xref: /linux-6.15/drivers/gpu/drm/mediatek/mtk_dp.c (revision 01130f52)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Copyright (c) 2019-2022 MediaTek Inc.
4  * Copyright (c) 2022 BayLibre
5  */
6 
7 #include <drm/display/drm_dp_aux_bus.h>
8 #include <drm/display/drm_dp.h>
9 #include <drm/display/drm_dp_helper.h>
10 #include <drm/drm_atomic_helper.h>
11 #include <drm/drm_bridge.h>
12 #include <drm/drm_crtc.h>
13 #include <drm/drm_edid.h>
14 #include <drm/drm_of.h>
15 #include <drm/drm_panel.h>
16 #include <drm/drm_print.h>
17 #include <drm/drm_probe_helper.h>
18 #include <linux/arm-smccc.h>
19 #include <linux/clk.h>
20 #include <linux/delay.h>
21 #include <linux/errno.h>
22 #include <linux/kernel.h>
23 #include <linux/media-bus-format.h>
24 #include <linux/nvmem-consumer.h>
25 #include <linux/of.h>
26 #include <linux/of_irq.h>
27 #include <linux/of_platform.h>
28 #include <linux/phy/phy.h>
29 #include <linux/platform_device.h>
30 #include <linux/pm_runtime.h>
31 #include <linux/regmap.h>
32 #include <linux/soc/mediatek/mtk_sip_svc.h>
33 #include <sound/hdmi-codec.h>
34 #include <video/videomode.h>
35 
36 #include "mtk_dp_reg.h"
37 
38 #define MTK_DP_SIP_CONTROL_AARCH32	MTK_SIP_SMC_CMD(0x523)
39 #define MTK_DP_SIP_ATF_EDP_VIDEO_UNMUTE	(BIT(0) | BIT(5))
40 #define MTK_DP_SIP_ATF_VIDEO_UNMUTE	BIT(5)
41 
42 #define MTK_DP_THREAD_CABLE_STATE_CHG	BIT(0)
43 #define MTK_DP_THREAD_HPD_EVENT		BIT(1)
44 
45 #define MTK_DP_4P1T 4
46 #define MTK_DP_HDE 2
47 #define MTK_DP_PIX_PER_ADDR 2
48 #define MTK_DP_AUX_WAIT_REPLY_COUNT 20
49 #define MTK_DP_TBC_BUF_READ_START_ADDR 0x8
50 #define MTK_DP_TRAIN_VOLTAGE_LEVEL_RETRY 5
51 #define MTK_DP_TRAIN_DOWNSCALE_RETRY 10
52 #define MTK_DP_VERSION 0x11
53 #define MTK_DP_SDP_AUI 0x4
54 
55 enum {
56 	MTK_DP_CAL_GLB_BIAS_TRIM = 0,
57 	MTK_DP_CAL_CLKTX_IMPSE,
58 	MTK_DP_CAL_LN_TX_IMPSEL_PMOS_0,
59 	MTK_DP_CAL_LN_TX_IMPSEL_PMOS_1,
60 	MTK_DP_CAL_LN_TX_IMPSEL_PMOS_2,
61 	MTK_DP_CAL_LN_TX_IMPSEL_PMOS_3,
62 	MTK_DP_CAL_LN_TX_IMPSEL_NMOS_0,
63 	MTK_DP_CAL_LN_TX_IMPSEL_NMOS_1,
64 	MTK_DP_CAL_LN_TX_IMPSEL_NMOS_2,
65 	MTK_DP_CAL_LN_TX_IMPSEL_NMOS_3,
66 	MTK_DP_CAL_MAX,
67 };
68 
69 struct mtk_dp_train_info {
70 	bool sink_ssc;
71 	bool cable_plugged_in;
72 	/* link_rate is in multiple of 0.27Gbps */
73 	int link_rate;
74 	int lane_count;
75 	unsigned int channel_eq_pattern;
76 };
77 
78 struct mtk_dp_audio_cfg {
79 	bool detect_monitor;
80 	int sad_count;
81 	int sample_rate;
82 	int word_length_bits;
83 	int channels;
84 };
85 
86 struct mtk_dp_info {
87 	enum dp_pixelformat format;
88 	struct videomode vm;
89 	struct mtk_dp_audio_cfg audio_cur_cfg;
90 };
91 
92 struct mtk_dp_efuse_fmt {
93 	unsigned short idx;
94 	unsigned short shift;
95 	unsigned short mask;
96 	unsigned short min_val;
97 	unsigned short max_val;
98 	unsigned short default_val;
99 };
100 
101 struct mtk_dp {
102 	bool enabled;
103 	bool need_debounce;
104 	int irq;
105 	u8 max_lanes;
106 	u8 max_linkrate;
107 	u8 rx_cap[DP_RECEIVER_CAP_SIZE];
108 	u32 cal_data[MTK_DP_CAL_MAX];
109 	u32 irq_thread_handle;
110 	/* irq_thread_lock is used to protect irq_thread_handle */
111 	spinlock_t irq_thread_lock;
112 
113 	struct device *dev;
114 	struct drm_bridge bridge;
115 	struct drm_bridge *next_bridge;
116 	struct drm_connector *conn;
117 	struct drm_device *drm_dev;
118 	struct drm_dp_aux aux;
119 
120 	const struct mtk_dp_data *data;
121 	struct mtk_dp_info info;
122 	struct mtk_dp_train_info train_info;
123 
124 	struct platform_device *phy_dev;
125 	struct phy *phy;
126 	struct regmap *regs;
127 	struct timer_list debounce_timer;
128 
129 	/* For audio */
130 	bool audio_enable;
131 	hdmi_codec_plugged_cb plugged_cb;
132 	struct platform_device *audio_pdev;
133 
134 	struct device *codec_dev;
135 	/* protect the plugged_cb as it's used in both bridge ops and audio */
136 	struct mutex update_plugged_status_lock;
137 };
138 
139 struct mtk_dp_data {
140 	int bridge_type;
141 	unsigned int smc_cmd;
142 	const struct mtk_dp_efuse_fmt *efuse_fmt;
143 	bool audio_supported;
144 	bool audio_pkt_in_hblank_area;
145 	u16 audio_m_div2_bit;
146 };
147 
148 static const struct mtk_dp_efuse_fmt mt8188_dp_efuse_fmt[MTK_DP_CAL_MAX] = {
149 	[MTK_DP_CAL_GLB_BIAS_TRIM] = {
150 		.idx = 0,
151 		.shift = 10,
152 		.mask = 0x1f,
153 		.min_val = 1,
154 		.max_val = 0x1e,
155 		.default_val = 0xf,
156 	},
157 	[MTK_DP_CAL_CLKTX_IMPSE] = {
158 		.idx = 0,
159 		.shift = 15,
160 		.mask = 0xf,
161 		.min_val = 1,
162 		.max_val = 0xe,
163 		.default_val = 0x8,
164 	},
165 	[MTK_DP_CAL_LN_TX_IMPSEL_PMOS_0] = {
166 		.idx = 1,
167 		.shift = 0,
168 		.mask = 0xf,
169 		.min_val = 1,
170 		.max_val = 0xe,
171 		.default_val = 0x8,
172 	},
173 	[MTK_DP_CAL_LN_TX_IMPSEL_PMOS_1] = {
174 		.idx = 1,
175 		.shift = 8,
176 		.mask = 0xf,
177 		.min_val = 1,
178 		.max_val = 0xe,
179 		.default_val = 0x8,
180 	},
181 	[MTK_DP_CAL_LN_TX_IMPSEL_PMOS_2] = {
182 		.idx = 1,
183 		.shift = 16,
184 		.mask = 0xf,
185 		.min_val = 1,
186 		.max_val = 0xe,
187 		.default_val = 0x8,
188 	},
189 	[MTK_DP_CAL_LN_TX_IMPSEL_PMOS_3] = {
190 		.idx = 1,
191 		.shift = 24,
192 		.mask = 0xf,
193 		.min_val = 1,
194 		.max_val = 0xe,
195 		.default_val = 0x8,
196 	},
197 	[MTK_DP_CAL_LN_TX_IMPSEL_NMOS_0] = {
198 		.idx = 1,
199 		.shift = 4,
200 		.mask = 0xf,
201 		.min_val = 1,
202 		.max_val = 0xe,
203 		.default_val = 0x8,
204 	},
205 	[MTK_DP_CAL_LN_TX_IMPSEL_NMOS_1] = {
206 		.idx = 1,
207 		.shift = 12,
208 		.mask = 0xf,
209 		.min_val = 1,
210 		.max_val = 0xe,
211 		.default_val = 0x8,
212 	},
213 	[MTK_DP_CAL_LN_TX_IMPSEL_NMOS_2] = {
214 		.idx = 1,
215 		.shift = 20,
216 		.mask = 0xf,
217 		.min_val = 1,
218 		.max_val = 0xe,
219 		.default_val = 0x8,
220 	},
221 	[MTK_DP_CAL_LN_TX_IMPSEL_NMOS_3] = {
222 		.idx = 1,
223 		.shift = 28,
224 		.mask = 0xf,
225 		.min_val = 1,
226 		.max_val = 0xe,
227 		.default_val = 0x8,
228 	},
229 };
230 
231 static const struct mtk_dp_efuse_fmt mt8195_edp_efuse_fmt[MTK_DP_CAL_MAX] = {
232 	[MTK_DP_CAL_GLB_BIAS_TRIM] = {
233 		.idx = 3,
234 		.shift = 27,
235 		.mask = 0x1f,
236 		.min_val = 1,
237 		.max_val = 0x1e,
238 		.default_val = 0xf,
239 	},
240 	[MTK_DP_CAL_CLKTX_IMPSE] = {
241 		.idx = 0,
242 		.shift = 9,
243 		.mask = 0xf,
244 		.min_val = 1,
245 		.max_val = 0xe,
246 		.default_val = 0x8,
247 	},
248 	[MTK_DP_CAL_LN_TX_IMPSEL_PMOS_0] = {
249 		.idx = 2,
250 		.shift = 28,
251 		.mask = 0xf,
252 		.min_val = 1,
253 		.max_val = 0xe,
254 		.default_val = 0x8,
255 	},
256 	[MTK_DP_CAL_LN_TX_IMPSEL_PMOS_1] = {
257 		.idx = 2,
258 		.shift = 20,
259 		.mask = 0xf,
260 		.min_val = 1,
261 		.max_val = 0xe,
262 		.default_val = 0x8,
263 	},
264 	[MTK_DP_CAL_LN_TX_IMPSEL_PMOS_2] = {
265 		.idx = 2,
266 		.shift = 12,
267 		.mask = 0xf,
268 		.min_val = 1,
269 		.max_val = 0xe,
270 		.default_val = 0x8,
271 	},
272 	[MTK_DP_CAL_LN_TX_IMPSEL_PMOS_3] = {
273 		.idx = 2,
274 		.shift = 4,
275 		.mask = 0xf,
276 		.min_val = 1,
277 		.max_val = 0xe,
278 		.default_val = 0x8,
279 	},
280 	[MTK_DP_CAL_LN_TX_IMPSEL_NMOS_0] = {
281 		.idx = 2,
282 		.shift = 24,
283 		.mask = 0xf,
284 		.min_val = 1,
285 		.max_val = 0xe,
286 		.default_val = 0x8,
287 	},
288 	[MTK_DP_CAL_LN_TX_IMPSEL_NMOS_1] = {
289 		.idx = 2,
290 		.shift = 16,
291 		.mask = 0xf,
292 		.min_val = 1,
293 		.max_val = 0xe,
294 		.default_val = 0x8,
295 	},
296 	[MTK_DP_CAL_LN_TX_IMPSEL_NMOS_2] = {
297 		.idx = 2,
298 		.shift = 8,
299 		.mask = 0xf,
300 		.min_val = 1,
301 		.max_val = 0xe,
302 		.default_val = 0x8,
303 	},
304 	[MTK_DP_CAL_LN_TX_IMPSEL_NMOS_3] = {
305 		.idx = 2,
306 		.shift = 0,
307 		.mask = 0xf,
308 		.min_val = 1,
309 		.max_val = 0xe,
310 		.default_val = 0x8,
311 	},
312 };
313 
314 static const struct mtk_dp_efuse_fmt mt8195_dp_efuse_fmt[MTK_DP_CAL_MAX] = {
315 	[MTK_DP_CAL_GLB_BIAS_TRIM] = {
316 		.idx = 0,
317 		.shift = 27,
318 		.mask = 0x1f,
319 		.min_val = 1,
320 		.max_val = 0x1e,
321 		.default_val = 0xf,
322 	},
323 	[MTK_DP_CAL_CLKTX_IMPSE] = {
324 		.idx = 0,
325 		.shift = 13,
326 		.mask = 0xf,
327 		.min_val = 1,
328 		.max_val = 0xe,
329 		.default_val = 0x8,
330 	},
331 	[MTK_DP_CAL_LN_TX_IMPSEL_PMOS_0] = {
332 		.idx = 1,
333 		.shift = 28,
334 		.mask = 0xf,
335 		.min_val = 1,
336 		.max_val = 0xe,
337 		.default_val = 0x8,
338 	},
339 	[MTK_DP_CAL_LN_TX_IMPSEL_PMOS_1] = {
340 		.idx = 1,
341 		.shift = 20,
342 		.mask = 0xf,
343 		.min_val = 1,
344 		.max_val = 0xe,
345 		.default_val = 0x8,
346 	},
347 	[MTK_DP_CAL_LN_TX_IMPSEL_PMOS_2] = {
348 		.idx = 1,
349 		.shift = 12,
350 		.mask = 0xf,
351 		.min_val = 1,
352 		.max_val = 0xe,
353 		.default_val = 0x8,
354 	},
355 	[MTK_DP_CAL_LN_TX_IMPSEL_PMOS_3] = {
356 		.idx = 1,
357 		.shift = 4,
358 		.mask = 0xf,
359 		.min_val = 1,
360 		.max_val = 0xe,
361 		.default_val = 0x8,
362 	},
363 	[MTK_DP_CAL_LN_TX_IMPSEL_NMOS_0] = {
364 		.idx = 1,
365 		.shift = 24,
366 		.mask = 0xf,
367 		.min_val = 1,
368 		.max_val = 0xe,
369 		.default_val = 0x8,
370 	},
371 	[MTK_DP_CAL_LN_TX_IMPSEL_NMOS_1] = {
372 		.idx = 1,
373 		.shift = 16,
374 		.mask = 0xf,
375 		.min_val = 1,
376 		.max_val = 0xe,
377 		.default_val = 0x8,
378 	},
379 	[MTK_DP_CAL_LN_TX_IMPSEL_NMOS_2] = {
380 		.idx = 1,
381 		.shift = 8,
382 		.mask = 0xf,
383 		.min_val = 1,
384 		.max_val = 0xe,
385 		.default_val = 0x8,
386 	},
387 	[MTK_DP_CAL_LN_TX_IMPSEL_NMOS_3] = {
388 		.idx = 1,
389 		.shift = 0,
390 		.mask = 0xf,
391 		.min_val = 1,
392 		.max_val = 0xe,
393 		.default_val = 0x8,
394 	},
395 };
396 
397 static const struct regmap_config mtk_dp_regmap_config = {
398 	.reg_bits = 32,
399 	.val_bits = 32,
400 	.reg_stride = 4,
401 	.max_register = SEC_OFFSET + 0x90,
402 	.name = "mtk-dp-registers",
403 };
404 
405 static struct mtk_dp *mtk_dp_from_bridge(struct drm_bridge *b)
406 {
407 	return container_of(b, struct mtk_dp, bridge);
408 }
409 
410 static u32 mtk_dp_read(struct mtk_dp *mtk_dp, u32 offset)
411 {
412 	u32 read_val;
413 	int ret;
414 
415 	ret = regmap_read(mtk_dp->regs, offset, &read_val);
416 	if (ret) {
417 		dev_err(mtk_dp->dev, "Failed to read register 0x%x: %d\n",
418 			offset, ret);
419 		return 0;
420 	}
421 
422 	return read_val;
423 }
424 
425 static int mtk_dp_write(struct mtk_dp *mtk_dp, u32 offset, u32 val)
426 {
427 	int ret = regmap_write(mtk_dp->regs, offset, val);
428 
429 	if (ret)
430 		dev_err(mtk_dp->dev,
431 			"Failed to write register 0x%x with value 0x%x\n",
432 			offset, val);
433 	return ret;
434 }
435 
436 static int mtk_dp_update_bits(struct mtk_dp *mtk_dp, u32 offset,
437 			      u32 val, u32 mask)
438 {
439 	int ret = regmap_update_bits(mtk_dp->regs, offset, mask, val);
440 
441 	if (ret)
442 		dev_err(mtk_dp->dev,
443 			"Failed to update register 0x%x with value 0x%x, mask 0x%x\n",
444 			offset, val, mask);
445 	return ret;
446 }
447 
448 static void mtk_dp_bulk_16bit_write(struct mtk_dp *mtk_dp, u32 offset, u8 *buf,
449 				    size_t length)
450 {
451 	int i;
452 
453 	/* 2 bytes per register */
454 	for (i = 0; i < length; i += 2) {
455 		u32 val = buf[i] | (i + 1 < length ? buf[i + 1] << 8 : 0);
456 
457 		if (mtk_dp_write(mtk_dp, offset + i * 2, val))
458 			return;
459 	}
460 }
461 
462 static void mtk_dp_msa_bypass_enable(struct mtk_dp *mtk_dp, bool enable)
463 {
464 	u32 mask = HTOTAL_SEL_DP_ENC0_P0 | VTOTAL_SEL_DP_ENC0_P0 |
465 		   HSTART_SEL_DP_ENC0_P0 | VSTART_SEL_DP_ENC0_P0 |
466 		   HWIDTH_SEL_DP_ENC0_P0 | VHEIGHT_SEL_DP_ENC0_P0 |
467 		   HSP_SEL_DP_ENC0_P0 | HSW_SEL_DP_ENC0_P0 |
468 		   VSP_SEL_DP_ENC0_P0 | VSW_SEL_DP_ENC0_P0;
469 
470 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3030, enable ? 0 : mask, mask);
471 }
472 
473 static void mtk_dp_set_msa(struct mtk_dp *mtk_dp)
474 {
475 	struct drm_display_mode mode;
476 	struct videomode *vm = &mtk_dp->info.vm;
477 
478 	drm_display_mode_from_videomode(vm, &mode);
479 
480 	/* horizontal */
481 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3010,
482 			   mode.htotal, HTOTAL_SW_DP_ENC0_P0_MASK);
483 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3018,
484 			   vm->hsync_len + vm->hback_porch,
485 			   HSTART_SW_DP_ENC0_P0_MASK);
486 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3028,
487 			   vm->hsync_len, HSW_SW_DP_ENC0_P0_MASK);
488 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3028,
489 			   0, HSP_SW_DP_ENC0_P0_MASK);
490 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3020,
491 			   vm->hactive, HWIDTH_SW_DP_ENC0_P0_MASK);
492 
493 	/* vertical */
494 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3014,
495 			   mode.vtotal, VTOTAL_SW_DP_ENC0_P0_MASK);
496 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_301C,
497 			   vm->vsync_len + vm->vback_porch,
498 			   VSTART_SW_DP_ENC0_P0_MASK);
499 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_302C,
500 			   vm->vsync_len, VSW_SW_DP_ENC0_P0_MASK);
501 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_302C,
502 			   0, VSP_SW_DP_ENC0_P0_MASK);
503 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3024,
504 			   vm->vactive, VHEIGHT_SW_DP_ENC0_P0_MASK);
505 
506 	/* horizontal */
507 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3064,
508 			   vm->hactive, HDE_NUM_LAST_DP_ENC0_P0_MASK);
509 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3154,
510 			   mode.htotal, PGEN_HTOTAL_DP_ENC0_P0_MASK);
511 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3158,
512 			   vm->hfront_porch,
513 			   PGEN_HSYNC_RISING_DP_ENC0_P0_MASK);
514 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_315C,
515 			   vm->hsync_len,
516 			   PGEN_HSYNC_PULSE_WIDTH_DP_ENC0_P0_MASK);
517 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3160,
518 			   vm->hback_porch + vm->hsync_len,
519 			   PGEN_HFDE_START_DP_ENC0_P0_MASK);
520 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3164,
521 			   vm->hactive,
522 			   PGEN_HFDE_ACTIVE_WIDTH_DP_ENC0_P0_MASK);
523 
524 	/* vertical */
525 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3168,
526 			   mode.vtotal,
527 			   PGEN_VTOTAL_DP_ENC0_P0_MASK);
528 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_316C,
529 			   vm->vfront_porch,
530 			   PGEN_VSYNC_RISING_DP_ENC0_P0_MASK);
531 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3170,
532 			   vm->vsync_len,
533 			   PGEN_VSYNC_PULSE_WIDTH_DP_ENC0_P0_MASK);
534 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3174,
535 			   vm->vback_porch + vm->vsync_len,
536 			   PGEN_VFDE_START_DP_ENC0_P0_MASK);
537 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3178,
538 			   vm->vactive,
539 			   PGEN_VFDE_ACTIVE_WIDTH_DP_ENC0_P0_MASK);
540 }
541 
542 static int mtk_dp_set_color_format(struct mtk_dp *mtk_dp,
543 				   enum dp_pixelformat color_format)
544 {
545 	u32 val;
546 
547 	/* update MISC0 */
548 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3034,
549 			   color_format << DP_TEST_COLOR_FORMAT_SHIFT,
550 			   DP_TEST_COLOR_FORMAT_MASK);
551 
552 	switch (color_format) {
553 	case DP_PIXELFORMAT_YUV422:
554 		val = PIXEL_ENCODE_FORMAT_DP_ENC0_P0_YCBCR422;
555 		break;
556 	case DP_PIXELFORMAT_RGB:
557 		val = PIXEL_ENCODE_FORMAT_DP_ENC0_P0_RGB;
558 		break;
559 	default:
560 		drm_warn(mtk_dp->drm_dev, "Unsupported color format: %d\n",
561 			 color_format);
562 		return -EINVAL;
563 	}
564 
565 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_303C,
566 			   val, PIXEL_ENCODE_FORMAT_DP_ENC0_P0_MASK);
567 	return 0;
568 }
569 
570 static void mtk_dp_set_color_depth(struct mtk_dp *mtk_dp)
571 {
572 	/* Only support 8 bits currently */
573 	/* Update MISC0 */
574 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3034,
575 			   DP_MSA_MISC_8_BPC, DP_TEST_BIT_DEPTH_MASK);
576 
577 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_303C,
578 			   VIDEO_COLOR_DEPTH_DP_ENC0_P0_8BIT,
579 			   VIDEO_COLOR_DEPTH_DP_ENC0_P0_MASK);
580 }
581 
582 static void mtk_dp_config_mn_mode(struct mtk_dp *mtk_dp)
583 {
584 	/* 0: hw mode, 1: sw mode */
585 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3004,
586 			   0, VIDEO_M_CODE_SEL_DP_ENC0_P0_MASK);
587 }
588 
589 static void mtk_dp_set_sram_read_start(struct mtk_dp *mtk_dp, u32 val)
590 {
591 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_303C,
592 			   val, SRAM_START_READ_THRD_DP_ENC0_P0_MASK);
593 }
594 
595 static void mtk_dp_setup_encoder(struct mtk_dp *mtk_dp)
596 {
597 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_303C,
598 			   VIDEO_MN_GEN_EN_DP_ENC0_P0,
599 			   VIDEO_MN_GEN_EN_DP_ENC0_P0);
600 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3040,
601 			   SDP_DOWN_CNT_DP_ENC0_P0_VAL,
602 			   SDP_DOWN_CNT_INIT_DP_ENC0_P0_MASK);
603 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC1_P0_3364,
604 			   SDP_DOWN_CNT_IN_HBLANK_DP_ENC1_P0_VAL,
605 			   SDP_DOWN_CNT_INIT_IN_HBLANK_DP_ENC1_P0_MASK);
606 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC1_P0_3300,
607 			   VIDEO_AFIFO_RDY_SEL_DP_ENC1_P0_VAL << 8,
608 			   VIDEO_AFIFO_RDY_SEL_DP_ENC1_P0_MASK);
609 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC1_P0_3364,
610 			   FIFO_READ_START_POINT_DP_ENC1_P0_VAL << 12,
611 			   FIFO_READ_START_POINT_DP_ENC1_P0_MASK);
612 	mtk_dp_write(mtk_dp, MTK_DP_ENC1_P0_3368, DP_ENC1_P0_3368_VAL);
613 }
614 
615 static void mtk_dp_pg_enable(struct mtk_dp *mtk_dp, bool enable)
616 {
617 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3038,
618 			   enable ? VIDEO_SOURCE_SEL_DP_ENC0_P0_MASK : 0,
619 			   VIDEO_SOURCE_SEL_DP_ENC0_P0_MASK);
620 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_31B0,
621 			   PGEN_PATTERN_SEL_VAL << 4, PGEN_PATTERN_SEL_MASK);
622 }
623 
624 static void mtk_dp_audio_setup_channels(struct mtk_dp *mtk_dp,
625 					struct mtk_dp_audio_cfg *cfg)
626 {
627 	u32 channel_enable_bits;
628 
629 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC1_P0_3324,
630 			   AUDIO_SOURCE_MUX_DP_ENC1_P0_DPRX,
631 			   AUDIO_SOURCE_MUX_DP_ENC1_P0_MASK);
632 
633 	/* audio channel count change reset */
634 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC1_P0_33F4,
635 			   DP_ENC_DUMMY_RW_1, DP_ENC_DUMMY_RW_1);
636 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC1_P0_3304,
637 			   AU_PRTY_REGEN_DP_ENC1_P0_MASK |
638 			   AU_CH_STS_REGEN_DP_ENC1_P0_MASK |
639 			   AUDIO_SAMPLE_PRSENT_REGEN_DP_ENC1_P0_MASK,
640 			   AU_PRTY_REGEN_DP_ENC1_P0_MASK |
641 			   AU_CH_STS_REGEN_DP_ENC1_P0_MASK |
642 			   AUDIO_SAMPLE_PRSENT_REGEN_DP_ENC1_P0_MASK);
643 
644 	switch (cfg->channels) {
645 	case 2:
646 		channel_enable_bits = AUDIO_2CH_SEL_DP_ENC0_P0_MASK |
647 				      AUDIO_2CH_EN_DP_ENC0_P0_MASK;
648 		break;
649 	case 8:
650 	default:
651 		channel_enable_bits = AUDIO_8CH_SEL_DP_ENC0_P0_MASK |
652 				      AUDIO_8CH_EN_DP_ENC0_P0_MASK;
653 		break;
654 	}
655 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3088,
656 			   channel_enable_bits | AU_EN_DP_ENC0_P0,
657 			   AUDIO_2CH_SEL_DP_ENC0_P0_MASK |
658 			   AUDIO_2CH_EN_DP_ENC0_P0_MASK |
659 			   AUDIO_8CH_SEL_DP_ENC0_P0_MASK |
660 			   AUDIO_8CH_EN_DP_ENC0_P0_MASK |
661 			   AU_EN_DP_ENC0_P0);
662 
663 	/* audio channel count change reset */
664 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC1_P0_33F4, 0, DP_ENC_DUMMY_RW_1);
665 
666 	/* enable audio reset */
667 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC1_P0_33F4,
668 			   DP_ENC_DUMMY_RW_1_AUDIO_RST_EN,
669 			   DP_ENC_DUMMY_RW_1_AUDIO_RST_EN);
670 }
671 
672 static void mtk_dp_audio_channel_status_set(struct mtk_dp *mtk_dp,
673 					    struct mtk_dp_audio_cfg *cfg)
674 {
675 	struct snd_aes_iec958 iec = { 0 };
676 
677 	switch (cfg->sample_rate) {
678 	case 32000:
679 		iec.status[3] = IEC958_AES3_CON_FS_32000;
680 		break;
681 	case 44100:
682 		iec.status[3] = IEC958_AES3_CON_FS_44100;
683 		break;
684 	case 48000:
685 		iec.status[3] = IEC958_AES3_CON_FS_48000;
686 		break;
687 	case 88200:
688 		iec.status[3] = IEC958_AES3_CON_FS_88200;
689 		break;
690 	case 96000:
691 		iec.status[3] = IEC958_AES3_CON_FS_96000;
692 		break;
693 	case 192000:
694 		iec.status[3] = IEC958_AES3_CON_FS_192000;
695 		break;
696 	default:
697 		iec.status[3] = IEC958_AES3_CON_FS_NOTID;
698 		break;
699 	}
700 
701 	switch (cfg->word_length_bits) {
702 	case 16:
703 		iec.status[4] = IEC958_AES4_CON_WORDLEN_20_16;
704 		break;
705 	case 20:
706 		iec.status[4] = IEC958_AES4_CON_WORDLEN_20_16 |
707 				IEC958_AES4_CON_MAX_WORDLEN_24;
708 		break;
709 	case 24:
710 		iec.status[4] = IEC958_AES4_CON_WORDLEN_24_20 |
711 				IEC958_AES4_CON_MAX_WORDLEN_24;
712 		break;
713 	default:
714 		iec.status[4] = IEC958_AES4_CON_WORDLEN_NOTID;
715 	}
716 
717 	/* IEC 60958 consumer channel status bits */
718 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_308C,
719 			   0, CH_STATUS_0_DP_ENC0_P0_MASK);
720 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3090,
721 			   iec.status[3] << 8, CH_STATUS_1_DP_ENC0_P0_MASK);
722 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3094,
723 			   iec.status[4], CH_STATUS_2_DP_ENC0_P0_MASK);
724 }
725 
726 static void mtk_dp_audio_sdp_asp_set_channels(struct mtk_dp *mtk_dp,
727 					      int channels)
728 {
729 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_312C,
730 			   (min(8, channels) - 1) << 8,
731 			   ASP_HB2_DP_ENC0_P0_MASK | ASP_HB3_DP_ENC0_P0_MASK);
732 }
733 
734 static void mtk_dp_audio_set_divider(struct mtk_dp *mtk_dp)
735 {
736 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_30BC,
737 			   mtk_dp->data->audio_m_div2_bit,
738 			   AUDIO_M_CODE_MULT_DIV_SEL_DP_ENC0_P0_MASK);
739 }
740 
741 static void mtk_dp_sdp_trigger_aui(struct mtk_dp *mtk_dp)
742 {
743 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC1_P0_3280,
744 			   MTK_DP_SDP_AUI, SDP_PACKET_TYPE_DP_ENC1_P0_MASK);
745 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC1_P0_3280,
746 			   SDP_PACKET_W_DP_ENC1_P0, SDP_PACKET_W_DP_ENC1_P0);
747 }
748 
749 static void mtk_dp_sdp_set_data(struct mtk_dp *mtk_dp, u8 *data_bytes)
750 {
751 	mtk_dp_bulk_16bit_write(mtk_dp, MTK_DP_ENC1_P0_3200,
752 				data_bytes, 0x10);
753 }
754 
755 static void mtk_dp_sdp_set_header_aui(struct mtk_dp *mtk_dp,
756 				      struct dp_sdp_header *header)
757 {
758 	u32 db_addr = MTK_DP_ENC0_P0_30D8 + (MTK_DP_SDP_AUI - 1) * 8;
759 
760 	mtk_dp_bulk_16bit_write(mtk_dp, db_addr, (u8 *)header, 4);
761 }
762 
763 static void mtk_dp_disable_sdp_aui(struct mtk_dp *mtk_dp)
764 {
765 	/* Disable periodic send */
766 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_30A8 & 0xfffc, 0,
767 			   0xff << ((MTK_DP_ENC0_P0_30A8 & 3) * 8));
768 }
769 
770 static void mtk_dp_setup_sdp_aui(struct mtk_dp *mtk_dp,
771 				 struct dp_sdp *sdp)
772 {
773 	u32 shift;
774 
775 	mtk_dp_sdp_set_data(mtk_dp, sdp->db);
776 	mtk_dp_sdp_set_header_aui(mtk_dp, &sdp->sdp_header);
777 	mtk_dp_disable_sdp_aui(mtk_dp);
778 
779 	shift = (MTK_DP_ENC0_P0_30A8 & 3) * 8;
780 
781 	mtk_dp_sdp_trigger_aui(mtk_dp);
782 	/* Enable periodic sending */
783 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_30A8 & 0xfffc,
784 			   0x05 << shift, 0xff << shift);
785 }
786 
787 static void mtk_dp_aux_irq_clear(struct mtk_dp *mtk_dp)
788 {
789 	mtk_dp_write(mtk_dp, MTK_DP_AUX_P0_3640, DP_AUX_P0_3640_VAL);
790 }
791 
792 static void mtk_dp_aux_set_cmd(struct mtk_dp *mtk_dp, u8 cmd, u32 addr)
793 {
794 	mtk_dp_update_bits(mtk_dp, MTK_DP_AUX_P0_3644,
795 			   cmd, MCU_REQUEST_COMMAND_AUX_TX_P0_MASK);
796 	mtk_dp_update_bits(mtk_dp, MTK_DP_AUX_P0_3648,
797 			   addr, MCU_REQUEST_ADDRESS_LSB_AUX_TX_P0_MASK);
798 	mtk_dp_update_bits(mtk_dp, MTK_DP_AUX_P0_364C,
799 			   addr >> 16, MCU_REQUEST_ADDRESS_MSB_AUX_TX_P0_MASK);
800 }
801 
802 static void mtk_dp_aux_clear_fifo(struct mtk_dp *mtk_dp)
803 {
804 	mtk_dp_update_bits(mtk_dp, MTK_DP_AUX_P0_3650,
805 			   MCU_ACK_TRAN_COMPLETE_AUX_TX_P0,
806 			   MCU_ACK_TRAN_COMPLETE_AUX_TX_P0 |
807 			   PHY_FIFO_RST_AUX_TX_P0_MASK |
808 			   MCU_REQ_DATA_NUM_AUX_TX_P0_MASK);
809 }
810 
811 static void mtk_dp_aux_request_ready(struct mtk_dp *mtk_dp)
812 {
813 	mtk_dp_update_bits(mtk_dp, MTK_DP_AUX_P0_3630,
814 			   AUX_TX_REQUEST_READY_AUX_TX_P0,
815 			   AUX_TX_REQUEST_READY_AUX_TX_P0);
816 }
817 
818 static void mtk_dp_aux_fill_write_fifo(struct mtk_dp *mtk_dp, u8 *buf,
819 				       size_t length)
820 {
821 	mtk_dp_bulk_16bit_write(mtk_dp, MTK_DP_AUX_P0_3708, buf, length);
822 }
823 
824 static void mtk_dp_aux_read_rx_fifo(struct mtk_dp *mtk_dp, u8 *buf,
825 				    size_t length, int read_delay)
826 {
827 	int read_pos;
828 
829 	mtk_dp_update_bits(mtk_dp, MTK_DP_AUX_P0_3620,
830 			   0, AUX_RD_MODE_AUX_TX_P0_MASK);
831 
832 	for (read_pos = 0; read_pos < length; read_pos++) {
833 		mtk_dp_update_bits(mtk_dp, MTK_DP_AUX_P0_3620,
834 				   AUX_RX_FIFO_READ_PULSE_TX_P0,
835 				   AUX_RX_FIFO_READ_PULSE_TX_P0);
836 
837 		/* Hardware needs time to update the data */
838 		usleep_range(read_delay, read_delay * 2);
839 		buf[read_pos] = (u8)(mtk_dp_read(mtk_dp, MTK_DP_AUX_P0_3620) &
840 				     AUX_RX_FIFO_READ_DATA_AUX_TX_P0_MASK);
841 	}
842 }
843 
844 static void mtk_dp_aux_set_length(struct mtk_dp *mtk_dp, size_t length)
845 {
846 	if (length > 0) {
847 		mtk_dp_update_bits(mtk_dp, MTK_DP_AUX_P0_3650,
848 				   (length - 1) << 12,
849 				   MCU_REQ_DATA_NUM_AUX_TX_P0_MASK);
850 		mtk_dp_update_bits(mtk_dp, MTK_DP_AUX_P0_362C,
851 				   0,
852 				   AUX_NO_LENGTH_AUX_TX_P0 |
853 				   AUX_TX_AUXTX_OV_EN_AUX_TX_P0_MASK |
854 				   AUX_RESERVED_RW_0_AUX_TX_P0_MASK);
855 	} else {
856 		mtk_dp_update_bits(mtk_dp, MTK_DP_AUX_P0_362C,
857 				   AUX_NO_LENGTH_AUX_TX_P0,
858 				   AUX_NO_LENGTH_AUX_TX_P0 |
859 				   AUX_TX_AUXTX_OV_EN_AUX_TX_P0_MASK |
860 				   AUX_RESERVED_RW_0_AUX_TX_P0_MASK);
861 	}
862 }
863 
864 static int mtk_dp_aux_wait_for_completion(struct mtk_dp *mtk_dp, bool is_read)
865 {
866 	int wait_reply = MTK_DP_AUX_WAIT_REPLY_COUNT;
867 
868 	while (--wait_reply) {
869 		u32 aux_irq_status;
870 
871 		if (is_read) {
872 			u32 fifo_status = mtk_dp_read(mtk_dp, MTK_DP_AUX_P0_3618);
873 
874 			if (fifo_status &
875 			    (AUX_RX_FIFO_WRITE_POINTER_AUX_TX_P0_MASK |
876 			     AUX_RX_FIFO_FULL_AUX_TX_P0_MASK)) {
877 				return 0;
878 			}
879 		}
880 
881 		aux_irq_status = mtk_dp_read(mtk_dp, MTK_DP_AUX_P0_3640);
882 		if (aux_irq_status & AUX_RX_AUX_RECV_COMPLETE_IRQ_AUX_TX_P0)
883 			return 0;
884 
885 		if (aux_irq_status & AUX_400US_TIMEOUT_IRQ_AUX_TX_P0)
886 			return -ETIMEDOUT;
887 
888 		/* Give the hardware a chance to reach completion before retrying */
889 		usleep_range(100, 500);
890 	}
891 
892 	return -ETIMEDOUT;
893 }
894 
895 static int mtk_dp_aux_do_transfer(struct mtk_dp *mtk_dp, bool is_read, u8 cmd,
896 				  u32 addr, u8 *buf, size_t length, u8 *reply_cmd)
897 {
898 	int ret;
899 
900 	if (is_read && (length > DP_AUX_MAX_PAYLOAD_BYTES ||
901 			(cmd == DP_AUX_NATIVE_READ && !length)))
902 		return -EINVAL;
903 
904 	if (!is_read)
905 		mtk_dp_update_bits(mtk_dp, MTK_DP_AUX_P0_3704,
906 				   AUX_TX_FIFO_NEW_MODE_EN_AUX_TX_P0,
907 				   AUX_TX_FIFO_NEW_MODE_EN_AUX_TX_P0);
908 
909 	/* We need to clear fifo and irq before sending commands to the sink device. */
910 	mtk_dp_aux_clear_fifo(mtk_dp);
911 	mtk_dp_aux_irq_clear(mtk_dp);
912 
913 	mtk_dp_aux_set_cmd(mtk_dp, cmd, addr);
914 	mtk_dp_aux_set_length(mtk_dp, length);
915 
916 	if (!is_read) {
917 		if (length)
918 			mtk_dp_aux_fill_write_fifo(mtk_dp, buf, length);
919 
920 		mtk_dp_update_bits(mtk_dp, MTK_DP_AUX_P0_3704,
921 				   AUX_TX_FIFO_WDATA_NEW_MODE_T_AUX_TX_P0_MASK,
922 				   AUX_TX_FIFO_WDATA_NEW_MODE_T_AUX_TX_P0_MASK);
923 	}
924 
925 	mtk_dp_aux_request_ready(mtk_dp);
926 
927 	/* Wait for feedback from sink device. */
928 	ret = mtk_dp_aux_wait_for_completion(mtk_dp, is_read);
929 
930 	*reply_cmd = mtk_dp_read(mtk_dp, MTK_DP_AUX_P0_3624) &
931 		     AUX_RX_REPLY_COMMAND_AUX_TX_P0_MASK;
932 
933 	if (ret) {
934 		u32 phy_status = mtk_dp_read(mtk_dp, MTK_DP_AUX_P0_3628) &
935 				 AUX_RX_PHY_STATE_AUX_TX_P0_MASK;
936 		if (phy_status != AUX_RX_PHY_STATE_AUX_TX_P0_RX_IDLE) {
937 			dev_err(mtk_dp->dev,
938 				"AUX Rx Aux hang, need SW reset\n");
939 			return -EIO;
940 		}
941 
942 		return -ETIMEDOUT;
943 	}
944 
945 	if (!length) {
946 		mtk_dp_update_bits(mtk_dp, MTK_DP_AUX_P0_362C,
947 				   0,
948 				   AUX_NO_LENGTH_AUX_TX_P0 |
949 				   AUX_TX_AUXTX_OV_EN_AUX_TX_P0_MASK |
950 				   AUX_RESERVED_RW_0_AUX_TX_P0_MASK);
951 	} else if (is_read) {
952 		int read_delay;
953 
954 		if (cmd == (DP_AUX_I2C_READ | DP_AUX_I2C_MOT) ||
955 		    cmd == DP_AUX_I2C_READ)
956 			read_delay = 500;
957 		else
958 			read_delay = 100;
959 
960 		mtk_dp_aux_read_rx_fifo(mtk_dp, buf, length, read_delay);
961 	}
962 
963 	return 0;
964 }
965 
966 static void mtk_dp_set_swing_pre_emphasis(struct mtk_dp *mtk_dp, int lane_num,
967 					  int swing_val, int preemphasis)
968 {
969 	u32 lane_shift = lane_num * DP_TX1_VOLT_SWING_SHIFT;
970 
971 	dev_dbg(mtk_dp->dev,
972 		"link training: swing_val = 0x%x, pre-emphasis = 0x%x\n",
973 		swing_val, preemphasis);
974 
975 	mtk_dp_update_bits(mtk_dp, MTK_DP_TOP_SWING_EMP,
976 			   swing_val << (DP_TX0_VOLT_SWING_SHIFT + lane_shift),
977 			   DP_TX0_VOLT_SWING_MASK << lane_shift);
978 	mtk_dp_update_bits(mtk_dp, MTK_DP_TOP_SWING_EMP,
979 			   preemphasis << (DP_TX0_PRE_EMPH_SHIFT + lane_shift),
980 			   DP_TX0_PRE_EMPH_MASK << lane_shift);
981 }
982 
983 static void mtk_dp_reset_swing_pre_emphasis(struct mtk_dp *mtk_dp)
984 {
985 	mtk_dp_update_bits(mtk_dp, MTK_DP_TOP_SWING_EMP,
986 			   0,
987 			   DP_TX0_VOLT_SWING_MASK |
988 			   DP_TX1_VOLT_SWING_MASK |
989 			   DP_TX2_VOLT_SWING_MASK |
990 			   DP_TX3_VOLT_SWING_MASK |
991 			   DP_TX0_PRE_EMPH_MASK |
992 			   DP_TX1_PRE_EMPH_MASK |
993 			   DP_TX2_PRE_EMPH_MASK |
994 			   DP_TX3_PRE_EMPH_MASK);
995 }
996 
997 static u32 mtk_dp_swirq_get_clear(struct mtk_dp *mtk_dp)
998 {
999 	u32 irq_status = mtk_dp_read(mtk_dp, MTK_DP_TRANS_P0_35D0) &
1000 			 SW_IRQ_FINAL_STATUS_DP_TRANS_P0_MASK;
1001 
1002 	if (irq_status) {
1003 		mtk_dp_update_bits(mtk_dp, MTK_DP_TRANS_P0_35C8,
1004 				   irq_status, SW_IRQ_CLR_DP_TRANS_P0_MASK);
1005 		mtk_dp_update_bits(mtk_dp, MTK_DP_TRANS_P0_35C8,
1006 				   0, SW_IRQ_CLR_DP_TRANS_P0_MASK);
1007 	}
1008 
1009 	return irq_status;
1010 }
1011 
1012 static u32 mtk_dp_hwirq_get_clear(struct mtk_dp *mtk_dp)
1013 {
1014 	u32 irq_status = (mtk_dp_read(mtk_dp, MTK_DP_TRANS_P0_3418) &
1015 			  IRQ_STATUS_DP_TRANS_P0_MASK) >> 12;
1016 
1017 	if (irq_status) {
1018 		mtk_dp_update_bits(mtk_dp, MTK_DP_TRANS_P0_3418,
1019 				   irq_status, IRQ_CLR_DP_TRANS_P0_MASK);
1020 		mtk_dp_update_bits(mtk_dp, MTK_DP_TRANS_P0_3418,
1021 				   0, IRQ_CLR_DP_TRANS_P0_MASK);
1022 	}
1023 
1024 	return irq_status;
1025 }
1026 
1027 static void mtk_dp_hwirq_enable(struct mtk_dp *mtk_dp, bool enable)
1028 {
1029 	mtk_dp_update_bits(mtk_dp, MTK_DP_TRANS_P0_3418,
1030 			   enable ? 0 :
1031 			   IRQ_MASK_DP_TRANS_P0_DISC_IRQ |
1032 			   IRQ_MASK_DP_TRANS_P0_CONN_IRQ |
1033 			   IRQ_MASK_DP_TRANS_P0_INT_IRQ,
1034 			   IRQ_MASK_DP_TRANS_P0_MASK);
1035 }
1036 
1037 static void mtk_dp_initialize_settings(struct mtk_dp *mtk_dp)
1038 {
1039 	mtk_dp_update_bits(mtk_dp, MTK_DP_TRANS_P0_342C,
1040 			   XTAL_FREQ_DP_TRANS_P0_DEFAULT,
1041 			   XTAL_FREQ_DP_TRANS_P0_MASK);
1042 	mtk_dp_update_bits(mtk_dp, MTK_DP_TRANS_P0_3540,
1043 			   FEC_CLOCK_EN_MODE_DP_TRANS_P0,
1044 			   FEC_CLOCK_EN_MODE_DP_TRANS_P0);
1045 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_31EC,
1046 			   AUDIO_CH_SRC_SEL_DP_ENC0_P0,
1047 			   AUDIO_CH_SRC_SEL_DP_ENC0_P0);
1048 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_304C,
1049 			   0, SDP_VSYNC_RISING_MASK_DP_ENC0_P0_MASK);
1050 	mtk_dp_update_bits(mtk_dp, MTK_DP_TOP_IRQ_MASK,
1051 			   IRQ_MASK_AUX_TOP_IRQ, IRQ_MASK_AUX_TOP_IRQ);
1052 }
1053 
1054 static void mtk_dp_initialize_hpd_detect_settings(struct mtk_dp *mtk_dp)
1055 {
1056 	u32 val;
1057 	/* Debounce threshold */
1058 	mtk_dp_update_bits(mtk_dp, MTK_DP_TRANS_P0_3410,
1059 			   8, HPD_DEB_THD_DP_TRANS_P0_MASK);
1060 
1061 	val = (HPD_INT_THD_DP_TRANS_P0_LOWER_500US |
1062 	       HPD_INT_THD_DP_TRANS_P0_UPPER_1100US) << 4;
1063 	mtk_dp_update_bits(mtk_dp, MTK_DP_TRANS_P0_3410,
1064 			   val, HPD_INT_THD_DP_TRANS_P0_MASK);
1065 
1066 	/*
1067 	 * Connect threshold 1.5ms + 5 x 0.1ms = 2ms
1068 	 * Disconnect threshold 1.5ms + 5 x 0.1ms = 2ms
1069 	 */
1070 	val = (5 << 8) | (5 << 12);
1071 	mtk_dp_update_bits(mtk_dp, MTK_DP_TRANS_P0_3410,
1072 			   val,
1073 			   HPD_DISC_THD_DP_TRANS_P0_MASK |
1074 			   HPD_CONN_THD_DP_TRANS_P0_MASK);
1075 	mtk_dp_update_bits(mtk_dp, MTK_DP_TRANS_P0_3430,
1076 			   HPD_INT_THD_ECO_DP_TRANS_P0_HIGH_BOUND_EXT,
1077 			   HPD_INT_THD_ECO_DP_TRANS_P0_MASK);
1078 }
1079 
1080 static void mtk_dp_initialize_aux_settings(struct mtk_dp *mtk_dp)
1081 {
1082 	/* modify timeout threshold = 0x1595 */
1083 	mtk_dp_update_bits(mtk_dp, MTK_DP_AUX_P0_360C,
1084 			   AUX_TIMEOUT_THR_AUX_TX_P0_VAL,
1085 			   AUX_TIMEOUT_THR_AUX_TX_P0_MASK);
1086 	mtk_dp_update_bits(mtk_dp, MTK_DP_AUX_P0_3658,
1087 			   0, AUX_TX_OV_EN_AUX_TX_P0_MASK);
1088 	/* 25 for 26M */
1089 	mtk_dp_update_bits(mtk_dp, MTK_DP_AUX_P0_3634,
1090 			   AUX_TX_OVER_SAMPLE_RATE_FOR_26M << 8,
1091 			   AUX_TX_OVER_SAMPLE_RATE_AUX_TX_P0_MASK);
1092 	/* 13 for 26M */
1093 	mtk_dp_update_bits(mtk_dp, MTK_DP_AUX_P0_3614,
1094 			   AUX_RX_UI_CNT_THR_AUX_FOR_26M,
1095 			   AUX_RX_UI_CNT_THR_AUX_TX_P0_MASK);
1096 	mtk_dp_update_bits(mtk_dp, MTK_DP_AUX_P0_37C8,
1097 			   MTK_ATOP_EN_AUX_TX_P0,
1098 			   MTK_ATOP_EN_AUX_TX_P0);
1099 
1100 	/* Set complete reply mode for AUX */
1101 	mtk_dp_update_bits(mtk_dp, MTK_DP_AUX_P0_3690,
1102 			   RX_REPLY_COMPLETE_MODE_AUX_TX_P0,
1103 			   RX_REPLY_COMPLETE_MODE_AUX_TX_P0);
1104 }
1105 
1106 static void mtk_dp_initialize_digital_settings(struct mtk_dp *mtk_dp)
1107 {
1108 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_304C,
1109 			   0, VBID_VIDEO_MUTE_DP_ENC0_P0_MASK);
1110 
1111 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC1_P0_3368,
1112 			   BS2BS_MODE_DP_ENC1_P0_VAL << 12,
1113 			   BS2BS_MODE_DP_ENC1_P0_MASK);
1114 
1115 	/* dp tx encoder reset all sw */
1116 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3004,
1117 			   DP_TX_ENCODER_4P_RESET_SW_DP_ENC0_P0,
1118 			   DP_TX_ENCODER_4P_RESET_SW_DP_ENC0_P0);
1119 
1120 	/* Wait for sw reset to complete */
1121 	usleep_range(1000, 5000);
1122 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3004,
1123 			   0, DP_TX_ENCODER_4P_RESET_SW_DP_ENC0_P0);
1124 }
1125 
1126 static void mtk_dp_digital_sw_reset(struct mtk_dp *mtk_dp)
1127 {
1128 	mtk_dp_update_bits(mtk_dp, MTK_DP_TRANS_P0_340C,
1129 			   DP_TX_TRANSMITTER_4P_RESET_SW_DP_TRANS_P0,
1130 			   DP_TX_TRANSMITTER_4P_RESET_SW_DP_TRANS_P0);
1131 
1132 	/* Wait for sw reset to complete */
1133 	usleep_range(1000, 5000);
1134 	mtk_dp_update_bits(mtk_dp, MTK_DP_TRANS_P0_340C,
1135 			   0, DP_TX_TRANSMITTER_4P_RESET_SW_DP_TRANS_P0);
1136 }
1137 
1138 static void mtk_dp_sdp_path_reset(struct mtk_dp *mtk_dp)
1139 {
1140 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3004,
1141 			   SDP_RESET_SW_DP_ENC0_P0,
1142 			   SDP_RESET_SW_DP_ENC0_P0);
1143 
1144 	/* Wait for sdp path reset to complete */
1145 	usleep_range(1000, 5000);
1146 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3004,
1147 			   0, SDP_RESET_SW_DP_ENC0_P0);
1148 }
1149 
1150 static void mtk_dp_set_lanes(struct mtk_dp *mtk_dp, int lanes)
1151 {
1152 	mtk_dp_update_bits(mtk_dp, MTK_DP_TRANS_P0_35F0,
1153 			   lanes == 0 ? 0 : DP_TRANS_DUMMY_RW_0,
1154 			   DP_TRANS_DUMMY_RW_0_MASK);
1155 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3000,
1156 			   lanes, LANE_NUM_DP_ENC0_P0_MASK);
1157 	mtk_dp_update_bits(mtk_dp, MTK_DP_TRANS_P0_34A4,
1158 			   lanes << 2, LANE_NUM_DP_TRANS_P0_MASK);
1159 }
1160 
1161 static void mtk_dp_get_calibration_data(struct mtk_dp *mtk_dp)
1162 {
1163 	const struct mtk_dp_efuse_fmt *fmt;
1164 	struct device *dev = mtk_dp->dev;
1165 	struct nvmem_cell *cell;
1166 	u32 *cal_data = mtk_dp->cal_data;
1167 	u32 *buf;
1168 	int i;
1169 	size_t len;
1170 
1171 	cell = nvmem_cell_get(dev, "dp_calibration_data");
1172 	if (IS_ERR(cell)) {
1173 		dev_warn(dev, "Failed to get nvmem cell dp_calibration_data\n");
1174 		goto use_default_val;
1175 	}
1176 
1177 	buf = (u32 *)nvmem_cell_read(cell, &len);
1178 	nvmem_cell_put(cell);
1179 
1180 	if (IS_ERR(buf)) {
1181 		dev_warn(dev, "Failed to read nvmem_cell_read\n");
1182 		goto use_default_val;
1183 	}
1184 
1185 	/* The cell length is in bytes. Convert it to be compatible with u32 buffer. */
1186 	len /= sizeof(u32);
1187 
1188 	for (i = 0; i < MTK_DP_CAL_MAX; i++) {
1189 		fmt = &mtk_dp->data->efuse_fmt[i];
1190 
1191 		if (fmt->idx >= len) {
1192 			dev_warn(mtk_dp->dev,
1193 				 "Out-of-bound efuse data access, fmt idx = %d, buf len = %zu\n",
1194 				 fmt->idx, len);
1195 			kfree(buf);
1196 			goto use_default_val;
1197 		}
1198 
1199 		cal_data[i] = (buf[fmt->idx] >> fmt->shift) & fmt->mask;
1200 
1201 		if (cal_data[i] < fmt->min_val || cal_data[i] > fmt->max_val) {
1202 			dev_warn(mtk_dp->dev, "Invalid efuse data, idx = %d\n", i);
1203 			kfree(buf);
1204 			goto use_default_val;
1205 		}
1206 	}
1207 	kfree(buf);
1208 
1209 	return;
1210 
1211 use_default_val:
1212 	dev_warn(mtk_dp->dev, "Use default calibration data\n");
1213 	for (i = 0; i < MTK_DP_CAL_MAX; i++)
1214 		cal_data[i] = mtk_dp->data->efuse_fmt[i].default_val;
1215 }
1216 
1217 static void mtk_dp_set_calibration_data(struct mtk_dp *mtk_dp)
1218 {
1219 	u32 *cal_data = mtk_dp->cal_data;
1220 
1221 	mtk_dp_update_bits(mtk_dp, DP_PHY_GLB_DPAUX_TX,
1222 			   cal_data[MTK_DP_CAL_CLKTX_IMPSE] << 20,
1223 			   RG_CKM_PT0_CKTX_IMPSEL);
1224 	mtk_dp_update_bits(mtk_dp, DP_PHY_GLB_BIAS_GEN_00,
1225 			   cal_data[MTK_DP_CAL_GLB_BIAS_TRIM] << 16,
1226 			   RG_XTP_GLB_BIAS_INTR_CTRL);
1227 	mtk_dp_update_bits(mtk_dp, DP_PHY_LANE_TX_0,
1228 			   cal_data[MTK_DP_CAL_LN_TX_IMPSEL_PMOS_0] << 12,
1229 			   RG_XTP_LN0_TX_IMPSEL_PMOS);
1230 	mtk_dp_update_bits(mtk_dp, DP_PHY_LANE_TX_0,
1231 			   cal_data[MTK_DP_CAL_LN_TX_IMPSEL_NMOS_0] << 16,
1232 			   RG_XTP_LN0_TX_IMPSEL_NMOS);
1233 	mtk_dp_update_bits(mtk_dp, DP_PHY_LANE_TX_1,
1234 			   cal_data[MTK_DP_CAL_LN_TX_IMPSEL_PMOS_1] << 12,
1235 			   RG_XTP_LN1_TX_IMPSEL_PMOS);
1236 	mtk_dp_update_bits(mtk_dp, DP_PHY_LANE_TX_1,
1237 			   cal_data[MTK_DP_CAL_LN_TX_IMPSEL_NMOS_1] << 16,
1238 			   RG_XTP_LN1_TX_IMPSEL_NMOS);
1239 	mtk_dp_update_bits(mtk_dp, DP_PHY_LANE_TX_2,
1240 			   cal_data[MTK_DP_CAL_LN_TX_IMPSEL_PMOS_2] << 12,
1241 			   RG_XTP_LN2_TX_IMPSEL_PMOS);
1242 	mtk_dp_update_bits(mtk_dp, DP_PHY_LANE_TX_2,
1243 			   cal_data[MTK_DP_CAL_LN_TX_IMPSEL_NMOS_2] << 16,
1244 			   RG_XTP_LN2_TX_IMPSEL_NMOS);
1245 	mtk_dp_update_bits(mtk_dp, DP_PHY_LANE_TX_3,
1246 			   cal_data[MTK_DP_CAL_LN_TX_IMPSEL_PMOS_3] << 12,
1247 			   RG_XTP_LN3_TX_IMPSEL_PMOS);
1248 	mtk_dp_update_bits(mtk_dp, DP_PHY_LANE_TX_3,
1249 			   cal_data[MTK_DP_CAL_LN_TX_IMPSEL_NMOS_3] << 16,
1250 			   RG_XTP_LN3_TX_IMPSEL_NMOS);
1251 }
1252 
1253 static int mtk_dp_phy_configure(struct mtk_dp *mtk_dp,
1254 				u32 link_rate, int lane_count)
1255 {
1256 	int ret;
1257 	union phy_configure_opts phy_opts = {
1258 		.dp = {
1259 			.link_rate = drm_dp_bw_code_to_link_rate(link_rate) / 100,
1260 			.set_rate = 1,
1261 			.lanes = lane_count,
1262 			.set_lanes = 1,
1263 			.ssc = mtk_dp->train_info.sink_ssc,
1264 		}
1265 	};
1266 
1267 	mtk_dp_update_bits(mtk_dp, MTK_DP_TOP_PWR_STATE, DP_PWR_STATE_BANDGAP,
1268 			   DP_PWR_STATE_MASK);
1269 
1270 	ret = phy_configure(mtk_dp->phy, &phy_opts);
1271 	if (ret)
1272 		return ret;
1273 
1274 	mtk_dp_set_calibration_data(mtk_dp);
1275 	mtk_dp_update_bits(mtk_dp, MTK_DP_TOP_PWR_STATE,
1276 			   DP_PWR_STATE_BANDGAP_TPLL_LANE, DP_PWR_STATE_MASK);
1277 
1278 	return 0;
1279 }
1280 
1281 static void mtk_dp_set_idle_pattern(struct mtk_dp *mtk_dp, bool enable)
1282 {
1283 	u32 val = POST_MISC_DATA_LANE0_OV_DP_TRANS_P0_MASK |
1284 		  POST_MISC_DATA_LANE1_OV_DP_TRANS_P0_MASK |
1285 		  POST_MISC_DATA_LANE2_OV_DP_TRANS_P0_MASK |
1286 		  POST_MISC_DATA_LANE3_OV_DP_TRANS_P0_MASK;
1287 
1288 	mtk_dp_update_bits(mtk_dp, MTK_DP_TRANS_P0_3580,
1289 			   enable ? val : 0, val);
1290 }
1291 
1292 static void mtk_dp_train_set_pattern(struct mtk_dp *mtk_dp, int pattern)
1293 {
1294 	/* TPS1 */
1295 	if (pattern == 1)
1296 		mtk_dp_set_idle_pattern(mtk_dp, false);
1297 
1298 	mtk_dp_update_bits(mtk_dp,
1299 			   MTK_DP_TRANS_P0_3400,
1300 			   pattern ? BIT(pattern - 1) << 12 : 0,
1301 			   PATTERN1_EN_DP_TRANS_P0_MASK |
1302 			   PATTERN2_EN_DP_TRANS_P0_MASK |
1303 			   PATTERN3_EN_DP_TRANS_P0_MASK |
1304 			   PATTERN4_EN_DP_TRANS_P0_MASK);
1305 }
1306 
1307 static void mtk_dp_set_enhanced_frame_mode(struct mtk_dp *mtk_dp)
1308 {
1309 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3000,
1310 			   ENHANCED_FRAME_EN_DP_ENC0_P0,
1311 			   ENHANCED_FRAME_EN_DP_ENC0_P0);
1312 }
1313 
1314 static void mtk_dp_training_set_scramble(struct mtk_dp *mtk_dp, bool enable)
1315 {
1316 	mtk_dp_update_bits(mtk_dp, MTK_DP_TRANS_P0_3404,
1317 			   enable ? DP_SCR_EN_DP_TRANS_P0_MASK : 0,
1318 			   DP_SCR_EN_DP_TRANS_P0_MASK);
1319 }
1320 
1321 static void mtk_dp_video_mute(struct mtk_dp *mtk_dp, bool enable)
1322 {
1323 	struct arm_smccc_res res;
1324 	u32 val = VIDEO_MUTE_SEL_DP_ENC0_P0 |
1325 		  (enable ? VIDEO_MUTE_SW_DP_ENC0_P0 : 0);
1326 
1327 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3000,
1328 			   val,
1329 			   VIDEO_MUTE_SEL_DP_ENC0_P0 |
1330 			   VIDEO_MUTE_SW_DP_ENC0_P0);
1331 
1332 	arm_smccc_smc(MTK_DP_SIP_CONTROL_AARCH32,
1333 		      mtk_dp->data->smc_cmd, enable,
1334 		      0, 0, 0, 0, 0, &res);
1335 
1336 	dev_dbg(mtk_dp->dev, "smc cmd: 0x%x, p1: %s, ret: 0x%lx-0x%lx\n",
1337 		mtk_dp->data->smc_cmd, enable ? "enable" : "disable", res.a0, res.a1);
1338 }
1339 
1340 static void mtk_dp_audio_mute(struct mtk_dp *mtk_dp, bool mute)
1341 {
1342 	u32 val[3];
1343 
1344 	if (mute) {
1345 		val[0] = VBID_AUDIO_MUTE_FLAG_SW_DP_ENC0_P0 |
1346 			 VBID_AUDIO_MUTE_FLAG_SEL_DP_ENC0_P0;
1347 		val[1] = 0;
1348 		val[2] = 0;
1349 	} else {
1350 		val[0] = 0;
1351 		val[1] = AU_EN_DP_ENC0_P0;
1352 		/* Send one every two frames */
1353 		val[2] = 0x0F;
1354 	}
1355 
1356 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3030,
1357 			   val[0],
1358 			   VBID_AUDIO_MUTE_FLAG_SW_DP_ENC0_P0 |
1359 			   VBID_AUDIO_MUTE_FLAG_SEL_DP_ENC0_P0);
1360 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3088,
1361 			   val[1], AU_EN_DP_ENC0_P0);
1362 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_30A4,
1363 			   val[2], AU_TS_CFG_DP_ENC0_P0_MASK);
1364 }
1365 
1366 static void mtk_dp_aux_panel_poweron(struct mtk_dp *mtk_dp, bool pwron)
1367 {
1368 	if (pwron) {
1369 		/* power on aux */
1370 		mtk_dp_update_bits(mtk_dp, MTK_DP_TOP_PWR_STATE,
1371 				   DP_PWR_STATE_BANDGAP_TPLL_LANE,
1372 				   DP_PWR_STATE_MASK);
1373 
1374 		/* power on panel */
1375 		drm_dp_dpcd_writeb(&mtk_dp->aux, DP_SET_POWER, DP_SET_POWER_D0);
1376 		usleep_range(2000, 5000);
1377 	} else {
1378 		/* power off panel */
1379 		drm_dp_dpcd_writeb(&mtk_dp->aux, DP_SET_POWER, DP_SET_POWER_D3);
1380 		usleep_range(2000, 3000);
1381 
1382 		/* power off aux */
1383 		mtk_dp_update_bits(mtk_dp, MTK_DP_TOP_PWR_STATE,
1384 				   DP_PWR_STATE_BANDGAP_TPLL,
1385 				   DP_PWR_STATE_MASK);
1386 	}
1387 }
1388 
1389 static void mtk_dp_power_enable(struct mtk_dp *mtk_dp)
1390 {
1391 	mtk_dp_update_bits(mtk_dp, MTK_DP_TOP_RESET_AND_PROBE,
1392 			   0, SW_RST_B_PHYD);
1393 
1394 	/* Wait for power enable */
1395 	usleep_range(10, 200);
1396 
1397 	mtk_dp_update_bits(mtk_dp, MTK_DP_TOP_RESET_AND_PROBE,
1398 			   SW_RST_B_PHYD, SW_RST_B_PHYD);
1399 	mtk_dp_update_bits(mtk_dp, MTK_DP_TOP_PWR_STATE,
1400 			   DP_PWR_STATE_BANDGAP_TPLL, DP_PWR_STATE_MASK);
1401 	mtk_dp_write(mtk_dp, MTK_DP_1040,
1402 		     RG_DPAUX_RX_VALID_DEGLITCH_EN | RG_XTP_GLB_CKDET_EN |
1403 		     RG_DPAUX_RX_EN);
1404 	mtk_dp_update_bits(mtk_dp, MTK_DP_0034, 0, DA_CKM_CKTX0_EN_FORCE_EN);
1405 }
1406 
1407 static void mtk_dp_power_disable(struct mtk_dp *mtk_dp)
1408 {
1409 	mtk_dp_write(mtk_dp, MTK_DP_TOP_PWR_STATE, 0);
1410 
1411 	mtk_dp_update_bits(mtk_dp, MTK_DP_0034,
1412 			   DA_CKM_CKTX0_EN_FORCE_EN, DA_CKM_CKTX0_EN_FORCE_EN);
1413 
1414 	/* Disable RX */
1415 	mtk_dp_write(mtk_dp, MTK_DP_1040, 0);
1416 	mtk_dp_write(mtk_dp, MTK_DP_TOP_MEM_PD,
1417 		     0x550 | FUSE_SEL | MEM_ISO_EN);
1418 }
1419 
1420 static void mtk_dp_initialize_priv_data(struct mtk_dp *mtk_dp)
1421 {
1422 	bool plugged_in = (mtk_dp->bridge.type == DRM_MODE_CONNECTOR_eDP);
1423 
1424 	mtk_dp->train_info.link_rate = DP_LINK_BW_5_4;
1425 	mtk_dp->train_info.lane_count = mtk_dp->max_lanes;
1426 	mtk_dp->train_info.cable_plugged_in = plugged_in;
1427 
1428 	mtk_dp->info.format = DP_PIXELFORMAT_RGB;
1429 	memset(&mtk_dp->info.vm, 0, sizeof(struct videomode));
1430 	mtk_dp->audio_enable = false;
1431 }
1432 
1433 static void mtk_dp_sdp_set_down_cnt_init(struct mtk_dp *mtk_dp,
1434 					 u32 sram_read_start)
1435 {
1436 	u32 sdp_down_cnt_init = 0;
1437 	struct drm_display_mode mode;
1438 	struct videomode *vm = &mtk_dp->info.vm;
1439 
1440 	drm_display_mode_from_videomode(vm, &mode);
1441 
1442 	if (mode.clock > 0)
1443 		sdp_down_cnt_init = sram_read_start *
1444 				    mtk_dp->train_info.link_rate * 2700 * 8 /
1445 				    (mode.clock * 4);
1446 
1447 	switch (mtk_dp->train_info.lane_count) {
1448 	case 1:
1449 		sdp_down_cnt_init = max_t(u32, sdp_down_cnt_init, 0x1A);
1450 		break;
1451 	case 2:
1452 		/* case for LowResolution && High Audio Sample Rate */
1453 		sdp_down_cnt_init = max_t(u32, sdp_down_cnt_init, 0x10);
1454 		sdp_down_cnt_init += mode.vtotal <= 525 ? 4 : 0;
1455 		break;
1456 	case 4:
1457 	default:
1458 		sdp_down_cnt_init = max_t(u32, sdp_down_cnt_init, 6);
1459 		break;
1460 	}
1461 
1462 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC0_P0_3040,
1463 			   sdp_down_cnt_init,
1464 			   SDP_DOWN_CNT_INIT_DP_ENC0_P0_MASK);
1465 }
1466 
1467 static void mtk_dp_sdp_set_down_cnt_init_in_hblank(struct mtk_dp *mtk_dp)
1468 {
1469 	int pix_clk_mhz;
1470 	u32 dc_offset;
1471 	u32 spd_down_cnt_init = 0;
1472 	struct drm_display_mode mode;
1473 	struct videomode *vm = &mtk_dp->info.vm;
1474 
1475 	drm_display_mode_from_videomode(vm, &mode);
1476 
1477 	pix_clk_mhz = mtk_dp->info.format == DP_PIXELFORMAT_YUV420 ?
1478 		      mode.clock / 2000 : mode.clock / 1000;
1479 
1480 	switch (mtk_dp->train_info.lane_count) {
1481 	case 1:
1482 		spd_down_cnt_init = 0x20;
1483 		break;
1484 	case 2:
1485 		dc_offset = (mode.vtotal <= 525) ? 0x14 : 0x00;
1486 		spd_down_cnt_init = 0x18 + dc_offset;
1487 		break;
1488 	case 4:
1489 	default:
1490 		dc_offset = (mode.vtotal <= 525) ? 0x08 : 0x00;
1491 		if (pix_clk_mhz > mtk_dp->train_info.link_rate * 27)
1492 			spd_down_cnt_init = 0x8;
1493 		else
1494 			spd_down_cnt_init = 0x10 + dc_offset;
1495 		break;
1496 	}
1497 
1498 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC1_P0_3364, spd_down_cnt_init,
1499 			   SDP_DOWN_CNT_INIT_IN_HBLANK_DP_ENC1_P0_MASK);
1500 }
1501 
1502 static void mtk_dp_audio_sample_arrange_disable(struct mtk_dp *mtk_dp)
1503 {
1504 	/* arrange audio packets into the Hblanking and Vblanking area */
1505 	if (!mtk_dp->data->audio_pkt_in_hblank_area)
1506 		return;
1507 
1508 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC1_P0_3374, 0,
1509 			   SDP_ASP_INSERT_IN_HBLANK_DP_ENC1_P0_MASK);
1510 	mtk_dp_update_bits(mtk_dp, MTK_DP_ENC1_P0_3374, 0,
1511 			   SDP_DOWN_ASP_CNT_INIT_DP_ENC1_P0_MASK);
1512 }
1513 
1514 static void mtk_dp_setup_tu(struct mtk_dp *mtk_dp)
1515 {
1516 	u32 sram_read_start = min_t(u32, MTK_DP_TBC_BUF_READ_START_ADDR,
1517 				    mtk_dp->info.vm.hactive /
1518 				    mtk_dp->train_info.lane_count /
1519 				    MTK_DP_4P1T / MTK_DP_HDE /
1520 				    MTK_DP_PIX_PER_ADDR);
1521 	mtk_dp_set_sram_read_start(mtk_dp, sram_read_start);
1522 	mtk_dp_setup_encoder(mtk_dp);
1523 	mtk_dp_audio_sample_arrange_disable(mtk_dp);
1524 	mtk_dp_sdp_set_down_cnt_init_in_hblank(mtk_dp);
1525 	mtk_dp_sdp_set_down_cnt_init(mtk_dp, sram_read_start);
1526 }
1527 
1528 static void mtk_dp_set_tx_out(struct mtk_dp *mtk_dp)
1529 {
1530 	mtk_dp_setup_tu(mtk_dp);
1531 }
1532 
1533 static void mtk_dp_train_update_swing_pre(struct mtk_dp *mtk_dp, int lanes,
1534 					  u8 dpcd_adjust_req[2])
1535 {
1536 	int lane;
1537 
1538 	for (lane = 0; lane < lanes; ++lane) {
1539 		u8 val;
1540 		u8 swing;
1541 		u8 preemphasis;
1542 		int index = lane / 2;
1543 		int shift = lane % 2 ? DP_ADJUST_VOLTAGE_SWING_LANE1_SHIFT : 0;
1544 
1545 		swing = (dpcd_adjust_req[index] >> shift) &
1546 			DP_ADJUST_VOLTAGE_SWING_LANE0_MASK;
1547 		preemphasis = ((dpcd_adjust_req[index] >> shift) &
1548 			       DP_ADJUST_PRE_EMPHASIS_LANE0_MASK) >>
1549 			      DP_ADJUST_PRE_EMPHASIS_LANE0_SHIFT;
1550 		val = swing << DP_TRAIN_VOLTAGE_SWING_SHIFT |
1551 		      preemphasis << DP_TRAIN_PRE_EMPHASIS_SHIFT;
1552 
1553 		if (swing == DP_TRAIN_VOLTAGE_SWING_LEVEL_3)
1554 			val |= DP_TRAIN_MAX_SWING_REACHED;
1555 		if (preemphasis == 3)
1556 			val |= DP_TRAIN_MAX_PRE_EMPHASIS_REACHED;
1557 
1558 		mtk_dp_set_swing_pre_emphasis(mtk_dp, lane, swing, preemphasis);
1559 		drm_dp_dpcd_writeb(&mtk_dp->aux, DP_TRAINING_LANE0_SET + lane,
1560 				   val);
1561 	}
1562 }
1563 
1564 static void mtk_dp_pattern(struct mtk_dp *mtk_dp, bool is_tps1)
1565 {
1566 	int pattern;
1567 	unsigned int aux_offset;
1568 
1569 	if (is_tps1) {
1570 		pattern = 1;
1571 		aux_offset = DP_LINK_SCRAMBLING_DISABLE | DP_TRAINING_PATTERN_1;
1572 	} else {
1573 		aux_offset = mtk_dp->train_info.channel_eq_pattern;
1574 
1575 		switch (mtk_dp->train_info.channel_eq_pattern) {
1576 		case DP_TRAINING_PATTERN_4:
1577 			pattern = 4;
1578 			break;
1579 		case DP_TRAINING_PATTERN_3:
1580 			pattern = 3;
1581 			aux_offset |= DP_LINK_SCRAMBLING_DISABLE;
1582 			break;
1583 		case DP_TRAINING_PATTERN_2:
1584 		default:
1585 			pattern = 2;
1586 			aux_offset |= DP_LINK_SCRAMBLING_DISABLE;
1587 			break;
1588 		}
1589 	}
1590 
1591 	mtk_dp_train_set_pattern(mtk_dp, pattern);
1592 	drm_dp_dpcd_writeb(&mtk_dp->aux, DP_TRAINING_PATTERN_SET, aux_offset);
1593 }
1594 
1595 static int mtk_dp_train_setting(struct mtk_dp *mtk_dp, u8 target_link_rate,
1596 				u8 target_lane_count)
1597 {
1598 	int ret;
1599 
1600 	drm_dp_dpcd_writeb(&mtk_dp->aux, DP_LINK_BW_SET, target_link_rate);
1601 	drm_dp_dpcd_writeb(&mtk_dp->aux, DP_LANE_COUNT_SET,
1602 			   target_lane_count | DP_LANE_COUNT_ENHANCED_FRAME_EN);
1603 
1604 	if (mtk_dp->train_info.sink_ssc)
1605 		drm_dp_dpcd_writeb(&mtk_dp->aux, DP_DOWNSPREAD_CTRL,
1606 				   DP_SPREAD_AMP_0_5);
1607 
1608 	mtk_dp_set_lanes(mtk_dp, target_lane_count / 2);
1609 	ret = mtk_dp_phy_configure(mtk_dp, target_link_rate, target_lane_count);
1610 	if (ret)
1611 		return ret;
1612 
1613 	dev_dbg(mtk_dp->dev,
1614 		"Link train target_link_rate = 0x%x, target_lane_count = 0x%x\n",
1615 		target_link_rate, target_lane_count);
1616 
1617 	return 0;
1618 }
1619 
1620 static int mtk_dp_train_cr(struct mtk_dp *mtk_dp, u8 target_lane_count)
1621 {
1622 	u8 lane_adjust[2] = {};
1623 	u8 link_status[DP_LINK_STATUS_SIZE] = {};
1624 	u8 prev_lane_adjust = 0xff;
1625 	int train_retries = 0;
1626 	int voltage_retries = 0;
1627 
1628 	mtk_dp_pattern(mtk_dp, true);
1629 
1630 	/* In DP spec 1.4, the retry count of CR is defined as 10. */
1631 	do {
1632 		train_retries++;
1633 		if (!mtk_dp->train_info.cable_plugged_in) {
1634 			mtk_dp_train_set_pattern(mtk_dp, 0);
1635 			return -ENODEV;
1636 		}
1637 
1638 		drm_dp_dpcd_read(&mtk_dp->aux, DP_ADJUST_REQUEST_LANE0_1,
1639 				 lane_adjust, sizeof(lane_adjust));
1640 		mtk_dp_train_update_swing_pre(mtk_dp, target_lane_count,
1641 					      lane_adjust);
1642 
1643 		drm_dp_link_train_clock_recovery_delay(&mtk_dp->aux,
1644 						       mtk_dp->rx_cap);
1645 
1646 		/* check link status from sink device */
1647 		drm_dp_dpcd_read_link_status(&mtk_dp->aux, link_status);
1648 		if (drm_dp_clock_recovery_ok(link_status,
1649 					     target_lane_count)) {
1650 			dev_dbg(mtk_dp->dev, "Link train CR pass\n");
1651 			return 0;
1652 		}
1653 
1654 		/*
1655 		 * In DP spec 1.4, if current voltage level is the same
1656 		 * with previous voltage level, we need to retry 5 times.
1657 		 */
1658 		if (prev_lane_adjust == link_status[4]) {
1659 			voltage_retries++;
1660 			/*
1661 			 * Condition of CR fail:
1662 			 * 1. Failed to pass CR using the same voltage
1663 			 *    level over five times.
1664 			 * 2. Failed to pass CR when the current voltage
1665 			 *    level is the same with previous voltage
1666 			 *    level and reach max voltage level (3).
1667 			 */
1668 			if (voltage_retries > MTK_DP_TRAIN_VOLTAGE_LEVEL_RETRY ||
1669 			    (prev_lane_adjust & DP_ADJUST_VOLTAGE_SWING_LANE0_MASK) == 3) {
1670 				dev_dbg(mtk_dp->dev, "Link train CR fail\n");
1671 				break;
1672 			}
1673 		} else {
1674 			/*
1675 			 * If the voltage level is changed, we need to
1676 			 * re-calculate this retry count.
1677 			 */
1678 			voltage_retries = 0;
1679 		}
1680 		prev_lane_adjust = link_status[4];
1681 	} while (train_retries < MTK_DP_TRAIN_DOWNSCALE_RETRY);
1682 
1683 	/* Failed to train CR, and disable pattern. */
1684 	drm_dp_dpcd_writeb(&mtk_dp->aux, DP_TRAINING_PATTERN_SET,
1685 			   DP_TRAINING_PATTERN_DISABLE);
1686 	mtk_dp_train_set_pattern(mtk_dp, 0);
1687 
1688 	return -ETIMEDOUT;
1689 }
1690 
1691 static int mtk_dp_train_eq(struct mtk_dp *mtk_dp, u8 target_lane_count)
1692 {
1693 	u8 lane_adjust[2] = {};
1694 	u8 link_status[DP_LINK_STATUS_SIZE] = {};
1695 	int train_retries = 0;
1696 
1697 	mtk_dp_pattern(mtk_dp, false);
1698 
1699 	do {
1700 		train_retries++;
1701 		if (!mtk_dp->train_info.cable_plugged_in) {
1702 			mtk_dp_train_set_pattern(mtk_dp, 0);
1703 			return -ENODEV;
1704 		}
1705 
1706 		drm_dp_dpcd_read(&mtk_dp->aux, DP_ADJUST_REQUEST_LANE0_1,
1707 				 lane_adjust, sizeof(lane_adjust));
1708 		mtk_dp_train_update_swing_pre(mtk_dp, target_lane_count,
1709 					      lane_adjust);
1710 
1711 		drm_dp_link_train_channel_eq_delay(&mtk_dp->aux,
1712 						   mtk_dp->rx_cap);
1713 
1714 		/* check link status from sink device */
1715 		drm_dp_dpcd_read_link_status(&mtk_dp->aux, link_status);
1716 		if (drm_dp_channel_eq_ok(link_status, target_lane_count)) {
1717 			dev_dbg(mtk_dp->dev, "Link train EQ pass\n");
1718 
1719 			/* Training done, and disable pattern. */
1720 			drm_dp_dpcd_writeb(&mtk_dp->aux, DP_TRAINING_PATTERN_SET,
1721 					   DP_TRAINING_PATTERN_DISABLE);
1722 			mtk_dp_train_set_pattern(mtk_dp, 0);
1723 			return 0;
1724 		}
1725 		dev_dbg(mtk_dp->dev, "Link train EQ fail\n");
1726 	} while (train_retries < MTK_DP_TRAIN_DOWNSCALE_RETRY);
1727 
1728 	/* Failed to train EQ, and disable pattern. */
1729 	drm_dp_dpcd_writeb(&mtk_dp->aux, DP_TRAINING_PATTERN_SET,
1730 			   DP_TRAINING_PATTERN_DISABLE);
1731 	mtk_dp_train_set_pattern(mtk_dp, 0);
1732 
1733 	return -ETIMEDOUT;
1734 }
1735 
1736 static int mtk_dp_parse_capabilities(struct mtk_dp *mtk_dp)
1737 {
1738 	u8 val;
1739 	ssize_t ret;
1740 
1741 	/*
1742 	 * If we're eDP and capabilities were already parsed we can skip
1743 	 * reading again because eDP panels aren't hotpluggable hence the
1744 	 * caps and training information won't ever change in a boot life
1745 	 */
1746 	if (mtk_dp->bridge.type == DRM_MODE_CONNECTOR_eDP &&
1747 	    mtk_dp->rx_cap[DP_MAX_LINK_RATE] &&
1748 	    mtk_dp->train_info.sink_ssc)
1749 		return 0;
1750 
1751 	ret = drm_dp_read_dpcd_caps(&mtk_dp->aux, mtk_dp->rx_cap);
1752 	if (ret < 0)
1753 		return ret;
1754 
1755 	if (drm_dp_tps4_supported(mtk_dp->rx_cap))
1756 		mtk_dp->train_info.channel_eq_pattern = DP_TRAINING_PATTERN_4;
1757 	else if (drm_dp_tps3_supported(mtk_dp->rx_cap))
1758 		mtk_dp->train_info.channel_eq_pattern = DP_TRAINING_PATTERN_3;
1759 	else
1760 		mtk_dp->train_info.channel_eq_pattern = DP_TRAINING_PATTERN_2;
1761 
1762 	mtk_dp->train_info.sink_ssc = drm_dp_max_downspread(mtk_dp->rx_cap);
1763 
1764 	ret = drm_dp_dpcd_readb(&mtk_dp->aux, DP_MSTM_CAP, &val);
1765 	if (ret < 1) {
1766 		drm_err(mtk_dp->drm_dev, "Read mstm cap failed\n");
1767 		return ret == 0 ? -EIO : ret;
1768 	}
1769 
1770 	if (val & DP_MST_CAP) {
1771 		/* Clear DP_DEVICE_SERVICE_IRQ_VECTOR_ESI0 */
1772 		ret = drm_dp_dpcd_readb(&mtk_dp->aux,
1773 					DP_DEVICE_SERVICE_IRQ_VECTOR_ESI0,
1774 					&val);
1775 		if (ret < 1) {
1776 			drm_err(mtk_dp->drm_dev, "Read irq vector failed\n");
1777 			return ret == 0 ? -EIO : ret;
1778 		}
1779 
1780 		if (val) {
1781 			ret = drm_dp_dpcd_writeb(&mtk_dp->aux,
1782 						 DP_DEVICE_SERVICE_IRQ_VECTOR_ESI0,
1783 						 val);
1784 			if (ret < 0)
1785 				return ret;
1786 		}
1787 	}
1788 
1789 	return 0;
1790 }
1791 
1792 static bool mtk_dp_edid_parse_audio_capabilities(struct mtk_dp *mtk_dp,
1793 						 struct mtk_dp_audio_cfg *cfg)
1794 {
1795 	if (!mtk_dp->data->audio_supported)
1796 		return false;
1797 
1798 	if (mtk_dp->info.audio_cur_cfg.sad_count <= 0) {
1799 		drm_info(mtk_dp->drm_dev, "The SADs is NULL\n");
1800 		return false;
1801 	}
1802 
1803 	return true;
1804 }
1805 
1806 static void mtk_dp_train_change_mode(struct mtk_dp *mtk_dp)
1807 {
1808 	phy_reset(mtk_dp->phy);
1809 	mtk_dp_reset_swing_pre_emphasis(mtk_dp);
1810 }
1811 
1812 static int mtk_dp_training(struct mtk_dp *mtk_dp)
1813 {
1814 	int ret;
1815 	u8 lane_count, link_rate, train_limit, max_link_rate;
1816 
1817 	link_rate = min_t(u8, mtk_dp->max_linkrate,
1818 			  mtk_dp->rx_cap[DP_MAX_LINK_RATE]);
1819 	max_link_rate = link_rate;
1820 	lane_count = min_t(u8, mtk_dp->max_lanes,
1821 			   drm_dp_max_lane_count(mtk_dp->rx_cap));
1822 
1823 	/*
1824 	 * TPS are generated by the hardware pattern generator. From the
1825 	 * hardware setting we need to disable this scramble setting before
1826 	 * use the TPS pattern generator.
1827 	 */
1828 	mtk_dp_training_set_scramble(mtk_dp, false);
1829 
1830 	for (train_limit = 6; train_limit > 0; train_limit--) {
1831 		mtk_dp_train_change_mode(mtk_dp);
1832 
1833 		ret = mtk_dp_train_setting(mtk_dp, link_rate, lane_count);
1834 		if (ret)
1835 			return ret;
1836 
1837 		ret = mtk_dp_train_cr(mtk_dp, lane_count);
1838 		if (ret == -ENODEV) {
1839 			return ret;
1840 		} else if (ret) {
1841 			/* reduce link rate */
1842 			switch (link_rate) {
1843 			case DP_LINK_BW_1_62:
1844 				lane_count = lane_count / 2;
1845 				link_rate = max_link_rate;
1846 				if (lane_count == 0)
1847 					return -EIO;
1848 				break;
1849 			case DP_LINK_BW_2_7:
1850 				link_rate = DP_LINK_BW_1_62;
1851 				break;
1852 			case DP_LINK_BW_5_4:
1853 				link_rate = DP_LINK_BW_2_7;
1854 				break;
1855 			case DP_LINK_BW_8_1:
1856 				link_rate = DP_LINK_BW_5_4;
1857 				break;
1858 			default:
1859 				return -EINVAL;
1860 			}
1861 			continue;
1862 		}
1863 
1864 		ret = mtk_dp_train_eq(mtk_dp, lane_count);
1865 		if (ret == -ENODEV) {
1866 			return ret;
1867 		} else if (ret) {
1868 			/* reduce lane count */
1869 			if (lane_count == 0)
1870 				return -EIO;
1871 			lane_count /= 2;
1872 			continue;
1873 		}
1874 
1875 		/* if we can run to this, training is done. */
1876 		break;
1877 	}
1878 
1879 	if (train_limit == 0)
1880 		return -ETIMEDOUT;
1881 
1882 	mtk_dp->train_info.link_rate = link_rate;
1883 	mtk_dp->train_info.lane_count = lane_count;
1884 
1885 	/*
1886 	 * After training done, we need to output normal stream instead of TPS,
1887 	 * so we need to enable scramble.
1888 	 */
1889 	mtk_dp_training_set_scramble(mtk_dp, true);
1890 	mtk_dp_set_enhanced_frame_mode(mtk_dp);
1891 
1892 	return 0;
1893 }
1894 
1895 static void mtk_dp_video_enable(struct mtk_dp *mtk_dp, bool enable)
1896 {
1897 	/* the mute sequence is different between enable and disable */
1898 	if (enable) {
1899 		mtk_dp_msa_bypass_enable(mtk_dp, false);
1900 		mtk_dp_pg_enable(mtk_dp, false);
1901 		mtk_dp_set_tx_out(mtk_dp);
1902 		mtk_dp_video_mute(mtk_dp, false);
1903 	} else {
1904 		mtk_dp_video_mute(mtk_dp, true);
1905 		mtk_dp_pg_enable(mtk_dp, true);
1906 		mtk_dp_msa_bypass_enable(mtk_dp, true);
1907 	}
1908 }
1909 
1910 static void mtk_dp_audio_sdp_setup(struct mtk_dp *mtk_dp,
1911 				   struct mtk_dp_audio_cfg *cfg)
1912 {
1913 	struct dp_sdp sdp;
1914 	struct hdmi_audio_infoframe frame;
1915 
1916 	hdmi_audio_infoframe_init(&frame);
1917 	frame.coding_type = HDMI_AUDIO_CODING_TYPE_PCM;
1918 	frame.channels = cfg->channels;
1919 	frame.sample_frequency = cfg->sample_rate;
1920 
1921 	switch (cfg->word_length_bits) {
1922 	case 16:
1923 		frame.sample_size = HDMI_AUDIO_SAMPLE_SIZE_16;
1924 		break;
1925 	case 20:
1926 		frame.sample_size = HDMI_AUDIO_SAMPLE_SIZE_20;
1927 		break;
1928 	case 24:
1929 	default:
1930 		frame.sample_size = HDMI_AUDIO_SAMPLE_SIZE_24;
1931 		break;
1932 	}
1933 
1934 	hdmi_audio_infoframe_pack_for_dp(&frame, &sdp, MTK_DP_VERSION);
1935 
1936 	mtk_dp_audio_sdp_asp_set_channels(mtk_dp, cfg->channels);
1937 	mtk_dp_setup_sdp_aui(mtk_dp, &sdp);
1938 }
1939 
1940 static void mtk_dp_audio_setup(struct mtk_dp *mtk_dp,
1941 			       struct mtk_dp_audio_cfg *cfg)
1942 {
1943 	mtk_dp_audio_sdp_setup(mtk_dp, cfg);
1944 	mtk_dp_audio_channel_status_set(mtk_dp, cfg);
1945 
1946 	mtk_dp_audio_setup_channels(mtk_dp, cfg);
1947 	mtk_dp_audio_set_divider(mtk_dp);
1948 }
1949 
1950 static int mtk_dp_video_config(struct mtk_dp *mtk_dp)
1951 {
1952 	mtk_dp_config_mn_mode(mtk_dp);
1953 	mtk_dp_set_msa(mtk_dp);
1954 	mtk_dp_set_color_depth(mtk_dp);
1955 	return mtk_dp_set_color_format(mtk_dp, mtk_dp->info.format);
1956 }
1957 
1958 static void mtk_dp_init_port(struct mtk_dp *mtk_dp)
1959 {
1960 	mtk_dp_set_idle_pattern(mtk_dp, true);
1961 	mtk_dp_initialize_priv_data(mtk_dp);
1962 
1963 	mtk_dp_initialize_settings(mtk_dp);
1964 	mtk_dp_initialize_aux_settings(mtk_dp);
1965 	mtk_dp_initialize_digital_settings(mtk_dp);
1966 	mtk_dp_initialize_hpd_detect_settings(mtk_dp);
1967 
1968 	mtk_dp_digital_sw_reset(mtk_dp);
1969 }
1970 
1971 static irqreturn_t mtk_dp_hpd_event_thread(int hpd, void *dev)
1972 {
1973 	struct mtk_dp *mtk_dp = dev;
1974 	unsigned long flags;
1975 	u32 status;
1976 
1977 	if (mtk_dp->need_debounce && mtk_dp->train_info.cable_plugged_in)
1978 		msleep(100);
1979 
1980 	spin_lock_irqsave(&mtk_dp->irq_thread_lock, flags);
1981 	status = mtk_dp->irq_thread_handle;
1982 	mtk_dp->irq_thread_handle = 0;
1983 	spin_unlock_irqrestore(&mtk_dp->irq_thread_lock, flags);
1984 
1985 	if (status & MTK_DP_THREAD_CABLE_STATE_CHG) {
1986 		if (mtk_dp->bridge.dev)
1987 			drm_helper_hpd_irq_event(mtk_dp->bridge.dev);
1988 
1989 		if (!mtk_dp->train_info.cable_plugged_in) {
1990 			mtk_dp_disable_sdp_aui(mtk_dp);
1991 			memset(&mtk_dp->info.audio_cur_cfg, 0,
1992 			       sizeof(mtk_dp->info.audio_cur_cfg));
1993 
1994 			mtk_dp->need_debounce = false;
1995 			mod_timer(&mtk_dp->debounce_timer,
1996 				  jiffies + msecs_to_jiffies(100) - 1);
1997 		}
1998 	}
1999 
2000 	if (status & MTK_DP_THREAD_HPD_EVENT)
2001 		dev_dbg(mtk_dp->dev, "Receive IRQ from sink devices\n");
2002 
2003 	return IRQ_HANDLED;
2004 }
2005 
2006 static irqreturn_t mtk_dp_hpd_event(int hpd, void *dev)
2007 {
2008 	struct mtk_dp *mtk_dp = dev;
2009 	bool cable_sta_chg = false;
2010 	unsigned long flags;
2011 	u32 irq_status = mtk_dp_swirq_get_clear(mtk_dp) |
2012 			 mtk_dp_hwirq_get_clear(mtk_dp);
2013 
2014 	if (!irq_status)
2015 		return IRQ_HANDLED;
2016 
2017 	spin_lock_irqsave(&mtk_dp->irq_thread_lock, flags);
2018 
2019 	if (irq_status & MTK_DP_HPD_INTERRUPT)
2020 		mtk_dp->irq_thread_handle |= MTK_DP_THREAD_HPD_EVENT;
2021 
2022 	/* Cable state is changed. */
2023 	if (irq_status != MTK_DP_HPD_INTERRUPT) {
2024 		mtk_dp->irq_thread_handle |= MTK_DP_THREAD_CABLE_STATE_CHG;
2025 		cable_sta_chg = true;
2026 	}
2027 
2028 	spin_unlock_irqrestore(&mtk_dp->irq_thread_lock, flags);
2029 
2030 	if (cable_sta_chg) {
2031 		if (!!(mtk_dp_read(mtk_dp, MTK_DP_TRANS_P0_3414) &
2032 		       HPD_DB_DP_TRANS_P0_MASK))
2033 			mtk_dp->train_info.cable_plugged_in = true;
2034 		else
2035 			mtk_dp->train_info.cable_plugged_in = false;
2036 	}
2037 
2038 	return IRQ_WAKE_THREAD;
2039 }
2040 
2041 static int mtk_dp_wait_hpd_asserted(struct drm_dp_aux *mtk_aux, unsigned long wait_us)
2042 {
2043 	struct mtk_dp *mtk_dp = container_of(mtk_aux, struct mtk_dp, aux);
2044 	u32 val;
2045 	int ret;
2046 
2047 	ret = regmap_read_poll_timeout(mtk_dp->regs, MTK_DP_TRANS_P0_3414,
2048 				       val, !!(val & HPD_DB_DP_TRANS_P0_MASK),
2049 				       wait_us / 100, wait_us);
2050 	if (ret) {
2051 		mtk_dp->train_info.cable_plugged_in = false;
2052 		return ret;
2053 	}
2054 
2055 	mtk_dp->train_info.cable_plugged_in = true;
2056 
2057 	ret = mtk_dp_parse_capabilities(mtk_dp);
2058 	if (ret) {
2059 		drm_err(mtk_dp->drm_dev, "Can't parse capabilities\n");
2060 		return ret;
2061 	}
2062 
2063 	return 0;
2064 }
2065 
2066 static int mtk_dp_dt_parse(struct mtk_dp *mtk_dp,
2067 			   struct platform_device *pdev)
2068 {
2069 	struct device_node *endpoint;
2070 	struct device *dev = &pdev->dev;
2071 	int ret;
2072 	void __iomem *base;
2073 	u32 linkrate;
2074 	int len;
2075 
2076 	base = devm_platform_ioremap_resource(pdev, 0);
2077 	if (IS_ERR(base))
2078 		return PTR_ERR(base);
2079 
2080 	mtk_dp->regs = devm_regmap_init_mmio(dev, base, &mtk_dp_regmap_config);
2081 	if (IS_ERR(mtk_dp->regs))
2082 		return PTR_ERR(mtk_dp->regs);
2083 
2084 	endpoint = of_graph_get_endpoint_by_regs(pdev->dev.of_node, 1, -1);
2085 	len = of_property_count_elems_of_size(endpoint,
2086 					      "data-lanes", sizeof(u32));
2087 	if (len < 0 || len > 4 || len == 3) {
2088 		dev_err(dev, "invalid data lane size: %d\n", len);
2089 		return -EINVAL;
2090 	}
2091 
2092 	mtk_dp->max_lanes = len;
2093 
2094 	ret = device_property_read_u32(dev, "max-linkrate-mhz", &linkrate);
2095 	if (ret) {
2096 		dev_err(dev, "failed to read max linkrate: %d\n", ret);
2097 		return ret;
2098 	}
2099 
2100 	mtk_dp->max_linkrate = drm_dp_link_rate_to_bw_code(linkrate * 100);
2101 
2102 	return 0;
2103 }
2104 
2105 static void mtk_dp_update_plugged_status(struct mtk_dp *mtk_dp)
2106 {
2107 	if (!mtk_dp->data->audio_supported || !mtk_dp->audio_enable)
2108 		return;
2109 
2110 	mutex_lock(&mtk_dp->update_plugged_status_lock);
2111 	if (mtk_dp->plugged_cb && mtk_dp->codec_dev)
2112 		mtk_dp->plugged_cb(mtk_dp->codec_dev,
2113 				   mtk_dp->enabled &
2114 				   mtk_dp->info.audio_cur_cfg.detect_monitor);
2115 	mutex_unlock(&mtk_dp->update_plugged_status_lock);
2116 }
2117 
2118 static enum drm_connector_status mtk_dp_bdg_detect(struct drm_bridge *bridge)
2119 {
2120 	struct mtk_dp *mtk_dp = mtk_dp_from_bridge(bridge);
2121 	enum drm_connector_status ret = connector_status_disconnected;
2122 	bool enabled = mtk_dp->enabled;
2123 	u8 sink_count = 0;
2124 
2125 	if (!mtk_dp->train_info.cable_plugged_in)
2126 		return ret;
2127 
2128 	if (!enabled)
2129 		mtk_dp_aux_panel_poweron(mtk_dp, true);
2130 
2131 	/*
2132 	 * Some dongles still source HPD when they do not connect to any
2133 	 * sink device. To avoid this, we need to read the sink count
2134 	 * to make sure we do connect to sink devices. After this detect
2135 	 * function, we just need to check the HPD connection to check
2136 	 * whether we connect to a sink device.
2137 	 */
2138 	drm_dp_dpcd_readb(&mtk_dp->aux, DP_SINK_COUNT, &sink_count);
2139 	if (DP_GET_SINK_COUNT(sink_count))
2140 		ret = connector_status_connected;
2141 
2142 	if (!enabled)
2143 		mtk_dp_aux_panel_poweron(mtk_dp, false);
2144 
2145 	return ret;
2146 }
2147 
2148 static const struct drm_edid *mtk_dp_edid_read(struct drm_bridge *bridge,
2149 					       struct drm_connector *connector)
2150 {
2151 	struct mtk_dp *mtk_dp = mtk_dp_from_bridge(bridge);
2152 	bool enabled = mtk_dp->enabled;
2153 	const struct drm_edid *drm_edid;
2154 	struct mtk_dp_audio_cfg *audio_caps = &mtk_dp->info.audio_cur_cfg;
2155 
2156 	if (!enabled) {
2157 		drm_atomic_bridge_chain_pre_enable(bridge, connector->state->state);
2158 		mtk_dp_aux_panel_poweron(mtk_dp, true);
2159 	}
2160 
2161 	drm_edid = drm_edid_read_ddc(connector, &mtk_dp->aux.ddc);
2162 
2163 	/*
2164 	 * Parse capability here to let atomic_get_input_bus_fmts and
2165 	 * mode_valid use the capability to calculate sink bitrates.
2166 	 */
2167 	if (mtk_dp_parse_capabilities(mtk_dp)) {
2168 		drm_err(mtk_dp->drm_dev, "Can't parse capabilities\n");
2169 		drm_edid_free(drm_edid);
2170 		drm_edid = NULL;
2171 	}
2172 
2173 	if (drm_edid) {
2174 		/*
2175 		 * FIXME: get rid of drm_edid_raw()
2176 		 */
2177 		const struct edid *edid = drm_edid_raw(drm_edid);
2178 		struct cea_sad *sads;
2179 		int ret;
2180 
2181 		ret = drm_edid_to_sad(edid, &sads);
2182 		/* Ignore any errors */
2183 		if (ret < 0)
2184 			ret = 0;
2185 		if (ret)
2186 			kfree(sads);
2187 		audio_caps->sad_count = ret;
2188 
2189 		/*
2190 		 * FIXME: This should use connector->display_info.has_audio from
2191 		 * a path that has read the EDID and called
2192 		 * drm_edid_connector_update().
2193 		 */
2194 		audio_caps->detect_monitor = drm_detect_monitor_audio(edid);
2195 	}
2196 
2197 	if (!enabled) {
2198 		mtk_dp_aux_panel_poweron(mtk_dp, false);
2199 		drm_atomic_bridge_chain_post_disable(bridge, connector->state->state);
2200 	}
2201 
2202 	return drm_edid;
2203 }
2204 
2205 static ssize_t mtk_dp_aux_transfer(struct drm_dp_aux *mtk_aux,
2206 				   struct drm_dp_aux_msg *msg)
2207 {
2208 	struct mtk_dp *mtk_dp = container_of(mtk_aux, struct mtk_dp, aux);
2209 	bool is_read;
2210 	u8 request;
2211 	size_t accessed_bytes = 0;
2212 	int ret;
2213 
2214 	if (mtk_dp->bridge.type != DRM_MODE_CONNECTOR_eDP &&
2215 	    !mtk_dp->train_info.cable_plugged_in) {
2216 		ret = -EIO;
2217 		goto err;
2218 	}
2219 
2220 	switch (msg->request) {
2221 	case DP_AUX_I2C_MOT:
2222 	case DP_AUX_I2C_WRITE:
2223 	case DP_AUX_NATIVE_WRITE:
2224 	case DP_AUX_I2C_WRITE_STATUS_UPDATE:
2225 	case DP_AUX_I2C_WRITE_STATUS_UPDATE | DP_AUX_I2C_MOT:
2226 		request = msg->request & ~DP_AUX_I2C_WRITE_STATUS_UPDATE;
2227 		is_read = false;
2228 		break;
2229 	case DP_AUX_I2C_READ:
2230 	case DP_AUX_NATIVE_READ:
2231 	case DP_AUX_I2C_READ | DP_AUX_I2C_MOT:
2232 		request = msg->request;
2233 		is_read = true;
2234 		break;
2235 	default:
2236 		dev_err(mtk_dp->dev, "invalid aux cmd = %d\n",
2237 			msg->request);
2238 		ret = -EINVAL;
2239 		goto err;
2240 	}
2241 
2242 	do {
2243 		size_t to_access = min_t(size_t, DP_AUX_MAX_PAYLOAD_BYTES,
2244 					 msg->size - accessed_bytes);
2245 
2246 		ret = mtk_dp_aux_do_transfer(mtk_dp, is_read, request,
2247 					     msg->address + accessed_bytes,
2248 					     msg->buffer + accessed_bytes,
2249 					     to_access, &msg->reply);
2250 
2251 		if (ret) {
2252 			dev_info(mtk_dp->dev,
2253 				 "Failed to do AUX transfer: %d\n", ret);
2254 			goto err;
2255 		}
2256 		accessed_bytes += to_access;
2257 	} while (accessed_bytes < msg->size);
2258 
2259 	return msg->size;
2260 err:
2261 	msg->reply = DP_AUX_NATIVE_REPLY_NACK | DP_AUX_I2C_REPLY_NACK;
2262 	return ret;
2263 }
2264 
2265 static int mtk_dp_poweron(struct mtk_dp *mtk_dp)
2266 {
2267 	int ret;
2268 
2269 	ret = phy_init(mtk_dp->phy);
2270 	if (ret) {
2271 		dev_err(mtk_dp->dev, "Failed to initialize phy: %d\n", ret);
2272 		return ret;
2273 	}
2274 
2275 	mtk_dp_init_port(mtk_dp);
2276 	mtk_dp_power_enable(mtk_dp);
2277 
2278 	return 0;
2279 }
2280 
2281 static void mtk_dp_poweroff(struct mtk_dp *mtk_dp)
2282 {
2283 	mtk_dp_power_disable(mtk_dp);
2284 	phy_exit(mtk_dp->phy);
2285 }
2286 
2287 static int mtk_dp_bridge_attach(struct drm_bridge *bridge,
2288 				enum drm_bridge_attach_flags flags)
2289 {
2290 	struct mtk_dp *mtk_dp = mtk_dp_from_bridge(bridge);
2291 	int ret;
2292 
2293 	if (!(flags & DRM_BRIDGE_ATTACH_NO_CONNECTOR)) {
2294 		dev_err(mtk_dp->dev, "Driver does not provide a connector!");
2295 		return -EINVAL;
2296 	}
2297 
2298 	mtk_dp->aux.drm_dev = bridge->dev;
2299 	ret = drm_dp_aux_register(&mtk_dp->aux);
2300 	if (ret) {
2301 		dev_err(mtk_dp->dev,
2302 			"failed to register DP AUX channel: %d\n", ret);
2303 		return ret;
2304 	}
2305 
2306 	ret = mtk_dp_poweron(mtk_dp);
2307 	if (ret)
2308 		goto err_aux_register;
2309 
2310 	if (mtk_dp->next_bridge) {
2311 		ret = drm_bridge_attach(bridge->encoder, mtk_dp->next_bridge,
2312 					&mtk_dp->bridge, flags);
2313 		if (ret) {
2314 			drm_warn(mtk_dp->drm_dev,
2315 				 "Failed to attach external bridge: %d\n", ret);
2316 			goto err_bridge_attach;
2317 		}
2318 	}
2319 
2320 	mtk_dp->drm_dev = bridge->dev;
2321 
2322 	if (mtk_dp->bridge.type != DRM_MODE_CONNECTOR_eDP) {
2323 		irq_clear_status_flags(mtk_dp->irq, IRQ_NOAUTOEN);
2324 		enable_irq(mtk_dp->irq);
2325 		mtk_dp_hwirq_enable(mtk_dp, true);
2326 	}
2327 
2328 	return 0;
2329 
2330 err_bridge_attach:
2331 	mtk_dp_poweroff(mtk_dp);
2332 err_aux_register:
2333 	drm_dp_aux_unregister(&mtk_dp->aux);
2334 	return ret;
2335 }
2336 
2337 static void mtk_dp_bridge_detach(struct drm_bridge *bridge)
2338 {
2339 	struct mtk_dp *mtk_dp = mtk_dp_from_bridge(bridge);
2340 
2341 	if (mtk_dp->bridge.type != DRM_MODE_CONNECTOR_eDP) {
2342 		mtk_dp_hwirq_enable(mtk_dp, false);
2343 		disable_irq(mtk_dp->irq);
2344 	}
2345 	mtk_dp->drm_dev = NULL;
2346 	mtk_dp_poweroff(mtk_dp);
2347 	drm_dp_aux_unregister(&mtk_dp->aux);
2348 }
2349 
2350 static void mtk_dp_bridge_atomic_enable(struct drm_bridge *bridge,
2351 					struct drm_bridge_state *old_state)
2352 {
2353 	struct mtk_dp *mtk_dp = mtk_dp_from_bridge(bridge);
2354 	int ret;
2355 
2356 	mtk_dp->conn = drm_atomic_get_new_connector_for_encoder(old_state->base.state,
2357 								bridge->encoder);
2358 	if (!mtk_dp->conn) {
2359 		drm_err(mtk_dp->drm_dev,
2360 			"Can't enable bridge as connector is missing\n");
2361 		return;
2362 	}
2363 
2364 	mtk_dp_aux_panel_poweron(mtk_dp, true);
2365 
2366 	/* Training */
2367 	ret = mtk_dp_training(mtk_dp);
2368 	if (ret) {
2369 		drm_err(mtk_dp->drm_dev, "Training failed, %d\n", ret);
2370 		goto power_off_aux;
2371 	}
2372 
2373 	ret = mtk_dp_video_config(mtk_dp);
2374 	if (ret)
2375 		goto power_off_aux;
2376 
2377 	mtk_dp_video_enable(mtk_dp, true);
2378 
2379 	mtk_dp->audio_enable =
2380 		mtk_dp_edid_parse_audio_capabilities(mtk_dp,
2381 						     &mtk_dp->info.audio_cur_cfg);
2382 	if (mtk_dp->audio_enable) {
2383 		mtk_dp_audio_setup(mtk_dp, &mtk_dp->info.audio_cur_cfg);
2384 		mtk_dp_audio_mute(mtk_dp, false);
2385 	} else {
2386 		memset(&mtk_dp->info.audio_cur_cfg, 0,
2387 		       sizeof(mtk_dp->info.audio_cur_cfg));
2388 	}
2389 
2390 	mtk_dp->enabled = true;
2391 	mtk_dp_update_plugged_status(mtk_dp);
2392 
2393 	return;
2394 power_off_aux:
2395 	mtk_dp_update_bits(mtk_dp, MTK_DP_TOP_PWR_STATE,
2396 			   DP_PWR_STATE_BANDGAP_TPLL,
2397 			   DP_PWR_STATE_MASK);
2398 }
2399 
2400 static void mtk_dp_bridge_atomic_disable(struct drm_bridge *bridge,
2401 					 struct drm_bridge_state *old_state)
2402 {
2403 	struct mtk_dp *mtk_dp = mtk_dp_from_bridge(bridge);
2404 
2405 	mtk_dp->enabled = false;
2406 	mtk_dp_update_plugged_status(mtk_dp);
2407 	mtk_dp_video_enable(mtk_dp, false);
2408 	mtk_dp_audio_mute(mtk_dp, true);
2409 
2410 	if (mtk_dp->train_info.cable_plugged_in) {
2411 		drm_dp_dpcd_writeb(&mtk_dp->aux, DP_SET_POWER, DP_SET_POWER_D3);
2412 		usleep_range(2000, 3000);
2413 	}
2414 
2415 	/* power off aux */
2416 	mtk_dp_update_bits(mtk_dp, MTK_DP_TOP_PWR_STATE,
2417 			   DP_PWR_STATE_BANDGAP_TPLL,
2418 			   DP_PWR_STATE_MASK);
2419 
2420 	/* SDP path reset sw*/
2421 	mtk_dp_sdp_path_reset(mtk_dp);
2422 
2423 	/* Ensure the sink is muted */
2424 	msleep(20);
2425 }
2426 
2427 static enum drm_mode_status
2428 mtk_dp_bridge_mode_valid(struct drm_bridge *bridge,
2429 			 const struct drm_display_info *info,
2430 			 const struct drm_display_mode *mode)
2431 {
2432 	struct mtk_dp *mtk_dp = mtk_dp_from_bridge(bridge);
2433 	u32 bpp = info->color_formats & DRM_COLOR_FORMAT_YCBCR422 ? 16 : 24;
2434 	u32 rate = min_t(u32, drm_dp_max_link_rate(mtk_dp->rx_cap) *
2435 			      drm_dp_max_lane_count(mtk_dp->rx_cap),
2436 			 drm_dp_bw_code_to_link_rate(mtk_dp->max_linkrate) *
2437 			 mtk_dp->max_lanes);
2438 
2439 	if (rate < mode->clock * bpp / 8)
2440 		return MODE_CLOCK_HIGH;
2441 
2442 	return MODE_OK;
2443 }
2444 
2445 static u32 *mtk_dp_bridge_atomic_get_output_bus_fmts(struct drm_bridge *bridge,
2446 						     struct drm_bridge_state *bridge_state,
2447 						     struct drm_crtc_state *crtc_state,
2448 						     struct drm_connector_state *conn_state,
2449 						     unsigned int *num_output_fmts)
2450 {
2451 	u32 *output_fmts;
2452 
2453 	*num_output_fmts = 0;
2454 	output_fmts = kmalloc(sizeof(*output_fmts), GFP_KERNEL);
2455 	if (!output_fmts)
2456 		return NULL;
2457 	*num_output_fmts = 1;
2458 	output_fmts[0] = MEDIA_BUS_FMT_FIXED;
2459 	return output_fmts;
2460 }
2461 
2462 static const u32 mt8195_input_fmts[] = {
2463 	MEDIA_BUS_FMT_RGB888_1X24,
2464 	MEDIA_BUS_FMT_YUV8_1X24,
2465 	MEDIA_BUS_FMT_YUYV8_1X16,
2466 };
2467 
2468 static u32 *mtk_dp_bridge_atomic_get_input_bus_fmts(struct drm_bridge *bridge,
2469 						    struct drm_bridge_state *bridge_state,
2470 						    struct drm_crtc_state *crtc_state,
2471 						    struct drm_connector_state *conn_state,
2472 						    u32 output_fmt,
2473 						    unsigned int *num_input_fmts)
2474 {
2475 	u32 *input_fmts;
2476 	struct mtk_dp *mtk_dp = mtk_dp_from_bridge(bridge);
2477 	struct drm_display_mode *mode = &crtc_state->adjusted_mode;
2478 	struct drm_display_info *display_info =
2479 		&conn_state->connector->display_info;
2480 	u32 rate = min_t(u32, drm_dp_max_link_rate(mtk_dp->rx_cap) *
2481 			      drm_dp_max_lane_count(mtk_dp->rx_cap),
2482 			 drm_dp_bw_code_to_link_rate(mtk_dp->max_linkrate) *
2483 			 mtk_dp->max_lanes);
2484 
2485 	*num_input_fmts = 0;
2486 
2487 	/*
2488 	 * If the linkrate is smaller than datarate of RGB888, larger than
2489 	 * datarate of YUV422 and sink device supports YUV422, we output YUV422
2490 	 * format. Use this condition, we can support more resolution.
2491 	 */
2492 	if ((rate < (mode->clock * 24 / 8)) &&
2493 	    (rate > (mode->clock * 16 / 8)) &&
2494 	    (display_info->color_formats & DRM_COLOR_FORMAT_YCBCR422)) {
2495 		input_fmts = kcalloc(1, sizeof(*input_fmts), GFP_KERNEL);
2496 		if (!input_fmts)
2497 			return NULL;
2498 		*num_input_fmts = 1;
2499 		input_fmts[0] = MEDIA_BUS_FMT_YUYV8_1X16;
2500 	} else {
2501 		input_fmts = kcalloc(ARRAY_SIZE(mt8195_input_fmts),
2502 				     sizeof(*input_fmts),
2503 				     GFP_KERNEL);
2504 		if (!input_fmts)
2505 			return NULL;
2506 
2507 		*num_input_fmts = ARRAY_SIZE(mt8195_input_fmts);
2508 		memcpy(input_fmts, mt8195_input_fmts, sizeof(mt8195_input_fmts));
2509 	}
2510 
2511 	return input_fmts;
2512 }
2513 
2514 static int mtk_dp_bridge_atomic_check(struct drm_bridge *bridge,
2515 				      struct drm_bridge_state *bridge_state,
2516 				      struct drm_crtc_state *crtc_state,
2517 				      struct drm_connector_state *conn_state)
2518 {
2519 	struct mtk_dp *mtk_dp = mtk_dp_from_bridge(bridge);
2520 	struct drm_crtc *crtc = conn_state->crtc;
2521 	unsigned int input_bus_format;
2522 
2523 	input_bus_format = bridge_state->input_bus_cfg.format;
2524 
2525 	dev_dbg(mtk_dp->dev, "input format 0x%04x, output format 0x%04x\n",
2526 		bridge_state->input_bus_cfg.format,
2527 		 bridge_state->output_bus_cfg.format);
2528 
2529 	if (input_bus_format == MEDIA_BUS_FMT_YUYV8_1X16)
2530 		mtk_dp->info.format = DP_PIXELFORMAT_YUV422;
2531 	else
2532 		mtk_dp->info.format = DP_PIXELFORMAT_RGB;
2533 
2534 	if (!crtc) {
2535 		drm_err(mtk_dp->drm_dev,
2536 			"Can't enable bridge as connector state doesn't have a crtc\n");
2537 		return -EINVAL;
2538 	}
2539 
2540 	drm_display_mode_to_videomode(&crtc_state->adjusted_mode, &mtk_dp->info.vm);
2541 
2542 	return 0;
2543 }
2544 
2545 static const struct drm_bridge_funcs mtk_dp_bridge_funcs = {
2546 	.atomic_check = mtk_dp_bridge_atomic_check,
2547 	.atomic_duplicate_state = drm_atomic_helper_bridge_duplicate_state,
2548 	.atomic_destroy_state = drm_atomic_helper_bridge_destroy_state,
2549 	.atomic_get_output_bus_fmts = mtk_dp_bridge_atomic_get_output_bus_fmts,
2550 	.atomic_get_input_bus_fmts = mtk_dp_bridge_atomic_get_input_bus_fmts,
2551 	.atomic_reset = drm_atomic_helper_bridge_reset,
2552 	.attach = mtk_dp_bridge_attach,
2553 	.detach = mtk_dp_bridge_detach,
2554 	.atomic_enable = mtk_dp_bridge_atomic_enable,
2555 	.atomic_disable = mtk_dp_bridge_atomic_disable,
2556 	.mode_valid = mtk_dp_bridge_mode_valid,
2557 	.edid_read = mtk_dp_edid_read,
2558 	.detect = mtk_dp_bdg_detect,
2559 };
2560 
2561 static void mtk_dp_debounce_timer(struct timer_list *t)
2562 {
2563 	struct mtk_dp *mtk_dp = from_timer(mtk_dp, t, debounce_timer);
2564 
2565 	mtk_dp->need_debounce = true;
2566 }
2567 
2568 /*
2569  * HDMI audio codec callbacks
2570  */
2571 static int mtk_dp_audio_hw_params(struct device *dev, void *data,
2572 				  struct hdmi_codec_daifmt *daifmt,
2573 				  struct hdmi_codec_params *params)
2574 {
2575 	struct mtk_dp *mtk_dp = dev_get_drvdata(dev);
2576 
2577 	if (!mtk_dp->enabled) {
2578 		dev_err(mtk_dp->dev, "%s, DP is not ready!\n", __func__);
2579 		return -ENODEV;
2580 	}
2581 
2582 	mtk_dp->info.audio_cur_cfg.channels = params->cea.channels;
2583 	mtk_dp->info.audio_cur_cfg.sample_rate = params->sample_rate;
2584 
2585 	mtk_dp_audio_setup(mtk_dp, &mtk_dp->info.audio_cur_cfg);
2586 
2587 	return 0;
2588 }
2589 
2590 static int mtk_dp_audio_startup(struct device *dev, void *data)
2591 {
2592 	struct mtk_dp *mtk_dp = dev_get_drvdata(dev);
2593 
2594 	mtk_dp_audio_mute(mtk_dp, false);
2595 
2596 	return 0;
2597 }
2598 
2599 static void mtk_dp_audio_shutdown(struct device *dev, void *data)
2600 {
2601 	struct mtk_dp *mtk_dp = dev_get_drvdata(dev);
2602 
2603 	mtk_dp_audio_mute(mtk_dp, true);
2604 }
2605 
2606 static int mtk_dp_audio_get_eld(struct device *dev, void *data, uint8_t *buf,
2607 				size_t len)
2608 {
2609 	struct mtk_dp *mtk_dp = dev_get_drvdata(dev);
2610 
2611 	if (mtk_dp->enabled)
2612 		memcpy(buf, mtk_dp->conn->eld, len);
2613 	else
2614 		memset(buf, 0, len);
2615 
2616 	return 0;
2617 }
2618 
2619 static int mtk_dp_audio_hook_plugged_cb(struct device *dev, void *data,
2620 					hdmi_codec_plugged_cb fn,
2621 					struct device *codec_dev)
2622 {
2623 	struct mtk_dp *mtk_dp = data;
2624 
2625 	mutex_lock(&mtk_dp->update_plugged_status_lock);
2626 	mtk_dp->plugged_cb = fn;
2627 	mtk_dp->codec_dev = codec_dev;
2628 	mutex_unlock(&mtk_dp->update_plugged_status_lock);
2629 
2630 	mtk_dp_update_plugged_status(mtk_dp);
2631 
2632 	return 0;
2633 }
2634 
2635 static const struct hdmi_codec_ops mtk_dp_audio_codec_ops = {
2636 	.hw_params = mtk_dp_audio_hw_params,
2637 	.audio_startup = mtk_dp_audio_startup,
2638 	.audio_shutdown = mtk_dp_audio_shutdown,
2639 	.get_eld = mtk_dp_audio_get_eld,
2640 	.hook_plugged_cb = mtk_dp_audio_hook_plugged_cb,
2641 };
2642 
2643 static int mtk_dp_register_audio_driver(struct device *dev)
2644 {
2645 	struct mtk_dp *mtk_dp = dev_get_drvdata(dev);
2646 	struct hdmi_codec_pdata codec_data = {
2647 		.ops = &mtk_dp_audio_codec_ops,
2648 		.max_i2s_channels = 8,
2649 		.i2s = 1,
2650 		.data = mtk_dp,
2651 		.no_capture_mute = 1,
2652 	};
2653 
2654 	mtk_dp->audio_pdev = platform_device_register_data(dev,
2655 							   HDMI_CODEC_DRV_NAME,
2656 							   PLATFORM_DEVID_AUTO,
2657 							   &codec_data,
2658 							   sizeof(codec_data));
2659 	return PTR_ERR_OR_ZERO(mtk_dp->audio_pdev);
2660 }
2661 
2662 static int mtk_dp_register_phy(struct mtk_dp *mtk_dp)
2663 {
2664 	struct device *dev = mtk_dp->dev;
2665 
2666 	mtk_dp->phy_dev = platform_device_register_data(dev, "mediatek-dp-phy",
2667 							PLATFORM_DEVID_AUTO,
2668 							&mtk_dp->regs,
2669 							sizeof(struct regmap *));
2670 	if (IS_ERR(mtk_dp->phy_dev))
2671 		return dev_err_probe(dev, PTR_ERR(mtk_dp->phy_dev),
2672 				     "Failed to create device mediatek-dp-phy\n");
2673 
2674 	mtk_dp_get_calibration_data(mtk_dp);
2675 
2676 	mtk_dp->phy = devm_phy_get(&mtk_dp->phy_dev->dev, "dp");
2677 	if (IS_ERR(mtk_dp->phy)) {
2678 		platform_device_unregister(mtk_dp->phy_dev);
2679 		return dev_err_probe(dev, PTR_ERR(mtk_dp->phy), "Failed to get phy\n");
2680 	}
2681 
2682 	return 0;
2683 }
2684 
2685 static int mtk_dp_edp_link_panel(struct drm_dp_aux *mtk_aux)
2686 {
2687 	struct mtk_dp *mtk_dp = container_of(mtk_aux, struct mtk_dp, aux);
2688 	struct device *dev = mtk_aux->dev;
2689 	int ret;
2690 
2691 	mtk_dp->next_bridge = devm_drm_of_get_bridge(dev, dev->of_node, 1, 0);
2692 
2693 	/* Power off the DP and AUX: either detection is done, or no panel present */
2694 	mtk_dp_update_bits(mtk_dp, MTK_DP_TOP_PWR_STATE,
2695 			   DP_PWR_STATE_BANDGAP_TPLL,
2696 			   DP_PWR_STATE_MASK);
2697 	mtk_dp_power_disable(mtk_dp);
2698 
2699 	if (IS_ERR(mtk_dp->next_bridge)) {
2700 		ret = PTR_ERR(mtk_dp->next_bridge);
2701 		mtk_dp->next_bridge = NULL;
2702 		return ret;
2703 	}
2704 
2705 	/* For eDP, we add the bridge only if the panel was found */
2706 	ret = devm_drm_bridge_add(dev, &mtk_dp->bridge);
2707 	if (ret)
2708 		return ret;
2709 
2710 	return 0;
2711 }
2712 
2713 static int mtk_dp_probe(struct platform_device *pdev)
2714 {
2715 	struct mtk_dp *mtk_dp;
2716 	struct device *dev = &pdev->dev;
2717 	int ret;
2718 
2719 	mtk_dp = devm_kzalloc(dev, sizeof(*mtk_dp), GFP_KERNEL);
2720 	if (!mtk_dp)
2721 		return -ENOMEM;
2722 
2723 	mtk_dp->dev = dev;
2724 	mtk_dp->data = (struct mtk_dp_data *)of_device_get_match_data(dev);
2725 
2726 	ret = mtk_dp_dt_parse(mtk_dp, pdev);
2727 	if (ret)
2728 		return dev_err_probe(dev, ret, "Failed to parse dt\n");
2729 
2730 	/*
2731 	 * Request the interrupt and install service routine only if we are
2732 	 * on full DisplayPort.
2733 	 * For eDP, polling the HPD instead is more convenient because we
2734 	 * don't expect any (un)plug events during runtime, hence we can
2735 	 * avoid some locking.
2736 	 */
2737 	if (mtk_dp->data->bridge_type != DRM_MODE_CONNECTOR_eDP) {
2738 		mtk_dp->irq = platform_get_irq(pdev, 0);
2739 		if (mtk_dp->irq < 0)
2740 			return dev_err_probe(dev, mtk_dp->irq,
2741 					     "failed to request dp irq resource\n");
2742 
2743 		spin_lock_init(&mtk_dp->irq_thread_lock);
2744 
2745 		irq_set_status_flags(mtk_dp->irq, IRQ_NOAUTOEN);
2746 		ret = devm_request_threaded_irq(dev, mtk_dp->irq, mtk_dp_hpd_event,
2747 						mtk_dp_hpd_event_thread,
2748 						IRQ_TYPE_LEVEL_HIGH, dev_name(dev),
2749 						mtk_dp);
2750 		if (ret)
2751 			return dev_err_probe(dev, ret,
2752 					     "failed to request mediatek dptx irq\n");
2753 
2754 		mtk_dp->need_debounce = true;
2755 		timer_setup(&mtk_dp->debounce_timer, mtk_dp_debounce_timer, 0);
2756 	}
2757 
2758 	mtk_dp->aux.name = "aux_mtk_dp";
2759 	mtk_dp->aux.dev = dev;
2760 	mtk_dp->aux.transfer = mtk_dp_aux_transfer;
2761 	mtk_dp->aux.wait_hpd_asserted = mtk_dp_wait_hpd_asserted;
2762 	drm_dp_aux_init(&mtk_dp->aux);
2763 
2764 	platform_set_drvdata(pdev, mtk_dp);
2765 
2766 	if (mtk_dp->data->audio_supported) {
2767 		mutex_init(&mtk_dp->update_plugged_status_lock);
2768 
2769 		ret = mtk_dp_register_audio_driver(dev);
2770 		if (ret)
2771 			return dev_err_probe(dev, ret,
2772 					     "Failed to register audio driver\n");
2773 	}
2774 
2775 	ret = mtk_dp_register_phy(mtk_dp);
2776 	if (ret)
2777 		return ret;
2778 
2779 	mtk_dp->bridge.funcs = &mtk_dp_bridge_funcs;
2780 	mtk_dp->bridge.of_node = dev->of_node;
2781 	mtk_dp->bridge.type = mtk_dp->data->bridge_type;
2782 
2783 	if (mtk_dp->bridge.type == DRM_MODE_CONNECTOR_eDP) {
2784 		/*
2785 		 * Set the data lanes to idle in case the bootloader didn't
2786 		 * properly close the eDP port to avoid stalls and then
2787 		 * reinitialize, reset and power on the AUX block.
2788 		 */
2789 		mtk_dp_set_idle_pattern(mtk_dp, true);
2790 		mtk_dp_initialize_aux_settings(mtk_dp);
2791 		mtk_dp_power_enable(mtk_dp);
2792 
2793 		/* Disable HW interrupts: we don't need any for eDP */
2794 		mtk_dp_hwirq_enable(mtk_dp, false);
2795 
2796 		/*
2797 		 * Power on the AUX to allow reading the EDID from aux-bus:
2798 		 * please note that it is necessary to call power off in the
2799 		 * .done_probing() callback (mtk_dp_edp_link_panel), as only
2800 		 * there we can safely assume that we finished reading EDID.
2801 		 */
2802 		mtk_dp_update_bits(mtk_dp, MTK_DP_TOP_PWR_STATE,
2803 				   DP_PWR_STATE_BANDGAP_TPLL_LANE,
2804 				   DP_PWR_STATE_MASK);
2805 
2806 		ret = devm_of_dp_aux_populate_bus(&mtk_dp->aux, mtk_dp_edp_link_panel);
2807 		if (ret) {
2808 			/* -ENODEV this means that the panel is not on the aux-bus */
2809 			if (ret == -ENODEV) {
2810 				ret = mtk_dp_edp_link_panel(&mtk_dp->aux);
2811 				if (ret)
2812 					return ret;
2813 			} else {
2814 				mtk_dp_update_bits(mtk_dp, MTK_DP_TOP_PWR_STATE,
2815 						   DP_PWR_STATE_BANDGAP_TPLL,
2816 						   DP_PWR_STATE_MASK);
2817 				mtk_dp_power_disable(mtk_dp);
2818 				return ret;
2819 			}
2820 		}
2821 	} else {
2822 		mtk_dp->bridge.ops = DRM_BRIDGE_OP_DETECT |
2823 				     DRM_BRIDGE_OP_EDID | DRM_BRIDGE_OP_HPD;
2824 		ret = devm_drm_bridge_add(dev, &mtk_dp->bridge);
2825 		if (ret)
2826 			return dev_err_probe(dev, ret, "Failed to add bridge\n");
2827 	}
2828 
2829 	pm_runtime_enable(dev);
2830 	pm_runtime_get_sync(dev);
2831 
2832 	return 0;
2833 }
2834 
2835 static void mtk_dp_remove(struct platform_device *pdev)
2836 {
2837 	struct mtk_dp *mtk_dp = platform_get_drvdata(pdev);
2838 
2839 	pm_runtime_put(&pdev->dev);
2840 	pm_runtime_disable(&pdev->dev);
2841 	if (mtk_dp->data->bridge_type != DRM_MODE_CONNECTOR_eDP)
2842 		del_timer_sync(&mtk_dp->debounce_timer);
2843 	platform_device_unregister(mtk_dp->phy_dev);
2844 	if (mtk_dp->audio_pdev)
2845 		platform_device_unregister(mtk_dp->audio_pdev);
2846 }
2847 
2848 #ifdef CONFIG_PM_SLEEP
2849 static int mtk_dp_suspend(struct device *dev)
2850 {
2851 	struct mtk_dp *mtk_dp = dev_get_drvdata(dev);
2852 
2853 	mtk_dp_power_disable(mtk_dp);
2854 	if (mtk_dp->bridge.type != DRM_MODE_CONNECTOR_eDP)
2855 		mtk_dp_hwirq_enable(mtk_dp, false);
2856 	pm_runtime_put_sync(dev);
2857 
2858 	return 0;
2859 }
2860 
2861 static int mtk_dp_resume(struct device *dev)
2862 {
2863 	struct mtk_dp *mtk_dp = dev_get_drvdata(dev);
2864 
2865 	pm_runtime_get_sync(dev);
2866 	mtk_dp_init_port(mtk_dp);
2867 	if (mtk_dp->bridge.type != DRM_MODE_CONNECTOR_eDP)
2868 		mtk_dp_hwirq_enable(mtk_dp, true);
2869 	mtk_dp_power_enable(mtk_dp);
2870 
2871 	return 0;
2872 }
2873 #endif
2874 
2875 static SIMPLE_DEV_PM_OPS(mtk_dp_pm_ops, mtk_dp_suspend, mtk_dp_resume);
2876 
2877 static const struct mtk_dp_data mt8188_dp_data = {
2878 	.bridge_type = DRM_MODE_CONNECTOR_DisplayPort,
2879 	.smc_cmd = MTK_DP_SIP_ATF_VIDEO_UNMUTE,
2880 	.efuse_fmt = mt8188_dp_efuse_fmt,
2881 	.audio_supported = true,
2882 	.audio_pkt_in_hblank_area = true,
2883 	.audio_m_div2_bit = MT8188_AUDIO_M_CODE_MULT_DIV_SEL_DP_ENC0_P0_DIV_2,
2884 };
2885 
2886 static const struct mtk_dp_data mt8195_edp_data = {
2887 	.bridge_type = DRM_MODE_CONNECTOR_eDP,
2888 	.smc_cmd = MTK_DP_SIP_ATF_EDP_VIDEO_UNMUTE,
2889 	.efuse_fmt = mt8195_edp_efuse_fmt,
2890 	.audio_supported = false,
2891 	.audio_m_div2_bit = MT8195_AUDIO_M_CODE_MULT_DIV_SEL_DP_ENC0_P0_DIV_2,
2892 };
2893 
2894 static const struct mtk_dp_data mt8195_dp_data = {
2895 	.bridge_type = DRM_MODE_CONNECTOR_DisplayPort,
2896 	.smc_cmd = MTK_DP_SIP_ATF_VIDEO_UNMUTE,
2897 	.efuse_fmt = mt8195_dp_efuse_fmt,
2898 	.audio_supported = true,
2899 	.audio_m_div2_bit = MT8195_AUDIO_M_CODE_MULT_DIV_SEL_DP_ENC0_P0_DIV_2,
2900 };
2901 
2902 static const struct of_device_id mtk_dp_of_match[] = {
2903 	{
2904 		.compatible = "mediatek,mt8188-edp-tx",
2905 		.data = &mt8195_edp_data,
2906 	},
2907 	{
2908 		.compatible = "mediatek,mt8188-dp-tx",
2909 		.data = &mt8188_dp_data,
2910 	},
2911 	{
2912 		.compatible = "mediatek,mt8195-edp-tx",
2913 		.data = &mt8195_edp_data,
2914 	},
2915 	{
2916 		.compatible = "mediatek,mt8195-dp-tx",
2917 		.data = &mt8195_dp_data,
2918 	},
2919 	{},
2920 };
2921 MODULE_DEVICE_TABLE(of, mtk_dp_of_match);
2922 
2923 static struct platform_driver mtk_dp_driver = {
2924 	.probe = mtk_dp_probe,
2925 	.remove = mtk_dp_remove,
2926 	.driver = {
2927 		.name = "mediatek-drm-dp",
2928 		.of_match_table = mtk_dp_of_match,
2929 		.pm = &mtk_dp_pm_ops,
2930 	},
2931 };
2932 
2933 module_platform_driver(mtk_dp_driver);
2934 
2935 MODULE_AUTHOR("Jitao Shi <[email protected]>");
2936 MODULE_AUTHOR("Markus Schneider-Pargmann <[email protected]>");
2937 MODULE_AUTHOR("Bo-Chen Chen <[email protected]>");
2938 MODULE_DESCRIPTION("MediaTek DisplayPort Driver");
2939 MODULE_LICENSE("GPL");
2940 MODULE_SOFTDEP("pre: phy_mtk_dp");
2941