1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3 * Synopsys DesignWare I2C adapter driver.
4 *
5 * Based on the TI DAVINCI I2C adapter driver.
6 *
7 * Copyright (C) 2006 Texas Instruments.
8 * Copyright (C) 2007 MontaVista Software Inc.
9 * Copyright (C) 2009 Provigent Ltd.
10 */
11
12 #define DEFAULT_SYMBOL_NAMESPACE "I2C_DW_COMMON"
13
14 #include <linux/acpi.h>
15 #include <linux/bitfield.h>
16 #include <linux/clk.h>
17 #include <linux/delay.h>
18 #include <linux/device.h>
19 #include <linux/err.h>
20 #include <linux/errno.h>
21 #include <linux/export.h>
22 #include <linux/i2c.h>
23 #include <linux/interrupt.h>
24 #include <linux/io.h>
25 #include <linux/kernel.h>
26 #include <linux/module.h>
27 #include <linux/of.h>
28 #include <linux/pm.h>
29 #include <linux/pm_runtime.h>
30 #include <linux/property.h>
31 #include <linux/regmap.h>
32 #include <linux/swab.h>
33 #include <linux/types.h>
34 #include <linux/units.h>
35
36 #include <linux/designware_i2c.h>
37
38 #include "i2c-designware-core.h"
39
40 #define DW_IC_DEFAULT_BUS_CAPACITANCE_pF 100
41 #define DW_IC_ABORT_TIMEOUT_US 10
42 #define DW_IC_BUSY_POLL_TIMEOUT_US (1 * USEC_PER_MSEC)
43
44 static const char *const abort_sources[] = {
45 [ABRT_7B_ADDR_NOACK] =
46 "slave address not acknowledged (7bit mode)",
47 [ABRT_10ADDR1_NOACK] =
48 "first address byte not acknowledged (10bit mode)",
49 [ABRT_10ADDR2_NOACK] =
50 "second address byte not acknowledged (10bit mode)",
51 [ABRT_TXDATA_NOACK] =
52 "data not acknowledged",
53 [ABRT_GCALL_NOACK] =
54 "no acknowledgement for a general call",
55 [ABRT_GCALL_READ] =
56 "read after general call",
57 [ABRT_SBYTE_ACKDET] =
58 "start byte acknowledged",
59 [ABRT_SBYTE_NORSTRT] =
60 "trying to send start byte when restart is disabled",
61 [ABRT_10B_RD_NORSTRT] =
62 "trying to read when restart is disabled (10bit mode)",
63 [ABRT_MASTER_DIS] =
64 "trying to use disabled adapter",
65 [ARB_LOST] =
66 "lost arbitration",
67 [ABRT_SLAVE_FLUSH_TXFIFO] =
68 "read command so flush old data in the TX FIFO",
69 [ABRT_SLAVE_ARBLOST] =
70 "slave lost the bus while transmitting data to a remote master",
71 [ABRT_SLAVE_RD_INTX] =
72 "incorrect slave-transmitter mode configuration",
73 };
74
dw_reg_read(void * context,unsigned int reg,unsigned int * val)75 static int dw_reg_read(void *context, unsigned int reg, unsigned int *val)
76 {
77 struct dw_i2c_dev *dev = context;
78
79 *val = readl(dev->base + reg);
80
81 return 0;
82 }
83
dw_reg_write(void * context,unsigned int reg,unsigned int val)84 static int dw_reg_write(void *context, unsigned int reg, unsigned int val)
85 {
86 struct dw_i2c_dev *dev = context;
87
88 writel(val, dev->base + reg);
89
90 return 0;
91 }
92
dw_reg_read_swab(void * context,unsigned int reg,unsigned int * val)93 static int dw_reg_read_swab(void *context, unsigned int reg, unsigned int *val)
94 {
95 struct dw_i2c_dev *dev = context;
96
97 *val = swab32(readl(dev->base + reg));
98
99 return 0;
100 }
101
dw_reg_write_swab(void * context,unsigned int reg,unsigned int val)102 static int dw_reg_write_swab(void *context, unsigned int reg, unsigned int val)
103 {
104 struct dw_i2c_dev *dev = context;
105
106 writel(swab32(val), dev->base + reg);
107
108 return 0;
109 }
110
dw_reg_read_word(void * context,unsigned int reg,unsigned int * val)111 static int dw_reg_read_word(void *context, unsigned int reg, unsigned int *val)
112 {
113 struct dw_i2c_dev *dev = context;
114
115 *val = readw(dev->base + reg) |
116 (readw(dev->base + reg + DW_IC_REG_STEP_BYTES) << DW_IC_REG_WORD_SHIFT);
117
118 return 0;
119 }
120
dw_reg_write_word(void * context,unsigned int reg,unsigned int val)121 static int dw_reg_write_word(void *context, unsigned int reg, unsigned int val)
122 {
123 struct dw_i2c_dev *dev = context;
124
125 writew(val, dev->base + reg);
126 writew(val >> DW_IC_REG_WORD_SHIFT, dev->base + reg + DW_IC_REG_STEP_BYTES);
127
128 return 0;
129 }
130
131 /**
132 * i2c_dw_init_regmap() - Initialize registers map
133 * @dev: device private data
134 *
135 * Autodetects needed register access mode and creates the regmap with
136 * corresponding read/write callbacks. This must be called before doing any
137 * other register access.
138 *
139 * Return: 0 on success, or negative errno otherwise.
140 */
i2c_dw_init_regmap(struct dw_i2c_dev * dev)141 static int i2c_dw_init_regmap(struct dw_i2c_dev *dev)
142 {
143 struct regmap_config map_cfg = {
144 .reg_bits = 32,
145 .val_bits = 32,
146 .reg_stride = 4,
147 .disable_locking = true,
148 .reg_read = dw_reg_read,
149 .reg_write = dw_reg_write,
150 .max_register = DW_IC_COMP_TYPE,
151 };
152 u32 reg;
153 int ret;
154
155 /*
156 * Skip detecting the registers map configuration if the regmap has
157 * already been provided by a higher code.
158 */
159 if (dev->map)
160 return 0;
161
162 ret = i2c_dw_acquire_lock(dev);
163 if (ret)
164 return ret;
165
166 reg = readl(dev->base + DW_IC_COMP_TYPE);
167 i2c_dw_release_lock(dev);
168
169 if ((dev->flags & MODEL_MASK) == MODEL_AMD_NAVI_GPU)
170 map_cfg.max_register = AMD_UCSI_INTR_REG;
171
172 if (reg == swab32(DW_IC_COMP_TYPE_VALUE)) {
173 map_cfg.reg_read = dw_reg_read_swab;
174 map_cfg.reg_write = dw_reg_write_swab;
175 } else if (reg == lower_16_bits(DW_IC_COMP_TYPE_VALUE)) {
176 map_cfg.reg_read = dw_reg_read_word;
177 map_cfg.reg_write = dw_reg_write_word;
178 } else if (reg != DW_IC_COMP_TYPE_VALUE) {
179 dev_err(dev->dev,
180 "Unknown Synopsys component type: 0x%08x\n", reg);
181 return -ENODEV;
182 }
183
184 /*
185 * Note we'll check the return value of the regmap IO accessors only
186 * at the probe stage. The rest of the code won't do this because
187 * basically we have MMIO-based regmap, so none of the read/write methods
188 * can fail.
189 */
190 dev->map = devm_regmap_init(dev->dev, NULL, dev, &map_cfg);
191 if (IS_ERR(dev->map)) {
192 dev_err(dev->dev, "Failed to init the registers map\n");
193 return PTR_ERR(dev->map);
194 }
195
196 return 0;
197 }
198
199 static const u32 supported_speeds[] = {
200 I2C_MAX_HIGH_SPEED_MODE_FREQ,
201 I2C_MAX_FAST_MODE_PLUS_FREQ,
202 I2C_MAX_FAST_MODE_FREQ,
203 I2C_MAX_STANDARD_MODE_FREQ,
204 };
205
i2c_dw_validate_speed(struct dw_i2c_dev * dev)206 static int i2c_dw_validate_speed(struct dw_i2c_dev *dev)
207 {
208 struct i2c_timings *t = &dev->timings;
209 unsigned int i;
210
211 /*
212 * Only standard mode at 100kHz, fast mode at 400kHz,
213 * fast mode plus at 1MHz and high speed mode at 3.4MHz are supported.
214 */
215 for (i = 0; i < ARRAY_SIZE(supported_speeds); i++) {
216 if (t->bus_freq_hz == supported_speeds[i])
217 return 0;
218 }
219
220 dev_err(dev->dev,
221 "%d Hz is unsupported, only 100kHz, 400kHz, 1MHz and 3.4MHz are supported\n",
222 t->bus_freq_hz);
223
224 return -EINVAL;
225 }
226
227 #ifdef CONFIG_OF
228
229 #include <linux/platform_device.h>
230
231 #define MSCC_ICPU_CFG_TWI_DELAY 0x0
232 #define MSCC_ICPU_CFG_TWI_DELAY_ENABLE BIT(0)
233 #define MSCC_ICPU_CFG_TWI_SPIKE_FILTER 0x4
234
mscc_twi_set_sda_hold_time(struct dw_i2c_dev * dev)235 static int mscc_twi_set_sda_hold_time(struct dw_i2c_dev *dev)
236 {
237 writel((dev->sda_hold_time << 1) | MSCC_ICPU_CFG_TWI_DELAY_ENABLE,
238 dev->ext + MSCC_ICPU_CFG_TWI_DELAY);
239
240 return 0;
241 }
242
i2c_dw_of_configure(struct device * device)243 static void i2c_dw_of_configure(struct device *device)
244 {
245 struct platform_device *pdev = to_platform_device(device);
246 struct dw_i2c_dev *dev = dev_get_drvdata(device);
247
248 if (device_is_compatible(dev->dev, "mscc,ocelot-i2c")) {
249 dev->ext = devm_platform_ioremap_resource(pdev, 1);
250 if (!IS_ERR(dev->ext))
251 dev->set_sda_hold_time = mscc_twi_set_sda_hold_time;
252 }
253 }
254
255 #else /* CONFIG_OF */
256
i2c_dw_of_configure(struct device * device)257 static inline void i2c_dw_of_configure(struct device *device) { }
258
259 #endif /* CONFIG_OF */
260
261 #ifdef CONFIG_ACPI
262
263 #include <linux/dmi.h>
264
265 /*
266 * The HCNT/LCNT information coming from ACPI should be the most accurate
267 * for given platform. However, some systems get it wrong. On such systems
268 * we get better results by calculating those based on the input clock.
269 */
270 static const struct dmi_system_id i2c_dw_no_acpi_params[] = {
271 {
272 .ident = "Dell Inspiron 7348",
273 .matches = {
274 DMI_MATCH(DMI_SYS_VENDOR, "Dell Inc."),
275 DMI_MATCH(DMI_PRODUCT_NAME, "Inspiron 7348"),
276 },
277 },
278 {}
279 };
280
i2c_dw_acpi_params(struct device * device,char method[],u16 * hcnt,u16 * lcnt,u32 * sda_hold)281 static void i2c_dw_acpi_params(struct device *device, char method[],
282 u16 *hcnt, u16 *lcnt, u32 *sda_hold)
283 {
284 struct acpi_buffer buf = { ACPI_ALLOCATE_BUFFER };
285 acpi_handle handle = ACPI_HANDLE(device);
286 union acpi_object *obj;
287
288 if (dmi_check_system(i2c_dw_no_acpi_params))
289 return;
290
291 if (ACPI_FAILURE(acpi_evaluate_object(handle, method, NULL, &buf)))
292 return;
293
294 obj = (union acpi_object *)buf.pointer;
295 if (obj->type == ACPI_TYPE_PACKAGE && obj->package.count == 3) {
296 const union acpi_object *objs = obj->package.elements;
297
298 *hcnt = (u16)objs[0].integer.value;
299 *lcnt = (u16)objs[1].integer.value;
300 *sda_hold = (u32)objs[2].integer.value;
301 }
302
303 kfree(buf.pointer);
304 }
305
i2c_dw_acpi_configure(struct device * device)306 static void i2c_dw_acpi_configure(struct device *device)
307 {
308 struct dw_i2c_dev *dev = dev_get_drvdata(device);
309 struct i2c_timings *t = &dev->timings;
310 u32 ss_ht = 0, fp_ht = 0, hs_ht = 0, fs_ht = 0;
311
312 /*
313 * Try to get SDA hold time and *CNT values from an ACPI method for
314 * selected speed modes.
315 */
316 i2c_dw_acpi_params(device, "SSCN", &dev->ss_hcnt, &dev->ss_lcnt, &ss_ht);
317 i2c_dw_acpi_params(device, "FMCN", &dev->fs_hcnt, &dev->fs_lcnt, &fs_ht);
318 i2c_dw_acpi_params(device, "FPCN", &dev->fp_hcnt, &dev->fp_lcnt, &fp_ht);
319 i2c_dw_acpi_params(device, "HSCN", &dev->hs_hcnt, &dev->hs_lcnt, &hs_ht);
320
321 switch (t->bus_freq_hz) {
322 case I2C_MAX_STANDARD_MODE_FREQ:
323 dev->sda_hold_time = ss_ht;
324 break;
325 case I2C_MAX_FAST_MODE_PLUS_FREQ:
326 dev->sda_hold_time = fp_ht;
327 break;
328 case I2C_MAX_HIGH_SPEED_MODE_FREQ:
329 dev->sda_hold_time = hs_ht;
330 break;
331 case I2C_MAX_FAST_MODE_FREQ:
332 default:
333 dev->sda_hold_time = fs_ht;
334 break;
335 }
336 }
337
i2c_dw_acpi_round_bus_speed(struct device * device)338 static u32 i2c_dw_acpi_round_bus_speed(struct device *device)
339 {
340 u32 acpi_speed;
341 int i;
342
343 acpi_speed = i2c_acpi_find_bus_speed(device);
344 /*
345 * Some DSDTs use a non standard speed, round down to the lowest
346 * standard speed.
347 */
348 for (i = 0; i < ARRAY_SIZE(supported_speeds); i++) {
349 if (acpi_speed >= supported_speeds[i])
350 return supported_speeds[i];
351 }
352
353 return 0;
354 }
355
356 #else /* CONFIG_ACPI */
357
i2c_dw_acpi_configure(struct device * device)358 static inline void i2c_dw_acpi_configure(struct device *device) { }
359
i2c_dw_acpi_round_bus_speed(struct device * device)360 static inline u32 i2c_dw_acpi_round_bus_speed(struct device *device) { return 0; }
361
362 #endif /* CONFIG_ACPI */
363
i2c_dw_configure_mode(struct dw_i2c_dev * dev,int mode)364 static void i2c_dw_configure_mode(struct dw_i2c_dev *dev, int mode)
365 {
366 switch (mode) {
367 case DW_IC_MASTER:
368 regmap_write(dev->map, DW_IC_TX_TL, dev->tx_fifo_depth / 2);
369 regmap_write(dev->map, DW_IC_RX_TL, 0);
370 regmap_write(dev->map, DW_IC_CON, dev->master_cfg);
371 break;
372 case DW_IC_SLAVE:
373 dev->status = 0;
374 regmap_write(dev->map, DW_IC_TX_TL, 0);
375 regmap_write(dev->map, DW_IC_RX_TL, 0);
376 regmap_write(dev->map, DW_IC_CON, dev->slave_cfg);
377 regmap_write(dev->map, DW_IC_SAR, dev->slave->addr);
378 regmap_write(dev->map, DW_IC_INTR_MASK, DW_IC_INTR_SLAVE_MASK);
379 __i2c_dw_enable(dev);
380 break;
381 default:
382 WARN(1, "Invalid mode %d\n", mode);
383 return;
384 }
385 }
386
i2c_dw_write_timings(struct dw_i2c_dev * dev)387 static void i2c_dw_write_timings(struct dw_i2c_dev *dev)
388 {
389 /* Write standard speed timing parameters */
390 regmap_write(dev->map, DW_IC_SS_SCL_HCNT, dev->ss_hcnt);
391 regmap_write(dev->map, DW_IC_SS_SCL_LCNT, dev->ss_lcnt);
392
393 /* Write fast mode/fast mode plus timing parameters */
394 regmap_write(dev->map, DW_IC_FS_SCL_HCNT, dev->fs_hcnt);
395 regmap_write(dev->map, DW_IC_FS_SCL_LCNT, dev->fs_lcnt);
396
397 /* Write high speed timing parameters */
398 regmap_write(dev->map, DW_IC_HS_SCL_HCNT, dev->hs_hcnt);
399 regmap_write(dev->map, DW_IC_HS_SCL_LCNT, dev->hs_lcnt);
400 }
401
402 /**
403 * i2c_dw_set_mode() - Select the controller mode of operation - master or slave
404 * @dev: device private data
405 * @mode: I2C mode of operation
406 *
407 * Configures the controller to operate in @mode. This function needs to be
408 * called when ever a mode swap is required.
409 *
410 * Setting the slave mode does not have an effect before a slave device is
411 * registered. So before the slave device is registered, the controller is kept
412 * in master mode regardless of @mode.
413 *
414 * The controller must be disabled before this function is called.
415 */
i2c_dw_set_mode(struct dw_i2c_dev * dev,int mode)416 void i2c_dw_set_mode(struct dw_i2c_dev *dev, int mode)
417 {
418 if (mode == DW_IC_SLAVE && !dev->slave)
419 mode = DW_IC_MASTER;
420 if (dev->mode == mode)
421 return;
422
423 i2c_dw_configure_mode(dev, mode);
424 dev->mode = mode;
425 }
426
427 /**
428 * i2c_dw_init() - Initialize the DesignWare I2C hardware
429 * @dev: device private data
430 *
431 * This functions configures and enables the DesigWare I2C hardware.
432 *
433 * Return: 0 on success, or negative errno otherwise.
434 */
i2c_dw_init(struct dw_i2c_dev * dev)435 int i2c_dw_init(struct dw_i2c_dev *dev)
436 {
437 int ret;
438
439 ret = i2c_dw_acquire_lock(dev);
440 if (ret)
441 return ret;
442
443 /* Disable the adapter */
444 __i2c_dw_disable(dev);
445
446 /*
447 * Mask SMBus interrupts to block storms from broken
448 * firmware that leaves IC_SMBUS=1; the handler never
449 * services them.
450 */
451 regmap_write(dev->map, DW_IC_SMBUS_INTR_MASK, 0);
452
453 i2c_dw_write_timings(dev);
454
455 /* Write SDA hold time if supported */
456 if (dev->sda_hold_time)
457 regmap_write(dev->map, DW_IC_SDA_HOLD, dev->sda_hold_time);
458
459 i2c_dw_configure_mode(dev, dev->mode);
460
461 i2c_dw_release_lock(dev);
462
463 return 0;
464 }
465 EXPORT_SYMBOL_GPL(i2c_dw_init);
466
i2c_dw_adjust_bus_speed(struct dw_i2c_dev * dev)467 static void i2c_dw_adjust_bus_speed(struct dw_i2c_dev *dev)
468 {
469 u32 acpi_speed = i2c_dw_acpi_round_bus_speed(dev->dev);
470 struct i2c_timings *t = &dev->timings;
471
472 /*
473 * Find bus speed from the "clock-frequency" device property, ACPI
474 * or by using fast mode if neither is set.
475 */
476 if (acpi_speed && t->bus_freq_hz)
477 t->bus_freq_hz = min(t->bus_freq_hz, acpi_speed);
478 else if (acpi_speed || t->bus_freq_hz)
479 t->bus_freq_hz = max(t->bus_freq_hz, acpi_speed);
480 else
481 t->bus_freq_hz = I2C_MAX_FAST_MODE_FREQ;
482 }
483
i2c_dw_fw_parse_and_configure(struct dw_i2c_dev * dev)484 int i2c_dw_fw_parse_and_configure(struct dw_i2c_dev *dev)
485 {
486 struct i2c_timings *t = &dev->timings;
487 struct device *device = dev->dev;
488 struct fwnode_handle *fwnode = dev_fwnode(device);
489
490 i2c_parse_fw_timings(device, t, false);
491
492 if (device_property_read_u32(device, "snps,bus-capacitance-pf", &dev->bus_capacitance_pF))
493 dev->bus_capacitance_pF = DW_IC_DEFAULT_BUS_CAPACITANCE_pF;
494
495 dev->clk_freq_optimized = device_property_read_bool(device, "snps,clk-freq-optimized");
496
497 /* Mobileye controllers do not hold the clock on empty FIFO */
498 if (device_is_compatible(device, "mobileye,eyeq6lplus-i2c"))
499 dev->emptyfifo_hold_master = false;
500 else
501 dev->emptyfifo_hold_master = true;
502
503 i2c_dw_adjust_bus_speed(dev);
504
505 if (is_of_node(fwnode))
506 i2c_dw_of_configure(device);
507 else if (is_acpi_node(fwnode))
508 i2c_dw_acpi_configure(device);
509
510 return i2c_dw_validate_speed(dev);
511 }
512 EXPORT_SYMBOL_GPL(i2c_dw_fw_parse_and_configure);
513
i2c_dw_read_scl_reg(struct dw_i2c_dev * dev,u32 reg)514 static u32 i2c_dw_read_scl_reg(struct dw_i2c_dev *dev, u32 reg)
515 {
516 u32 val;
517 int ret;
518
519 ret = i2c_dw_acquire_lock(dev);
520 if (ret)
521 return 0;
522
523 ret = regmap_read(dev->map, reg, &val);
524 i2c_dw_release_lock(dev);
525
526 return ret ? 0 : val;
527 }
528
i2c_dw_scl_hcnt(struct dw_i2c_dev * dev,unsigned int reg,u32 ic_clk,u32 tSYMBOL,u32 tf,int offset)529 u32 i2c_dw_scl_hcnt(struct dw_i2c_dev *dev, unsigned int reg, u32 ic_clk,
530 u32 tSYMBOL, u32 tf, int offset)
531 {
532 if (!ic_clk)
533 return i2c_dw_read_scl_reg(dev, reg);
534
535 /*
536 * Conditional expression:
537 *
538 * IC_[FS]S_SCL_HCNT + 3 >= IC_CLK * (tHD;STA + tf)
539 *
540 * This is just experimental rule; the tHD;STA period turned
541 * out to be proportinal to (_HCNT + 3). With this setting,
542 * we could meet both tHIGH and tHD;STA timing specs.
543 *
544 * If unsure, you'd better to take this alternative.
545 *
546 * The reason why we need to take into account "tf" here,
547 * is the same as described in i2c_dw_scl_lcnt().
548 */
549 return DIV_ROUND_CLOSEST_ULL((u64)ic_clk * (tSYMBOL + tf), MICRO) - 3 + offset;
550 }
551
i2c_dw_scl_lcnt(struct dw_i2c_dev * dev,unsigned int reg,u32 ic_clk,u32 tLOW,u32 tf,int offset)552 u32 i2c_dw_scl_lcnt(struct dw_i2c_dev *dev, unsigned int reg, u32 ic_clk,
553 u32 tLOW, u32 tf, int offset)
554 {
555 if (!ic_clk)
556 return i2c_dw_read_scl_reg(dev, reg);
557
558 /*
559 * Conditional expression:
560 *
561 * IC_[FS]S_SCL_LCNT + 1 >= IC_CLK * (tLOW + tf)
562 *
563 * DW I2C core starts counting the SCL CNTs for the LOW period
564 * of the SCL clock (tLOW) as soon as it pulls the SCL line.
565 * In order to meet the tLOW timing spec, we need to take into
566 * account the fall time of SCL signal (tf). Default tf value
567 * should be 0.3 us, for safety.
568 */
569 return DIV_ROUND_CLOSEST_ULL((u64)ic_clk * (tLOW + tf), MICRO) - 1 + offset;
570 }
571
i2c_dw_set_sda_hold(struct dw_i2c_dev * dev)572 static int i2c_dw_set_sda_hold(struct dw_i2c_dev *dev)
573 {
574 unsigned int reg;
575 int ret;
576
577 ret = i2c_dw_acquire_lock(dev);
578 if (ret)
579 return ret;
580
581 /* Configure SDA Hold Time if required */
582 ret = regmap_read(dev->map, DW_IC_COMP_VERSION, ®);
583 if (ret)
584 goto err_release_lock;
585
586 if (reg >= DW_IC_SDA_HOLD_MIN_VERS) {
587 if (!dev->sda_hold_time) {
588 /* Keep previous hold time setting if no one set it */
589 ret = regmap_read(dev->map, DW_IC_SDA_HOLD,
590 &dev->sda_hold_time);
591 if (ret)
592 goto err_release_lock;
593 }
594
595 /*
596 * Workaround for avoiding TX arbitration lost in case I2C
597 * slave pulls SDA down "too quickly" after falling edge of
598 * SCL by enabling non-zero SDA RX hold. Specification says it
599 * extends incoming SDA low to high transition while SCL is
600 * high but it appears to help also above issue.
601 */
602 if (!(dev->sda_hold_time & DW_IC_SDA_HOLD_RX_MASK))
603 dev->sda_hold_time |= 1 << DW_IC_SDA_HOLD_RX_SHIFT;
604
605 dev_dbg(dev->dev, "SDA Hold Time TX:RX = %d:%d\n",
606 dev->sda_hold_time & ~(u32)DW_IC_SDA_HOLD_RX_MASK,
607 dev->sda_hold_time >> DW_IC_SDA_HOLD_RX_SHIFT);
608 } else if (dev->set_sda_hold_time) {
609 dev->set_sda_hold_time(dev);
610 } else if (dev->sda_hold_time) {
611 dev_warn(dev->dev,
612 "Hardware too old to adjust SDA hold time.\n");
613 dev->sda_hold_time = 0;
614 }
615
616 err_release_lock:
617 i2c_dw_release_lock(dev);
618
619 return ret;
620 }
621
__i2c_dw_disable(struct dw_i2c_dev * dev)622 void __i2c_dw_disable(struct dw_i2c_dev *dev)
623 {
624 struct i2c_timings *t = &dev->timings;
625 unsigned int raw_intr_stats, ic_stats;
626 unsigned int enable;
627 int timeout = 100;
628 bool abort_needed;
629 unsigned int status;
630 int ret;
631
632 regmap_read(dev->map, DW_IC_RAW_INTR_STAT, &raw_intr_stats);
633 regmap_read(dev->map, DW_IC_STATUS, &ic_stats);
634 regmap_read(dev->map, DW_IC_ENABLE, &enable);
635
636 abort_needed = (raw_intr_stats & DW_IC_INTR_MST_ON_HOLD) ||
637 (ic_stats & DW_IC_STATUS_MASTER_HOLD_TX_FIFO_EMPTY);
638
639 /*
640 * If we are in target mode and there is activity, we should also
641 * trigger an abort to clear the internal state machines.
642 */
643 if (dev->mode == DW_IC_SLAVE && (ic_stats & DW_IC_STATUS_SLAVE_ACTIVITY))
644 abort_needed = true;
645
646 if (abort_needed) {
647 if (!(enable & DW_IC_ENABLE_ENABLE)) {
648 regmap_write(dev->map, DW_IC_ENABLE, DW_IC_ENABLE_ENABLE);
649 /*
650 * Wait 10 times the signaling period of the highest I2C
651 * transfer supported by the driver (for 400KHz this is
652 * 25us) to ensure the I2C ENABLE bit is already set
653 * as described in the DesignWare I2C databook.
654 */
655 fsleep(DIV_ROUND_CLOSEST_ULL(10 * MICRO, t->bus_freq_hz));
656 /* Set ENABLE bit before setting ABORT */
657 enable |= DW_IC_ENABLE_ENABLE;
658 }
659
660 regmap_write(dev->map, DW_IC_ENABLE, enable | DW_IC_ENABLE_ABORT);
661 ret = regmap_read_poll_timeout(dev->map, DW_IC_ENABLE, enable,
662 !(enable & DW_IC_ENABLE_ABORT),
663 DW_IC_ABORT_TIMEOUT_US,
664 10 * DW_IC_ABORT_TIMEOUT_US);
665 if (ret)
666 dev_err(dev->dev, "timeout while trying to abort current transfer\n");
667 }
668
669 do {
670 __i2c_dw_disable_nowait(dev);
671 /*
672 * The enable status register may be unimplemented, but
673 * in that case this test reads zero and exits the loop.
674 */
675 regmap_read(dev->map, DW_IC_ENABLE_STATUS, &status);
676 if (!(status & 1))
677 return;
678
679 /*
680 * Wait 10 times the signaling period of the highest I2C
681 * transfer supported by the driver (for 400kHz this is
682 * 25us) as described in the DesignWare I2C databook.
683 */
684 usleep_range(25, 250);
685 } while (timeout--);
686
687 dev_warn(dev->dev, "timeout in disabling adapter\n");
688 }
689
i2c_dw_clk_rate(struct dw_i2c_dev * dev)690 u32 i2c_dw_clk_rate(struct dw_i2c_dev *dev)
691 {
692 /*
693 * Clock is not necessary if we got LCNT/HCNT values directly from
694 * the platform code.
695 */
696 if (!dev->get_clk_rate_khz) {
697 dev_dbg_once(dev->dev, "Callback get_clk_rate_khz() is not defined\n");
698 return 0;
699 }
700 return dev->get_clk_rate_khz(dev);
701 }
702
i2c_dw_prepare_clk(struct dw_i2c_dev * dev,bool prepare)703 int i2c_dw_prepare_clk(struct dw_i2c_dev *dev, bool prepare)
704 {
705 int ret;
706
707 if (prepare) {
708 /* Optional interface clock */
709 ret = clk_prepare_enable(dev->pclk);
710 if (ret)
711 return ret;
712
713 ret = clk_prepare_enable(dev->clk);
714 if (ret)
715 clk_disable_unprepare(dev->pclk);
716
717 return ret;
718 }
719
720 clk_disable_unprepare(dev->clk);
721 clk_disable_unprepare(dev->pclk);
722
723 return 0;
724 }
725 EXPORT_SYMBOL_GPL(i2c_dw_prepare_clk);
726
i2c_dw_acquire_lock(struct dw_i2c_dev * dev)727 int i2c_dw_acquire_lock(struct dw_i2c_dev *dev)
728 {
729 int ret;
730
731 if (!dev->acquire_lock)
732 return 0;
733
734 ret = dev->acquire_lock();
735 if (!ret)
736 return 0;
737
738 dev_err(dev->dev, "couldn't acquire bus ownership\n");
739
740 return ret;
741 }
742
i2c_dw_release_lock(struct dw_i2c_dev * dev)743 void i2c_dw_release_lock(struct dw_i2c_dev *dev)
744 {
745 if (dev->release_lock)
746 dev->release_lock();
747 }
748
749 /*
750 * Waiting for bus not busy
751 */
i2c_dw_wait_bus_not_busy(struct dw_i2c_dev * dev)752 int i2c_dw_wait_bus_not_busy(struct dw_i2c_dev *dev)
753 {
754 unsigned int status;
755 int ret;
756
757 ret = regmap_read_poll_timeout(dev->map, DW_IC_STATUS, status,
758 !(status & DW_IC_STATUS_ACTIVITY),
759 DW_IC_BUSY_POLL_TIMEOUT_US,
760 20 * DW_IC_BUSY_POLL_TIMEOUT_US);
761 if (ret) {
762 dev_warn(dev->dev, "timeout waiting for bus ready\n");
763
764 i2c_recover_bus(&dev->adapter);
765
766 regmap_read(dev->map, DW_IC_STATUS, &status);
767 if (!(status & DW_IC_STATUS_ACTIVITY))
768 ret = 0;
769 }
770
771 return ret;
772 }
773
i2c_dw_handle_tx_abort(struct dw_i2c_dev * dev)774 int i2c_dw_handle_tx_abort(struct dw_i2c_dev *dev)
775 {
776 unsigned long abort_source = dev->abort_source;
777 int i;
778
779 if (abort_source & DW_IC_TX_ABRT_NOACK) {
780 for_each_set_bit(i, &abort_source, ARRAY_SIZE(abort_sources))
781 dev_dbg(dev->dev,
782 "%s: %s\n", __func__, abort_sources[i]);
783 return -EREMOTEIO;
784 }
785
786 for_each_set_bit(i, &abort_source, ARRAY_SIZE(abort_sources))
787 dev_err(dev->dev, "%s: %s\n", __func__, abort_sources[i]);
788
789 if (abort_source & DW_IC_TX_ARB_LOST)
790 return -EAGAIN;
791 if (abort_source & DW_IC_TX_ABRT_GCALL_READ)
792 return -EINVAL; /* wrong msgs[] data */
793
794 return -EIO;
795 }
796
i2c_dw_set_fifo_size(struct dw_i2c_dev * dev)797 static int i2c_dw_set_fifo_size(struct dw_i2c_dev *dev)
798 {
799 u32 tx_fifo_depth, rx_fifo_depth;
800 unsigned int param;
801 int ret;
802
803 /* DW_IC_COMP_PARAM_1 not implement for IP issue */
804 if ((dev->flags & MODEL_MASK) == MODEL_WANGXUN_SP) {
805 dev->tx_fifo_depth = TXGBE_TX_FIFO_DEPTH;
806 dev->rx_fifo_depth = TXGBE_RX_FIFO_DEPTH;
807
808 return 0;
809 }
810
811 /*
812 * Try to detect the FIFO depth if not set by interface driver,
813 * the depth could be from 2 to 256 from HW spec.
814 */
815 ret = i2c_dw_acquire_lock(dev);
816 if (ret)
817 return ret;
818
819 ret = regmap_read(dev->map, DW_IC_COMP_PARAM_1, ¶m);
820 i2c_dw_release_lock(dev);
821 if (ret)
822 return ret;
823
824 tx_fifo_depth = FIELD_GET(DW_IC_FIFO_TX_FIELD, param) + 1;
825 rx_fifo_depth = FIELD_GET(DW_IC_FIFO_RX_FIELD, param) + 1;
826 if (!dev->tx_fifo_depth) {
827 dev->tx_fifo_depth = tx_fifo_depth;
828 dev->rx_fifo_depth = rx_fifo_depth;
829 } else if (tx_fifo_depth >= DW_IC_FIFO_MIN_DEPTH) {
830 dev->tx_fifo_depth = min_t(u32, dev->tx_fifo_depth,
831 tx_fifo_depth);
832 dev->rx_fifo_depth = min_t(u32, dev->rx_fifo_depth,
833 rx_fifo_depth);
834 }
835
836 return 0;
837 }
838
i2c_dw_func(struct i2c_adapter * adap)839 u32 i2c_dw_func(struct i2c_adapter *adap)
840 {
841 struct dw_i2c_dev *dev = i2c_get_adapdata(adap);
842
843 return dev->functionality;
844 }
845
i2c_dw_disable(struct dw_i2c_dev * dev)846 void i2c_dw_disable(struct dw_i2c_dev *dev)
847 {
848 unsigned int dummy;
849 int ret;
850
851 ret = i2c_dw_acquire_lock(dev);
852 if (ret)
853 return;
854
855 /* Disable controller */
856 __i2c_dw_disable(dev);
857
858 /* Disable all interrupts */
859 __i2c_dw_write_intr_mask(dev, 0);
860 regmap_read(dev->map, DW_IC_CLR_INTR, &dummy);
861
862 i2c_dw_release_lock(dev);
863 }
864 EXPORT_SYMBOL_GPL(i2c_dw_disable);
865
i2c_dw_isr(int this_irq,void * dev_id)866 static irqreturn_t i2c_dw_isr(int this_irq, void *dev_id)
867 {
868 struct dw_i2c_dev *dev = dev_id;
869
870 if (dev->mode == DW_IC_SLAVE)
871 return i2c_dw_isr_slave(dev);
872
873 return i2c_dw_isr_master(dev);
874 }
875
876 static const struct i2c_algorithm i2c_dw_algo = {
877 .xfer = i2c_dw_xfer,
878 .functionality = i2c_dw_func,
879 #if IS_ENABLED(CONFIG_I2C_SLAVE)
880 .reg_slave = i2c_dw_reg_slave,
881 .unreg_slave = i2c_dw_unreg_slave,
882 #endif
883 };
884
885 static const struct i2c_adapter_quirks i2c_dw_quirks = {
886 .flags = I2C_AQ_NO_ZERO_LEN,
887 };
888
i2c_dw_probe(struct dw_i2c_dev * dev)889 int i2c_dw_probe(struct dw_i2c_dev *dev)
890 {
891 struct i2c_adapter *adap = &dev->adapter;
892 unsigned long irq_flags;
893 int ret;
894
895 device_set_node(&dev->adapter.dev, dev_fwnode(dev->dev));
896
897 ret = i2c_dw_init_regmap(dev);
898 if (ret)
899 return ret;
900
901 ret = i2c_dw_set_sda_hold(dev);
902 if (ret)
903 return ret;
904
905 ret = i2c_dw_set_fifo_size(dev);
906 if (ret)
907 return ret;
908
909 ret = i2c_dw_probe_master(dev);
910 if (ret)
911 return ret;
912
913 ret = i2c_dw_init(dev);
914 if (ret)
915 return ret;
916
917 if (!adap->name[0])
918 strscpy(adap->name, "Synopsys DesignWare I2C adapter");
919
920 adap->retries = 3;
921 adap->algo = &i2c_dw_algo;
922 adap->quirks = &i2c_dw_quirks;
923 adap->dev.parent = dev->dev;
924 i2c_set_adapdata(adap, dev);
925
926 /*
927 * REVISIT: The mode check may not be necessary.
928 * For now keeping the flags as they were originally.
929 */
930 if (dev->mode == DW_IC_SLAVE)
931 irq_flags = IRQF_SHARED;
932 else if (dev->flags & ACCESS_NO_IRQ_SUSPEND)
933 irq_flags = IRQF_NO_SUSPEND;
934 else
935 irq_flags = IRQF_SHARED | IRQF_COND_SUSPEND;
936
937 /*
938 * The first writing to TX FIFO buffer causes transmission start.
939 * If IC_EMPTYFIFO_HOLD_MASTER_EN is not set, when TX FIFO gets
940 * empty, I2C controller finishes the transaction. If writing to
941 * FIFO is interrupted, FIFO can get empty and the transaction will
942 * be finished prematurely. FIFO buffer is filled in IRQ handler,
943 * but in PREEMPT_RT kernel IRQ handler by default is executed
944 * in thread that can be preempted with another higher priority
945 * thread or an interrupt. So, IRQF_NO_THREAD flag is required in
946 * order to prevent any preemption when filling the FIFO.
947 */
948 if (!dev->emptyfifo_hold_master)
949 irq_flags |= IRQF_NO_THREAD;
950
951 ret = i2c_dw_acquire_lock(dev);
952 if (ret)
953 return ret;
954
955 __i2c_dw_write_intr_mask(dev, 0);
956 i2c_dw_release_lock(dev);
957
958 if (!(dev->flags & ACCESS_POLLING)) {
959 ret = devm_request_irq(dev->dev, dev->irq, i2c_dw_isr,
960 irq_flags, dev_name(dev->dev), dev);
961 if (ret)
962 return ret;
963 }
964
965 /*
966 * Increment PM usage count during adapter registration in order to
967 * avoid possible spurious runtime suspend when adapter device is
968 * registered to the device core and immediate resume in case bus has
969 * registered I2C slaves that do I2C transfers in their probe.
970 */
971 PM_RUNTIME_ACQUIRE(dev->dev, pm);
972 ret = PM_RUNTIME_ACQUIRE_ERR(&pm);
973 if (ret)
974 return ret;
975
976 return i2c_add_numbered_adapter(adap);
977 }
978 EXPORT_SYMBOL_GPL(i2c_dw_probe);
979
i2c_dw_prepare(struct device * device)980 static int i2c_dw_prepare(struct device *device)
981 {
982 /*
983 * If the ACPI companion device object is present for this device,
984 * it may be accessed during suspend and resume of other devices via
985 * I2C operation regions, so tell the PM core and middle layers to
986 * avoid skipping system suspend/resume callbacks for it in that case.
987 */
988 return !has_acpi_companion(device);
989 }
990
i2c_dw_runtime_suspend(struct device * device)991 static int i2c_dw_runtime_suspend(struct device *device)
992 {
993 struct dw_i2c_dev *dev = dev_get_drvdata(device);
994
995 if (dev->shared_with_punit)
996 return 0;
997
998 i2c_dw_disable(dev);
999 i2c_dw_prepare_clk(dev, false);
1000
1001 return 0;
1002 }
1003
i2c_dw_suspend(struct device * device)1004 static int i2c_dw_suspend(struct device *device)
1005 {
1006 struct dw_i2c_dev *dev = dev_get_drvdata(device);
1007
1008 i2c_mark_adapter_suspended(&dev->adapter);
1009
1010 return i2c_dw_runtime_suspend(device);
1011 }
1012
i2c_dw_runtime_resume(struct device * device)1013 static int i2c_dw_runtime_resume(struct device *device)
1014 {
1015 struct dw_i2c_dev *dev = dev_get_drvdata(device);
1016
1017 if (!dev->shared_with_punit)
1018 i2c_dw_prepare_clk(dev, true);
1019
1020 i2c_dw_init(dev);
1021
1022 return 0;
1023 }
1024
i2c_dw_resume(struct device * device)1025 static int i2c_dw_resume(struct device *device)
1026 {
1027 struct dw_i2c_dev *dev = dev_get_drvdata(device);
1028
1029 i2c_dw_runtime_resume(device);
1030 i2c_mark_adapter_resumed(&dev->adapter);
1031
1032 return 0;
1033 }
1034
1035 EXPORT_GPL_DEV_PM_OPS(i2c_dw_dev_pm_ops) = {
1036 .prepare = pm_sleep_ptr(i2c_dw_prepare),
1037 LATE_SYSTEM_SLEEP_PM_OPS(i2c_dw_suspend, i2c_dw_resume)
1038 RUNTIME_PM_OPS(i2c_dw_runtime_suspend, i2c_dw_runtime_resume, NULL)
1039 };
1040
i2c_dw_shutdown(struct dw_i2c_dev * dev)1041 void i2c_dw_shutdown(struct dw_i2c_dev *dev)
1042 {
1043 unsigned int con;
1044
1045 /*
1046 * We only need to handle shutdown for target mode to ensure
1047 * we NACK any incoming controller requests. Controller mode cleanup
1048 * is handled after each transfer in i2c_dw_xfer().
1049 */
1050 if (dev->mode != DW_IC_SLAVE)
1051 return;
1052
1053 /*
1054 * To quickly NACK the controller during shutdown, we set the target
1055 * disable bit while the controller is still enabled.
1056 */
1057 regmap_read(dev->map, DW_IC_CON, &con);
1058 con |= DW_IC_CON_SLAVE_DISABLE;
1059 regmap_write(dev->map, DW_IC_CON, con);
1060
1061 i2c_dw_disable(dev);
1062 }
1063 EXPORT_SYMBOL_GPL(i2c_dw_shutdown);
1064
1065 MODULE_DESCRIPTION("Synopsys DesignWare I2C bus adapter core");
1066 MODULE_LICENSE("GPL");
1067