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