1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Copyright (C) 2013 STMicroelectronics (R&D) Limited.
4 * Authors:
5 * Srinivas Kandagatla <srinivas.kandagatla@st.com>
6 */
7
8 #include <linux/init.h>
9 #include <linux/module.h>
10 #include <linux/slab.h>
11 #include <linux/err.h>
12 #include <linux/io.h>
13 #include <linux/of.h>
14 #include <linux/of_irq.h>
15 #include <linux/of_gpio.h> /* of_get_named_gpio() */
16 #include <linux/of_address.h>
17 #include <linux/gpio/driver.h>
18 #include <linux/regmap.h>
19 #include <linux/mfd/syscon.h>
20 #include <linux/pinctrl/pinctrl.h>
21 #include <linux/pinctrl/pinmux.h>
22 #include <linux/pinctrl/pinconf.h>
23 #include <linux/platform_device.h>
24 #include "core.h"
25
26 /* PIO Block registers */
27 /* PIO output */
28 #define REG_PIO_POUT 0x00
29 /* Set bits of POUT */
30 #define REG_PIO_SET_POUT 0x04
31 /* Clear bits of POUT */
32 #define REG_PIO_CLR_POUT 0x08
33 /* PIO input */
34 #define REG_PIO_PIN 0x10
35 /* PIO configuration */
36 #define REG_PIO_PC(n) (0x20 + (n) * 0x10)
37 /* Set bits of PC[2:0] */
38 #define REG_PIO_SET_PC(n) (0x24 + (n) * 0x10)
39 /* Clear bits of PC[2:0] */
40 #define REG_PIO_CLR_PC(n) (0x28 + (n) * 0x10)
41 /* PIO input comparison */
42 #define REG_PIO_PCOMP 0x50
43 /* Set bits of PCOMP */
44 #define REG_PIO_SET_PCOMP 0x54
45 /* Clear bits of PCOMP */
46 #define REG_PIO_CLR_PCOMP 0x58
47 /* PIO input comparison mask */
48 #define REG_PIO_PMASK 0x60
49 /* Set bits of PMASK */
50 #define REG_PIO_SET_PMASK 0x64
51 /* Clear bits of PMASK */
52 #define REG_PIO_CLR_PMASK 0x68
53
54 #define ST_GPIO_DIRECTION_BIDIR 0x1
55 #define ST_GPIO_DIRECTION_OUT 0x2
56 #define ST_GPIO_DIRECTION_IN 0x4
57
58 /*
59 * Packed style retime configuration.
60 * There are two registers cfg0 and cfg1 in this style for each bank.
61 * Each field in this register is 8 bit corresponding to 8 pins in the bank.
62 */
63 #define RT_P_CFGS_PER_BANK 2
64 #define RT_P_CFG0_CLK1NOTCLK0_FIELD(reg) REG_FIELD(reg, 0, 7)
65 #define RT_P_CFG0_DELAY_0_FIELD(reg) REG_FIELD(reg, 16, 23)
66 #define RT_P_CFG0_DELAY_1_FIELD(reg) REG_FIELD(reg, 24, 31)
67 #define RT_P_CFG1_INVERTCLK_FIELD(reg) REG_FIELD(reg, 0, 7)
68 #define RT_P_CFG1_RETIME_FIELD(reg) REG_FIELD(reg, 8, 15)
69 #define RT_P_CFG1_CLKNOTDATA_FIELD(reg) REG_FIELD(reg, 16, 23)
70 #define RT_P_CFG1_DOUBLE_EDGE_FIELD(reg) REG_FIELD(reg, 24, 31)
71
72 /*
73 * Dedicated style retime Configuration register
74 * each register is dedicated per pin.
75 */
76 #define RT_D_CFGS_PER_BANK 8
77 #define RT_D_CFG_CLK_SHIFT 0
78 #define RT_D_CFG_CLK_MASK (0x3 << 0)
79 #define RT_D_CFG_CLKNOTDATA_SHIFT 2
80 #define RT_D_CFG_CLKNOTDATA_MASK BIT(2)
81 #define RT_D_CFG_DELAY_SHIFT 3
82 #define RT_D_CFG_DELAY_MASK (0xf << 3)
83 #define RT_D_CFG_DELAY_INNOTOUT_SHIFT 7
84 #define RT_D_CFG_DELAY_INNOTOUT_MASK BIT(7)
85 #define RT_D_CFG_DOUBLE_EDGE_SHIFT 8
86 #define RT_D_CFG_DOUBLE_EDGE_MASK BIT(8)
87 #define RT_D_CFG_INVERTCLK_SHIFT 9
88 #define RT_D_CFG_INVERTCLK_MASK BIT(9)
89 #define RT_D_CFG_RETIME_SHIFT 10
90 #define RT_D_CFG_RETIME_MASK BIT(10)
91
92 /*
93 * Pinconf is represented in an opaque unsigned long variable.
94 * Below is the bit allocation details for each possible configuration.
95 * All the bit fields can be encapsulated into four variables
96 * (direction, retime-type, retime-clk, retime-delay)
97 *
98 * +----------------+
99 *[31:28]| reserved-3 |
100 * +----------------+-------------
101 *[27] | oe | |
102 * +----------------+ v
103 *[26] | pu | [Direction ]
104 * +----------------+ ^
105 *[25] | od | |
106 * +----------------+-------------
107 *[24] | reserved-2 |
108 * +----------------+-------------
109 *[23] | retime | |
110 * +----------------+ |
111 *[22] | retime-invclk | |
112 * +----------------+ v
113 *[21] |retime-clknotdat| [Retime-type ]
114 * +----------------+ ^
115 *[20] | retime-de | |
116 * +----------------+-------------
117 *[19:18]| retime-clk |------>[Retime-Clk ]
118 * +----------------+
119 *[17:16]| reserved-1 |
120 * +----------------+
121 *[15..0]| retime-delay |------>[Retime Delay]
122 * +----------------+
123 */
124
125 #define ST_PINCONF_UNPACK(conf, param)\
126 ((conf >> ST_PINCONF_ ##param ##_SHIFT) \
127 & ST_PINCONF_ ##param ##_MASK)
128
129 #define ST_PINCONF_PACK(conf, val, param) (conf |=\
130 ((val & ST_PINCONF_ ##param ##_MASK) << \
131 ST_PINCONF_ ##param ##_SHIFT))
132
133 /* Output enable */
134 #define ST_PINCONF_OE_MASK 0x1
135 #define ST_PINCONF_OE_SHIFT 27
136 #define ST_PINCONF_OE BIT(27)
137 #define ST_PINCONF_UNPACK_OE(conf) ST_PINCONF_UNPACK(conf, OE)
138 #define ST_PINCONF_PACK_OE(conf) ST_PINCONF_PACK(conf, 1, OE)
139
140 /* Pull Up */
141 #define ST_PINCONF_PU_MASK 0x1
142 #define ST_PINCONF_PU_SHIFT 26
143 #define ST_PINCONF_PU BIT(26)
144 #define ST_PINCONF_UNPACK_PU(conf) ST_PINCONF_UNPACK(conf, PU)
145 #define ST_PINCONF_PACK_PU(conf) ST_PINCONF_PACK(conf, 1, PU)
146
147 /* Open Drain */
148 #define ST_PINCONF_OD_MASK 0x1
149 #define ST_PINCONF_OD_SHIFT 25
150 #define ST_PINCONF_OD BIT(25)
151 #define ST_PINCONF_UNPACK_OD(conf) ST_PINCONF_UNPACK(conf, OD)
152 #define ST_PINCONF_PACK_OD(conf) ST_PINCONF_PACK(conf, 1, OD)
153
154 #define ST_PINCONF_RT_MASK 0x1
155 #define ST_PINCONF_RT_SHIFT 23
156 #define ST_PINCONF_RT BIT(23)
157 #define ST_PINCONF_UNPACK_RT(conf) ST_PINCONF_UNPACK(conf, RT)
158 #define ST_PINCONF_PACK_RT(conf) ST_PINCONF_PACK(conf, 1, RT)
159
160 #define ST_PINCONF_RT_INVERTCLK_MASK 0x1
161 #define ST_PINCONF_RT_INVERTCLK_SHIFT 22
162 #define ST_PINCONF_RT_INVERTCLK BIT(22)
163 #define ST_PINCONF_UNPACK_RT_INVERTCLK(conf) \
164 ST_PINCONF_UNPACK(conf, RT_INVERTCLK)
165 #define ST_PINCONF_PACK_RT_INVERTCLK(conf) \
166 ST_PINCONF_PACK(conf, 1, RT_INVERTCLK)
167
168 #define ST_PINCONF_RT_CLKNOTDATA_MASK 0x1
169 #define ST_PINCONF_RT_CLKNOTDATA_SHIFT 21
170 #define ST_PINCONF_RT_CLKNOTDATA BIT(21)
171 #define ST_PINCONF_UNPACK_RT_CLKNOTDATA(conf) \
172 ST_PINCONF_UNPACK(conf, RT_CLKNOTDATA)
173 #define ST_PINCONF_PACK_RT_CLKNOTDATA(conf) \
174 ST_PINCONF_PACK(conf, 1, RT_CLKNOTDATA)
175
176 #define ST_PINCONF_RT_DOUBLE_EDGE_MASK 0x1
177 #define ST_PINCONF_RT_DOUBLE_EDGE_SHIFT 20
178 #define ST_PINCONF_RT_DOUBLE_EDGE BIT(20)
179 #define ST_PINCONF_UNPACK_RT_DOUBLE_EDGE(conf) \
180 ST_PINCONF_UNPACK(conf, RT_DOUBLE_EDGE)
181 #define ST_PINCONF_PACK_RT_DOUBLE_EDGE(conf) \
182 ST_PINCONF_PACK(conf, 1, RT_DOUBLE_EDGE)
183
184 #define ST_PINCONF_RT_CLK_MASK 0x3
185 #define ST_PINCONF_RT_CLK_SHIFT 18
186 #define ST_PINCONF_RT_CLK BIT(18)
187 #define ST_PINCONF_UNPACK_RT_CLK(conf) ST_PINCONF_UNPACK(conf, RT_CLK)
188 #define ST_PINCONF_PACK_RT_CLK(conf, val) ST_PINCONF_PACK(conf, val, RT_CLK)
189
190 /* RETIME_DELAY in Pico Secs */
191 #define ST_PINCONF_RT_DELAY_MASK 0xffff
192 #define ST_PINCONF_RT_DELAY_SHIFT 0
193 #define ST_PINCONF_UNPACK_RT_DELAY(conf) ST_PINCONF_UNPACK(conf, RT_DELAY)
194 #define ST_PINCONF_PACK_RT_DELAY(conf, val) \
195 ST_PINCONF_PACK(conf, val, RT_DELAY)
196
197 #define ST_GPIO_PINS_PER_BANK (8)
198 #define OF_GPIO_ARGS_MIN (4)
199 #define OF_RT_ARGS_MIN (2)
200
201 #define gpio_range_to_bank(chip) \
202 container_of(chip, struct st_gpio_bank, range)
203
204 #define pc_to_bank(pc) \
205 container_of(pc, struct st_gpio_bank, pc)
206
207 enum st_retime_style {
208 st_retime_style_none,
209 st_retime_style_packed,
210 st_retime_style_dedicated,
211 };
212
213 struct st_retime_dedicated {
214 struct regmap_field *rt[ST_GPIO_PINS_PER_BANK];
215 };
216
217 struct st_retime_packed {
218 struct regmap_field *clk1notclk0;
219 struct regmap_field *delay_0;
220 struct regmap_field *delay_1;
221 struct regmap_field *invertclk;
222 struct regmap_field *retime;
223 struct regmap_field *clknotdata;
224 struct regmap_field *double_edge;
225 };
226
227 struct st_pio_control {
228 u32 rt_pin_mask;
229 struct regmap_field *alt, *oe, *pu, *od;
230 /* retiming */
231 union {
232 struct st_retime_packed rt_p;
233 struct st_retime_dedicated rt_d;
234 } rt;
235 };
236
237 struct st_pctl_data {
238 const enum st_retime_style rt_style;
239 const unsigned int *input_delays;
240 const int ninput_delays;
241 const unsigned int *output_delays;
242 const int noutput_delays;
243 /* register offset information */
244 const int alt, oe, pu, od, rt;
245 };
246
247 struct st_pinconf {
248 int pin;
249 const char *name;
250 unsigned long config;
251 int altfunc;
252 };
253
254 struct st_pmx_func {
255 const char *name;
256 const char **groups;
257 unsigned ngroups;
258 };
259
260 struct st_pctl_group {
261 const char *name;
262 unsigned int *pins;
263 unsigned npins;
264 struct st_pinconf *pin_conf;
265 };
266
267 /*
268 * Edge triggers are not supported at hardware level, it is supported by
269 * software by exploiting the level trigger support in hardware.
270 * Software uses a virtual register (EDGE_CONF) for edge trigger configuration
271 * of each gpio pin in a GPIO bank.
272 *
273 * Each bank has a 32 bit EDGE_CONF register which is divided in to 8 parts of
274 * 4-bits. Each 4-bit space is allocated for each pin in a gpio bank.
275 *
276 * bit allocation per pin is:
277 * Bits: [0 - 3] | [4 - 7] [8 - 11] ... ... ... ... [ 28 - 31]
278 * --------------------------------------------------------
279 * | pin-0 | pin-2 | pin-3 | ... ... ... ... | pin -7 |
280 * --------------------------------------------------------
281 *
282 * A pin can have one of following the values in its edge configuration field.
283 *
284 * ------- ----------------------------
285 * [0-3] - Description
286 * ------- ----------------------------
287 * 0000 - No edge IRQ.
288 * 0001 - Falling edge IRQ.
289 * 0010 - Rising edge IRQ.
290 * 0011 - Rising and Falling edge IRQ.
291 * ------- ----------------------------
292 */
293
294 #define ST_IRQ_EDGE_CONF_BITS_PER_PIN 4
295 #define ST_IRQ_EDGE_MASK 0xf
296 #define ST_IRQ_EDGE_FALLING BIT(0)
297 #define ST_IRQ_EDGE_RISING BIT(1)
298 #define ST_IRQ_EDGE_BOTH (BIT(0) | BIT(1))
299
300 #define ST_IRQ_RISING_EDGE_CONF(pin) \
301 (ST_IRQ_EDGE_RISING << (pin * ST_IRQ_EDGE_CONF_BITS_PER_PIN))
302
303 #define ST_IRQ_FALLING_EDGE_CONF(pin) \
304 (ST_IRQ_EDGE_FALLING << (pin * ST_IRQ_EDGE_CONF_BITS_PER_PIN))
305
306 #define ST_IRQ_BOTH_EDGE_CONF(pin) \
307 (ST_IRQ_EDGE_BOTH << (pin * ST_IRQ_EDGE_CONF_BITS_PER_PIN))
308
309 #define ST_IRQ_EDGE_CONF(conf, pin) \
310 (conf >> (pin * ST_IRQ_EDGE_CONF_BITS_PER_PIN) & ST_IRQ_EDGE_MASK)
311
312 struct st_gpio_bank {
313 struct gpio_chip gpio_chip;
314 struct pinctrl_gpio_range range;
315 void __iomem *base;
316 struct st_pio_control pc;
317 unsigned long irq_edge_conf;
318 spinlock_t lock;
319 };
320
321 struct st_pinctrl {
322 struct device *dev;
323 struct pinctrl_dev *pctl;
324 struct st_gpio_bank *banks;
325 int nbanks;
326 struct st_pmx_func *functions;
327 int nfunctions;
328 struct st_pctl_group *groups;
329 int ngroups;
330 struct regmap *regmap;
331 const struct st_pctl_data *data;
332 void __iomem *irqmux_base;
333 };
334
335 /* SOC specific data */
336
337 static const unsigned int stih407_delays[] = {0, 300, 500, 750, 1000, 1250,
338 1500, 1750, 2000, 2250, 2500, 2750, 3000, 3250 };
339
340 static const struct st_pctl_data stih407_data = {
341 .rt_style = st_retime_style_dedicated,
342 .input_delays = stih407_delays,
343 .ninput_delays = ARRAY_SIZE(stih407_delays),
344 .output_delays = stih407_delays,
345 .noutput_delays = ARRAY_SIZE(stih407_delays),
346 .alt = 0, .oe = 40, .pu = 50, .od = 60, .rt = 100,
347 };
348
349 static const struct st_pctl_data stih407_flashdata = {
350 .rt_style = st_retime_style_none,
351 .input_delays = stih407_delays,
352 .ninput_delays = ARRAY_SIZE(stih407_delays),
353 .output_delays = stih407_delays,
354 .noutput_delays = ARRAY_SIZE(stih407_delays),
355 .alt = 0,
356 .oe = -1, /* Not Available */
357 .pu = -1, /* Not Available */
358 .od = 60,
359 .rt = 100,
360 };
361
st_get_pio_control(struct pinctrl_dev * pctldev,int pin)362 static struct st_pio_control *st_get_pio_control(
363 struct pinctrl_dev *pctldev, int pin)
364 {
365 struct pinctrl_gpio_range *range =
366 pinctrl_find_gpio_range_from_pin(pctldev, pin);
367 struct st_gpio_bank *bank = gpio_range_to_bank(range);
368
369 return &bank->pc;
370 }
371
372 /* Low level functions.. */
st_gpio_bank(int gpio)373 static inline int st_gpio_bank(int gpio)
374 {
375 return gpio/ST_GPIO_PINS_PER_BANK;
376 }
377
st_gpio_pin(int gpio)378 static inline int st_gpio_pin(int gpio)
379 {
380 return gpio%ST_GPIO_PINS_PER_BANK;
381 }
382
st_pinconf_set_config(struct st_pio_control * pc,int pin,unsigned long config)383 static void st_pinconf_set_config(struct st_pio_control *pc,
384 int pin, unsigned long config)
385 {
386 struct regmap_field *output_enable = pc->oe;
387 struct regmap_field *pull_up = pc->pu;
388 struct regmap_field *open_drain = pc->od;
389 unsigned int oe_value, pu_value, od_value;
390 unsigned long mask = BIT(pin);
391
392 if (output_enable) {
393 regmap_field_read(output_enable, &oe_value);
394 oe_value &= ~mask;
395 if (config & ST_PINCONF_OE)
396 oe_value |= mask;
397 regmap_field_write(output_enable, oe_value);
398 }
399
400 if (pull_up) {
401 regmap_field_read(pull_up, &pu_value);
402 pu_value &= ~mask;
403 if (config & ST_PINCONF_PU)
404 pu_value |= mask;
405 regmap_field_write(pull_up, pu_value);
406 }
407
408 if (open_drain) {
409 regmap_field_read(open_drain, &od_value);
410 od_value &= ~mask;
411 if (config & ST_PINCONF_OD)
412 od_value |= mask;
413 regmap_field_write(open_drain, od_value);
414 }
415 }
416
st_pctl_set_function(struct st_pio_control * pc,int pin_id,int function)417 static void st_pctl_set_function(struct st_pio_control *pc,
418 int pin_id, int function)
419 {
420 struct regmap_field *alt = pc->alt;
421 unsigned int val;
422 int pin = st_gpio_pin(pin_id);
423 int offset = pin * 4;
424
425 if (!alt)
426 return;
427
428 regmap_field_read(alt, &val);
429 val &= ~(0xf << offset);
430 val |= function << offset;
431 regmap_field_write(alt, val);
432 }
433
st_pctl_get_pin_function(struct st_pio_control * pc,int pin)434 static unsigned int st_pctl_get_pin_function(struct st_pio_control *pc, int pin)
435 {
436 struct regmap_field *alt = pc->alt;
437 unsigned int val;
438 int offset = pin * 4;
439
440 if (!alt)
441 return 0;
442
443 regmap_field_read(alt, &val);
444
445 return (val >> offset) & 0xf;
446 }
447
st_pinconf_delay_to_bit(unsigned int delay,const struct st_pctl_data * data,unsigned long config)448 static unsigned long st_pinconf_delay_to_bit(unsigned int delay,
449 const struct st_pctl_data *data, unsigned long config)
450 {
451 const unsigned int *delay_times;
452 int num_delay_times, i, closest_index = -1;
453 unsigned int closest_divergence = UINT_MAX;
454
455 if (ST_PINCONF_UNPACK_OE(config)) {
456 delay_times = data->output_delays;
457 num_delay_times = data->noutput_delays;
458 } else {
459 delay_times = data->input_delays;
460 num_delay_times = data->ninput_delays;
461 }
462
463 for (i = 0; i < num_delay_times; i++) {
464 unsigned int divergence = abs(delay - delay_times[i]);
465
466 if (divergence == 0)
467 return i;
468
469 if (divergence < closest_divergence) {
470 closest_divergence = divergence;
471 closest_index = i;
472 }
473 }
474
475 pr_warn("Attempt to set delay %d, closest available %d\n",
476 delay, delay_times[closest_index]);
477
478 return closest_index;
479 }
480
st_pinconf_bit_to_delay(unsigned int index,const struct st_pctl_data * data,unsigned long output)481 static unsigned long st_pinconf_bit_to_delay(unsigned int index,
482 const struct st_pctl_data *data, unsigned long output)
483 {
484 const unsigned int *delay_times;
485 int num_delay_times;
486
487 if (output) {
488 delay_times = data->output_delays;
489 num_delay_times = data->noutput_delays;
490 } else {
491 delay_times = data->input_delays;
492 num_delay_times = data->ninput_delays;
493 }
494
495 if (index < num_delay_times) {
496 return delay_times[index];
497 } else {
498 pr_warn("Delay not found in/out delay list\n");
499 return 0;
500 }
501 }
502
st_regmap_field_bit_set_clear_pin(struct regmap_field * field,int enable,int pin)503 static void st_regmap_field_bit_set_clear_pin(struct regmap_field *field,
504 int enable, int pin)
505 {
506 unsigned int val = 0;
507
508 regmap_field_read(field, &val);
509 if (enable)
510 val |= BIT(pin);
511 else
512 val &= ~BIT(pin);
513 regmap_field_write(field, val);
514 }
515
st_pinconf_set_retime_packed(struct st_pinctrl * info,struct st_pio_control * pc,unsigned long config,int pin)516 static void st_pinconf_set_retime_packed(struct st_pinctrl *info,
517 struct st_pio_control *pc, unsigned long config, int pin)
518 {
519 const struct st_pctl_data *data = info->data;
520 struct st_retime_packed *rt_p = &pc->rt.rt_p;
521 unsigned int delay;
522
523 st_regmap_field_bit_set_clear_pin(rt_p->clk1notclk0,
524 ST_PINCONF_UNPACK_RT_CLK(config), pin);
525
526 st_regmap_field_bit_set_clear_pin(rt_p->clknotdata,
527 ST_PINCONF_UNPACK_RT_CLKNOTDATA(config), pin);
528
529 st_regmap_field_bit_set_clear_pin(rt_p->double_edge,
530 ST_PINCONF_UNPACK_RT_DOUBLE_EDGE(config), pin);
531
532 st_regmap_field_bit_set_clear_pin(rt_p->invertclk,
533 ST_PINCONF_UNPACK_RT_INVERTCLK(config), pin);
534
535 st_regmap_field_bit_set_clear_pin(rt_p->retime,
536 ST_PINCONF_UNPACK_RT(config), pin);
537
538 delay = st_pinconf_delay_to_bit(ST_PINCONF_UNPACK_RT_DELAY(config),
539 data, config);
540 /* 2 bit delay, lsb */
541 st_regmap_field_bit_set_clear_pin(rt_p->delay_0, delay & 0x1, pin);
542 /* 2 bit delay, msb */
543 st_regmap_field_bit_set_clear_pin(rt_p->delay_1, delay & 0x2, pin);
544 }
545
st_pinconf_set_retime_dedicated(struct st_pinctrl * info,struct st_pio_control * pc,unsigned long config,int pin)546 static void st_pinconf_set_retime_dedicated(struct st_pinctrl *info,
547 struct st_pio_control *pc, unsigned long config, int pin)
548 {
549 int input = ST_PINCONF_UNPACK_OE(config) ? 0 : 1;
550 int clk = ST_PINCONF_UNPACK_RT_CLK(config);
551 int clknotdata = ST_PINCONF_UNPACK_RT_CLKNOTDATA(config);
552 int double_edge = ST_PINCONF_UNPACK_RT_DOUBLE_EDGE(config);
553 int invertclk = ST_PINCONF_UNPACK_RT_INVERTCLK(config);
554 int retime = ST_PINCONF_UNPACK_RT(config);
555
556 unsigned long delay = st_pinconf_delay_to_bit(
557 ST_PINCONF_UNPACK_RT_DELAY(config),
558 info->data, config);
559 struct st_retime_dedicated *rt_d = &pc->rt.rt_d;
560
561 unsigned long retime_config =
562 ((clk) << RT_D_CFG_CLK_SHIFT) |
563 ((delay) << RT_D_CFG_DELAY_SHIFT) |
564 ((input) << RT_D_CFG_DELAY_INNOTOUT_SHIFT) |
565 ((retime) << RT_D_CFG_RETIME_SHIFT) |
566 ((clknotdata) << RT_D_CFG_CLKNOTDATA_SHIFT) |
567 ((invertclk) << RT_D_CFG_INVERTCLK_SHIFT) |
568 ((double_edge) << RT_D_CFG_DOUBLE_EDGE_SHIFT);
569
570 regmap_field_write(rt_d->rt[pin], retime_config);
571 }
572
st_pinconf_get_direction(struct st_pio_control * pc,int pin,unsigned long * config)573 static void st_pinconf_get_direction(struct st_pio_control *pc,
574 int pin, unsigned long *config)
575 {
576 unsigned int oe_value, pu_value, od_value;
577
578 if (pc->oe) {
579 regmap_field_read(pc->oe, &oe_value);
580 if (oe_value & BIT(pin))
581 ST_PINCONF_PACK_OE(*config);
582 }
583
584 if (pc->pu) {
585 regmap_field_read(pc->pu, &pu_value);
586 if (pu_value & BIT(pin))
587 ST_PINCONF_PACK_PU(*config);
588 }
589
590 if (pc->od) {
591 regmap_field_read(pc->od, &od_value);
592 if (od_value & BIT(pin))
593 ST_PINCONF_PACK_OD(*config);
594 }
595 }
596
st_pinconf_get_retime_packed(struct st_pinctrl * info,struct st_pio_control * pc,int pin,unsigned long * config)597 static int st_pinconf_get_retime_packed(struct st_pinctrl *info,
598 struct st_pio_control *pc, int pin, unsigned long *config)
599 {
600 const struct st_pctl_data *data = info->data;
601 struct st_retime_packed *rt_p = &pc->rt.rt_p;
602 unsigned int delay_bits, delay, delay0, delay1, val;
603 int output = ST_PINCONF_UNPACK_OE(*config);
604
605 if (!regmap_field_read(rt_p->retime, &val) && (val & BIT(pin)))
606 ST_PINCONF_PACK_RT(*config);
607
608 if (!regmap_field_read(rt_p->clk1notclk0, &val) && (val & BIT(pin)))
609 ST_PINCONF_PACK_RT_CLK(*config, 1);
610
611 if (!regmap_field_read(rt_p->clknotdata, &val) && (val & BIT(pin)))
612 ST_PINCONF_PACK_RT_CLKNOTDATA(*config);
613
614 if (!regmap_field_read(rt_p->double_edge, &val) && (val & BIT(pin)))
615 ST_PINCONF_PACK_RT_DOUBLE_EDGE(*config);
616
617 if (!regmap_field_read(rt_p->invertclk, &val) && (val & BIT(pin)))
618 ST_PINCONF_PACK_RT_INVERTCLK(*config);
619
620 regmap_field_read(rt_p->delay_0, &delay0);
621 regmap_field_read(rt_p->delay_1, &delay1);
622 delay_bits = (((delay1 & BIT(pin)) ? 1 : 0) << 1) |
623 (((delay0 & BIT(pin)) ? 1 : 0));
624 delay = st_pinconf_bit_to_delay(delay_bits, data, output);
625 ST_PINCONF_PACK_RT_DELAY(*config, delay);
626
627 return 0;
628 }
629
st_pinconf_get_retime_dedicated(struct st_pinctrl * info,struct st_pio_control * pc,int pin,unsigned long * config)630 static int st_pinconf_get_retime_dedicated(struct st_pinctrl *info,
631 struct st_pio_control *pc, int pin, unsigned long *config)
632 {
633 unsigned int value;
634 unsigned long delay_bits, delay, rt_clk;
635 int output = ST_PINCONF_UNPACK_OE(*config);
636 struct st_retime_dedicated *rt_d = &pc->rt.rt_d;
637
638 regmap_field_read(rt_d->rt[pin], &value);
639
640 rt_clk = (value & RT_D_CFG_CLK_MASK) >> RT_D_CFG_CLK_SHIFT;
641 ST_PINCONF_PACK_RT_CLK(*config, rt_clk);
642
643 delay_bits = (value & RT_D_CFG_DELAY_MASK) >> RT_D_CFG_DELAY_SHIFT;
644 delay = st_pinconf_bit_to_delay(delay_bits, info->data, output);
645 ST_PINCONF_PACK_RT_DELAY(*config, delay);
646
647 if (value & RT_D_CFG_CLKNOTDATA_MASK)
648 ST_PINCONF_PACK_RT_CLKNOTDATA(*config);
649
650 if (value & RT_D_CFG_DOUBLE_EDGE_MASK)
651 ST_PINCONF_PACK_RT_DOUBLE_EDGE(*config);
652
653 if (value & RT_D_CFG_INVERTCLK_MASK)
654 ST_PINCONF_PACK_RT_INVERTCLK(*config);
655
656 if (value & RT_D_CFG_RETIME_MASK)
657 ST_PINCONF_PACK_RT(*config);
658
659 return 0;
660 }
661
662 /* GPIO related functions */
663
__st_gpio_set(struct st_gpio_bank * bank,unsigned offset,int value)664 static inline void __st_gpio_set(struct st_gpio_bank *bank,
665 unsigned offset, int value)
666 {
667 if (value)
668 writel(BIT(offset), bank->base + REG_PIO_SET_POUT);
669 else
670 writel(BIT(offset), bank->base + REG_PIO_CLR_POUT);
671 }
672
st_gpio_direction(struct st_gpio_bank * bank,unsigned int gpio,unsigned int direction)673 static void st_gpio_direction(struct st_gpio_bank *bank,
674 unsigned int gpio, unsigned int direction)
675 {
676 int offset = st_gpio_pin(gpio);
677 int i = 0;
678 /**
679 * There are three configuration registers (PIOn_PC0, PIOn_PC1
680 * and PIOn_PC2) for each port. These are used to configure the
681 * PIO port pins. Each pin can be configured as an input, output,
682 * bidirectional, or alternative function pin. Three bits, one bit
683 * from each of the three registers, configure the corresponding bit of
684 * the port. Valid bit settings is:
685 *
686 * PC2 PC1 PC0 Direction.
687 * 0 0 0 [Input Weak pull-up]
688 * 0 0 or 1 1 [Bidirection]
689 * 0 1 0 [Output]
690 * 1 0 0 [Input]
691 *
692 * PIOn_SET_PC and PIOn_CLR_PC registers are used to set and clear bits
693 * individually.
694 */
695 for (i = 0; i <= 2; i++) {
696 if (direction & BIT(i))
697 writel(BIT(offset), bank->base + REG_PIO_SET_PC(i));
698 else
699 writel(BIT(offset), bank->base + REG_PIO_CLR_PC(i));
700 }
701 }
702
st_gpio_get(struct gpio_chip * chip,unsigned offset)703 static int st_gpio_get(struct gpio_chip *chip, unsigned offset)
704 {
705 struct st_gpio_bank *bank = gpiochip_get_data(chip);
706
707 return !!(readl(bank->base + REG_PIO_PIN) & BIT(offset));
708 }
709
st_gpio_set(struct gpio_chip * chip,unsigned offset,int value)710 static void st_gpio_set(struct gpio_chip *chip, unsigned offset, int value)
711 {
712 struct st_gpio_bank *bank = gpiochip_get_data(chip);
713 __st_gpio_set(bank, offset, value);
714 }
715
st_gpio_direction_input(struct gpio_chip * chip,unsigned offset)716 static int st_gpio_direction_input(struct gpio_chip *chip, unsigned offset)
717 {
718 pinctrl_gpio_direction_input(chip->base + offset);
719
720 return 0;
721 }
722
st_gpio_direction_output(struct gpio_chip * chip,unsigned offset,int value)723 static int st_gpio_direction_output(struct gpio_chip *chip,
724 unsigned offset, int value)
725 {
726 struct st_gpio_bank *bank = gpiochip_get_data(chip);
727
728 __st_gpio_set(bank, offset, value);
729 pinctrl_gpio_direction_output(chip->base + offset);
730
731 return 0;
732 }
733
st_gpio_get_direction(struct gpio_chip * chip,unsigned offset)734 static int st_gpio_get_direction(struct gpio_chip *chip, unsigned offset)
735 {
736 struct st_gpio_bank *bank = gpiochip_get_data(chip);
737 struct st_pio_control pc = bank->pc;
738 unsigned long config;
739 unsigned int direction = 0;
740 unsigned int function;
741 unsigned int value;
742 int i = 0;
743
744 /* Alternate function direction is handled by Pinctrl */
745 function = st_pctl_get_pin_function(&pc, offset);
746 if (function) {
747 st_pinconf_get_direction(&pc, offset, &config);
748 if (ST_PINCONF_UNPACK_OE(config))
749 return GPIO_LINE_DIRECTION_OUT;
750
751 return GPIO_LINE_DIRECTION_IN;
752 }
753
754 /*
755 * GPIO direction is handled differently
756 * - See st_gpio_direction() above for an explanation
757 */
758 for (i = 0; i <= 2; i++) {
759 value = readl(bank->base + REG_PIO_PC(i));
760 direction |= ((value >> offset) & 0x1) << i;
761 }
762
763 if (direction == ST_GPIO_DIRECTION_IN)
764 return GPIO_LINE_DIRECTION_IN;
765
766 return GPIO_LINE_DIRECTION_OUT;
767 }
768
769 /* Pinctrl Groups */
st_pctl_get_groups_count(struct pinctrl_dev * pctldev)770 static int st_pctl_get_groups_count(struct pinctrl_dev *pctldev)
771 {
772 struct st_pinctrl *info = pinctrl_dev_get_drvdata(pctldev);
773
774 return info->ngroups;
775 }
776
st_pctl_get_group_name(struct pinctrl_dev * pctldev,unsigned selector)777 static const char *st_pctl_get_group_name(struct pinctrl_dev *pctldev,
778 unsigned selector)
779 {
780 struct st_pinctrl *info = pinctrl_dev_get_drvdata(pctldev);
781
782 return info->groups[selector].name;
783 }
784
st_pctl_get_group_pins(struct pinctrl_dev * pctldev,unsigned selector,const unsigned ** pins,unsigned * npins)785 static int st_pctl_get_group_pins(struct pinctrl_dev *pctldev,
786 unsigned selector, const unsigned **pins, unsigned *npins)
787 {
788 struct st_pinctrl *info = pinctrl_dev_get_drvdata(pctldev);
789
790 if (selector >= info->ngroups)
791 return -EINVAL;
792
793 *pins = info->groups[selector].pins;
794 *npins = info->groups[selector].npins;
795
796 return 0;
797 }
798
st_pctl_find_group_by_name(const struct st_pinctrl * info,const char * name)799 static inline const struct st_pctl_group *st_pctl_find_group_by_name(
800 const struct st_pinctrl *info, const char *name)
801 {
802 int i;
803
804 for (i = 0; i < info->ngroups; i++) {
805 if (!strcmp(info->groups[i].name, name))
806 return &info->groups[i];
807 }
808
809 return NULL;
810 }
811
st_pctl_dt_node_to_map(struct pinctrl_dev * pctldev,struct device_node * np,struct pinctrl_map ** map,unsigned * num_maps)812 static int st_pctl_dt_node_to_map(struct pinctrl_dev *pctldev,
813 struct device_node *np, struct pinctrl_map **map, unsigned *num_maps)
814 {
815 struct st_pinctrl *info = pinctrl_dev_get_drvdata(pctldev);
816 const struct st_pctl_group *grp;
817 struct device *dev = info->dev;
818 struct pinctrl_map *new_map;
819 struct device_node *parent;
820 int map_num, i;
821
822 grp = st_pctl_find_group_by_name(info, np->name);
823 if (!grp) {
824 dev_err(dev, "unable to find group for node %pOFn\n", np);
825 return -EINVAL;
826 }
827
828 map_num = grp->npins + 1;
829 new_map = devm_kcalloc(dev, map_num, sizeof(*new_map), GFP_KERNEL);
830 if (!new_map)
831 return -ENOMEM;
832
833 parent = of_get_parent(np);
834 if (!parent) {
835 devm_kfree(dev, new_map);
836 return -EINVAL;
837 }
838
839 *map = new_map;
840 *num_maps = map_num;
841 new_map[0].type = PIN_MAP_TYPE_MUX_GROUP;
842 new_map[0].data.mux.function = parent->name;
843 new_map[0].data.mux.group = np->name;
844 of_node_put(parent);
845
846 /* create config map per pin */
847 new_map++;
848 for (i = 0; i < grp->npins; i++) {
849 new_map[i].type = PIN_MAP_TYPE_CONFIGS_PIN;
850 new_map[i].data.configs.group_or_pin =
851 pin_get_name(pctldev, grp->pins[i]);
852 new_map[i].data.configs.configs = &grp->pin_conf[i].config;
853 new_map[i].data.configs.num_configs = 1;
854 }
855 dev_info(dev, "maps: function %s group %s num %d\n",
856 (*map)->data.mux.function, grp->name, map_num);
857
858 return 0;
859 }
860
st_pctl_dt_free_map(struct pinctrl_dev * pctldev,struct pinctrl_map * map,unsigned num_maps)861 static void st_pctl_dt_free_map(struct pinctrl_dev *pctldev,
862 struct pinctrl_map *map, unsigned num_maps)
863 {
864 }
865
866 static const struct pinctrl_ops st_pctlops = {
867 .get_groups_count = st_pctl_get_groups_count,
868 .get_group_pins = st_pctl_get_group_pins,
869 .get_group_name = st_pctl_get_group_name,
870 .dt_node_to_map = st_pctl_dt_node_to_map,
871 .dt_free_map = st_pctl_dt_free_map,
872 };
873
874 /* Pinmux */
st_pmx_get_funcs_count(struct pinctrl_dev * pctldev)875 static int st_pmx_get_funcs_count(struct pinctrl_dev *pctldev)
876 {
877 struct st_pinctrl *info = pinctrl_dev_get_drvdata(pctldev);
878
879 return info->nfunctions;
880 }
881
st_pmx_get_fname(struct pinctrl_dev * pctldev,unsigned selector)882 static const char *st_pmx_get_fname(struct pinctrl_dev *pctldev,
883 unsigned selector)
884 {
885 struct st_pinctrl *info = pinctrl_dev_get_drvdata(pctldev);
886
887 return info->functions[selector].name;
888 }
889
st_pmx_get_groups(struct pinctrl_dev * pctldev,unsigned selector,const char * const ** grps,unsigned * const ngrps)890 static int st_pmx_get_groups(struct pinctrl_dev *pctldev,
891 unsigned selector, const char * const **grps, unsigned * const ngrps)
892 {
893 struct st_pinctrl *info = pinctrl_dev_get_drvdata(pctldev);
894 *grps = info->functions[selector].groups;
895 *ngrps = info->functions[selector].ngroups;
896
897 return 0;
898 }
899
st_pmx_set_mux(struct pinctrl_dev * pctldev,unsigned fselector,unsigned group)900 static int st_pmx_set_mux(struct pinctrl_dev *pctldev, unsigned fselector,
901 unsigned group)
902 {
903 struct st_pinctrl *info = pinctrl_dev_get_drvdata(pctldev);
904 struct st_pinconf *conf = info->groups[group].pin_conf;
905 struct st_pio_control *pc;
906 int i;
907
908 for (i = 0; i < info->groups[group].npins; i++) {
909 pc = st_get_pio_control(pctldev, conf[i].pin);
910 st_pctl_set_function(pc, conf[i].pin, conf[i].altfunc);
911 }
912
913 return 0;
914 }
915
st_pmx_set_gpio_direction(struct pinctrl_dev * pctldev,struct pinctrl_gpio_range * range,unsigned gpio,bool input)916 static int st_pmx_set_gpio_direction(struct pinctrl_dev *pctldev,
917 struct pinctrl_gpio_range *range, unsigned gpio,
918 bool input)
919 {
920 struct st_gpio_bank *bank = gpio_range_to_bank(range);
921 /*
922 * When a PIO bank is used in its primary function mode (altfunc = 0)
923 * Output Enable (OE), Open Drain(OD), and Pull Up (PU)
924 * for the primary PIO functions are driven by the related PIO block
925 */
926 st_pctl_set_function(&bank->pc, gpio, 0);
927 st_gpio_direction(bank, gpio, input ?
928 ST_GPIO_DIRECTION_IN : ST_GPIO_DIRECTION_OUT);
929
930 return 0;
931 }
932
933 static const struct pinmux_ops st_pmxops = {
934 .get_functions_count = st_pmx_get_funcs_count,
935 .get_function_name = st_pmx_get_fname,
936 .get_function_groups = st_pmx_get_groups,
937 .set_mux = st_pmx_set_mux,
938 .gpio_set_direction = st_pmx_set_gpio_direction,
939 .strict = true,
940 };
941
942 /* Pinconf */
st_pinconf_get_retime(struct st_pinctrl * info,struct st_pio_control * pc,int pin,unsigned long * config)943 static void st_pinconf_get_retime(struct st_pinctrl *info,
944 struct st_pio_control *pc, int pin, unsigned long *config)
945 {
946 if (info->data->rt_style == st_retime_style_packed)
947 st_pinconf_get_retime_packed(info, pc, pin, config);
948 else if (info->data->rt_style == st_retime_style_dedicated)
949 if ((BIT(pin) & pc->rt_pin_mask))
950 st_pinconf_get_retime_dedicated(info, pc,
951 pin, config);
952 }
953
st_pinconf_set_retime(struct st_pinctrl * info,struct st_pio_control * pc,int pin,unsigned long config)954 static void st_pinconf_set_retime(struct st_pinctrl *info,
955 struct st_pio_control *pc, int pin, unsigned long config)
956 {
957 if (info->data->rt_style == st_retime_style_packed)
958 st_pinconf_set_retime_packed(info, pc, config, pin);
959 else if (info->data->rt_style == st_retime_style_dedicated)
960 if ((BIT(pin) & pc->rt_pin_mask))
961 st_pinconf_set_retime_dedicated(info, pc,
962 config, pin);
963 }
964
st_pinconf_set(struct pinctrl_dev * pctldev,unsigned pin_id,unsigned long * configs,unsigned num_configs)965 static int st_pinconf_set(struct pinctrl_dev *pctldev, unsigned pin_id,
966 unsigned long *configs, unsigned num_configs)
967 {
968 int pin = st_gpio_pin(pin_id);
969 struct st_pinctrl *info = pinctrl_dev_get_drvdata(pctldev);
970 struct st_pio_control *pc = st_get_pio_control(pctldev, pin_id);
971 int i;
972
973 for (i = 0; i < num_configs; i++) {
974 st_pinconf_set_config(pc, pin, configs[i]);
975 st_pinconf_set_retime(info, pc, pin, configs[i]);
976 } /* for each config */
977
978 return 0;
979 }
980
st_pinconf_get(struct pinctrl_dev * pctldev,unsigned pin_id,unsigned long * config)981 static int st_pinconf_get(struct pinctrl_dev *pctldev,
982 unsigned pin_id, unsigned long *config)
983 {
984 int pin = st_gpio_pin(pin_id);
985 struct st_pinctrl *info = pinctrl_dev_get_drvdata(pctldev);
986 struct st_pio_control *pc = st_get_pio_control(pctldev, pin_id);
987
988 *config = 0;
989 st_pinconf_get_direction(pc, pin, config);
990 st_pinconf_get_retime(info, pc, pin, config);
991
992 return 0;
993 }
994
st_pinconf_dbg_show(struct pinctrl_dev * pctldev,struct seq_file * s,unsigned pin_id)995 static void st_pinconf_dbg_show(struct pinctrl_dev *pctldev,
996 struct seq_file *s, unsigned pin_id)
997 {
998 struct st_pio_control *pc;
999 unsigned long config;
1000 unsigned int function;
1001 int offset = st_gpio_pin(pin_id);
1002 char f[16];
1003 int oe;
1004
1005 mutex_unlock(&pctldev->mutex);
1006 pc = st_get_pio_control(pctldev, pin_id);
1007 st_pinconf_get(pctldev, pin_id, &config);
1008 mutex_lock(&pctldev->mutex);
1009
1010 function = st_pctl_get_pin_function(pc, offset);
1011 if (function)
1012 snprintf(f, 10, "Alt Fn %u", function);
1013 else
1014 snprintf(f, 5, "GPIO");
1015
1016 oe = st_gpio_get_direction(&pc_to_bank(pc)->gpio_chip, offset);
1017 seq_printf(s, "[OE:%d,PU:%ld,OD:%ld]\t%s\n"
1018 "\t\t[retime:%ld,invclk:%ld,clknotdat:%ld,"
1019 "de:%ld,rt-clk:%ld,rt-delay:%ld]",
1020 (oe == GPIO_LINE_DIRECTION_OUT),
1021 ST_PINCONF_UNPACK_PU(config),
1022 ST_PINCONF_UNPACK_OD(config),
1023 f,
1024 ST_PINCONF_UNPACK_RT(config),
1025 ST_PINCONF_UNPACK_RT_INVERTCLK(config),
1026 ST_PINCONF_UNPACK_RT_CLKNOTDATA(config),
1027 ST_PINCONF_UNPACK_RT_DOUBLE_EDGE(config),
1028 ST_PINCONF_UNPACK_RT_CLK(config),
1029 ST_PINCONF_UNPACK_RT_DELAY(config));
1030 }
1031
1032 static const struct pinconf_ops st_confops = {
1033 .pin_config_get = st_pinconf_get,
1034 .pin_config_set = st_pinconf_set,
1035 .pin_config_dbg_show = st_pinconf_dbg_show,
1036 };
1037
st_pctl_dt_child_count(struct st_pinctrl * info,struct device_node * np)1038 static void st_pctl_dt_child_count(struct st_pinctrl *info,
1039 struct device_node *np)
1040 {
1041 struct device_node *child;
1042 for_each_child_of_node(np, child) {
1043 if (of_property_read_bool(child, "gpio-controller")) {
1044 info->nbanks++;
1045 } else {
1046 info->nfunctions++;
1047 info->ngroups += of_get_child_count(child);
1048 }
1049 }
1050 }
1051
st_pctl_dt_setup_retime_packed(struct st_pinctrl * info,int bank,struct st_pio_control * pc)1052 static int st_pctl_dt_setup_retime_packed(struct st_pinctrl *info,
1053 int bank, struct st_pio_control *pc)
1054 {
1055 struct device *dev = info->dev;
1056 struct regmap *rm = info->regmap;
1057 const struct st_pctl_data *data = info->data;
1058 /* 2 registers per bank */
1059 int reg = (data->rt + bank * RT_P_CFGS_PER_BANK) * 4;
1060 struct st_retime_packed *rt_p = &pc->rt.rt_p;
1061 /* cfg0 */
1062 struct reg_field clk1notclk0 = RT_P_CFG0_CLK1NOTCLK0_FIELD(reg);
1063 struct reg_field delay_0 = RT_P_CFG0_DELAY_0_FIELD(reg);
1064 struct reg_field delay_1 = RT_P_CFG0_DELAY_1_FIELD(reg);
1065 /* cfg1 */
1066 struct reg_field invertclk = RT_P_CFG1_INVERTCLK_FIELD(reg + 4);
1067 struct reg_field retime = RT_P_CFG1_RETIME_FIELD(reg + 4);
1068 struct reg_field clknotdata = RT_P_CFG1_CLKNOTDATA_FIELD(reg + 4);
1069 struct reg_field double_edge = RT_P_CFG1_DOUBLE_EDGE_FIELD(reg + 4);
1070
1071 rt_p->clk1notclk0 = devm_regmap_field_alloc(dev, rm, clk1notclk0);
1072 rt_p->delay_0 = devm_regmap_field_alloc(dev, rm, delay_0);
1073 rt_p->delay_1 = devm_regmap_field_alloc(dev, rm, delay_1);
1074 rt_p->invertclk = devm_regmap_field_alloc(dev, rm, invertclk);
1075 rt_p->retime = devm_regmap_field_alloc(dev, rm, retime);
1076 rt_p->clknotdata = devm_regmap_field_alloc(dev, rm, clknotdata);
1077 rt_p->double_edge = devm_regmap_field_alloc(dev, rm, double_edge);
1078
1079 if (IS_ERR(rt_p->clk1notclk0) || IS_ERR(rt_p->delay_0) ||
1080 IS_ERR(rt_p->delay_1) || IS_ERR(rt_p->invertclk) ||
1081 IS_ERR(rt_p->retime) || IS_ERR(rt_p->clknotdata) ||
1082 IS_ERR(rt_p->double_edge))
1083 return -EINVAL;
1084
1085 return 0;
1086 }
1087
st_pctl_dt_setup_retime_dedicated(struct st_pinctrl * info,int bank,struct st_pio_control * pc)1088 static int st_pctl_dt_setup_retime_dedicated(struct st_pinctrl *info,
1089 int bank, struct st_pio_control *pc)
1090 {
1091 struct device *dev = info->dev;
1092 struct regmap *rm = info->regmap;
1093 const struct st_pctl_data *data = info->data;
1094 /* 8 registers per bank */
1095 int reg_offset = (data->rt + bank * RT_D_CFGS_PER_BANK) * 4;
1096 struct st_retime_dedicated *rt_d = &pc->rt.rt_d;
1097 unsigned int j;
1098 u32 pin_mask = pc->rt_pin_mask;
1099
1100 for (j = 0; j < RT_D_CFGS_PER_BANK; j++) {
1101 if (BIT(j) & pin_mask) {
1102 struct reg_field reg = REG_FIELD(reg_offset, 0, 31);
1103 rt_d->rt[j] = devm_regmap_field_alloc(dev, rm, reg);
1104 if (IS_ERR(rt_d->rt[j]))
1105 return -EINVAL;
1106 reg_offset += 4;
1107 }
1108 }
1109 return 0;
1110 }
1111
st_pctl_dt_setup_retime(struct st_pinctrl * info,int bank,struct st_pio_control * pc)1112 static int st_pctl_dt_setup_retime(struct st_pinctrl *info,
1113 int bank, struct st_pio_control *pc)
1114 {
1115 const struct st_pctl_data *data = info->data;
1116 if (data->rt_style == st_retime_style_packed)
1117 return st_pctl_dt_setup_retime_packed(info, bank, pc);
1118 else if (data->rt_style == st_retime_style_dedicated)
1119 return st_pctl_dt_setup_retime_dedicated(info, bank, pc);
1120
1121 return -EINVAL;
1122 }
1123
1124
st_pc_get_value(struct device * dev,struct regmap * regmap,int bank,int data,int lsb,int msb)1125 static struct regmap_field *st_pc_get_value(struct device *dev,
1126 struct regmap *regmap, int bank,
1127 int data, int lsb, int msb)
1128 {
1129 struct reg_field reg = REG_FIELD((data + bank) * 4, lsb, msb);
1130
1131 if (data < 0)
1132 return NULL;
1133
1134 return devm_regmap_field_alloc(dev, regmap, reg);
1135 }
1136
st_parse_syscfgs(struct st_pinctrl * info,int bank,struct device_node * np)1137 static void st_parse_syscfgs(struct st_pinctrl *info, int bank,
1138 struct device_node *np)
1139 {
1140 const struct st_pctl_data *data = info->data;
1141 /**
1142 * For a given shared register like OE/PU/OD, there are 8 bits per bank
1143 * 0:7 belongs to bank0, 8:15 belongs to bank1 ...
1144 * So each register is shared across 4 banks.
1145 */
1146 int lsb = (bank%4) * ST_GPIO_PINS_PER_BANK;
1147 int msb = lsb + ST_GPIO_PINS_PER_BANK - 1;
1148 struct st_pio_control *pc = &info->banks[bank].pc;
1149 struct device *dev = info->dev;
1150 struct regmap *regmap = info->regmap;
1151
1152 pc->alt = st_pc_get_value(dev, regmap, bank, data->alt, 0, 31);
1153 pc->oe = st_pc_get_value(dev, regmap, bank/4, data->oe, lsb, msb);
1154 pc->pu = st_pc_get_value(dev, regmap, bank/4, data->pu, lsb, msb);
1155 pc->od = st_pc_get_value(dev, regmap, bank/4, data->od, lsb, msb);
1156
1157 /* retime avaiable for all pins by default */
1158 pc->rt_pin_mask = 0xff;
1159 of_property_read_u32(np, "st,retime-pin-mask", &pc->rt_pin_mask);
1160 st_pctl_dt_setup_retime(info, bank, pc);
1161
1162 return;
1163 }
1164
1165 /*
1166 * Each pin is represented in of the below forms.
1167 * <bank offset mux direction rt_type rt_delay rt_clk>
1168 */
st_pctl_dt_parse_groups(struct device_node * np,struct st_pctl_group * grp,struct st_pinctrl * info,int idx)1169 static int st_pctl_dt_parse_groups(struct device_node *np,
1170 struct st_pctl_group *grp, struct st_pinctrl *info, int idx)
1171 {
1172 /* bank pad direction val altfunction */
1173 const __be32 *list;
1174 struct property *pp;
1175 struct device *dev = info->dev;
1176 struct st_pinconf *conf;
1177 struct device_node *pins;
1178 int i = 0, npins = 0, nr_props, ret = 0;
1179
1180 pins = of_get_child_by_name(np, "st,pins");
1181 if (!pins)
1182 return -ENODATA;
1183
1184 for_each_property_of_node(pins, pp) {
1185 /* Skip those we do not want to proceed */
1186 if (!strcmp(pp->name, "name"))
1187 continue;
1188
1189 if (pp->length / sizeof(__be32) >= OF_GPIO_ARGS_MIN) {
1190 npins++;
1191 } else {
1192 pr_warn("Invalid st,pins in %pOFn node\n", np);
1193 ret = -EINVAL;
1194 goto out_put_node;
1195 }
1196 }
1197
1198 grp->npins = npins;
1199 grp->name = np->name;
1200 grp->pins = devm_kcalloc(dev, npins, sizeof(*grp->pins), GFP_KERNEL);
1201 grp->pin_conf = devm_kcalloc(dev, npins, sizeof(*grp->pin_conf), GFP_KERNEL);
1202
1203 if (!grp->pins || !grp->pin_conf) {
1204 ret = -ENOMEM;
1205 goto out_put_node;
1206 }
1207
1208 /* <bank offset mux direction rt_type rt_delay rt_clk> */
1209 for_each_property_of_node(pins, pp) {
1210 if (!strcmp(pp->name, "name"))
1211 continue;
1212 nr_props = pp->length/sizeof(u32);
1213 list = pp->value;
1214 conf = &grp->pin_conf[i];
1215
1216 /* bank & offset */
1217 be32_to_cpup(list++);
1218 be32_to_cpup(list++);
1219 conf->pin = of_get_named_gpio(pins, pp->name, 0);
1220 conf->name = pp->name;
1221 grp->pins[i] = conf->pin;
1222 /* mux */
1223 conf->altfunc = be32_to_cpup(list++);
1224 conf->config = 0;
1225 /* direction */
1226 conf->config |= be32_to_cpup(list++);
1227 /* rt_type rt_delay rt_clk */
1228 if (nr_props >= OF_GPIO_ARGS_MIN + OF_RT_ARGS_MIN) {
1229 /* rt_type */
1230 conf->config |= be32_to_cpup(list++);
1231 /* rt_delay */
1232 conf->config |= be32_to_cpup(list++);
1233 /* rt_clk */
1234 if (nr_props > OF_GPIO_ARGS_MIN + OF_RT_ARGS_MIN)
1235 conf->config |= be32_to_cpup(list++);
1236 }
1237 i++;
1238 }
1239
1240 out_put_node:
1241 of_node_put(pins);
1242
1243 return ret;
1244 }
1245
st_pctl_parse_functions(struct device_node * np,struct st_pinctrl * info,u32 index,int * grp_index)1246 static int st_pctl_parse_functions(struct device_node *np,
1247 struct st_pinctrl *info, u32 index, int *grp_index)
1248 {
1249 struct device *dev = info->dev;
1250 struct device_node *child;
1251 struct st_pmx_func *func;
1252 struct st_pctl_group *grp;
1253 int ret, i;
1254
1255 func = &info->functions[index];
1256 func->name = np->name;
1257 func->ngroups = of_get_child_count(np);
1258 if (func->ngroups == 0)
1259 return dev_err_probe(dev, -EINVAL, "No groups defined\n");
1260 func->groups = devm_kcalloc(dev, func->ngroups, sizeof(*func->groups), GFP_KERNEL);
1261 if (!func->groups)
1262 return -ENOMEM;
1263
1264 i = 0;
1265 for_each_child_of_node(np, child) {
1266 func->groups[i] = child->name;
1267 grp = &info->groups[*grp_index];
1268 *grp_index += 1;
1269 ret = st_pctl_dt_parse_groups(child, grp, info, i++);
1270 if (ret) {
1271 of_node_put(child);
1272 return ret;
1273 }
1274 }
1275 dev_info(dev, "Function[%d\t name:%s,\tgroups:%d]\n", index, func->name, func->ngroups);
1276
1277 return 0;
1278 }
1279
st_gpio_irq_mask(struct irq_data * d)1280 static void st_gpio_irq_mask(struct irq_data *d)
1281 {
1282 struct gpio_chip *gc = irq_data_get_irq_chip_data(d);
1283 struct st_gpio_bank *bank = gpiochip_get_data(gc);
1284
1285 writel(BIT(d->hwirq), bank->base + REG_PIO_CLR_PMASK);
1286 }
1287
st_gpio_irq_unmask(struct irq_data * d)1288 static void st_gpio_irq_unmask(struct irq_data *d)
1289 {
1290 struct gpio_chip *gc = irq_data_get_irq_chip_data(d);
1291 struct st_gpio_bank *bank = gpiochip_get_data(gc);
1292
1293 writel(BIT(d->hwirq), bank->base + REG_PIO_SET_PMASK);
1294 }
1295
st_gpio_irq_request_resources(struct irq_data * d)1296 static int st_gpio_irq_request_resources(struct irq_data *d)
1297 {
1298 struct gpio_chip *gc = irq_data_get_irq_chip_data(d);
1299
1300 st_gpio_direction_input(gc, d->hwirq);
1301
1302 return gpiochip_lock_as_irq(gc, d->hwirq);
1303 }
1304
st_gpio_irq_release_resources(struct irq_data * d)1305 static void st_gpio_irq_release_resources(struct irq_data *d)
1306 {
1307 struct gpio_chip *gc = irq_data_get_irq_chip_data(d);
1308
1309 gpiochip_unlock_as_irq(gc, d->hwirq);
1310 }
1311
st_gpio_irq_set_type(struct irq_data * d,unsigned type)1312 static int st_gpio_irq_set_type(struct irq_data *d, unsigned type)
1313 {
1314 struct gpio_chip *gc = irq_data_get_irq_chip_data(d);
1315 struct st_gpio_bank *bank = gpiochip_get_data(gc);
1316 unsigned long flags;
1317 int comp, pin = d->hwirq;
1318 u32 val;
1319 u32 pin_edge_conf = 0;
1320
1321 switch (type) {
1322 case IRQ_TYPE_LEVEL_HIGH:
1323 comp = 0;
1324 break;
1325 case IRQ_TYPE_EDGE_FALLING:
1326 comp = 0;
1327 pin_edge_conf = ST_IRQ_FALLING_EDGE_CONF(pin);
1328 break;
1329 case IRQ_TYPE_LEVEL_LOW:
1330 comp = 1;
1331 break;
1332 case IRQ_TYPE_EDGE_RISING:
1333 comp = 1;
1334 pin_edge_conf = ST_IRQ_RISING_EDGE_CONF(pin);
1335 break;
1336 case IRQ_TYPE_EDGE_BOTH:
1337 comp = st_gpio_get(&bank->gpio_chip, pin);
1338 pin_edge_conf = ST_IRQ_BOTH_EDGE_CONF(pin);
1339 break;
1340 default:
1341 return -EINVAL;
1342 }
1343
1344 spin_lock_irqsave(&bank->lock, flags);
1345 bank->irq_edge_conf &= ~(ST_IRQ_EDGE_MASK << (
1346 pin * ST_IRQ_EDGE_CONF_BITS_PER_PIN));
1347 bank->irq_edge_conf |= pin_edge_conf;
1348 spin_unlock_irqrestore(&bank->lock, flags);
1349
1350 val = readl(bank->base + REG_PIO_PCOMP);
1351 val &= ~BIT(pin);
1352 val |= (comp << pin);
1353 writel(val, bank->base + REG_PIO_PCOMP);
1354
1355 return 0;
1356 }
1357
1358 /*
1359 * As edge triggers are not supported at hardware level, it is supported by
1360 * software by exploiting the level trigger support in hardware.
1361 *
1362 * Steps for detection raising edge interrupt in software.
1363 *
1364 * Step 1: CONFIGURE pin to detect level LOW interrupts.
1365 *
1366 * Step 2: DETECT level LOW interrupt and in irqmux/gpio bank interrupt handler,
1367 * if the value of pin is low, then CONFIGURE pin for level HIGH interrupt.
1368 * IGNORE calling the actual interrupt handler for the pin at this stage.
1369 *
1370 * Step 3: DETECT level HIGH interrupt and in irqmux/gpio-bank interrupt handler
1371 * if the value of pin is HIGH, CONFIGURE pin for level LOW interrupt and then
1372 * DISPATCH the interrupt to the interrupt handler of the pin.
1373 *
1374 * step-1 ________ __________
1375 * | | step - 3
1376 * | |
1377 * step -2 |_____|
1378 *
1379 * falling edge is also detected int the same way.
1380 *
1381 */
__gpio_irq_handler(struct st_gpio_bank * bank)1382 static void __gpio_irq_handler(struct st_gpio_bank *bank)
1383 {
1384 unsigned long port_in, port_mask, port_comp, active_irqs;
1385 unsigned long bank_edge_mask, flags;
1386 int n, val, ecfg;
1387
1388 spin_lock_irqsave(&bank->lock, flags);
1389 bank_edge_mask = bank->irq_edge_conf;
1390 spin_unlock_irqrestore(&bank->lock, flags);
1391
1392 for (;;) {
1393 port_in = readl(bank->base + REG_PIO_PIN);
1394 port_comp = readl(bank->base + REG_PIO_PCOMP);
1395 port_mask = readl(bank->base + REG_PIO_PMASK);
1396
1397 active_irqs = (port_in ^ port_comp) & port_mask;
1398
1399 if (active_irqs == 0)
1400 break;
1401
1402 for_each_set_bit(n, &active_irqs, BITS_PER_LONG) {
1403 /* check if we are detecting fake edges ... */
1404 ecfg = ST_IRQ_EDGE_CONF(bank_edge_mask, n);
1405
1406 if (ecfg) {
1407 /* edge detection. */
1408 val = st_gpio_get(&bank->gpio_chip, n);
1409
1410 writel(BIT(n),
1411 val ? bank->base + REG_PIO_SET_PCOMP :
1412 bank->base + REG_PIO_CLR_PCOMP);
1413
1414 if (ecfg != ST_IRQ_EDGE_BOTH &&
1415 !((ecfg & ST_IRQ_EDGE_FALLING) ^ val))
1416 continue;
1417 }
1418
1419 generic_handle_domain_irq(bank->gpio_chip.irq.domain, n);
1420 }
1421 }
1422 }
1423
st_gpio_irq_handler(struct irq_desc * desc)1424 static void st_gpio_irq_handler(struct irq_desc *desc)
1425 {
1426 /* interrupt dedicated per bank */
1427 struct irq_chip *chip = irq_desc_get_chip(desc);
1428 struct gpio_chip *gc = irq_desc_get_handler_data(desc);
1429 struct st_gpio_bank *bank = gpiochip_get_data(gc);
1430
1431 chained_irq_enter(chip, desc);
1432 __gpio_irq_handler(bank);
1433 chained_irq_exit(chip, desc);
1434 }
1435
st_gpio_irqmux_handler(struct irq_desc * desc)1436 static void st_gpio_irqmux_handler(struct irq_desc *desc)
1437 {
1438 struct irq_chip *chip = irq_desc_get_chip(desc);
1439 struct st_pinctrl *info = irq_desc_get_handler_data(desc);
1440 unsigned long status;
1441 int n;
1442
1443 chained_irq_enter(chip, desc);
1444
1445 status = readl(info->irqmux_base);
1446
1447 for_each_set_bit(n, &status, info->nbanks)
1448 __gpio_irq_handler(&info->banks[n]);
1449
1450 chained_irq_exit(chip, desc);
1451 }
1452
1453 static const struct gpio_chip st_gpio_template = {
1454 .request = gpiochip_generic_request,
1455 .free = gpiochip_generic_free,
1456 .get = st_gpio_get,
1457 .set = st_gpio_set,
1458 .direction_input = st_gpio_direction_input,
1459 .direction_output = st_gpio_direction_output,
1460 .get_direction = st_gpio_get_direction,
1461 .ngpio = ST_GPIO_PINS_PER_BANK,
1462 };
1463
1464 static struct irq_chip st_gpio_irqchip = {
1465 .name = "GPIO",
1466 .irq_request_resources = st_gpio_irq_request_resources,
1467 .irq_release_resources = st_gpio_irq_release_resources,
1468 .irq_disable = st_gpio_irq_mask,
1469 .irq_mask = st_gpio_irq_mask,
1470 .irq_unmask = st_gpio_irq_unmask,
1471 .irq_set_type = st_gpio_irq_set_type,
1472 .flags = IRQCHIP_SKIP_SET_WAKE,
1473 };
1474
st_gpiolib_register_bank(struct st_pinctrl * info,int bank_nr,struct device_node * np)1475 static int st_gpiolib_register_bank(struct st_pinctrl *info,
1476 int bank_nr, struct device_node *np)
1477 {
1478 struct st_gpio_bank *bank = &info->banks[bank_nr];
1479 struct pinctrl_gpio_range *range = &bank->range;
1480 struct device *dev = info->dev;
1481 int bank_num = of_alias_get_id(np, "gpio");
1482 struct resource res, irq_res;
1483 int err;
1484
1485 if (of_address_to_resource(np, 0, &res))
1486 return -ENODEV;
1487
1488 bank->base = devm_ioremap_resource(dev, &res);
1489 if (IS_ERR(bank->base))
1490 return PTR_ERR(bank->base);
1491
1492 bank->gpio_chip = st_gpio_template;
1493 bank->gpio_chip.base = bank_num * ST_GPIO_PINS_PER_BANK;
1494 bank->gpio_chip.ngpio = ST_GPIO_PINS_PER_BANK;
1495 bank->gpio_chip.of_node = np;
1496 bank->gpio_chip.parent = dev;
1497 spin_lock_init(&bank->lock);
1498
1499 of_property_read_string(np, "st,bank-name", &range->name);
1500 bank->gpio_chip.label = range->name;
1501
1502 range->id = bank_num;
1503 range->pin_base = range->base = range->id * ST_GPIO_PINS_PER_BANK;
1504 range->npins = bank->gpio_chip.ngpio;
1505 range->gc = &bank->gpio_chip;
1506
1507 /**
1508 * GPIO bank can have one of the two possible types of
1509 * interrupt-wirings.
1510 *
1511 * First type is via irqmux, single interrupt is used by multiple
1512 * gpio banks. This reduces number of overall interrupts numbers
1513 * required. All these banks belong to a single pincontroller.
1514 * _________
1515 * | |----> [gpio-bank (n) ]
1516 * | |----> [gpio-bank (n + 1)]
1517 * [irqN]-- | irq-mux |----> [gpio-bank (n + 2)]
1518 * | |----> [gpio-bank (... )]
1519 * |_________|----> [gpio-bank (n + 7)]
1520 *
1521 * Second type has a dedicated interrupt per each gpio bank.
1522 *
1523 * [irqN]----> [gpio-bank (n)]
1524 */
1525
1526 if (of_irq_to_resource(np, 0, &irq_res) > 0) {
1527 struct gpio_irq_chip *girq;
1528 int gpio_irq = irq_res.start;
1529
1530 /* This is not a valid IRQ */
1531 if (gpio_irq <= 0) {
1532 dev_err(dev, "invalid IRQ for %pOF bank\n", np);
1533 goto skip_irq;
1534 }
1535 /* We need to have a mux as well */
1536 if (!info->irqmux_base) {
1537 dev_err(dev, "no irqmux for %pOF bank\n", np);
1538 goto skip_irq;
1539 }
1540
1541 girq = &bank->gpio_chip.irq;
1542 girq->chip = &st_gpio_irqchip;
1543 girq->parent_handler = st_gpio_irq_handler;
1544 girq->num_parents = 1;
1545 girq->parents = devm_kcalloc(dev, 1, sizeof(*girq->parents),
1546 GFP_KERNEL);
1547 if (!girq->parents)
1548 return -ENOMEM;
1549 girq->parents[0] = gpio_irq;
1550 girq->default_type = IRQ_TYPE_NONE;
1551 girq->handler = handle_simple_irq;
1552 }
1553
1554 skip_irq:
1555 err = gpiochip_add_data(&bank->gpio_chip, bank);
1556 if (err)
1557 return dev_err_probe(dev, err, "Failed to add gpiochip(%d)!\n", bank_num);
1558 dev_info(dev, "%s bank added.\n", range->name);
1559
1560 return 0;
1561 }
1562
1563 static const struct of_device_id st_pctl_of_match[] = {
1564 { .compatible = "st,stih407-sbc-pinctrl", .data = &stih407_data},
1565 { .compatible = "st,stih407-front-pinctrl", .data = &stih407_data},
1566 { .compatible = "st,stih407-rear-pinctrl", .data = &stih407_data},
1567 { .compatible = "st,stih407-flash-pinctrl", .data = &stih407_flashdata},
1568 { /* sentinel */ }
1569 };
1570
st_pctl_probe_dt(struct platform_device * pdev,struct pinctrl_desc * pctl_desc,struct st_pinctrl * info)1571 static int st_pctl_probe_dt(struct platform_device *pdev,
1572 struct pinctrl_desc *pctl_desc, struct st_pinctrl *info)
1573 {
1574 struct device *dev = &pdev->dev;
1575 int ret = 0;
1576 int i = 0, j = 0, k = 0, bank;
1577 struct pinctrl_pin_desc *pdesc;
1578 struct device_node *np = dev->of_node;
1579 struct device_node *child;
1580 int grp_index = 0;
1581 int irq = 0;
1582
1583 st_pctl_dt_child_count(info, np);
1584 if (!info->nbanks)
1585 return dev_err_probe(dev, -EINVAL, "you need at least one gpio bank\n");
1586
1587 dev_info(dev, "nbanks = %d\n", info->nbanks);
1588 dev_info(dev, "nfunctions = %d\n", info->nfunctions);
1589 dev_info(dev, "ngroups = %d\n", info->ngroups);
1590
1591 info->functions = devm_kcalloc(dev, info->nfunctions, sizeof(*info->functions), GFP_KERNEL);
1592
1593 info->groups = devm_kcalloc(dev, info->ngroups, sizeof(*info->groups), GFP_KERNEL);
1594
1595 info->banks = devm_kcalloc(dev, info->nbanks, sizeof(*info->banks), GFP_KERNEL);
1596
1597 if (!info->functions || !info->groups || !info->banks)
1598 return -ENOMEM;
1599
1600 info->regmap = syscon_regmap_lookup_by_phandle(np, "st,syscfg");
1601 if (IS_ERR(info->regmap))
1602 return dev_err_probe(dev, PTR_ERR(info->regmap), "No syscfg phandle specified\n");
1603 info->data = of_match_node(st_pctl_of_match, np)->data;
1604
1605 irq = platform_get_irq(pdev, 0);
1606
1607 if (irq > 0) {
1608 info->irqmux_base = devm_platform_ioremap_resource_byname(pdev, "irqmux");
1609 if (IS_ERR(info->irqmux_base))
1610 return PTR_ERR(info->irqmux_base);
1611
1612 irq_set_chained_handler_and_data(irq, st_gpio_irqmux_handler,
1613 info);
1614 }
1615
1616 pctl_desc->npins = info->nbanks * ST_GPIO_PINS_PER_BANK;
1617 pdesc = devm_kcalloc(dev, pctl_desc->npins, sizeof(*pdesc), GFP_KERNEL);
1618 if (!pdesc)
1619 return -ENOMEM;
1620
1621 pctl_desc->pins = pdesc;
1622
1623 bank = 0;
1624 for_each_child_of_node(np, child) {
1625 if (of_property_read_bool(child, "gpio-controller")) {
1626 const char *bank_name = NULL;
1627 char **pin_names;
1628
1629 ret = st_gpiolib_register_bank(info, bank, child);
1630 if (ret) {
1631 of_node_put(child);
1632 return ret;
1633 }
1634
1635 k = info->banks[bank].range.pin_base;
1636 bank_name = info->banks[bank].range.name;
1637
1638 pin_names = devm_kasprintf_strarray(dev, bank_name, ST_GPIO_PINS_PER_BANK);
1639 if (IS_ERR(pin_names)) {
1640 of_node_put(child);
1641 return PTR_ERR(pin_names);
1642 }
1643
1644 for (j = 0; j < ST_GPIO_PINS_PER_BANK; j++, k++) {
1645 pdesc->number = k;
1646 pdesc->name = pin_names[j];
1647 pdesc++;
1648 }
1649 st_parse_syscfgs(info, bank, child);
1650 bank++;
1651 } else {
1652 ret = st_pctl_parse_functions(child, info,
1653 i++, &grp_index);
1654 if (ret) {
1655 dev_err(dev, "No functions found.\n");
1656 of_node_put(child);
1657 return ret;
1658 }
1659 }
1660 }
1661
1662 return 0;
1663 }
1664
st_pctl_probe(struct platform_device * pdev)1665 static int st_pctl_probe(struct platform_device *pdev)
1666 {
1667 struct device *dev = &pdev->dev;
1668 struct st_pinctrl *info;
1669 struct pinctrl_desc *pctl_desc;
1670 int ret, i;
1671
1672 if (!dev->of_node) {
1673 dev_err(dev, "device node not found.\n");
1674 return -EINVAL;
1675 }
1676
1677 pctl_desc = devm_kzalloc(dev, sizeof(*pctl_desc), GFP_KERNEL);
1678 if (!pctl_desc)
1679 return -ENOMEM;
1680
1681 info = devm_kzalloc(dev, sizeof(*info), GFP_KERNEL);
1682 if (!info)
1683 return -ENOMEM;
1684
1685 info->dev = dev;
1686 platform_set_drvdata(pdev, info);
1687 ret = st_pctl_probe_dt(pdev, pctl_desc, info);
1688 if (ret)
1689 return ret;
1690
1691 pctl_desc->owner = THIS_MODULE;
1692 pctl_desc->pctlops = &st_pctlops;
1693 pctl_desc->pmxops = &st_pmxops;
1694 pctl_desc->confops = &st_confops;
1695 pctl_desc->name = dev_name(dev);
1696
1697 info->pctl = devm_pinctrl_register(dev, pctl_desc, info);
1698 if (IS_ERR(info->pctl))
1699 return dev_err_probe(dev, PTR_ERR(info->pctl), "Failed pinctrl registration\n");
1700
1701 for (i = 0; i < info->nbanks; i++)
1702 pinctrl_add_gpio_range(info->pctl, &info->banks[i].range);
1703
1704 return 0;
1705 }
1706
1707 static struct platform_driver st_pctl_driver = {
1708 .driver = {
1709 .name = "st-pinctrl",
1710 .of_match_table = st_pctl_of_match,
1711 },
1712 .probe = st_pctl_probe,
1713 };
1714
st_pctl_init(void)1715 static int __init st_pctl_init(void)
1716 {
1717 return platform_driver_register(&st_pctl_driver);
1718 }
1719 arch_initcall(st_pctl_init);
1720