xref: /linux/drivers/gpu/drm/bridge/parade-ps8640.c (revision 3a2c4d55e32ad65efebdb6de44eef3bfa08bb49d)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * Copyright (c) 2016 MediaTek Inc.
4  */
5 
6 #include <linux/delay.h>
7 #include <linux/err.h>
8 #include <linux/gpio/consumer.h>
9 #include <linux/i2c.h>
10 #include <linux/module.h>
11 #include <linux/of_graph.h>
12 #include <linux/pm_runtime.h>
13 #include <linux/regmap.h>
14 #include <linux/regulator/consumer.h>
15 
16 #include <drm/display/drm_dp_aux_bus.h>
17 #include <drm/display/drm_dp_helper.h>
18 #include <drm/drm_atomic_state_helper.h>
19 #include <drm/drm_bridge.h>
20 #include <drm/drm_edid.h>
21 #include <drm/drm_mipi_dsi.h>
22 #include <drm/drm_of.h>
23 #include <drm/drm_print.h>
24 
25 #define PAGE0_AUXCH_CFG3	0x76
26 #define  AUXCH_CFG3_RESET	0xff
27 #define PAGE0_SWAUX_ADDR_7_0	0x7d
28 #define PAGE0_SWAUX_ADDR_15_8	0x7e
29 #define PAGE0_SWAUX_ADDR_23_16	0x7f
30 #define  SWAUX_ADDR_MASK	GENMASK(19, 0)
31 #define PAGE0_SWAUX_LENGTH	0x80
32 #define  SWAUX_LENGTH_MASK	GENMASK(3, 0)
33 #define  SWAUX_NO_PAYLOAD	BIT(7)
34 #define PAGE0_SWAUX_WDATA	0x81
35 #define PAGE0_SWAUX_RDATA	0x82
36 #define PAGE0_SWAUX_CTRL	0x83
37 #define  SWAUX_SEND		BIT(0)
38 #define PAGE0_SWAUX_STATUS	0x84
39 #define  SWAUX_M_MASK		GENMASK(4, 0)
40 #define  SWAUX_STATUS_MASK	GENMASK(7, 5)
41 #define  SWAUX_STATUS_NACK	(0x1 << 5)
42 #define  SWAUX_STATUS_DEFER	(0x2 << 5)
43 #define  SWAUX_STATUS_ACKM	(0x3 << 5)
44 #define  SWAUX_STATUS_INVALID	(0x4 << 5)
45 #define  SWAUX_STATUS_I2C_NACK	(0x5 << 5)
46 #define  SWAUX_STATUS_I2C_DEFER	(0x6 << 5)
47 #define  SWAUX_STATUS_TIMEOUT	(0x7 << 5)
48 
49 #define PAGE2_GPIO_H		0xa7
50 #define  PS_GPIO9		BIT(1)
51 #define PAGE2_I2C_BYPASS	0xea
52 #define  I2C_BYPASS_EN		0xd0
53 #define PAGE2_MCS_EN		0xf3
54 #define  MCS_EN			BIT(0)
55 
56 #define PAGE3_SET_ADD		0xfe
57 #define  VDO_CTL_ADD		0x13
58 #define  VDO_DIS		0x18
59 #define  VDO_EN			0x1c
60 
61 #define NUM_MIPI_LANES		4
62 
63 #define COMMON_PS8640_REGMAP_CONFIG \
64 	.reg_bits = 8, \
65 	.val_bits = 8, \
66 	.cache_type = REGCACHE_NONE
67 
68 /*
69  * PS8640 uses multiple addresses:
70  * page[0]: for DP control
71  * page[1]: for VIDEO Bridge
72  * page[2]: for control top
73  * page[3]: for DSI Link Control1
74  * page[4]: for MIPI Phy
75  * page[5]: for VPLL
76  * page[6]: for DSI Link Control2
77  * page[7]: for SPI ROM mapping
78  */
79 enum page_addr_offset {
80 	PAGE0_DP_CNTL = 0,
81 	PAGE1_VDO_BDG,
82 	PAGE2_TOP_CNTL,
83 	PAGE3_DSI_CNTL1,
84 	PAGE4_MIPI_PHY,
85 	PAGE5_VPLL,
86 	PAGE6_DSI_CNTL2,
87 	PAGE7_SPI_CNTL,
88 	MAX_DEVS
89 };
90 
91 enum ps8640_vdo_control {
92 	DISABLE = VDO_DIS,
93 	ENABLE = VDO_EN,
94 };
95 
96 struct ps8640 {
97 	struct drm_bridge bridge;
98 	struct drm_bridge *panel_bridge;
99 	struct drm_dp_aux aux;
100 	struct mipi_dsi_device *dsi;
101 	struct i2c_client *page[MAX_DEVS];
102 	struct regmap	*regmap[MAX_DEVS];
103 	struct regulator_bulk_data supplies[2];
104 	struct gpio_desc *gpio_reset;
105 	struct gpio_desc *gpio_powerdown;
106 	struct device_link *link;
107 	bool pre_enabled;
108 	bool need_post_hpd_delay;
109 	struct mutex aux_lock;
110 };
111 
112 static const struct regmap_config ps8640_regmap_config[] = {
113 	[PAGE0_DP_CNTL] = {
114 		COMMON_PS8640_REGMAP_CONFIG,
115 		.max_register = 0xbf,
116 	},
117 	[PAGE1_VDO_BDG] = {
118 		COMMON_PS8640_REGMAP_CONFIG,
119 		.max_register = 0xff,
120 	},
121 	[PAGE2_TOP_CNTL] = {
122 		COMMON_PS8640_REGMAP_CONFIG,
123 		.max_register = 0xff,
124 	},
125 	[PAGE3_DSI_CNTL1] = {
126 		COMMON_PS8640_REGMAP_CONFIG,
127 		.max_register = 0xff,
128 	},
129 	[PAGE4_MIPI_PHY] = {
130 		COMMON_PS8640_REGMAP_CONFIG,
131 		.max_register = 0xff,
132 	},
133 	[PAGE5_VPLL] = {
134 		COMMON_PS8640_REGMAP_CONFIG,
135 		.max_register = 0x7f,
136 	},
137 	[PAGE6_DSI_CNTL2] = {
138 		COMMON_PS8640_REGMAP_CONFIG,
139 		.max_register = 0xff,
140 	},
141 	[PAGE7_SPI_CNTL] = {
142 		COMMON_PS8640_REGMAP_CONFIG,
143 		.max_register = 0xff,
144 	},
145 };
146 
147 static inline struct ps8640 *bridge_to_ps8640(struct drm_bridge *e)
148 {
149 	return container_of(e, struct ps8640, bridge);
150 }
151 
152 static inline struct ps8640 *aux_to_ps8640(struct drm_dp_aux *aux)
153 {
154 	return container_of(aux, struct ps8640, aux);
155 }
156 
157 static int _ps8640_wait_hpd_asserted(struct ps8640 *ps_bridge, unsigned long wait_us)
158 {
159 	struct regmap *map = ps_bridge->regmap[PAGE2_TOP_CNTL];
160 	int status;
161 	int ret;
162 
163 	/*
164 	 * Apparently something about the firmware in the chip signals that
165 	 * HPD goes high by reporting GPIO9 as high (even though HPD isn't
166 	 * actually connected to GPIO9).
167 	 */
168 	ret = regmap_read_poll_timeout(map, PAGE2_GPIO_H, status,
169 				       status & PS_GPIO9, 20000, wait_us);
170 
171 	/*
172 	 * The first time we see HPD go high after a reset we delay an extra
173 	 * 50 ms. The best guess is that the MCU is doing "stuff" during this
174 	 * time (maybe talking to the panel) and we don't want to interrupt it.
175 	 *
176 	 * No locking is done around "need_post_hpd_delay". If we're here we
177 	 * know we're holding a PM Runtime reference and the only other place
178 	 * that touches this is PM Runtime resume.
179 	 */
180 	if (!ret && ps_bridge->need_post_hpd_delay) {
181 		ps_bridge->need_post_hpd_delay = false;
182 		msleep(50);
183 	}
184 
185 	return ret;
186 }
187 
188 static int ps8640_wait_hpd_asserted(struct drm_dp_aux *aux, unsigned long wait_us)
189 {
190 	struct ps8640 *ps_bridge = aux_to_ps8640(aux);
191 	struct device *dev = &ps_bridge->page[PAGE0_DP_CNTL]->dev;
192 	int ret;
193 
194 	/*
195 	 * Note that this function is called by code that has already powered
196 	 * the panel. We have to power ourselves up but we don't need to worry
197 	 * about powering the panel.
198 	 */
199 	pm_runtime_get_sync(dev);
200 	ret = _ps8640_wait_hpd_asserted(ps_bridge, wait_us);
201 	pm_runtime_mark_last_busy(dev);
202 	pm_runtime_put_autosuspend(dev);
203 
204 	return ret;
205 }
206 
207 static ssize_t ps8640_aux_transfer_msg(struct drm_dp_aux *aux,
208 				       struct drm_dp_aux_msg *msg)
209 {
210 	struct ps8640 *ps_bridge = aux_to_ps8640(aux);
211 	struct regmap *map = ps_bridge->regmap[PAGE0_DP_CNTL];
212 	struct device *dev = &ps_bridge->page[PAGE0_DP_CNTL]->dev;
213 	size_t len = msg->size;
214 	unsigned int data;
215 	unsigned int base;
216 	int ret;
217 	u8 request = msg->request &
218 		     ~(DP_AUX_I2C_MOT | DP_AUX_I2C_WRITE_STATUS_UPDATE);
219 	u8 *buf = msg->buffer;
220 	u8 addr_len[PAGE0_SWAUX_LENGTH + 1 - PAGE0_SWAUX_ADDR_7_0];
221 	u8 i;
222 	bool is_native_aux = false;
223 
224 	if (len > DP_AUX_MAX_PAYLOAD_BYTES)
225 		return -EINVAL;
226 
227 	if (msg->address & ~SWAUX_ADDR_MASK)
228 		return -EINVAL;
229 
230 	switch (request) {
231 	case DP_AUX_NATIVE_WRITE:
232 	case DP_AUX_NATIVE_READ:
233 		is_native_aux = true;
234 		fallthrough;
235 	case DP_AUX_I2C_WRITE:
236 	case DP_AUX_I2C_READ:
237 		break;
238 	default:
239 		return -EINVAL;
240 	}
241 
242 	ret = regmap_write(map, PAGE0_AUXCH_CFG3, AUXCH_CFG3_RESET);
243 	if (ret) {
244 		DRM_DEV_ERROR(dev, "failed to write PAGE0_AUXCH_CFG3: %d\n",
245 			      ret);
246 		return ret;
247 	}
248 
249 	/* Assume it's good */
250 	msg->reply = 0;
251 
252 	base = PAGE0_SWAUX_ADDR_7_0;
253 	addr_len[PAGE0_SWAUX_ADDR_7_0 - base] = msg->address;
254 	addr_len[PAGE0_SWAUX_ADDR_15_8 - base] = msg->address >> 8;
255 	addr_len[PAGE0_SWAUX_ADDR_23_16 - base] = (msg->address >> 16) |
256 						  (msg->request << 4);
257 	addr_len[PAGE0_SWAUX_LENGTH - base] = (len == 0) ? SWAUX_NO_PAYLOAD :
258 					      ((len - 1) & SWAUX_LENGTH_MASK);
259 
260 	ret = regmap_bulk_write(map, PAGE0_SWAUX_ADDR_7_0, addr_len,
261 				ARRAY_SIZE(addr_len));
262 	if (ret) {
263 		DRM_DEV_ERROR(dev,
264 			      "failed to write AUX address %#x, len %zu: %d\n",
265 			      msg->address, len, ret);
266 		return ret;
267 	}
268 
269 	if (len && (request == DP_AUX_NATIVE_WRITE ||
270 		    request == DP_AUX_I2C_WRITE)) {
271 		/* Write to the internal FIFO buffer */
272 		for (i = 0; i < len; i++) {
273 			ret = regmap_write(map, PAGE0_SWAUX_WDATA, buf[i]);
274 			if (ret) {
275 				DRM_DEV_ERROR(dev,
276 					      "failed to write WDATA: %d\n",
277 					      ret);
278 				return ret;
279 			}
280 		}
281 	}
282 
283 	ret = regmap_write(map, PAGE0_SWAUX_CTRL, SWAUX_SEND);
284 	if (ret) {
285 		DRM_DEV_ERROR(dev, "failed to start AUX transfer: %d\n", ret);
286 		return ret;
287 	}
288 
289 	/* Zero delay loop because i2c transactions are slow already */
290 	ret = regmap_read_poll_timeout(map, PAGE0_SWAUX_CTRL, data,
291 				       !(data & SWAUX_SEND), 0, 50 * 1000);
292 	if (ret) {
293 		DRM_DEV_ERROR(dev, "failed to complete AUX transfer: %d\n",
294 			      ret);
295 		return ret;
296 	}
297 
298 	ret = regmap_read(map, PAGE0_SWAUX_STATUS, &data);
299 	if (ret) {
300 		DRM_DEV_ERROR(dev, "failed to read PAGE0_SWAUX_STATUS: %d\n",
301 			      ret);
302 		return ret;
303 	}
304 
305 	switch (data & SWAUX_STATUS_MASK) {
306 	case SWAUX_STATUS_NACK:
307 	case SWAUX_STATUS_I2C_NACK:
308 		/*
309 		 * The programming guide is not clear about whether a I2C NACK
310 		 * would trigger SWAUX_STATUS_NACK or SWAUX_STATUS_I2C_NACK. So
311 		 * we handle both cases together.
312 		 */
313 		if (is_native_aux)
314 			msg->reply |= DP_AUX_NATIVE_REPLY_NACK;
315 		else
316 			msg->reply |= DP_AUX_I2C_REPLY_NACK;
317 
318 		fallthrough;
319 	case SWAUX_STATUS_ACKM:
320 		len = data & SWAUX_M_MASK;
321 		break;
322 	case SWAUX_STATUS_DEFER:
323 	case SWAUX_STATUS_I2C_DEFER:
324 		if (is_native_aux)
325 			msg->reply |= DP_AUX_NATIVE_REPLY_DEFER;
326 		else
327 			msg->reply |= DP_AUX_I2C_REPLY_DEFER;
328 		len = data & SWAUX_M_MASK;
329 		break;
330 	case SWAUX_STATUS_INVALID:
331 		return -EOPNOTSUPP;
332 	case SWAUX_STATUS_TIMEOUT:
333 		return -ETIMEDOUT;
334 	}
335 
336 	if (len && (request == DP_AUX_NATIVE_READ ||
337 		    request == DP_AUX_I2C_READ)) {
338 		/* Read from the internal FIFO buffer */
339 		for (i = 0; i < len; i++) {
340 			ret = regmap_read(map, PAGE0_SWAUX_RDATA, &data);
341 			if (ret) {
342 				DRM_DEV_ERROR(dev,
343 					      "failed to read RDATA: %d\n",
344 					      ret);
345 				return ret;
346 			}
347 
348 			if (i < msg->size)
349 				buf[i] = data;
350 		}
351 	}
352 
353 	return min(len, msg->size);
354 }
355 
356 static ssize_t ps8640_aux_transfer(struct drm_dp_aux *aux,
357 				   struct drm_dp_aux_msg *msg)
358 {
359 	struct ps8640 *ps_bridge = aux_to_ps8640(aux);
360 	struct device *dev = &ps_bridge->page[PAGE0_DP_CNTL]->dev;
361 	int ret;
362 
363 	mutex_lock(&ps_bridge->aux_lock);
364 	pm_runtime_get_sync(dev);
365 	ret = _ps8640_wait_hpd_asserted(ps_bridge, 200 * 1000);
366 	if (ret) {
367 		pm_runtime_put_sync_suspend(dev);
368 		goto exit;
369 	}
370 	ret = ps8640_aux_transfer_msg(aux, msg);
371 	pm_runtime_mark_last_busy(dev);
372 	pm_runtime_put_autosuspend(dev);
373 
374 exit:
375 	mutex_unlock(&ps_bridge->aux_lock);
376 
377 	return ret;
378 }
379 
380 static void ps8640_bridge_vdo_control(struct ps8640 *ps_bridge,
381 				      const enum ps8640_vdo_control ctrl)
382 {
383 	struct regmap *map = ps_bridge->regmap[PAGE3_DSI_CNTL1];
384 	struct device *dev = &ps_bridge->page[PAGE3_DSI_CNTL1]->dev;
385 	u8 vdo_ctrl_buf[] = { VDO_CTL_ADD, ctrl };
386 	int ret;
387 
388 	ret = regmap_bulk_write(map, PAGE3_SET_ADD,
389 				vdo_ctrl_buf, sizeof(vdo_ctrl_buf));
390 
391 	if (ret < 0)
392 		dev_err(dev, "failed to %sable VDO: %d\n",
393 			ctrl == ENABLE ? "en" : "dis", ret);
394 }
395 
396 static int __maybe_unused ps8640_resume(struct device *dev)
397 {
398 	struct ps8640 *ps_bridge = dev_get_drvdata(dev);
399 	int ret;
400 
401 	ret = regulator_bulk_enable(ARRAY_SIZE(ps_bridge->supplies),
402 				    ps_bridge->supplies);
403 	if (ret < 0) {
404 		dev_err(dev, "cannot enable regulators %d\n", ret);
405 		return ret;
406 	}
407 
408 	gpiod_set_value(ps_bridge->gpio_powerdown, 0);
409 	gpiod_set_value(ps_bridge->gpio_reset, 1);
410 	usleep_range(2000, 2500);
411 	gpiod_set_value(ps_bridge->gpio_reset, 0);
412 	/* Double reset for T4 and T5 */
413 	msleep(50);
414 	gpiod_set_value(ps_bridge->gpio_reset, 1);
415 	msleep(50);
416 	gpiod_set_value(ps_bridge->gpio_reset, 0);
417 
418 	/* We just reset things, so we need a delay after the first HPD */
419 	ps_bridge->need_post_hpd_delay = true;
420 
421 	/*
422 	 * Mystery 200 ms delay for the "MCU to be ready". It's unclear if
423 	 * this is truly necessary since the MCU will already signal that
424 	 * things are "good to go" by signaling HPD on "gpio 9". See
425 	 * _ps8640_wait_hpd_asserted(). For now we'll keep this mystery delay
426 	 * just in case.
427 	 */
428 	msleep(200);
429 
430 	return 0;
431 }
432 
433 static int __maybe_unused ps8640_suspend(struct device *dev)
434 {
435 	struct ps8640 *ps_bridge = dev_get_drvdata(dev);
436 	int ret;
437 
438 	gpiod_set_value(ps_bridge->gpio_reset, 1);
439 	gpiod_set_value(ps_bridge->gpio_powerdown, 1);
440 	ret = regulator_bulk_disable(ARRAY_SIZE(ps_bridge->supplies),
441 				     ps_bridge->supplies);
442 	if (ret < 0)
443 		dev_err(dev, "cannot disable regulators %d\n", ret);
444 
445 	return ret;
446 }
447 
448 static const struct dev_pm_ops ps8640_pm_ops = {
449 	SET_RUNTIME_PM_OPS(ps8640_suspend, ps8640_resume, NULL)
450 	SET_SYSTEM_SLEEP_PM_OPS(pm_runtime_force_suspend,
451 				pm_runtime_force_resume)
452 };
453 
454 static void ps8640_atomic_pre_enable(struct drm_bridge *bridge,
455 				     struct drm_atomic_commit *state)
456 {
457 	struct ps8640 *ps_bridge = bridge_to_ps8640(bridge);
458 	struct regmap *map = ps_bridge->regmap[PAGE2_TOP_CNTL];
459 	struct device *dev = &ps_bridge->page[PAGE0_DP_CNTL]->dev;
460 	int ret;
461 
462 	pm_runtime_get_sync(dev);
463 	ret = _ps8640_wait_hpd_asserted(ps_bridge, 200 * 1000);
464 	if (ret < 0)
465 		dev_warn(dev, "HPD didn't go high: %d\n", ret);
466 
467 	/*
468 	 * The Manufacturer Command Set (MCS) is a device dependent interface
469 	 * intended for factory programming of the display module default
470 	 * parameters. Once the display module is configured, the MCS shall be
471 	 * disabled by the manufacturer. Once disabled, all MCS commands are
472 	 * ignored by the display interface.
473 	 */
474 
475 	ret = regmap_update_bits(map, PAGE2_MCS_EN, MCS_EN, 0);
476 	if (ret < 0)
477 		dev_warn(dev, "failed write PAGE2_MCS_EN: %d\n", ret);
478 
479 	/* Switch access edp panel's edid through i2c */
480 	ret = regmap_write(map, PAGE2_I2C_BYPASS, I2C_BYPASS_EN);
481 	if (ret < 0)
482 		dev_warn(dev, "failed write PAGE2_MCS_EN: %d\n", ret);
483 
484 	ps8640_bridge_vdo_control(ps_bridge, ENABLE);
485 
486 	ps_bridge->pre_enabled = true;
487 }
488 
489 static void ps8640_atomic_post_disable(struct drm_bridge *bridge,
490 				       struct drm_atomic_commit *state)
491 {
492 	struct ps8640 *ps_bridge = bridge_to_ps8640(bridge);
493 
494 	ps_bridge->pre_enabled = false;
495 
496 	ps8640_bridge_vdo_control(ps_bridge, DISABLE);
497 
498 	/*
499 	 * The bridge seems to expect everything to be power cycled at the
500 	 * disable process, so grab a lock here to make sure
501 	 * ps8640_aux_transfer() is not holding a runtime PM reference and
502 	 * preventing the bridge from suspend.
503 	 */
504 	mutex_lock(&ps_bridge->aux_lock);
505 
506 	pm_runtime_put_sync_suspend(&ps_bridge->page[PAGE0_DP_CNTL]->dev);
507 
508 	mutex_unlock(&ps_bridge->aux_lock);
509 }
510 
511 static int ps8640_bridge_attach(struct drm_bridge *bridge,
512 				struct drm_encoder *encoder,
513 				enum drm_bridge_attach_flags flags)
514 {
515 	struct ps8640 *ps_bridge = bridge_to_ps8640(bridge);
516 	struct device *dev = &ps_bridge->page[0]->dev;
517 	int ret;
518 
519 	if (!(flags & DRM_BRIDGE_ATTACH_NO_CONNECTOR))
520 		return -EINVAL;
521 
522 	ps_bridge->aux.drm_dev = bridge->dev;
523 	ret = drm_dp_aux_register(&ps_bridge->aux);
524 	if (ret) {
525 		dev_err(dev, "failed to register DP AUX channel: %d\n", ret);
526 		return ret;
527 	}
528 
529 	ps_bridge->link = device_link_add(bridge->dev->dev, dev, DL_FLAG_STATELESS);
530 	if (!ps_bridge->link) {
531 		dev_err(dev, "failed to create device link");
532 		ret = -EINVAL;
533 		goto err_devlink;
534 	}
535 
536 	/* Attach the panel-bridge to the dsi bridge */
537 	ret = drm_bridge_attach(encoder, ps_bridge->panel_bridge,
538 				&ps_bridge->bridge, flags);
539 	if (ret)
540 		goto err_bridge_attach;
541 
542 	return 0;
543 
544 err_bridge_attach:
545 	device_link_del(ps_bridge->link);
546 err_devlink:
547 	drm_dp_aux_unregister(&ps_bridge->aux);
548 
549 	return ret;
550 }
551 
552 static void ps8640_bridge_detach(struct drm_bridge *bridge)
553 {
554 	struct ps8640 *ps_bridge = bridge_to_ps8640(bridge);
555 
556 	drm_dp_aux_unregister(&ps_bridge->aux);
557 	if (ps_bridge->link)
558 		device_link_del(ps_bridge->link);
559 }
560 
561 static void ps8640_runtime_disable(void *data)
562 {
563 	pm_runtime_dont_use_autosuspend(data);
564 	pm_runtime_disable(data);
565 }
566 
567 static const struct drm_bridge_funcs ps8640_bridge_funcs = {
568 	.attach = ps8640_bridge_attach,
569 	.detach = ps8640_bridge_detach,
570 	.atomic_post_disable = ps8640_atomic_post_disable,
571 	.atomic_pre_enable = ps8640_atomic_pre_enable,
572 	.atomic_duplicate_state = drm_atomic_helper_bridge_duplicate_state,
573 	.atomic_destroy_state = drm_atomic_helper_bridge_destroy_state,
574 	.atomic_create_state = drm_atomic_helper_bridge_create_state,
575 };
576 
577 static int ps8640_bridge_get_dsi_resources(struct device *dev, struct ps8640 *ps_bridge)
578 {
579 	struct device_node *in_ep, *dsi_node;
580 	struct mipi_dsi_device *dsi;
581 	struct mipi_dsi_host *host;
582 	const struct mipi_dsi_device_info info = { .type = "ps8640",
583 						   .channel = 0,
584 						   .node = NULL,
585 						 };
586 
587 	/* port@0 is ps8640 dsi input port */
588 	in_ep = of_graph_get_endpoint_by_regs(dev->of_node, 0, -1);
589 	if (!in_ep)
590 		return -ENODEV;
591 
592 	dsi_node = of_graph_get_remote_port_parent(in_ep);
593 	of_node_put(in_ep);
594 	if (!dsi_node)
595 		return -ENODEV;
596 
597 	host = of_find_mipi_dsi_host_by_node(dsi_node);
598 	of_node_put(dsi_node);
599 	if (!host)
600 		return -EPROBE_DEFER;
601 
602 	dsi = devm_mipi_dsi_device_register_full(dev, host, &info);
603 	if (IS_ERR(dsi)) {
604 		dev_err(dev, "failed to create dsi device\n");
605 		return PTR_ERR(dsi);
606 	}
607 
608 	ps_bridge->dsi = dsi;
609 
610 	dsi->host = host;
611 	dsi->mode_flags = MIPI_DSI_MODE_VIDEO |
612 			  MIPI_DSI_MODE_VIDEO_SYNC_PULSE;
613 	dsi->format = MIPI_DSI_FMT_RGB888;
614 	dsi->lanes = NUM_MIPI_LANES;
615 
616 	return 0;
617 }
618 
619 static int ps8640_bridge_link_panel(struct drm_dp_aux *aux)
620 {
621 	struct ps8640 *ps_bridge = aux_to_ps8640(aux);
622 	struct device *dev = aux->dev;
623 	struct device_node *np = dev->of_node;
624 	int ret;
625 
626 	/*
627 	 * NOTE about returning -EPROBE_DEFER from this function: if we
628 	 * return an error (most relevant to -EPROBE_DEFER) it will only
629 	 * be passed out to ps8640_probe() if it called this directly (AKA the
630 	 * panel isn't under the "aux-bus" node). That should be fine because
631 	 * if the panel is under "aux-bus" it's guaranteed to have probed by
632 	 * the time this function has been called.
633 	 */
634 
635 	/* port@1 is ps8640 output port */
636 	ps_bridge->panel_bridge = devm_drm_of_get_bridge(dev, np, 1, 0);
637 	if (IS_ERR(ps_bridge->panel_bridge))
638 		return PTR_ERR(ps_bridge->panel_bridge);
639 
640 	ret = devm_drm_bridge_add(dev, &ps_bridge->bridge);
641 	if (ret)
642 		return ret;
643 
644 	return devm_mipi_dsi_attach(dev, ps_bridge->dsi);
645 }
646 
647 static int ps8640_probe(struct i2c_client *client)
648 {
649 	struct device *dev = &client->dev;
650 	struct ps8640 *ps_bridge;
651 	int ret;
652 	u32 i;
653 
654 	ps_bridge = devm_drm_bridge_alloc(dev, struct ps8640, bridge,
655 					  &ps8640_bridge_funcs);
656 	if (IS_ERR(ps_bridge))
657 		return PTR_ERR(ps_bridge);
658 
659 	mutex_init(&ps_bridge->aux_lock);
660 
661 	ps_bridge->supplies[0].supply = "vdd12";
662 	ps_bridge->supplies[1].supply = "vdd33";
663 	ret = devm_regulator_bulk_get(dev, ARRAY_SIZE(ps_bridge->supplies),
664 				      ps_bridge->supplies);
665 	if (ret)
666 		return ret;
667 
668 	ps_bridge->gpio_powerdown = devm_gpiod_get(&client->dev, "powerdown",
669 						   GPIOD_OUT_HIGH);
670 	if (IS_ERR(ps_bridge->gpio_powerdown))
671 		return PTR_ERR(ps_bridge->gpio_powerdown);
672 
673 	/*
674 	 * Assert the reset to avoid the bridge being initialized prematurely
675 	 */
676 	ps_bridge->gpio_reset = devm_gpiod_get(&client->dev, "reset",
677 					       GPIOD_OUT_HIGH);
678 	if (IS_ERR(ps_bridge->gpio_reset))
679 		return PTR_ERR(ps_bridge->gpio_reset);
680 
681 	ps_bridge->bridge.of_node = dev->of_node;
682 	ps_bridge->bridge.type = DRM_MODE_CONNECTOR_eDP;
683 
684 	/*
685 	 * Get MIPI DSI resources early. These can return -EPROBE_DEFER so
686 	 * we want to get them out of the way sooner.
687 	 */
688 	ret = ps8640_bridge_get_dsi_resources(&client->dev, ps_bridge);
689 	if (ret)
690 		return ret;
691 
692 	ps_bridge->page[PAGE0_DP_CNTL] = client;
693 
694 	ps_bridge->regmap[PAGE0_DP_CNTL] = devm_regmap_init_i2c(client, ps8640_regmap_config);
695 	if (IS_ERR(ps_bridge->regmap[PAGE0_DP_CNTL]))
696 		return PTR_ERR(ps_bridge->regmap[PAGE0_DP_CNTL]);
697 
698 	for (i = 1; i < ARRAY_SIZE(ps_bridge->page); i++) {
699 		ps_bridge->page[i] = devm_i2c_new_dummy_device(&client->dev,
700 							     client->adapter,
701 							     client->addr + i);
702 		if (IS_ERR(ps_bridge->page[i]))
703 			return PTR_ERR(ps_bridge->page[i]);
704 
705 		ps_bridge->regmap[i] = devm_regmap_init_i2c(ps_bridge->page[i],
706 							    ps8640_regmap_config + i);
707 		if (IS_ERR(ps_bridge->regmap[i]))
708 			return PTR_ERR(ps_bridge->regmap[i]);
709 	}
710 
711 	i2c_set_clientdata(client, ps_bridge);
712 
713 	ps_bridge->aux.name = "parade-ps8640-aux";
714 	ps_bridge->aux.dev = dev;
715 	ps_bridge->aux.transfer = ps8640_aux_transfer;
716 	ps_bridge->aux.wait_hpd_asserted = ps8640_wait_hpd_asserted;
717 	drm_dp_aux_init(&ps_bridge->aux);
718 
719 	pm_runtime_enable(dev);
720 	/*
721 	 * Powering on ps8640 takes ~300ms. To avoid wasting time on power
722 	 * cycling ps8640 too often, set autosuspend_delay to 2000ms to ensure
723 	 * the bridge wouldn't suspend in between each _aux_transfer_msg() call
724 	 * during EDID read (~20ms in my experiment) and in between the last
725 	 * _aux_transfer_msg() call during EDID read and the _pre_enable() call
726 	 * (~100ms in my experiment).
727 	 */
728 	pm_runtime_set_autosuspend_delay(dev, 2000);
729 	pm_runtime_use_autosuspend(dev);
730 	pm_suspend_ignore_children(dev, true);
731 	ret = devm_add_action_or_reset(dev, ps8640_runtime_disable, dev);
732 	if (ret)
733 		return ret;
734 
735 	ret = devm_of_dp_aux_populate_bus(&ps_bridge->aux, ps8640_bridge_link_panel);
736 
737 	/*
738 	 * If devm_of_dp_aux_populate_bus() returns -ENODEV then it's up to
739 	 * usa to call ps8640_bridge_link_panel() directly. NOTE: in this case
740 	 * the function is allowed to -EPROBE_DEFER.
741 	 */
742 	if (ret == -ENODEV)
743 		return ps8640_bridge_link_panel(&ps_bridge->aux);
744 
745 	return ret;
746 }
747 
748 static const struct of_device_id ps8640_match[] = {
749 	{ .compatible = "parade,ps8640" },
750 	{ }
751 };
752 MODULE_DEVICE_TABLE(of, ps8640_match);
753 
754 static struct i2c_driver ps8640_driver = {
755 	.probe = ps8640_probe,
756 	.driver = {
757 		.name = "ps8640",
758 		.of_match_table = ps8640_match,
759 		.pm = &ps8640_pm_ops,
760 	},
761 };
762 module_i2c_driver(ps8640_driver);
763 
764 MODULE_AUTHOR("Jitao Shi <jitao.shi@mediatek.com>");
765 MODULE_AUTHOR("CK Hu <ck.hu@mediatek.com>");
766 MODULE_AUTHOR("Enric Balletbo i Serra <enric.balletbo@collabora.com>");
767 MODULE_DESCRIPTION("PARADE ps8640 DSI-eDP converter driver");
768 MODULE_LICENSE("GPL v2");
769