = container_of(led_cdev, struct flash_switch_data, cdev);
1211 led = dev_get_drvdata(&snode->pdev->dev);
1212
1213 rc = qpnp_flash_led_get_max_avail_current(led);
1214 if (rc < 0)
1215 pr_err("query max current failed, rc=%d\n", rc);
1216
1217 return snprintf(buf, PAGE_SIZE, "%d\n", rc);
1218}
1219
1220/* sysfs attributes exported by flash_led */
1221static struct device_attribute qpnp_flash_led_attrs[] = {
1222 __ATTR(max_current, 0664, qpnp_flash_led_max_current_show, NULL),
1223};
1224
1225static int flash_led_psy_notifier_call(struct notifier_block *nb,
1226 unsigned long ev, void *v)
1227{
1228 struct power_supply *psy = v;
1229 struct qpnp_flash_led *led =
1230 container_of(nb, struct qpnp_flash_led, nb);
1231
1232 if (ev != PSY_EVENT_PROP_CHANGED)
1233 return NOTIFY_OK;
1234
1235 if (!strcmp(psy->desc->name, "bms")) {
1236 led->bms_psy = power_supply_get_by_name("bms");
1237 if (!led->bms_psy)
1238 pr_err("Failed to get bms power_supply\n");
1239 else
1240 power_supply_unreg_notifier(&led->nb);
1241 }
1242
1243 return NOTIFY_OK;
1244}
1245
1246static int flash_led_psy_register_notifier(struct qpnp_flash_led *led)
1247{
1248 int rc;
1249
1250 led->nb.notifier_call = flash_led_psy_notifier_call;
1251 rc = power_supply_reg_notifier(&led->nb);
1252 if (rc < 0) {
1253 pr_err("Couldn't register psy notifier, rc = %d\n", rc);
1254 return rc;
1255 }
1256
1257 return 0;
1258}
1259
1260/* irq handler */
1261static irqreturn_t qpnp_flash_led_irq_handler(int irq, void *_led)
1262{
1263 struct qpnp_flash_led *led = _led;
1264 enum flash_led_irq_type irq_type = INVALID_IRQ;
1265 int rc;
1266 u8 irq_status, led_status1, led_status2;
1267
1268 pr_debug("irq received, irq=%d\n", irq);
1269
1270 rc = qpnp_flash_led_read(led,
1271 FLASH_LED_REG_INT_RT_STS(led->base), &irq_status);
1272 if (rc < 0) {
1273 pr_err("Failed to read interrupt status reg, rc=%d\n", rc);
1274 goto exit;
1275 }
1276
1277 if (irq == led->pdata->all_ramp_up_done_irq)
1278 irq_type = ALL_RAMP_UP_DONE_IRQ;
1279 else if (irq == led->pdata->all_ramp_down_done_irq)
1280 irq_type = ALL_RAMP_DOWN_DONE_IRQ;
1281 else if (irq == led->pdata->led_fault_irq)
1282 irq_type = LED_FAULT_IRQ;
1283
1284 if (irq_type == ALL_RAMP_UP_DONE_IRQ)
1285 atomic_notifier_call_chain(&irq_notifier_list,
1286 irq_type, NULL);
1287
1288 if (irq_type == LED_FAULT_IRQ) {
1289 rc = qpnp_flash_led_read(led,
1290 FLASH_LED_REG_LED_STATUS1(led->base), &led_status1);
1291 if (rc < 0) {
1292 pr_err("Failed to read led_status1 reg, rc=%d\n", rc);
1293 goto exit;
1294 }
1295
1296 rc = qpnp_flash_led_read(led,
1297 FLASH_LED_REG_LED_STATUS2(led->base), &led_status2);
1298 if (rc < 0) {
1299 pr_err("Failed to read led_status2 reg, rc=%d\n", rc);
1300 goto exit;
1301 }
1302
1303 if (led_status1)
1304 pr_emerg("led short/open fault detected! led_status1=%x\n",
1305 led_status1);
1306
1307 if (led_status2 & FLASH_LED_VPH_DROOP_FAULT_MASK)
1308 pr_emerg("led vph_droop fault detected!\n");
1309 }
1310
1311 pr_debug("irq handled, irq_type=%x, irq_status=%x\n", irq_type,
1312 irq_status);
1313
1314exit:
1315 return IRQ_HANDLED;
1316}
1317
1318int qpnp_flash_led_register_irq_notifier(struct notifier_block *nb)
1319{
1320 return atomic_notifier_chain_register(&irq_notifier_list, nb);
1321}
1322
1323int qpnp_flash_led_unregister_irq_notifier(struct notifier_block *nb)
1324{
1325 return atomic_notifier_chain_unregister(&irq_notifier_list, nb);
1326}
1327
1328static int qpnp_flash_led_parse_each_led_dt(struct qpnp_flash_led *led,
1329 struct flash_node_data *fnode, struct device_node *node)
1330{
1331 const char *temp_string;
1332 int rc;
1333 u32 val;
1334 bool strobe_sel = 0, edge_trigger = 0, active_high = 0;
1335
1336 fnode->pdev = led->pdev;
1337 fnode->cdev.brightness_set = qpnp_flash_led_brightness_set;
1338 fnode->cdev.brightness_get = qpnp_flash_led_brightness_get;
1339
1340 rc = of_property_read_string(node, "qcom,led-name", &fnode->cdev.name);
1341 if (rc < 0) {
1342 pr_err("Unable to read flash LED names\n");
1343 return rc;
1344 }
1345
1346 rc = of_property_read_string(node, "label", &temp_string);
1347 if (!rc) {
1348 if (!strcmp(temp_string, "flash")) {
1349 fnode->type = FLASH_LED_TYPE_FLASH;
1350 } else if (!strcmp(temp_string, "torch")) {
1351 fnode->type = FLASH_LED_TYPE_TORCH;
1352 } else {
1353 pr_err("Wrong flash LED type\n");
1354 return rc;
1355 }
1356 } else {
1357 pr_err("Unable to read flash LED label\n");
1358 return rc;
1359 }
1360
1361 rc = of_property_read_u32(node, "qcom,id", &val);
1362 if (!rc) {
1363 fnode->id = (u8)val;
1364 } else {
1365 pr_err("Unable to read flash LED ID\n");
1366 return rc;
1367 }
1368
1369 rc = of_property_read_string(node, "qcom,default-led-trigger",
1370 &fnode->cdev.default_trigger);
1371 if (rc < 0) {
1372 pr_err("Unable to read trigger name\n");
1373 return rc;
1374 }
1375
1376 fnode->ires_ua = FLASH_LED_IRES_DEFAULT_UA;
1377 fnode->ires = FLASH_LED_IRES_DEFAULT_VAL;
1378 rc = of_property_read_u32(node, "qcom,ires-ua", &val);
1379 if (!rc) {
1380 fnode->ires_ua = val;
1381 fnode->ires = FLASH_LED_IRES_BASE -
1382 (val - FLASH_LED_IRES_MIN_UA) / FLASH_LED_IRES_DIVISOR;
1383 } else if (rc != -EINVAL) {
1384 pr_err("Unable to read current resolution rc=%d\n", rc);
1385 return rc;
1386 }
1387
1388 rc = of_property_read_u32(node, "qcom,max-current", &val);
1389 if (!rc) {
1390 if (val < FLASH_LED_MIN_CURRENT_MA)
1391 val = FLASH_LED_MIN_CURRENT_MA;
1392 fnode->max_current = val;
1393 fnode->cdev.max_brightness = val;
1394 } else {
1395 pr_err("Unable to read max current, rc=%d\n", rc);
1396 return rc;
1397 }
1398
1399 rc = of_property_read_u32(node, "qcom,current-ma", &val);
1400 if (!rc) {
1401 if (val < FLASH_LED_MIN_CURRENT_MA ||
1402 val > fnode->max_current)
1403 pr_warn("Invalid operational current specified, capping it\n");
1404 if (val < FLASH_LED_MIN_CURRENT_MA)
1405 val = FLASH_LED_MIN_CURRENT_MA;
1406 if (val > fnode->max_current)
1407 val = fnode->max_current;
1408 fnode->current_ma = val;
1409 fnode->cdev.brightness = val;
1410 } else if (rc != -EINVAL) {
1411 pr_err("Unable to read operational current, rc=%d\n", rc);
1412 return rc;
1413 }
1414
1415 fnode->duration = FLASH_LED_SAFETY_TMR_DISABLED;
1416 rc = of_property_read_u32(node, "qcom,duration-ms", &val);
1417 if (!rc) {
1418 fnode->duration = (u8)(SAFETY_TMR_TO_REG_VAL(val) |
1419 FLASH_LED_SAFETY_TMR_ENABLE);
1420 } else if (rc == -EINVAL) {
1421 if (fnode->type == FLASH_LED_TYPE_FLASH) {
1422 pr_err("Timer duration is required for flash LED\n");
1423 return rc;
1424 }
1425 } else {
1426 pr_err("Unable to read timer duration\n");
1427 return rc;
1428 }
1429
1430 fnode->hdrm_val = FLASH_LED_HDRM_VOL_DEFAULT_MV;
1431 rc = of_property_read_u32(node, "qcom,hdrm-voltage-mv", &val);
1432 if (!rc) {
1433 val = (val - FLASH_LED_HDRM_VOL_BASE_MV) /
1434 FLASH_LED_HDRM_VOL_STEP_MV;
1435 fnode->hdrm_val = (val << FLASH_LED_HDRM_VOL_SHIFT) &
1436 FLASH_LED_HDRM_VOL_MASK;
1437 } else if (rc != -EINVAL) {
1438 pr_err("Unable to read headroom voltage\n");
1439 return rc;
1440 }
1441
1442 rc = of_property_read_u32(node, "qcom,hdrm-vol-hi-lo-win-mv", &val);
1443 if (!rc) {
1444 fnode->hdrm_val |= (val / FLASH_LED_HDRM_VOL_STEP_MV) &
1445 ~FLASH_LED_HDRM_VOL_MASK;
1446 } else if (rc == -EINVAL) {
1447 fnode->hdrm_val |= FLASH_LED_HDRM_VOL_HI_LO_WIN_DEFAULT_MV;
1448 } else {
1449 pr_err("Unable to read hdrm hi-lo window voltage\n");
1450 return rc;
1451 }
1452
1453 strobe_sel = of_property_read_bool(node, "qcom,hw-strobe-sel");
1454 if (strobe_sel) {
1455 edge_trigger = of_property_read_bool(node,
1456 "qcom,hw-strobe-edge-trigger");
1457 active_high = !of_property_read_bool(node,
1458 "qcom,hw-strobe-active-low");
1459 }
1460 fnode->trigger = (strobe_sel << 2) | (edge_trigger << 1) | active_high;
1461
1462 if (fnode->trigger & FLASH_LED_HW_SW_STROBE_SEL_BIT) {
1463 if (of_find_property(node, "qcom,hw-strobe-gpio", NULL)) {
1464 fnode->hw_strobe_gpio = of_get_named_gpio(node,
1465 "qcom,hw-strobe-gpio", 0);
1466 if (fnode->hw_strobe_gpio < 0) {
1467 pr_err("Invalid gpio specified\n");
1468 return fnode->hw_strobe_gpio;
1469 }
1470 gpio_direction_output(fnode->hw_strobe_gpio, 0);
1471 } else {
1472 fnode->hw_strobe_gpio = -1;
1473 fnode->hw_strobe_state_active =
1474 pinctrl_lookup_state(fnode->pinctrl,
1475 "strobe_enable");
1476 if (IS_ERR_OR_NULL(fnode->hw_strobe_state_active)) {
1477 pr_err("No active pin for hardware strobe, rc=%ld\n",
1478 PTR_ERR(fnode->hw_strobe_state_active));
1479 fnode->hw_strobe_state_active = NULL;
1480 }
1481
1482 fnode->hw_strobe_state_suspend =
1483 pinctrl_lookup_state(fnode->pinctrl,
1484 "strobe_disable");
1485 if (IS_ERR_OR_NULL(fnode->hw_strobe_state_suspend)) {
1486 pr_err("No suspend pin for hardware strobe, rc=%ld\n",
1487 PTR_ERR(fnode->hw_strobe_state_suspend)
1488 );
1489 fnode->hw_strobe_state_suspend = NULL;
1490 }
1491 }
1492 }
1493
1494 rc = led_classdev_register(&led->pdev->dev, &fnode->cdev);
1495 if (rc < 0) {
1496 pr_err("Unable to register led node %d\n", fnode->id);
1497 return rc;
1498 }
1499
1500 fnode->cdev.dev->of_node = node;
1501
1502 fnode->pinctrl = devm_pinctrl_get(fnode->cdev.dev);
1503 if (IS_ERR_OR_NULL(fnode->pinctrl)) {
1504 pr_debug("No pinctrl defined\n");
1505 fnode->pinctrl = NULL;
1506 } else {
1507 fnode->gpio_state_active =
1508 pinctrl_lookup_state(fnode->pinctrl, "led_enable");
1509 if (IS_ERR_OR_NULL(fnode->gpio_state_active)) {
1510 pr_err("Cannot lookup LED active state\n");
1511 devm_pinctrl_put(fnode->pinctrl);
1512 fnode->pinctrl = NULL;
1513 return PTR_ERR(fnode->gpio_state_active);
1514 }
1515
1516 fnode->gpio_state_suspend =
1517 pinctrl_lookup_state(fnode->pinctrl, "led_disable");
1518 if (IS_ERR_OR_NULL(fnode->gpio_state_suspend)) {
1519 pr_err("Cannot lookup LED disable state\n");
1520 devm_pinctrl_put(fnode->pinctrl);
1521 fnode->pinctrl = NULL;
1522 return PTR_ERR(fnode->gpio_state_suspend);
1523 }
1524 }
1525
1526 return 0;
1527}
1528
1529static int qpnp_flash_led_parse_and_register_switch(struct qpnp_flash_led *led,
1530 struct flash_switch_data *snode,
1531 struct device_node *node)
1532{
1533 int rc = 0, num;
1534 char reg_name[16], reg_sup_name[16];
1535
1536 rc = of_property_read_string(node, "qcom,led-name", &snode->cdev.name);
1537 if (rc < 0) {
1538 pr_err("Failed to read switch node name, rc=%d\n", rc);
1539 return rc;
1540 }
1541
1542 rc = sscanf(snode->cdev.name, "led:switch_%d", &num);
1543 if (!rc) {
1544 pr_err("No number for switch device?\n");
1545 return -EINVAL;
1546 }
1547
1548 rc = of_property_read_string(node, "qcom,default-led-trigger",
1549 &snode->cdev.default_trigger);
1550 if (rc < 0) {
1551 pr_err("Unable to read trigger name, rc=%d\n", rc);
1552 return rc;
1553 }
1554
1555 rc = of_property_read_u32(node, "qcom,led-mask", &snode->led_mask);
1556 if (rc < 0) {
1557 pr_err("Unable to read led mask rc=%d\n", rc);
1558 return rc;
1559 }
1560
1561 if (snode->led_mask < 1 || snode->led_mask > 7) {
1562 pr_err("Invalid value for led-mask\n");
1563 return -EINVAL;
1564 }
1565
1566 scnprintf(reg_name, sizeof(reg_name), "switch%d-supply", num);
1567 if (of_find_property(led->pdev->dev.of_node, reg_name, NULL)) {
1568 scnprintf(reg_sup_name, sizeof(reg_sup_name), "switch%d", num);
1569 snode->vreg = devm_regulator_get(&led->pdev->dev, reg_sup_name);
1570 if (IS_ERR_OR_NULL(snode->vreg)) {
1571 rc = PTR_ERR(snode->vreg);
1572 if (rc != -EPROBE_DEFER)
1573 pr_err("Failed to get regulator, rc=%d\n", rc);
1574 snode->vreg = NULL;
1575 return rc;
1576 }
1577 }
1578
1579 snode->pdev = led->pdev;
1580 snode->cdev.brightness_set = qpnp_flash_led_brightness_set;
1581 snode->cdev.brightness_get = qpnp_flash_led_brightness_get;
1582 snode->cdev.flags |= LED_KEEP_TRIGGER;
1583 rc = led_classdev_register(&led->pdev->dev, &snode->cdev);
1584 if (rc < 0) {
1585 pr_err("Unable to register led switch node\n");
1586 return rc;
1587 }
1588
1589 snode->cdev.dev->of_node = node;
1590 return 0;
1591}
1592
1593static int get_code_from_table(int *table, int len, int value)
1594{
1595 int i;
1596
1597 for (i = 0; i < len; i++) {
1598 if (value == table[i])
1599 break;
1600 }
1601
1602 if (i == len) {
1603 pr_err("Couldn't find %d from table\n", value);
1604 return -ENODATA;
1605 }
1606
1607 return i;
1608}
1609
1610static int qpnp_flash_led_parse_common_dt(struct qpnp_flash_led *led,
1611 struct device_node *node)
1612{
1613 struct device_node *revid_node;
1614 int rc;
1615 u32 val;
1616 bool short_circuit_det, open_circuit_det, vph_droop_det;
1617
1618 revid_node = of_parse_phandle(node, "qcom,pmic-revid", 0);
1619 if (!revid_node) {
1620 pr_err("Missing qcom,pmic-revid property - driver failed\n");
1621 return -EINVAL;
1622 }
1623
1624 led->pdata->pmic_rev_id = get_revid_data(revid_node);
1625 if (IS_ERR_OR_NULL(led->pdata->pmic_rev_id)) {
1626 pr_err("Unable to get pmic_revid rc=%ld\n",
1627 PTR_ERR(led->pdata->pmic_rev_id));
1628 /*
1629 * the revid peripheral must be registered, any failure
1630 * here only indicates that the rev-id module has not
1631 * probed yet.
1632 */
1633 return -EPROBE_DEFER;
1634 }
1635
1636 pr_debug("PMIC subtype %d Digital major %d\n",
1637 led->pdata->pmic_rev_id->pmic_subtype,
1638 led->pdata->pmic_rev_id->rev4);
1639
1640 led->pdata->hdrm_auto_mode_en = of_property_read_bool(node,
1641 "qcom,hdrm-auto-mode");
1642
1643 led->pdata->isc_delay = FLASH_LED_ISC_DELAY_DEFAULT;
1644 rc = of_property_read_u32(node, "qcom,isc-delay-us", &val);
1645 if (!rc) {
1646 led->pdata->isc_delay =
1647 val >> FLASH_LED_ISC_WARMUP_DELAY_SHIFT;
1648 } else if (rc != -EINVAL) {
1649 pr_err("Unable to read ISC delay, rc=%d\n", rc);
1650 return rc;
1651 }
1652
1653 led->pdata->warmup_delay = FLASH_LED_WARMUP_DELAY_DEFAULT;
1654 rc = of_property_read_u32(node, "qcom,warmup-delay-us", &val);
1655 if (!rc) {
1656 led->pdata->warmup_delay =
1657 val >> FLASH_LED_ISC_WARMUP_DELAY_SHIFT;
1658 } else if (rc != -EINVAL) {
1659 pr_err("Unable to read WARMUP delay, rc=%d\n", rc);
1660 return rc;
1661 }
1662
1663 short_circuit_det =
1664 of_property_read_bool(node, "qcom,short-circuit-det");
1665 open_circuit_det = of_property_read_bool(node, "qcom,open-circuit-det");
1666 vph_droop_det = of_property_read_bool(node, "qcom,vph-droop-det");
1667 led->pdata->current_derate_en_cfg = (vph_droop_det << 2) |
1668 (open_circuit_det << 1) | short_circuit_det;
1669
1670 led->pdata->thermal_derate_en =
1671 of_property_read_bool(node, "qcom,thermal-derate-en");
1672
1673 if (led->pdata->thermal_derate_en) {
1674 led->pdata->thermal_derate_current =
1675 devm_kcalloc(&led->pdev->dev,
1676 FLASH_LED_THERMAL_OTST_LEVELS,
1677 sizeof(int), GFP_KERNEL);
1678 if (!led->pdata->thermal_derate_current)
1679 return -ENOMEM;
1680
1681 rc = of_property_read_u32_array(node,
1682 "qcom,thermal-derate-current",
1683 led->pdata->thermal_derate_current,
1684 FLASH_LED_THERMAL_OTST_LEVELS);
1685 if (rc < 0) {
1686 pr_err("Unable to read thermal current limits, rc=%d\n",
1687 rc);
1688 return rc;
1689 }
1690 }
1691
1692 led->pdata->otst_ramp_bkup_en =
1693 !of_property_read_bool(node, "qcom,otst-ramp-back-up-dis");
1694
1695 led->pdata->thermal_derate_slow = -EINVAL;
1696 rc = of_property_read_u32(node, "qcom,thermal-derate-slow", &val);
1697 if (!rc) {
1698 if (val < 0 || val > THERMAL_DERATE_SLOW_MAX) {
1699 pr_err("Invalid thermal_derate_slow %d\n", val);
1700 return -EINVAL;
1701 }
1702
1703 led->pdata->thermal_derate_slow =
1704 get_code_from_table(thermal_derate_slow_table,
1705 ARRAY_SIZE(thermal_derate_slow_table), val);
1706 } else if (rc != -EINVAL) {
1707 pr_err("Unable to read thermal derate slow, rc=%d\n", rc);
1708 return rc;
1709 }
1710
1711 led->pdata->thermal_derate_fast = -EINVAL;
1712 rc = of_property_read_u32(node, "qcom,thermal-derate-fast", &val);
1713 if (!rc) {
1714 if (val < 0 || val > THERMAL_DERATE_FAST_MAX) {
1715 pr_err("Invalid thermal_derate_fast %d\n", val);
1716 return -EINVAL;
1717 }
1718
1719 led->pdata->thermal_derate_fast =
1720 get_code_from_table(thermal_derate_fast_table,
1721 ARRAY_SIZE(thermal_derate_fast_table), val);
1722 } else if (rc != -EINVAL) {
1723 pr_err("Unable to read thermal derate fast, rc=%d\n", rc);
1724 return rc;
1725 }
1726
1727 led->pdata->thermal_debounce = -EINVAL;
1728 rc = of_property_read_u32(node, "qcom,thermal-debounce", &val);
1729 if (!rc) {
1730 if (val < 0 || val > THERMAL_DEBOUNCE_TIME_MAX) {
1731 pr_err("Invalid thermal_debounce %d\n", val);
1732 return -EINVAL;
1733 }
1734
1735 if (val >= 0 && val < 16)
1736 led->pdata->thermal_debounce = 0;
1737 else
1738 led->pdata->thermal_debounce = ilog2(val) - 3;
1739 } else if (rc != -EINVAL) {
1740 pr_err("Unable to read thermal debounce, rc=%d\n", rc);
1741 return rc;
1742 }
1743
1744 led->pdata->thermal_hysteresis = -EINVAL;
1745 rc = of_property_read_u32(node, "qcom,thermal-hysteresis", &val);
1746 if (!rc) {
1747 if (led->pdata->pmic_rev_id->pmic_subtype == PM660L_SUBTYPE)
1748 val = THERMAL_HYST_TEMP_TO_VAL(val, 20);
1749 else
1750 val = THERMAL_HYST_TEMP_TO_VAL(val, 15);
1751
1752 if (val < 0 || val > THERMAL_DERATE_HYSTERESIS_MAX) {
1753 pr_err("Invalid thermal_derate_hysteresis %d\n", val);
1754 return -EINVAL;
1755 }
1756
1757 led->pdata->thermal_hysteresis = val;
1758 } else if (rc != -EINVAL) {
1759 pr_err("Unable to read thermal hysteresis, rc=%d\n", rc);
1760 return rc;
1761 }
1762
1763 led->pdata->thermal_thrsh1 = -EINVAL;
1764 rc = of_property_read_u32(node, "qcom,thermal-thrsh1", &val);
1765 if (!rc) {
1766 led->pdata->thermal_thrsh1 =
1767 get_code_from_table(otst1_threshold_table,
1768 ARRAY_SIZE(otst1_threshold_table), val);
1769 } else if (rc != -EINVAL) {
1770 pr_err("Unable to read thermal thrsh1, rc=%d\n", rc);
1771 return rc;
1772 }
1773
1774 led->pdata->thermal_thrsh2 = -EINVAL;
1775 rc = of_property_read_u32(node, "qcom,thermal-thrsh2", &val);
1776 if (!rc) {
1777 led->pdata->thermal_thrsh2 =
1778 get_code_from_table(otst2_threshold_table,
1779 ARRAY_SIZE(otst2_threshold_table), val);
1780 } else if (rc != -EINVAL) {
1781 pr_err("Unable to read thermal thrsh2, rc=%d\n", rc);
1782 return rc;
1783 }
1784
1785 led->pdata->thermal_thrsh3 = -EINVAL;
1786 rc = of_property_read_u32(node, "qcom,thermal-thrsh3", &val);
1787 if (!rc) {
1788 led->pdata->thermal_thrsh3 =
1789 get_code_from_table(otst3_threshold_table,
1790 ARRAY_SIZE(otst3_threshold_table), val);
1791 } else if (rc != -EINVAL) {
1792 pr_err("Unable to read thermal thrsh3, rc=%d\n", rc);
1793 return rc;
1794 }
1795
1796 led->pdata->vph_droop_debounce = FLASH_LED_VPH_DROOP_DEBOUNCE_DEFAULT;
1797 rc = of_property_read_u32(node, "qcom,vph-droop-debounce-us", &val);
1798 if (!rc) {
1799 led->pdata->vph_droop_debounce =
1800 VPH_DROOP_DEBOUNCE_US_TO_VAL(val);
1801 } else if (rc != -EINVAL) {
1802 pr_err("Unable to read VPH droop debounce, rc=%d\n", rc);
1803 return rc;
1804 }
1805
1806 if (led->pdata->vph_droop_debounce > FLASH_LED_DEBOUNCE_MAX) {
1807 pr_err("Invalid VPH droop debounce specified\n");
1808 return -EINVAL;
1809 }
1810
1811 led->pdata->vph_droop_threshold = FLASH_LED_VPH_DROOP_THRESH_DEFAULT;
1812 rc = of_property_read_u32(node, "qcom,vph-droop-threshold-mv", &val);
1813 if (!rc) {
1814 led->pdata->vph_droop_threshold =
1815 VPH_DROOP_THRESH_MV_TO_VAL(val);
1816 } else if (rc != -EINVAL) {
1817 pr_err("Unable to read VPH droop threshold, rc=%d\n", rc);
1818 return rc;
1819 }
1820
1821 if (led->pdata->vph_droop_threshold > FLASH_LED_VPH_DROOP_THRESH_MAX) {
1822 pr_err("Invalid VPH droop threshold specified\n");
1823 return -EINVAL;
1824 }
1825
1826 led->pdata->vph_droop_hysteresis =
1827 FLASH_LED_VPH_DROOP_HYST_DEFAULT;
1828 rc = of_property_read_u32(node, "qcom,vph-droop-hysteresis-mv", &val);
1829 if (!rc) {
1830 led->pdata->vph_droop_hysteresis =
1831 VPH_DROOP_HYST_MV_TO_VAL(val);
1832 } else if (rc != -EINVAL) {
1833 pr_err("Unable to read VPH droop hysteresis, rc=%d\n", rc);
1834 return rc;
1835 }
1836
1837 if (led->pdata->vph_droop_hysteresis > FLASH_LED_HYSTERESIS_MAX) {
1838 pr_err("Invalid VPH droop hysteresis specified\n");
1839 return -EINVAL;
1840 }
1841
1842 led->pdata->vph_droop_hysteresis <<= FLASH_LED_VPH_DROOP_HYST_SHIFT;
1843
1844 rc = of_property_read_u32(node, "qcom,hw-strobe-option", &val);
1845 if (!rc) {
1846 led->pdata->hw_strobe_option = (u8)val;
1847 } else if (rc != -EINVAL) {
1848 pr_err("Unable to parse hw strobe option, rc=%d\n", rc);
1849 return rc;
1850 }
1851
1852 rc = of_property_read_u32(node, "qcom,led1n2-iclamp-low-ma", &val);
1853 if (!rc) {
1854 led->pdata->led1n2_iclamp_low_ma = val;
1855 } else if (rc != -EINVAL) {
1856 pr_err("Unable to read led1n2_iclamp_low current, rc=%d\n", rc);
1857 return rc;
1858 }
1859
1860 rc = of_property_read_u32(node, "qcom,led1n2-iclamp-mid-ma", &val);
1861 if (!rc) {
1862 led->pdata->led1n2_iclamp_mid_ma = val;
1863 } else if (rc != -EINVAL) {
1864 pr_err("Unable to read led1n2_iclamp_mid current, rc=%d\n", rc);
1865 return rc;
1866 }
1867
1868 rc = of_property_read_u32(node, "qcom,led3-iclamp-low-ma", &val);
1869 if (!rc) {
1870 led->pdata->led3_iclamp_low_ma = val;
1871 } else if (rc != -EINVAL) {
1872 pr_err("Unable to read led3_iclamp_low current, rc=%d\n", rc);
1873 return rc;
1874 }
1875
1876 rc = of_property_read_u32(node, "qcom,led3-iclamp-mid-ma", &val);
1877 if (!rc) {
1878 led->pdata->led3_iclamp_mid_ma = val;
1879 } else if (rc != -EINVAL) {
1880 pr_err("Unable to read led3_iclamp_mid current, rc=%d\n", rc);
1881 return rc;
1882 }
1883
1884 led->pdata->vled_max_uv = FLASH_LED_VLED_MAX_DEFAULT_UV;
1885 rc = of_property_read_u32(node, "qcom,vled-max-uv", &val);
1886 if (!rc) {
1887 led->pdata->vled_max_uv = val;
1888 } else if (rc != -EINVAL) {
1889 pr_err("Unable to parse vled_max voltage, rc=%d\n", rc);
1890 return rc;
1891 }
1892
1893 led->pdata->ibatt_ocp_threshold_ua =
1894 FLASH_LED_IBATT_OCP_THRESH_DEFAULT_UA;
1895 rc = of_property_read_u32(node, "qcom,ibatt-ocp-threshold-ua", &val);
1896 if (!rc) {
1897 led->pdata->ibatt_ocp_threshold_ua = val;
1898 } else if (rc != -EINVAL) {
1899 pr_err("Unable to parse ibatt_ocp threshold, rc=%d\n", rc);
1900 return rc;
1901 }
1902
1903 led->pdata->rpara_uohm = FLASH_LED_RPARA_DEFAULT_UOHM;
1904 rc = of_property_read_u32(node, "qcom,rparasitic-uohm", &val);
1905 if (!rc) {
1906 led->pdata->rpara_uohm = val;
1907 } else if (rc != -EINVAL) {
1908 pr_err("Unable to parse rparasitic, rc=%d\n", rc);
1909 return rc;
1910 }
1911
1912 led->pdata->lmh_ocv_threshold_uv =
1913 FLASH_LED_LMH_OCV_THRESH_DEFAULT_UV;
1914 rc = of_property_read_u32(node, "qcom,lmh-ocv-threshold-uv", &val);
1915 if (!rc) {
1916 led->pdata->lmh_ocv_threshold_uv = val;
1917 } else if (rc != -EINVAL) {
1918 pr_err("Unable to parse lmh ocv threshold, rc=%d\n", rc);
1919 return rc;
1920 }
1921
1922 led->pdata->lmh_rbatt_threshold_uohm =
1923 FLASH_LED_LMH_RBATT_THRESH_DEFAULT_UOHM;
1924 rc = of_property_read_u32(node, "qcom,lmh-rbatt-threshold-uohm", &val);
1925 if (!rc) {
1926 led->pdata->lmh_rbatt_threshold_uohm = val;
1927 } else if (rc != -EINVAL) {
1928 pr_err("Unable to parse lmh rbatt threshold, rc=%d\n", rc);
1929 return rc;
1930 }
1931
1932 led->pdata->lmh_level = FLASH_LED_LMH_LEVEL_DEFAULT;
1933 rc = of_property_read_u32(node, "qcom,lmh-level", &val);
1934 if (!rc) {
1935 led->pdata->lmh_level = val;
1936 } else if (rc != -EINVAL) {
1937 pr_err("Unable to parse lmh_level, rc=%d\n", rc);
1938 return rc;
1939 }
1940
1941 led->pdata->lmh_mitigation_sel = FLASH_LED_MITIGATION_SEL_DEFAULT;
1942 rc = of_property_read_u32(node, "qcom,lmh-mitigation-sel", &val);
1943 if (!rc) {
1944 led->pdata->lmh_mitigation_sel = val;
1945 } else if (rc != -EINVAL) {
1946 pr_err("Unable to parse lmh_mitigation_sel, rc=%d\n", rc);
1947 return rc;
1948 }
1949
1950 if (led->pdata->lmh_mitigation_sel > FLASH_LED_MITIGATION_SEL_MAX) {
1951 pr_err("Invalid lmh_mitigation_sel specified\n");
1952 return -EINVAL;
1953 }
1954
1955 led->pdata->chgr_mitigation_sel = FLASH_LED_MITIGATION_SEL_DEFAULT;
1956 rc = of_property_read_u32(node, "qcom,chgr-mitigation-sel", &val);
1957 if (!rc) {
1958 led->pdata->chgr_mitigation_sel = val;
1959 } else if (rc != -EINVAL) {
1960 pr_err("Unable to parse chgr_mitigation_sel, rc=%d\n", rc);
1961 return rc;
1962 }
1963
1964 if (led->pdata->chgr_mitigation_sel > FLASH_LED_MITIGATION_SEL_MAX) {
1965 pr_err("Invalid chgr_mitigation_sel specified\n");
1966 return -EINVAL;
1967 }
1968
1969 led->pdata->chgr_mitigation_sel <<= FLASH_LED_CHGR_MITIGATION_SEL_SHIFT;
1970
1971 led->pdata->iled_thrsh_val = FLASH_LED_MITIGATION_THRSH_DEFAULT;
1972 rc = of_property_read_u32(node, "qcom,iled-thrsh-ma", &val);
1973 if (!rc) {
1974 led->pdata->iled_thrsh_val = MITIGATION_THRSH_MA_TO_VAL(val);
1975 } else if (rc != -EINVAL) {
1976 pr_err("Unable to parse iled_thrsh_val, rc=%d\n", rc);
1977 return rc;
1978 }
1979
1980 if (led->pdata->iled_thrsh_val > FLASH_LED_MITIGATION_THRSH_MAX) {
1981 pr_err("Invalid iled_thrsh_val specified\n");
1982 return -EINVAL;
1983 }
1984
1985 led->pdata->all_ramp_up_done_irq =
1986 of_irq_get_byname(node, "all-ramp-up-done-irq");
1987 if (led->pdata->all_ramp_up_done_irq < 0)
1988 pr_debug("all-ramp-up-done-irq not used\n");
1989
1990 led->pdata->all_ramp_down_done_irq =
1991 of_irq_get_byname(node, "all-ramp-down-done-irq");
1992 if (led->pdata->all_ramp_down_done_irq < 0)
1993 pr_debug("all-ramp-down-done-irq not used\n");
1994
1995 led->pdata->led_fault_irq =
1996 of_irq_get_byname(node, "led-fault-irq");
1997 if (led->pdata->led_fault_irq < 0)
1998 pr_debug("led-fault-irq not used\n");
1999
2000 return 0;
2001}
2002
2003static int qpnp_flash_led_probe(struct platform_device *pdev)
2004{
2005 struct qpnp_flash_led *led;
2006 struct device_node *node, *temp;
2007 const char *temp_string;
2008 unsigned int base;
2009 int rc, i = 0, j = 0;
2010
2011 node = pdev->dev.of_node;
2012 if (!node) {
2013 pr_err("No flash LED nodes defined\n");
2014 return -ENODEV;
2015 }
2016
2017 rc = of_property_read_u32(node, "reg", &base);
2018 if (rc < 0) {
2019 pr_err("Couldn't find reg in node %s, rc = %d\n",
2020 node->full_name, rc);
2021 return rc;
2022 }
2023
2024 led = devm_kzalloc(&pdev->dev, sizeof(struct qpnp_flash_led),
2025 GFP_KERNEL);
2026 if (!led)
2027 return -ENOMEM;
2028
2029 led->regmap = dev_get_regmap(pdev->dev.parent, NULL);
2030 if (!led->regmap) {
2031 pr_err("Couldn't get parent's regmap\n");
2032 return -EINVAL;
2033 }
2034
2035 led->base = base;
2036 led->pdev = pdev;
2037 led->pdata = devm_kzalloc(&pdev->dev,
2038 sizeof(struct flash_led_platform_data), GFP_KERNEL);
2039 if (!led->pdata)
2040 return -ENOMEM;
2041
2042 rc = qpnp_flash_led_parse_common_dt(led, node);
2043 if (rc < 0) {
2044 pr_err("Failed to parse common flash LED device tree\n");
2045 return rc;
2046 }
2047
2048 for_each_available_child_of_node(node, temp) {
2049 rc = of_property_read_string(temp, "label", &temp_string);
2050 if (rc < 0) {
2051 pr_err("Failed to parse label, rc=%d\n", rc);
2052 return rc;
2053 }
2054
2055 if (!strcmp("switch", temp_string)) {
2056 led->num_snodes++;
2057 } else if (!strcmp("flash", temp_string) ||
2058 !strcmp("torch", temp_string)) {
2059 led->num_fnodes++;
2060 } else {
2061 pr_err("Invalid label for led node\n");
2062 return -EINVAL;
2063 }
2064 }
2065
2066 if (!led->num_fnodes) {
2067 pr_err("No LED nodes defined\n");
2068 return -ECHILD;
2069 }
2070
2071 led->fnode = devm_kcalloc(&pdev->dev, led->num_fnodes,
2072 sizeof(*led->fnode),
2073 GFP_KERNEL);
2074 if (!led->fnode)
2075 return -ENOMEM;
2076
2077 led->snode = devm_kcalloc(&pdev->dev, led->num_snodes,
2078 sizeof(*led->snode),
2079 GFP_KERNEL);
2080 if (!led->snode)
2081 return -ENOMEM;
2082
2083 temp = NULL;
2084 i = 0;
2085 j = 0;
2086 for_each_available_child_of_node(node, temp) {
2087 rc = of_property_read_string(temp, "label", &temp_string);
2088 if (rc < 0) {
2089 pr_err("Failed to parse label, rc=%d\n", rc);
2090 return rc;
2091 }
2092
2093 if (!strcmp("flash", temp_string) ||
2094 !strcmp("torch", temp_string)) {
2095 rc = qpnp_flash_led_parse_each_led_dt(led,
2096 &led->fnode[i++], temp);
2097 if (rc < 0) {
2098 pr_err("Unable to parse flash node %d rc=%d\n",
2099 i, rc);
2100 goto error_led_register;
2101 }
2102 }
2103
2104 if (!strcmp("switch", temp_string)) {
2105 rc = qpnp_flash_led_parse_and_register_switch(led,
2106 &led->snode[j++], temp);
2107 if (rc < 0) {
2108 pr_err("Unable to parse and register switch node, rc=%d\n",
2109 rc);
2110 goto error_switch_register;
2111 }
2112 }
2113 }
2114
2115 /* setup irqs */
2116 if (led->pdata->all_ramp_up_done_irq >= 0) {
2117 rc = devm_request_threaded_irq(&led->pdev->dev,
2118 led->pdata->all_ramp_up_done_irq,
2119 NULL, qpnp_flash_led_irq_handler,
2120 IRQF_ONESHOT,
2121 "qpnp_flash_led_all_ramp_up_done_irq", led);
2122 if (rc < 0) {
2123 pr_err("Unable to request all_ramp_up_done(%d) IRQ(err:%d)\n",
2124 led->pdata->all_ramp_up_done_irq, rc);
2125 goto error_switch_register;
2126 }
2127 }
2128
2129 if (led->pdata->all_ramp_down_done_irq >= 0) {
2130 rc = devm_request_threaded_irq(&led->pdev->dev,
2131 led->pdata->all_ramp_down_done_irq,
2132 NULL, qpnp_flash_led_irq_handler,
2133 IRQF_ONESHOT,
2134 "qpnp_flash_led_all_ramp_down_done_irq", led);
2135 if (rc < 0) {
2136 pr_err("Unable to request all_ramp_down_done(%d) IRQ(err:%d)\n",
2137 led->pdata->all_ramp_down_done_irq, rc);
2138 goto error_switch_register;
2139 }
2140 }
2141
2142 if (led->pdata->led_fault_irq >= 0) {
2143 rc = devm_request_threaded_irq(&led->pdev->dev,
2144 led->pdata->led_fault_irq,
2145 NULL, qpnp_flash_led_irq_handler,
2146 IRQF_ONESHOT,
2147 "qpnp_flash_led_fault_irq", led);
2148 if (rc < 0) {
2149 pr_err("Unable to request led_fault(%d) IRQ(err:%d)\n",
2150 led->pdata->led_fault_irq, rc);
2151 goto error_switch_register;
2152 }
2153 }
2154
2155 led->bms_psy = power_supply_get_by_name("bms");
2156 if (!led->bms_psy) {
2157 rc = flash_led_psy_register_notifier(led);
2158 if (rc < 0) {
2159 pr_err("Couldn't register psy notifier, rc = %d\n", rc);
2160 goto error_switch_register;
2161 }
2162 }
2163
2164 rc = qpnp_flash_led_init_settings(led);
2165 if (rc < 0) {
2166 pr_err("Failed to initialize flash LED, rc=%d\n", rc);
2167 goto unreg_notifier;
2168 }
2169
2170 for (i = 0; i < led->num_snodes; i++) {
2171 for (j = 0; j < ARRAY_SIZE(qpnp_flash_led_attrs); j++) {
2172 rc = sysfs_create_file(&led->snode[i].cdev.dev->kobj,
2173 &qpnp_flash_led_attrs[j].attr);
2174 if (rc < 0) {
2175 pr_err("sysfs creation failed, rc=%d\n", rc);
2176 goto sysfs_fail;
2177 }
2178 }
2179 }
2180
2181 spin_lock_init(&led->lock);
2182
2183 dev_set_drvdata(&pdev->dev, led);
2184
2185 return 0;
2186
2187sysfs_fail:
2188 for (--j; j >= 0; j--)
2189 sysfs_remove_file(&led->snode[i].cdev.dev->kobj,
2190 &qpnp_flash_led_attrs[j].attr);
2191
2192 for (--i; i >= 0; i--) {
2193 for (j = 0; j < ARRAY_SIZE(qpnp_flash_led_attrs); j++)
2194 sysfs_remove_file(&led->snode[i].cdev.dev->kobj,
2195 &qpnp_flash_led_attrs[j].attr);
2196 }
2197
2198 i = led->num_snodes;
2199unreg_notifier:
2200 power_supply_unreg_notifier(&led->nb);
2201error_switch_register:
2202 while (i > 0)
2203 led_classdev_unregister(&led->snode[--i].cdev);
2204 i = led->num_fnodes;
2205error_led_register:
2206 while (i > 0)
2207 led_classdev_unregister(&led->fnode[--i].cdev);
2208
2209 return rc;
2210}
2211
2212static int qpnp_flash_led_remove(struct platform_device *pdev)
2213{
2214 struct qpnp_flash_led *led = dev_get_drvdata(&pdev->dev);
2215 int i, j;
2216
2217 for (i = 0; i < led->num_snodes; i++) {
2218 for (j = 0; j < ARRAY_SIZE(qpnp_flash_led_attrs); j++)
2219 sysfs_remove_file(&led->snode[i].cdev.dev->kobj,
2220 &qpnp_flash_led_attrs[j].attr);
2221
2222 if (led->snode[i].regulator_on)
2223 qpnp_flash_led_regulator_enable(led,
2224 &led->snode[i], false);
2225 }
2226
2227 while (i > 0)
2228 led_classdev_unregister(&led->snode[--i].cdev);
2229
2230 i = led->num_fnodes;
2231 while (i > 0)
2232 led_classdev_unregister(&led->fnode[--i].cdev);
2233
2234 power_supply_unreg_notifier(&led->nb);
2235 return 0;
2236}
2237
2238const struct of_device_id qpnp_flash_led_match_table[] = {
2239 { .compatible = "qcom,qpnp-flash-led-v2",},
2240 { },
2241};
2242
2243static struct platform_driver qpnp_flash_led_driver = {
2244 .driver = {
2245 .name = "qcom,qpnp-flash-led-v2",
2246 .of_match_table = qpnp_flash_led_match_table,
2247 },
2248 .probe = qpnp_flash_led_probe,
2249 .remove = qpnp_flash_led_remove,
2250};
2251
2252static int __init qpnp_flash_led_init(void)
2253{
2254 return platform_driver_register(&qpnp_flash_led_driver);
2255}
2256late_initcall(qpnp_flash_led_init);
2257
2258static void __exit qpnp_flash_led_exit(void)
2259{
2260 platform_driver_unregister(&qpnp_flash_led_driver);
2261}
2262module_exit(qpnp_flash_led_exit);
2263
2264MODULE_DESCRIPTION("QPNP Flash LED driver v2");
2265MODULE_LICENSE("GPL v2");
2266MODULE_ALIAS("leds:leds-qpnp-flash-v2");