1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Copyright (C) 2009 Nokia Corporation 4 * Author: Tomi Valkeinen <tomi.valkeinen@ti.com> 5 */ 6 7 #define DSS_SUBSYS_NAME "DSI" 8 9 #include <linux/kernel.h> 10 #include <linux/mfd/syscon.h> 11 #include <linux/regmap.h> 12 #include <linux/io.h> 13 #include <linux/clk.h> 14 #include <linux/device.h> 15 #include <linux/err.h> 16 #include <linux/interrupt.h> 17 #include <linux/irq.h> 18 #include <linux/delay.h> 19 #include <linux/gpio/consumer.h> 20 #include <linux/mutex.h> 21 #include <linux/module.h> 22 #include <linux/semaphore.h> 23 #include <linux/seq_file.h> 24 #include <linux/platform_device.h> 25 #include <linux/regulator/consumer.h> 26 #include <linux/wait.h> 27 #include <linux/workqueue.h> 28 #include <linux/sched.h> 29 #include <linux/slab.h> 30 #include <linux/debugfs.h> 31 #include <linux/pm_runtime.h> 32 #include <linux/of.h> 33 #include <linux/of_graph.h> 34 #include <linux/of_platform.h> 35 #include <linux/component.h> 36 #include <linux/sys_soc.h> 37 38 #include <drm/drm_bridge.h> 39 #include <drm/drm_mipi_dsi.h> 40 #include <drm/drm_panel.h> 41 #include <video/mipi_display.h> 42 43 #include "omapdss.h" 44 #include "dss.h" 45 46 #define DSI_CATCH_MISSING_TE 47 48 #include "dsi.h" 49 50 #define REG_GET(dsi, idx, start, end) \ 51 FLD_GET(dsi_read_reg(dsi, idx), start, end) 52 53 #define REG_FLD_MOD(dsi, idx, val, start, end) \ 54 dsi_write_reg(dsi, idx, FLD_MOD(dsi_read_reg(dsi, idx), val, start, end)) 55 56 static int dsi_init_dispc(struct dsi_data *dsi); 57 static void dsi_uninit_dispc(struct dsi_data *dsi); 58 59 static int dsi_vc_send_null(struct dsi_data *dsi, int vc, int channel); 60 61 static ssize_t _omap_dsi_host_transfer(struct dsi_data *dsi, int vc, 62 const struct mipi_dsi_msg *msg); 63 64 #ifdef DSI_PERF_MEASURE 65 static bool dsi_perf; 66 module_param(dsi_perf, bool, 0644); 67 #endif 68 69 /* Note: for some reason video mode seems to work only if VC_VIDEO is 0 */ 70 #define VC_VIDEO 0 71 #define VC_CMD 1 72 73 #define drm_bridge_to_dsi(bridge) \ 74 container_of(bridge, struct dsi_data, bridge) 75 76 static inline struct dsi_data *to_dsi_data(struct omap_dss_device *dssdev) 77 { 78 return dev_get_drvdata(dssdev->dev); 79 } 80 81 static inline struct dsi_data *host_to_omap(struct mipi_dsi_host *host) 82 { 83 return container_of(host, struct dsi_data, host); 84 } 85 86 static inline void dsi_write_reg(struct dsi_data *dsi, 87 const struct dsi_reg idx, u32 val) 88 { 89 void __iomem *base; 90 91 switch(idx.module) { 92 case DSI_PROTO: base = dsi->proto_base; break; 93 case DSI_PHY: base = dsi->phy_base; break; 94 case DSI_PLL: base = dsi->pll_base; break; 95 default: return; 96 } 97 98 __raw_writel(val, base + idx.idx); 99 } 100 101 static inline u32 dsi_read_reg(struct dsi_data *dsi, const struct dsi_reg idx) 102 { 103 void __iomem *base; 104 105 switch(idx.module) { 106 case DSI_PROTO: base = dsi->proto_base; break; 107 case DSI_PHY: base = dsi->phy_base; break; 108 case DSI_PLL: base = dsi->pll_base; break; 109 default: return 0; 110 } 111 112 return __raw_readl(base + idx.idx); 113 } 114 115 static void dsi_bus_lock(struct dsi_data *dsi) 116 { 117 down(&dsi->bus_lock); 118 } 119 120 static void dsi_bus_unlock(struct dsi_data *dsi) 121 { 122 up(&dsi->bus_lock); 123 } 124 125 static bool dsi_bus_is_locked(struct dsi_data *dsi) 126 { 127 return dsi->bus_lock.count == 0; 128 } 129 130 static void dsi_completion_handler(void *data, u32 mask) 131 { 132 complete((struct completion *)data); 133 } 134 135 static inline bool wait_for_bit_change(struct dsi_data *dsi, 136 const struct dsi_reg idx, 137 int bitnum, int value) 138 { 139 unsigned long timeout; 140 ktime_t wait; 141 int t; 142 143 /* first busyloop to see if the bit changes right away */ 144 t = 100; 145 while (t-- > 0) { 146 if (REG_GET(dsi, idx, bitnum, bitnum) == value) 147 return true; 148 } 149 150 /* then loop for 500ms, sleeping for 1ms in between */ 151 timeout = jiffies + msecs_to_jiffies(500); 152 while (time_before(jiffies, timeout)) { 153 if (REG_GET(dsi, idx, bitnum, bitnum) == value) 154 return true; 155 156 wait = ns_to_ktime(1000 * 1000); 157 set_current_state(TASK_UNINTERRUPTIBLE); 158 schedule_hrtimeout(&wait, HRTIMER_MODE_REL); 159 } 160 161 return false; 162 } 163 164 #ifdef DSI_PERF_MEASURE 165 static void dsi_perf_mark_setup(struct dsi_data *dsi) 166 { 167 dsi->perf_setup_time = ktime_get(); 168 } 169 170 static void dsi_perf_mark_start(struct dsi_data *dsi) 171 { 172 dsi->perf_start_time = ktime_get(); 173 } 174 175 static void dsi_perf_show(struct dsi_data *dsi, const char *name) 176 { 177 ktime_t t, setup_time, trans_time; 178 u32 total_bytes; 179 u32 setup_us, trans_us, total_us; 180 181 if (!dsi_perf) 182 return; 183 184 t = ktime_get(); 185 186 setup_time = ktime_sub(dsi->perf_start_time, dsi->perf_setup_time); 187 setup_us = (u32)ktime_to_us(setup_time); 188 if (setup_us == 0) 189 setup_us = 1; 190 191 trans_time = ktime_sub(t, dsi->perf_start_time); 192 trans_us = (u32)ktime_to_us(trans_time); 193 if (trans_us == 0) 194 trans_us = 1; 195 196 total_us = setup_us + trans_us; 197 198 total_bytes = dsi->update_bytes; 199 200 pr_info("DSI(%s): %u us + %u us = %u us (%uHz), %u bytes, %u kbytes/sec\n", 201 name, 202 setup_us, 203 trans_us, 204 total_us, 205 1000 * 1000 / total_us, 206 total_bytes, 207 total_bytes * 1000 / total_us); 208 } 209 #else 210 static inline void dsi_perf_mark_setup(struct dsi_data *dsi) 211 { 212 } 213 214 static inline void dsi_perf_mark_start(struct dsi_data *dsi) 215 { 216 } 217 218 static inline void dsi_perf_show(struct dsi_data *dsi, const char *name) 219 { 220 } 221 #endif 222 223 static int verbose_irq; 224 225 static void print_irq_status(u32 status) 226 { 227 if (status == 0) 228 return; 229 230 if (!verbose_irq && (status & ~DSI_IRQ_CHANNEL_MASK) == 0) 231 return; 232 233 #define PIS(x) (status & DSI_IRQ_##x) ? (#x " ") : "" 234 235 pr_debug("DSI IRQ: 0x%x: %s%s%s%s%s%s%s%s%s%s%s%s%s%s%s%s%s\n", 236 status, 237 verbose_irq ? PIS(VC0) : "", 238 verbose_irq ? PIS(VC1) : "", 239 verbose_irq ? PIS(VC2) : "", 240 verbose_irq ? PIS(VC3) : "", 241 PIS(WAKEUP), 242 PIS(RESYNC), 243 PIS(PLL_LOCK), 244 PIS(PLL_UNLOCK), 245 PIS(PLL_RECALL), 246 PIS(COMPLEXIO_ERR), 247 PIS(HS_TX_TIMEOUT), 248 PIS(LP_RX_TIMEOUT), 249 PIS(TE_TRIGGER), 250 PIS(ACK_TRIGGER), 251 PIS(SYNC_LOST), 252 PIS(LDO_POWER_GOOD), 253 PIS(TA_TIMEOUT)); 254 #undef PIS 255 } 256 257 static void print_irq_status_vc(int vc, u32 status) 258 { 259 if (status == 0) 260 return; 261 262 if (!verbose_irq && (status & ~DSI_VC_IRQ_PACKET_SENT) == 0) 263 return; 264 265 #define PIS(x) (status & DSI_VC_IRQ_##x) ? (#x " ") : "" 266 267 pr_debug("DSI VC(%d) IRQ 0x%x: %s%s%s%s%s%s%s%s%s\n", 268 vc, 269 status, 270 PIS(CS), 271 PIS(ECC_CORR), 272 PIS(ECC_NO_CORR), 273 verbose_irq ? PIS(PACKET_SENT) : "", 274 PIS(BTA), 275 PIS(FIFO_TX_OVF), 276 PIS(FIFO_RX_OVF), 277 PIS(FIFO_TX_UDF), 278 PIS(PP_BUSY_CHANGE)); 279 #undef PIS 280 } 281 282 static void print_irq_status_cio(u32 status) 283 { 284 if (status == 0) 285 return; 286 287 #define PIS(x) (status & DSI_CIO_IRQ_##x) ? (#x " ") : "" 288 289 pr_debug("DSI CIO IRQ 0x%x: %s%s%s%s%s%s%s%s%s%s%s%s%s%s%s%s%s%s%s%s\n", 290 status, 291 PIS(ERRSYNCESC1), 292 PIS(ERRSYNCESC2), 293 PIS(ERRSYNCESC3), 294 PIS(ERRESC1), 295 PIS(ERRESC2), 296 PIS(ERRESC3), 297 PIS(ERRCONTROL1), 298 PIS(ERRCONTROL2), 299 PIS(ERRCONTROL3), 300 PIS(STATEULPS1), 301 PIS(STATEULPS2), 302 PIS(STATEULPS3), 303 PIS(ERRCONTENTIONLP0_1), 304 PIS(ERRCONTENTIONLP1_1), 305 PIS(ERRCONTENTIONLP0_2), 306 PIS(ERRCONTENTIONLP1_2), 307 PIS(ERRCONTENTIONLP0_3), 308 PIS(ERRCONTENTIONLP1_3), 309 PIS(ULPSACTIVENOT_ALL0), 310 PIS(ULPSACTIVENOT_ALL1)); 311 #undef PIS 312 } 313 314 #ifdef CONFIG_OMAP2_DSS_COLLECT_IRQ_STATS 315 static void dsi_collect_irq_stats(struct dsi_data *dsi, u32 irqstatus, 316 u32 *vcstatus, u32 ciostatus) 317 { 318 int i; 319 320 spin_lock(&dsi->irq_stats_lock); 321 322 dsi->irq_stats.irq_count++; 323 dss_collect_irq_stats(irqstatus, dsi->irq_stats.dsi_irqs); 324 325 for (i = 0; i < 4; ++i) 326 dss_collect_irq_stats(vcstatus[i], dsi->irq_stats.vc_irqs[i]); 327 328 dss_collect_irq_stats(ciostatus, dsi->irq_stats.cio_irqs); 329 330 spin_unlock(&dsi->irq_stats_lock); 331 } 332 #else 333 #define dsi_collect_irq_stats(dsi, irqstatus, vcstatus, ciostatus) 334 #endif 335 336 static int debug_irq; 337 338 static void dsi_handle_irq_errors(struct dsi_data *dsi, u32 irqstatus, 339 u32 *vcstatus, u32 ciostatus) 340 { 341 int i; 342 343 if (irqstatus & DSI_IRQ_ERROR_MASK) { 344 DSSERR("DSI error, irqstatus %x\n", irqstatus); 345 print_irq_status(irqstatus); 346 spin_lock(&dsi->errors_lock); 347 dsi->errors |= irqstatus & DSI_IRQ_ERROR_MASK; 348 spin_unlock(&dsi->errors_lock); 349 } else if (debug_irq) { 350 print_irq_status(irqstatus); 351 } 352 353 for (i = 0; i < 4; ++i) { 354 if (vcstatus[i] & DSI_VC_IRQ_ERROR_MASK) { 355 DSSERR("DSI VC(%d) error, vc irqstatus %x\n", 356 i, vcstatus[i]); 357 print_irq_status_vc(i, vcstatus[i]); 358 } else if (debug_irq) { 359 print_irq_status_vc(i, vcstatus[i]); 360 } 361 } 362 363 if (ciostatus & DSI_CIO_IRQ_ERROR_MASK) { 364 DSSERR("DSI CIO error, cio irqstatus %x\n", ciostatus); 365 print_irq_status_cio(ciostatus); 366 } else if (debug_irq) { 367 print_irq_status_cio(ciostatus); 368 } 369 } 370 371 static void dsi_call_isrs(struct dsi_isr_data *isr_array, 372 unsigned int isr_array_size, u32 irqstatus) 373 { 374 struct dsi_isr_data *isr_data; 375 int i; 376 377 for (i = 0; i < isr_array_size; i++) { 378 isr_data = &isr_array[i]; 379 if (isr_data->isr && isr_data->mask & irqstatus) 380 isr_data->isr(isr_data->arg, irqstatus); 381 } 382 } 383 384 static void dsi_handle_isrs(struct dsi_isr_tables *isr_tables, 385 u32 irqstatus, u32 *vcstatus, u32 ciostatus) 386 { 387 int i; 388 389 dsi_call_isrs(isr_tables->isr_table, 390 ARRAY_SIZE(isr_tables->isr_table), 391 irqstatus); 392 393 for (i = 0; i < 4; ++i) { 394 if (vcstatus[i] == 0) 395 continue; 396 dsi_call_isrs(isr_tables->isr_table_vc[i], 397 ARRAY_SIZE(isr_tables->isr_table_vc[i]), 398 vcstatus[i]); 399 } 400 401 if (ciostatus != 0) 402 dsi_call_isrs(isr_tables->isr_table_cio, 403 ARRAY_SIZE(isr_tables->isr_table_cio), 404 ciostatus); 405 } 406 407 static irqreturn_t omap_dsi_irq_handler(int irq, void *arg) 408 { 409 struct dsi_data *dsi = arg; 410 u32 irqstatus, vcstatus[4], ciostatus; 411 int i; 412 413 if (!dsi->is_enabled) 414 return IRQ_NONE; 415 416 spin_lock(&dsi->irq_lock); 417 418 irqstatus = dsi_read_reg(dsi, DSI_IRQSTATUS); 419 420 /* IRQ is not for us */ 421 if (!irqstatus) { 422 spin_unlock(&dsi->irq_lock); 423 return IRQ_NONE; 424 } 425 426 dsi_write_reg(dsi, DSI_IRQSTATUS, irqstatus & ~DSI_IRQ_CHANNEL_MASK); 427 /* flush posted write */ 428 dsi_read_reg(dsi, DSI_IRQSTATUS); 429 430 for (i = 0; i < 4; ++i) { 431 if ((irqstatus & (1 << i)) == 0) { 432 vcstatus[i] = 0; 433 continue; 434 } 435 436 vcstatus[i] = dsi_read_reg(dsi, DSI_VC_IRQSTATUS(i)); 437 438 dsi_write_reg(dsi, DSI_VC_IRQSTATUS(i), vcstatus[i]); 439 /* flush posted write */ 440 dsi_read_reg(dsi, DSI_VC_IRQSTATUS(i)); 441 } 442 443 if (irqstatus & DSI_IRQ_COMPLEXIO_ERR) { 444 ciostatus = dsi_read_reg(dsi, DSI_COMPLEXIO_IRQ_STATUS); 445 446 dsi_write_reg(dsi, DSI_COMPLEXIO_IRQ_STATUS, ciostatus); 447 /* flush posted write */ 448 dsi_read_reg(dsi, DSI_COMPLEXIO_IRQ_STATUS); 449 } else { 450 ciostatus = 0; 451 } 452 453 #ifdef DSI_CATCH_MISSING_TE 454 if (irqstatus & DSI_IRQ_TE_TRIGGER) 455 del_timer(&dsi->te_timer); 456 #endif 457 458 /* make a copy and unlock, so that isrs can unregister 459 * themselves */ 460 memcpy(&dsi->isr_tables_copy, &dsi->isr_tables, 461 sizeof(dsi->isr_tables)); 462 463 spin_unlock(&dsi->irq_lock); 464 465 dsi_handle_isrs(&dsi->isr_tables_copy, irqstatus, vcstatus, ciostatus); 466 467 dsi_handle_irq_errors(dsi, irqstatus, vcstatus, ciostatus); 468 469 dsi_collect_irq_stats(dsi, irqstatus, vcstatus, ciostatus); 470 471 return IRQ_HANDLED; 472 } 473 474 /* dsi->irq_lock has to be locked by the caller */ 475 static void _omap_dsi_configure_irqs(struct dsi_data *dsi, 476 struct dsi_isr_data *isr_array, 477 unsigned int isr_array_size, 478 u32 default_mask, 479 const struct dsi_reg enable_reg, 480 const struct dsi_reg status_reg) 481 { 482 struct dsi_isr_data *isr_data; 483 u32 mask; 484 u32 old_mask; 485 int i; 486 487 mask = default_mask; 488 489 for (i = 0; i < isr_array_size; i++) { 490 isr_data = &isr_array[i]; 491 492 if (isr_data->isr == NULL) 493 continue; 494 495 mask |= isr_data->mask; 496 } 497 498 old_mask = dsi_read_reg(dsi, enable_reg); 499 /* clear the irqstatus for newly enabled irqs */ 500 dsi_write_reg(dsi, status_reg, (mask ^ old_mask) & mask); 501 dsi_write_reg(dsi, enable_reg, mask); 502 503 /* flush posted writes */ 504 dsi_read_reg(dsi, enable_reg); 505 dsi_read_reg(dsi, status_reg); 506 } 507 508 /* dsi->irq_lock has to be locked by the caller */ 509 static void _omap_dsi_set_irqs(struct dsi_data *dsi) 510 { 511 u32 mask = DSI_IRQ_ERROR_MASK; 512 #ifdef DSI_CATCH_MISSING_TE 513 mask |= DSI_IRQ_TE_TRIGGER; 514 #endif 515 _omap_dsi_configure_irqs(dsi, dsi->isr_tables.isr_table, 516 ARRAY_SIZE(dsi->isr_tables.isr_table), mask, 517 DSI_IRQENABLE, DSI_IRQSTATUS); 518 } 519 520 /* dsi->irq_lock has to be locked by the caller */ 521 static void _omap_dsi_set_irqs_vc(struct dsi_data *dsi, int vc) 522 { 523 _omap_dsi_configure_irqs(dsi, dsi->isr_tables.isr_table_vc[vc], 524 ARRAY_SIZE(dsi->isr_tables.isr_table_vc[vc]), 525 DSI_VC_IRQ_ERROR_MASK, 526 DSI_VC_IRQENABLE(vc), DSI_VC_IRQSTATUS(vc)); 527 } 528 529 /* dsi->irq_lock has to be locked by the caller */ 530 static void _omap_dsi_set_irqs_cio(struct dsi_data *dsi) 531 { 532 _omap_dsi_configure_irqs(dsi, dsi->isr_tables.isr_table_cio, 533 ARRAY_SIZE(dsi->isr_tables.isr_table_cio), 534 DSI_CIO_IRQ_ERROR_MASK, 535 DSI_COMPLEXIO_IRQ_ENABLE, DSI_COMPLEXIO_IRQ_STATUS); 536 } 537 538 static void _dsi_initialize_irq(struct dsi_data *dsi) 539 { 540 unsigned long flags; 541 int vc; 542 543 spin_lock_irqsave(&dsi->irq_lock, flags); 544 545 memset(&dsi->isr_tables, 0, sizeof(dsi->isr_tables)); 546 547 _omap_dsi_set_irqs(dsi); 548 for (vc = 0; vc < 4; ++vc) 549 _omap_dsi_set_irqs_vc(dsi, vc); 550 _omap_dsi_set_irqs_cio(dsi); 551 552 spin_unlock_irqrestore(&dsi->irq_lock, flags); 553 } 554 555 static int _dsi_register_isr(omap_dsi_isr_t isr, void *arg, u32 mask, 556 struct dsi_isr_data *isr_array, unsigned int isr_array_size) 557 { 558 struct dsi_isr_data *isr_data; 559 int free_idx; 560 int i; 561 562 BUG_ON(isr == NULL); 563 564 /* check for duplicate entry and find a free slot */ 565 free_idx = -1; 566 for (i = 0; i < isr_array_size; i++) { 567 isr_data = &isr_array[i]; 568 569 if (isr_data->isr == isr && isr_data->arg == arg && 570 isr_data->mask == mask) { 571 return -EINVAL; 572 } 573 574 if (isr_data->isr == NULL && free_idx == -1) 575 free_idx = i; 576 } 577 578 if (free_idx == -1) 579 return -EBUSY; 580 581 isr_data = &isr_array[free_idx]; 582 isr_data->isr = isr; 583 isr_data->arg = arg; 584 isr_data->mask = mask; 585 586 return 0; 587 } 588 589 static int _dsi_unregister_isr(omap_dsi_isr_t isr, void *arg, u32 mask, 590 struct dsi_isr_data *isr_array, unsigned int isr_array_size) 591 { 592 struct dsi_isr_data *isr_data; 593 int i; 594 595 for (i = 0; i < isr_array_size; i++) { 596 isr_data = &isr_array[i]; 597 if (isr_data->isr != isr || isr_data->arg != arg || 598 isr_data->mask != mask) 599 continue; 600 601 isr_data->isr = NULL; 602 isr_data->arg = NULL; 603 isr_data->mask = 0; 604 605 return 0; 606 } 607 608 return -EINVAL; 609 } 610 611 static int dsi_register_isr(struct dsi_data *dsi, omap_dsi_isr_t isr, 612 void *arg, u32 mask) 613 { 614 unsigned long flags; 615 int r; 616 617 spin_lock_irqsave(&dsi->irq_lock, flags); 618 619 r = _dsi_register_isr(isr, arg, mask, dsi->isr_tables.isr_table, 620 ARRAY_SIZE(dsi->isr_tables.isr_table)); 621 622 if (r == 0) 623 _omap_dsi_set_irqs(dsi); 624 625 spin_unlock_irqrestore(&dsi->irq_lock, flags); 626 627 return r; 628 } 629 630 static int dsi_unregister_isr(struct dsi_data *dsi, omap_dsi_isr_t isr, 631 void *arg, u32 mask) 632 { 633 unsigned long flags; 634 int r; 635 636 spin_lock_irqsave(&dsi->irq_lock, flags); 637 638 r = _dsi_unregister_isr(isr, arg, mask, dsi->isr_tables.isr_table, 639 ARRAY_SIZE(dsi->isr_tables.isr_table)); 640 641 if (r == 0) 642 _omap_dsi_set_irqs(dsi); 643 644 spin_unlock_irqrestore(&dsi->irq_lock, flags); 645 646 return r; 647 } 648 649 static int dsi_register_isr_vc(struct dsi_data *dsi, int vc, 650 omap_dsi_isr_t isr, void *arg, u32 mask) 651 { 652 unsigned long flags; 653 int r; 654 655 spin_lock_irqsave(&dsi->irq_lock, flags); 656 657 r = _dsi_register_isr(isr, arg, mask, 658 dsi->isr_tables.isr_table_vc[vc], 659 ARRAY_SIZE(dsi->isr_tables.isr_table_vc[vc])); 660 661 if (r == 0) 662 _omap_dsi_set_irqs_vc(dsi, vc); 663 664 spin_unlock_irqrestore(&dsi->irq_lock, flags); 665 666 return r; 667 } 668 669 static int dsi_unregister_isr_vc(struct dsi_data *dsi, int vc, 670 omap_dsi_isr_t isr, void *arg, u32 mask) 671 { 672 unsigned long flags; 673 int r; 674 675 spin_lock_irqsave(&dsi->irq_lock, flags); 676 677 r = _dsi_unregister_isr(isr, arg, mask, 678 dsi->isr_tables.isr_table_vc[vc], 679 ARRAY_SIZE(dsi->isr_tables.isr_table_vc[vc])); 680 681 if (r == 0) 682 _omap_dsi_set_irqs_vc(dsi, vc); 683 684 spin_unlock_irqrestore(&dsi->irq_lock, flags); 685 686 return r; 687 } 688 689 static u32 dsi_get_errors(struct dsi_data *dsi) 690 { 691 unsigned long flags; 692 u32 e; 693 694 spin_lock_irqsave(&dsi->errors_lock, flags); 695 e = dsi->errors; 696 dsi->errors = 0; 697 spin_unlock_irqrestore(&dsi->errors_lock, flags); 698 return e; 699 } 700 701 static int dsi_runtime_get(struct dsi_data *dsi) 702 { 703 int r; 704 705 DSSDBG("dsi_runtime_get\n"); 706 707 r = pm_runtime_get_sync(dsi->dev); 708 if (WARN_ON(r < 0)) { 709 pm_runtime_put_noidle(dsi->dev); 710 return r; 711 } 712 return 0; 713 } 714 715 static void dsi_runtime_put(struct dsi_data *dsi) 716 { 717 int r; 718 719 DSSDBG("dsi_runtime_put\n"); 720 721 r = pm_runtime_put_sync(dsi->dev); 722 WARN_ON(r < 0 && r != -ENOSYS); 723 } 724 725 static void _dsi_print_reset_status(struct dsi_data *dsi) 726 { 727 int b0, b1, b2; 728 729 /* A dummy read using the SCP interface to any DSIPHY register is 730 * required after DSIPHY reset to complete the reset of the DSI complex 731 * I/O. */ 732 dsi_read_reg(dsi, DSI_DSIPHY_CFG5); 733 734 if (dsi->data->quirks & DSI_QUIRK_REVERSE_TXCLKESC) { 735 b0 = 28; 736 b1 = 27; 737 b2 = 26; 738 } else { 739 b0 = 24; 740 b1 = 25; 741 b2 = 26; 742 } 743 744 #define DSI_FLD_GET(fld, start, end)\ 745 FLD_GET(dsi_read_reg(dsi, DSI_##fld), start, end) 746 747 pr_debug("DSI resets: PLL (%d) CIO (%d) PHY (%x%x%x, %d, %d, %d)\n", 748 DSI_FLD_GET(PLL_STATUS, 0, 0), 749 DSI_FLD_GET(COMPLEXIO_CFG1, 29, 29), 750 DSI_FLD_GET(DSIPHY_CFG5, b0, b0), 751 DSI_FLD_GET(DSIPHY_CFG5, b1, b1), 752 DSI_FLD_GET(DSIPHY_CFG5, b2, b2), 753 DSI_FLD_GET(DSIPHY_CFG5, 29, 29), 754 DSI_FLD_GET(DSIPHY_CFG5, 30, 30), 755 DSI_FLD_GET(DSIPHY_CFG5, 31, 31)); 756 757 #undef DSI_FLD_GET 758 } 759 760 static inline int dsi_if_enable(struct dsi_data *dsi, bool enable) 761 { 762 DSSDBG("dsi_if_enable(%d)\n", enable); 763 764 enable = enable ? 1 : 0; 765 REG_FLD_MOD(dsi, DSI_CTRL, enable, 0, 0); /* IF_EN */ 766 767 if (!wait_for_bit_change(dsi, DSI_CTRL, 0, enable)) { 768 DSSERR("Failed to set dsi_if_enable to %d\n", enable); 769 return -EIO; 770 } 771 772 return 0; 773 } 774 775 static unsigned long dsi_get_pll_hsdiv_dispc_rate(struct dsi_data *dsi) 776 { 777 return dsi->pll.cinfo.clkout[HSDIV_DISPC]; 778 } 779 780 static unsigned long dsi_get_pll_hsdiv_dsi_rate(struct dsi_data *dsi) 781 { 782 return dsi->pll.cinfo.clkout[HSDIV_DSI]; 783 } 784 785 static unsigned long dsi_get_txbyteclkhs(struct dsi_data *dsi) 786 { 787 return dsi->pll.cinfo.clkdco / 16; 788 } 789 790 static unsigned long dsi_fclk_rate(struct dsi_data *dsi) 791 { 792 unsigned long r; 793 enum dss_clk_source source; 794 795 source = dss_get_dsi_clk_source(dsi->dss, dsi->module_id); 796 if (source == DSS_CLK_SRC_FCK) { 797 /* DSI FCLK source is DSS_CLK_FCK */ 798 r = clk_get_rate(dsi->dss_clk); 799 } else { 800 /* DSI FCLK source is dsi_pll_hsdiv_dsi_clk */ 801 r = dsi_get_pll_hsdiv_dsi_rate(dsi); 802 } 803 804 return r; 805 } 806 807 static int dsi_lp_clock_calc(unsigned long dsi_fclk, 808 unsigned long lp_clk_min, unsigned long lp_clk_max, 809 struct dsi_lp_clock_info *lp_cinfo) 810 { 811 unsigned int lp_clk_div; 812 unsigned long lp_clk; 813 814 lp_clk_div = DIV_ROUND_UP(dsi_fclk, lp_clk_max * 2); 815 lp_clk = dsi_fclk / 2 / lp_clk_div; 816 817 if (lp_clk < lp_clk_min || lp_clk > lp_clk_max) 818 return -EINVAL; 819 820 lp_cinfo->lp_clk_div = lp_clk_div; 821 lp_cinfo->lp_clk = lp_clk; 822 823 return 0; 824 } 825 826 static int dsi_set_lp_clk_divisor(struct dsi_data *dsi) 827 { 828 unsigned long dsi_fclk; 829 unsigned int lp_clk_div; 830 unsigned long lp_clk; 831 unsigned int lpdiv_max = dsi->data->max_pll_lpdiv; 832 833 834 lp_clk_div = dsi->user_lp_cinfo.lp_clk_div; 835 836 if (lp_clk_div == 0 || lp_clk_div > lpdiv_max) 837 return -EINVAL; 838 839 dsi_fclk = dsi_fclk_rate(dsi); 840 841 lp_clk = dsi_fclk / 2 / lp_clk_div; 842 843 DSSDBG("LP_CLK_DIV %u, LP_CLK %lu\n", lp_clk_div, lp_clk); 844 dsi->current_lp_cinfo.lp_clk = lp_clk; 845 dsi->current_lp_cinfo.lp_clk_div = lp_clk_div; 846 847 /* LP_CLK_DIVISOR */ 848 REG_FLD_MOD(dsi, DSI_CLK_CTRL, lp_clk_div, 12, 0); 849 850 /* LP_RX_SYNCHRO_ENABLE */ 851 REG_FLD_MOD(dsi, DSI_CLK_CTRL, dsi_fclk > 30000000 ? 1 : 0, 21, 21); 852 853 return 0; 854 } 855 856 static void dsi_enable_scp_clk(struct dsi_data *dsi) 857 { 858 if (dsi->scp_clk_refcount++ == 0) 859 REG_FLD_MOD(dsi, DSI_CLK_CTRL, 1, 14, 14); /* CIO_CLK_ICG */ 860 } 861 862 static void dsi_disable_scp_clk(struct dsi_data *dsi) 863 { 864 WARN_ON(dsi->scp_clk_refcount == 0); 865 if (--dsi->scp_clk_refcount == 0) 866 REG_FLD_MOD(dsi, DSI_CLK_CTRL, 0, 14, 14); /* CIO_CLK_ICG */ 867 } 868 869 enum dsi_pll_power_state { 870 DSI_PLL_POWER_OFF = 0x0, 871 DSI_PLL_POWER_ON_HSCLK = 0x1, 872 DSI_PLL_POWER_ON_ALL = 0x2, 873 DSI_PLL_POWER_ON_DIV = 0x3, 874 }; 875 876 static int dsi_pll_power(struct dsi_data *dsi, enum dsi_pll_power_state state) 877 { 878 int t = 0; 879 880 /* DSI-PLL power command 0x3 is not working */ 881 if ((dsi->data->quirks & DSI_QUIRK_PLL_PWR_BUG) && 882 state == DSI_PLL_POWER_ON_DIV) 883 state = DSI_PLL_POWER_ON_ALL; 884 885 /* PLL_PWR_CMD */ 886 REG_FLD_MOD(dsi, DSI_CLK_CTRL, state, 31, 30); 887 888 /* PLL_PWR_STATUS */ 889 while (FLD_GET(dsi_read_reg(dsi, DSI_CLK_CTRL), 29, 28) != state) { 890 if (++t > 1000) { 891 DSSERR("Failed to set DSI PLL power mode to %d\n", 892 state); 893 return -ENODEV; 894 } 895 udelay(1); 896 } 897 898 return 0; 899 } 900 901 902 static void dsi_pll_calc_dsi_fck(struct dsi_data *dsi, 903 struct dss_pll_clock_info *cinfo) 904 { 905 unsigned long max_dsi_fck; 906 907 max_dsi_fck = dsi->data->max_fck_freq; 908 909 cinfo->mX[HSDIV_DSI] = DIV_ROUND_UP(cinfo->clkdco, max_dsi_fck); 910 cinfo->clkout[HSDIV_DSI] = cinfo->clkdco / cinfo->mX[HSDIV_DSI]; 911 } 912 913 static int dsi_pll_enable(struct dss_pll *pll) 914 { 915 struct dsi_data *dsi = container_of(pll, struct dsi_data, pll); 916 int r = 0; 917 918 DSSDBG("PLL init\n"); 919 920 r = dsi_runtime_get(dsi); 921 if (r) 922 return r; 923 924 /* 925 * Note: SCP CLK is not required on OMAP3, but it is required on OMAP4. 926 */ 927 dsi_enable_scp_clk(dsi); 928 929 r = regulator_enable(dsi->vdds_dsi_reg); 930 if (r) 931 goto err0; 932 933 /* XXX PLL does not come out of reset without this... */ 934 dispc_pck_free_enable(dsi->dss->dispc, 1); 935 936 if (!wait_for_bit_change(dsi, DSI_PLL_STATUS, 0, 1)) { 937 DSSERR("PLL not coming out of reset.\n"); 938 r = -ENODEV; 939 dispc_pck_free_enable(dsi->dss->dispc, 0); 940 goto err1; 941 } 942 943 /* XXX ... but if left on, we get problems when planes do not 944 * fill the whole display. No idea about this */ 945 dispc_pck_free_enable(dsi->dss->dispc, 0); 946 947 r = dsi_pll_power(dsi, DSI_PLL_POWER_ON_ALL); 948 949 if (r) 950 goto err1; 951 952 DSSDBG("PLL init done\n"); 953 954 return 0; 955 err1: 956 regulator_disable(dsi->vdds_dsi_reg); 957 err0: 958 dsi_disable_scp_clk(dsi); 959 dsi_runtime_put(dsi); 960 return r; 961 } 962 963 static void dsi_pll_disable(struct dss_pll *pll) 964 { 965 struct dsi_data *dsi = container_of(pll, struct dsi_data, pll); 966 967 dsi_pll_power(dsi, DSI_PLL_POWER_OFF); 968 969 regulator_disable(dsi->vdds_dsi_reg); 970 971 dsi_disable_scp_clk(dsi); 972 dsi_runtime_put(dsi); 973 974 DSSDBG("PLL disable done\n"); 975 } 976 977 static int dsi_dump_dsi_clocks(struct seq_file *s, void *p) 978 { 979 struct dsi_data *dsi = s->private; 980 struct dss_pll_clock_info *cinfo = &dsi->pll.cinfo; 981 enum dss_clk_source dispc_clk_src, dsi_clk_src; 982 int dsi_module = dsi->module_id; 983 struct dss_pll *pll = &dsi->pll; 984 985 dispc_clk_src = dss_get_dispc_clk_source(dsi->dss); 986 dsi_clk_src = dss_get_dsi_clk_source(dsi->dss, dsi_module); 987 988 if (dsi_runtime_get(dsi)) 989 return 0; 990 991 seq_printf(s, "- DSI%d PLL -\n", dsi_module + 1); 992 993 seq_printf(s, "dsi pll clkin\t%lu\n", clk_get_rate(pll->clkin)); 994 995 seq_printf(s, "Fint\t\t%-16lun %u\n", cinfo->fint, cinfo->n); 996 997 seq_printf(s, "CLKIN4DDR\t%-16lum %u\n", 998 cinfo->clkdco, cinfo->m); 999 1000 seq_printf(s, "DSI_PLL_HSDIV_DISPC (%s)\t%-16lum_dispc %u\t(%s)\n", 1001 dss_get_clk_source_name(dsi_module == 0 ? 1002 DSS_CLK_SRC_PLL1_1 : 1003 DSS_CLK_SRC_PLL2_1), 1004 cinfo->clkout[HSDIV_DISPC], 1005 cinfo->mX[HSDIV_DISPC], 1006 dispc_clk_src == DSS_CLK_SRC_FCK ? 1007 "off" : "on"); 1008 1009 seq_printf(s, "DSI_PLL_HSDIV_DSI (%s)\t%-16lum_dsi %u\t(%s)\n", 1010 dss_get_clk_source_name(dsi_module == 0 ? 1011 DSS_CLK_SRC_PLL1_2 : 1012 DSS_CLK_SRC_PLL2_2), 1013 cinfo->clkout[HSDIV_DSI], 1014 cinfo->mX[HSDIV_DSI], 1015 dsi_clk_src == DSS_CLK_SRC_FCK ? 1016 "off" : "on"); 1017 1018 seq_printf(s, "- DSI%d -\n", dsi_module + 1); 1019 1020 seq_printf(s, "dsi fclk source = %s\n", 1021 dss_get_clk_source_name(dsi_clk_src)); 1022 1023 seq_printf(s, "DSI_FCLK\t%lu\n", dsi_fclk_rate(dsi)); 1024 1025 seq_printf(s, "DDR_CLK\t\t%lu\n", 1026 cinfo->clkdco / 4); 1027 1028 seq_printf(s, "TxByteClkHS\t%lu\n", dsi_get_txbyteclkhs(dsi)); 1029 1030 seq_printf(s, "LP_CLK\t\t%lu\n", dsi->current_lp_cinfo.lp_clk); 1031 1032 dsi_runtime_put(dsi); 1033 1034 return 0; 1035 } 1036 1037 #ifdef CONFIG_OMAP2_DSS_COLLECT_IRQ_STATS 1038 static int dsi_dump_dsi_irqs(struct seq_file *s, void *p) 1039 { 1040 struct dsi_data *dsi = s->private; 1041 unsigned long flags; 1042 struct dsi_irq_stats stats; 1043 1044 spin_lock_irqsave(&dsi->irq_stats_lock, flags); 1045 1046 stats = dsi->irq_stats; 1047 memset(&dsi->irq_stats, 0, sizeof(dsi->irq_stats)); 1048 dsi->irq_stats.last_reset = jiffies; 1049 1050 spin_unlock_irqrestore(&dsi->irq_stats_lock, flags); 1051 1052 seq_printf(s, "period %u ms\n", 1053 jiffies_to_msecs(jiffies - stats.last_reset)); 1054 1055 seq_printf(s, "irqs %d\n", stats.irq_count); 1056 #define PIS(x) \ 1057 seq_printf(s, "%-20s %10d\n", #x, stats.dsi_irqs[ffs(DSI_IRQ_##x)-1]); 1058 1059 seq_printf(s, "-- DSI%d interrupts --\n", dsi->module_id + 1); 1060 PIS(VC0); 1061 PIS(VC1); 1062 PIS(VC2); 1063 PIS(VC3); 1064 PIS(WAKEUP); 1065 PIS(RESYNC); 1066 PIS(PLL_LOCK); 1067 PIS(PLL_UNLOCK); 1068 PIS(PLL_RECALL); 1069 PIS(COMPLEXIO_ERR); 1070 PIS(HS_TX_TIMEOUT); 1071 PIS(LP_RX_TIMEOUT); 1072 PIS(TE_TRIGGER); 1073 PIS(ACK_TRIGGER); 1074 PIS(SYNC_LOST); 1075 PIS(LDO_POWER_GOOD); 1076 PIS(TA_TIMEOUT); 1077 #undef PIS 1078 1079 #define PIS(x) \ 1080 seq_printf(s, "%-20s %10d %10d %10d %10d\n", #x, \ 1081 stats.vc_irqs[0][ffs(DSI_VC_IRQ_##x)-1], \ 1082 stats.vc_irqs[1][ffs(DSI_VC_IRQ_##x)-1], \ 1083 stats.vc_irqs[2][ffs(DSI_VC_IRQ_##x)-1], \ 1084 stats.vc_irqs[3][ffs(DSI_VC_IRQ_##x)-1]); 1085 1086 seq_printf(s, "-- VC interrupts --\n"); 1087 PIS(CS); 1088 PIS(ECC_CORR); 1089 PIS(PACKET_SENT); 1090 PIS(FIFO_TX_OVF); 1091 PIS(FIFO_RX_OVF); 1092 PIS(BTA); 1093 PIS(ECC_NO_CORR); 1094 PIS(FIFO_TX_UDF); 1095 PIS(PP_BUSY_CHANGE); 1096 #undef PIS 1097 1098 #define PIS(x) \ 1099 seq_printf(s, "%-20s %10d\n", #x, \ 1100 stats.cio_irqs[ffs(DSI_CIO_IRQ_##x)-1]); 1101 1102 seq_printf(s, "-- CIO interrupts --\n"); 1103 PIS(ERRSYNCESC1); 1104 PIS(ERRSYNCESC2); 1105 PIS(ERRSYNCESC3); 1106 PIS(ERRESC1); 1107 PIS(ERRESC2); 1108 PIS(ERRESC3); 1109 PIS(ERRCONTROL1); 1110 PIS(ERRCONTROL2); 1111 PIS(ERRCONTROL3); 1112 PIS(STATEULPS1); 1113 PIS(STATEULPS2); 1114 PIS(STATEULPS3); 1115 PIS(ERRCONTENTIONLP0_1); 1116 PIS(ERRCONTENTIONLP1_1); 1117 PIS(ERRCONTENTIONLP0_2); 1118 PIS(ERRCONTENTIONLP1_2); 1119 PIS(ERRCONTENTIONLP0_3); 1120 PIS(ERRCONTENTIONLP1_3); 1121 PIS(ULPSACTIVENOT_ALL0); 1122 PIS(ULPSACTIVENOT_ALL1); 1123 #undef PIS 1124 1125 return 0; 1126 } 1127 #endif 1128 1129 static int dsi_dump_dsi_regs(struct seq_file *s, void *p) 1130 { 1131 struct dsi_data *dsi = s->private; 1132 1133 if (dsi_runtime_get(dsi)) 1134 return 0; 1135 dsi_enable_scp_clk(dsi); 1136 1137 #define DUMPREG(r) seq_printf(s, "%-35s %08x\n", #r, dsi_read_reg(dsi, r)) 1138 DUMPREG(DSI_REVISION); 1139 DUMPREG(DSI_SYSCONFIG); 1140 DUMPREG(DSI_SYSSTATUS); 1141 DUMPREG(DSI_IRQSTATUS); 1142 DUMPREG(DSI_IRQENABLE); 1143 DUMPREG(DSI_CTRL); 1144 DUMPREG(DSI_COMPLEXIO_CFG1); 1145 DUMPREG(DSI_COMPLEXIO_IRQ_STATUS); 1146 DUMPREG(DSI_COMPLEXIO_IRQ_ENABLE); 1147 DUMPREG(DSI_CLK_CTRL); 1148 DUMPREG(DSI_TIMING1); 1149 DUMPREG(DSI_TIMING2); 1150 DUMPREG(DSI_VM_TIMING1); 1151 DUMPREG(DSI_VM_TIMING2); 1152 DUMPREG(DSI_VM_TIMING3); 1153 DUMPREG(DSI_CLK_TIMING); 1154 DUMPREG(DSI_TX_FIFO_VC_SIZE); 1155 DUMPREG(DSI_RX_FIFO_VC_SIZE); 1156 DUMPREG(DSI_COMPLEXIO_CFG2); 1157 DUMPREG(DSI_RX_FIFO_VC_FULLNESS); 1158 DUMPREG(DSI_VM_TIMING4); 1159 DUMPREG(DSI_TX_FIFO_VC_EMPTINESS); 1160 DUMPREG(DSI_VM_TIMING5); 1161 DUMPREG(DSI_VM_TIMING6); 1162 DUMPREG(DSI_VM_TIMING7); 1163 DUMPREG(DSI_STOPCLK_TIMING); 1164 1165 DUMPREG(DSI_VC_CTRL(0)); 1166 DUMPREG(DSI_VC_TE(0)); 1167 DUMPREG(DSI_VC_LONG_PACKET_HEADER(0)); 1168 DUMPREG(DSI_VC_LONG_PACKET_PAYLOAD(0)); 1169 DUMPREG(DSI_VC_SHORT_PACKET_HEADER(0)); 1170 DUMPREG(DSI_VC_IRQSTATUS(0)); 1171 DUMPREG(DSI_VC_IRQENABLE(0)); 1172 1173 DUMPREG(DSI_VC_CTRL(1)); 1174 DUMPREG(DSI_VC_TE(1)); 1175 DUMPREG(DSI_VC_LONG_PACKET_HEADER(1)); 1176 DUMPREG(DSI_VC_LONG_PACKET_PAYLOAD(1)); 1177 DUMPREG(DSI_VC_SHORT_PACKET_HEADER(1)); 1178 DUMPREG(DSI_VC_IRQSTATUS(1)); 1179 DUMPREG(DSI_VC_IRQENABLE(1)); 1180 1181 DUMPREG(DSI_VC_CTRL(2)); 1182 DUMPREG(DSI_VC_TE(2)); 1183 DUMPREG(DSI_VC_LONG_PACKET_HEADER(2)); 1184 DUMPREG(DSI_VC_LONG_PACKET_PAYLOAD(2)); 1185 DUMPREG(DSI_VC_SHORT_PACKET_HEADER(2)); 1186 DUMPREG(DSI_VC_IRQSTATUS(2)); 1187 DUMPREG(DSI_VC_IRQENABLE(2)); 1188 1189 DUMPREG(DSI_VC_CTRL(3)); 1190 DUMPREG(DSI_VC_TE(3)); 1191 DUMPREG(DSI_VC_LONG_PACKET_HEADER(3)); 1192 DUMPREG(DSI_VC_LONG_PACKET_PAYLOAD(3)); 1193 DUMPREG(DSI_VC_SHORT_PACKET_HEADER(3)); 1194 DUMPREG(DSI_VC_IRQSTATUS(3)); 1195 DUMPREG(DSI_VC_IRQENABLE(3)); 1196 1197 DUMPREG(DSI_DSIPHY_CFG0); 1198 DUMPREG(DSI_DSIPHY_CFG1); 1199 DUMPREG(DSI_DSIPHY_CFG2); 1200 DUMPREG(DSI_DSIPHY_CFG5); 1201 1202 DUMPREG(DSI_PLL_CONTROL); 1203 DUMPREG(DSI_PLL_STATUS); 1204 DUMPREG(DSI_PLL_GO); 1205 DUMPREG(DSI_PLL_CONFIGURATION1); 1206 DUMPREG(DSI_PLL_CONFIGURATION2); 1207 #undef DUMPREG 1208 1209 dsi_disable_scp_clk(dsi); 1210 dsi_runtime_put(dsi); 1211 1212 return 0; 1213 } 1214 1215 enum dsi_cio_power_state { 1216 DSI_COMPLEXIO_POWER_OFF = 0x0, 1217 DSI_COMPLEXIO_POWER_ON = 0x1, 1218 DSI_COMPLEXIO_POWER_ULPS = 0x2, 1219 }; 1220 1221 static int dsi_cio_power(struct dsi_data *dsi, enum dsi_cio_power_state state) 1222 { 1223 int t = 0; 1224 1225 /* PWR_CMD */ 1226 REG_FLD_MOD(dsi, DSI_COMPLEXIO_CFG1, state, 28, 27); 1227 1228 /* PWR_STATUS */ 1229 while (FLD_GET(dsi_read_reg(dsi, DSI_COMPLEXIO_CFG1), 1230 26, 25) != state) { 1231 if (++t > 1000) { 1232 DSSERR("failed to set complexio power state to " 1233 "%d\n", state); 1234 return -ENODEV; 1235 } 1236 udelay(1); 1237 } 1238 1239 return 0; 1240 } 1241 1242 static unsigned int dsi_get_line_buf_size(struct dsi_data *dsi) 1243 { 1244 int val; 1245 1246 /* line buffer on OMAP3 is 1024 x 24bits */ 1247 /* XXX: for some reason using full buffer size causes 1248 * considerable TX slowdown with update sizes that fill the 1249 * whole buffer */ 1250 if (!(dsi->data->quirks & DSI_QUIRK_GNQ)) 1251 return 1023 * 3; 1252 1253 val = REG_GET(dsi, DSI_GNQ, 14, 12); /* VP1_LINE_BUFFER_SIZE */ 1254 1255 switch (val) { 1256 case 1: 1257 return 512 * 3; /* 512x24 bits */ 1258 case 2: 1259 return 682 * 3; /* 682x24 bits */ 1260 case 3: 1261 return 853 * 3; /* 853x24 bits */ 1262 case 4: 1263 return 1024 * 3; /* 1024x24 bits */ 1264 case 5: 1265 return 1194 * 3; /* 1194x24 bits */ 1266 case 6: 1267 return 1365 * 3; /* 1365x24 bits */ 1268 case 7: 1269 return 1920 * 3; /* 1920x24 bits */ 1270 default: 1271 BUG(); 1272 return 0; 1273 } 1274 } 1275 1276 static int dsi_set_lane_config(struct dsi_data *dsi) 1277 { 1278 static const u8 offsets[] = { 0, 4, 8, 12, 16 }; 1279 static const enum dsi_lane_function functions[] = { 1280 DSI_LANE_CLK, 1281 DSI_LANE_DATA1, 1282 DSI_LANE_DATA2, 1283 DSI_LANE_DATA3, 1284 DSI_LANE_DATA4, 1285 }; 1286 u32 r; 1287 int i; 1288 1289 r = dsi_read_reg(dsi, DSI_COMPLEXIO_CFG1); 1290 1291 for (i = 0; i < dsi->num_lanes_used; ++i) { 1292 unsigned int offset = offsets[i]; 1293 unsigned int polarity, lane_number; 1294 unsigned int t; 1295 1296 for (t = 0; t < dsi->num_lanes_supported; ++t) 1297 if (dsi->lanes[t].function == functions[i]) 1298 break; 1299 1300 if (t == dsi->num_lanes_supported) 1301 return -EINVAL; 1302 1303 lane_number = t; 1304 polarity = dsi->lanes[t].polarity; 1305 1306 r = FLD_MOD(r, lane_number + 1, offset + 2, offset); 1307 r = FLD_MOD(r, polarity, offset + 3, offset + 3); 1308 } 1309 1310 /* clear the unused lanes */ 1311 for (; i < dsi->num_lanes_supported; ++i) { 1312 unsigned int offset = offsets[i]; 1313 1314 r = FLD_MOD(r, 0, offset + 2, offset); 1315 r = FLD_MOD(r, 0, offset + 3, offset + 3); 1316 } 1317 1318 dsi_write_reg(dsi, DSI_COMPLEXIO_CFG1, r); 1319 1320 return 0; 1321 } 1322 1323 static inline unsigned int ns2ddr(struct dsi_data *dsi, unsigned int ns) 1324 { 1325 /* convert time in ns to ddr ticks, rounding up */ 1326 unsigned long ddr_clk = dsi->pll.cinfo.clkdco / 4; 1327 1328 return (ns * (ddr_clk / 1000 / 1000) + 999) / 1000; 1329 } 1330 1331 static inline unsigned int ddr2ns(struct dsi_data *dsi, unsigned int ddr) 1332 { 1333 unsigned long ddr_clk = dsi->pll.cinfo.clkdco / 4; 1334 1335 return ddr * 1000 * 1000 / (ddr_clk / 1000); 1336 } 1337 1338 static void dsi_cio_timings(struct dsi_data *dsi) 1339 { 1340 u32 r; 1341 u32 ths_prepare, ths_prepare_ths_zero, ths_trail, ths_exit; 1342 u32 tlpx_half, tclk_trail, tclk_zero; 1343 u32 tclk_prepare; 1344 1345 /* calculate timings */ 1346 1347 /* 1 * DDR_CLK = 2 * UI */ 1348 1349 /* min 40ns + 4*UI max 85ns + 6*UI */ 1350 ths_prepare = ns2ddr(dsi, 70) + 2; 1351 1352 /* min 145ns + 10*UI */ 1353 ths_prepare_ths_zero = ns2ddr(dsi, 175) + 2; 1354 1355 /* min max(8*UI, 60ns+4*UI) */ 1356 ths_trail = ns2ddr(dsi, 60) + 5; 1357 1358 /* min 100ns */ 1359 ths_exit = ns2ddr(dsi, 145); 1360 1361 /* tlpx min 50n */ 1362 tlpx_half = ns2ddr(dsi, 25); 1363 1364 /* min 60ns */ 1365 tclk_trail = ns2ddr(dsi, 60) + 2; 1366 1367 /* min 38ns, max 95ns */ 1368 tclk_prepare = ns2ddr(dsi, 65); 1369 1370 /* min tclk-prepare + tclk-zero = 300ns */ 1371 tclk_zero = ns2ddr(dsi, 260); 1372 1373 DSSDBG("ths_prepare %u (%uns), ths_prepare_ths_zero %u (%uns)\n", 1374 ths_prepare, ddr2ns(dsi, ths_prepare), 1375 ths_prepare_ths_zero, ddr2ns(dsi, ths_prepare_ths_zero)); 1376 DSSDBG("ths_trail %u (%uns), ths_exit %u (%uns)\n", 1377 ths_trail, ddr2ns(dsi, ths_trail), 1378 ths_exit, ddr2ns(dsi, ths_exit)); 1379 1380 DSSDBG("tlpx_half %u (%uns), tclk_trail %u (%uns), " 1381 "tclk_zero %u (%uns)\n", 1382 tlpx_half, ddr2ns(dsi, tlpx_half), 1383 tclk_trail, ddr2ns(dsi, tclk_trail), 1384 tclk_zero, ddr2ns(dsi, tclk_zero)); 1385 DSSDBG("tclk_prepare %u (%uns)\n", 1386 tclk_prepare, ddr2ns(dsi, tclk_prepare)); 1387 1388 /* program timings */ 1389 1390 r = dsi_read_reg(dsi, DSI_DSIPHY_CFG0); 1391 r = FLD_MOD(r, ths_prepare, 31, 24); 1392 r = FLD_MOD(r, ths_prepare_ths_zero, 23, 16); 1393 r = FLD_MOD(r, ths_trail, 15, 8); 1394 r = FLD_MOD(r, ths_exit, 7, 0); 1395 dsi_write_reg(dsi, DSI_DSIPHY_CFG0, r); 1396 1397 r = dsi_read_reg(dsi, DSI_DSIPHY_CFG1); 1398 r = FLD_MOD(r, tlpx_half, 20, 16); 1399 r = FLD_MOD(r, tclk_trail, 15, 8); 1400 r = FLD_MOD(r, tclk_zero, 7, 0); 1401 1402 if (dsi->data->quirks & DSI_QUIRK_PHY_DCC) { 1403 r = FLD_MOD(r, 0, 21, 21); /* DCCEN = disable */ 1404 r = FLD_MOD(r, 1, 22, 22); /* CLKINP_DIVBY2EN = enable */ 1405 r = FLD_MOD(r, 1, 23, 23); /* CLKINP_SEL = enable */ 1406 } 1407 1408 dsi_write_reg(dsi, DSI_DSIPHY_CFG1, r); 1409 1410 r = dsi_read_reg(dsi, DSI_DSIPHY_CFG2); 1411 r = FLD_MOD(r, tclk_prepare, 7, 0); 1412 dsi_write_reg(dsi, DSI_DSIPHY_CFG2, r); 1413 } 1414 1415 static int dsi_cio_wait_tx_clk_esc_reset(struct dsi_data *dsi) 1416 { 1417 int t, i; 1418 bool in_use[DSI_MAX_NR_LANES]; 1419 static const u8 offsets_old[] = { 28, 27, 26 }; 1420 static const u8 offsets_new[] = { 24, 25, 26, 27, 28 }; 1421 const u8 *offsets; 1422 1423 if (dsi->data->quirks & DSI_QUIRK_REVERSE_TXCLKESC) 1424 offsets = offsets_old; 1425 else 1426 offsets = offsets_new; 1427 1428 for (i = 0; i < dsi->num_lanes_supported; ++i) 1429 in_use[i] = dsi->lanes[i].function != DSI_LANE_UNUSED; 1430 1431 t = 100000; 1432 while (true) { 1433 u32 l; 1434 int ok; 1435 1436 l = dsi_read_reg(dsi, DSI_DSIPHY_CFG5); 1437 1438 ok = 0; 1439 for (i = 0; i < dsi->num_lanes_supported; ++i) { 1440 if (!in_use[i] || (l & (1 << offsets[i]))) 1441 ok++; 1442 } 1443 1444 if (ok == dsi->num_lanes_supported) 1445 break; 1446 1447 if (--t == 0) { 1448 for (i = 0; i < dsi->num_lanes_supported; ++i) { 1449 if (!in_use[i] || (l & (1 << offsets[i]))) 1450 continue; 1451 1452 DSSERR("CIO TXCLKESC%d domain not coming " \ 1453 "out of reset\n", i); 1454 } 1455 return -EIO; 1456 } 1457 } 1458 1459 return 0; 1460 } 1461 1462 /* return bitmask of enabled lanes, lane0 being the lsb */ 1463 static unsigned int dsi_get_lane_mask(struct dsi_data *dsi) 1464 { 1465 unsigned int mask = 0; 1466 int i; 1467 1468 for (i = 0; i < dsi->num_lanes_supported; ++i) { 1469 if (dsi->lanes[i].function != DSI_LANE_UNUSED) 1470 mask |= 1 << i; 1471 } 1472 1473 return mask; 1474 } 1475 1476 /* OMAP4 CONTROL_DSIPHY */ 1477 #define OMAP4_DSIPHY_SYSCON_OFFSET 0x78 1478 1479 #define OMAP4_DSI2_LANEENABLE_SHIFT 29 1480 #define OMAP4_DSI2_LANEENABLE_MASK (0x7 << 29) 1481 #define OMAP4_DSI1_LANEENABLE_SHIFT 24 1482 #define OMAP4_DSI1_LANEENABLE_MASK (0x1f << 24) 1483 #define OMAP4_DSI1_PIPD_SHIFT 19 1484 #define OMAP4_DSI1_PIPD_MASK (0x1f << 19) 1485 #define OMAP4_DSI2_PIPD_SHIFT 14 1486 #define OMAP4_DSI2_PIPD_MASK (0x1f << 14) 1487 1488 static int dsi_omap4_mux_pads(struct dsi_data *dsi, unsigned int lanes) 1489 { 1490 u32 enable_mask, enable_shift; 1491 u32 pipd_mask, pipd_shift; 1492 1493 if (dsi->module_id == 0) { 1494 enable_mask = OMAP4_DSI1_LANEENABLE_MASK; 1495 enable_shift = OMAP4_DSI1_LANEENABLE_SHIFT; 1496 pipd_mask = OMAP4_DSI1_PIPD_MASK; 1497 pipd_shift = OMAP4_DSI1_PIPD_SHIFT; 1498 } else if (dsi->module_id == 1) { 1499 enable_mask = OMAP4_DSI2_LANEENABLE_MASK; 1500 enable_shift = OMAP4_DSI2_LANEENABLE_SHIFT; 1501 pipd_mask = OMAP4_DSI2_PIPD_MASK; 1502 pipd_shift = OMAP4_DSI2_PIPD_SHIFT; 1503 } else { 1504 return -ENODEV; 1505 } 1506 1507 return regmap_update_bits(dsi->syscon, OMAP4_DSIPHY_SYSCON_OFFSET, 1508 enable_mask | pipd_mask, 1509 (lanes << enable_shift) | (lanes << pipd_shift)); 1510 } 1511 1512 /* OMAP5 CONTROL_DSIPHY */ 1513 1514 #define OMAP5_DSIPHY_SYSCON_OFFSET 0x74 1515 1516 #define OMAP5_DSI1_LANEENABLE_SHIFT 24 1517 #define OMAP5_DSI2_LANEENABLE_SHIFT 19 1518 #define OMAP5_DSI_LANEENABLE_MASK 0x1f 1519 1520 static int dsi_omap5_mux_pads(struct dsi_data *dsi, unsigned int lanes) 1521 { 1522 u32 enable_shift; 1523 1524 if (dsi->module_id == 0) 1525 enable_shift = OMAP5_DSI1_LANEENABLE_SHIFT; 1526 else if (dsi->module_id == 1) 1527 enable_shift = OMAP5_DSI2_LANEENABLE_SHIFT; 1528 else 1529 return -ENODEV; 1530 1531 return regmap_update_bits(dsi->syscon, OMAP5_DSIPHY_SYSCON_OFFSET, 1532 OMAP5_DSI_LANEENABLE_MASK << enable_shift, 1533 lanes << enable_shift); 1534 } 1535 1536 static int dsi_enable_pads(struct dsi_data *dsi, unsigned int lane_mask) 1537 { 1538 if (dsi->data->model == DSI_MODEL_OMAP4) 1539 return dsi_omap4_mux_pads(dsi, lane_mask); 1540 if (dsi->data->model == DSI_MODEL_OMAP5) 1541 return dsi_omap5_mux_pads(dsi, lane_mask); 1542 return 0; 1543 } 1544 1545 static void dsi_disable_pads(struct dsi_data *dsi) 1546 { 1547 if (dsi->data->model == DSI_MODEL_OMAP4) 1548 dsi_omap4_mux_pads(dsi, 0); 1549 else if (dsi->data->model == DSI_MODEL_OMAP5) 1550 dsi_omap5_mux_pads(dsi, 0); 1551 } 1552 1553 static int dsi_cio_init(struct dsi_data *dsi) 1554 { 1555 int r; 1556 u32 l; 1557 1558 DSSDBG("DSI CIO init starts"); 1559 1560 r = dsi_enable_pads(dsi, dsi_get_lane_mask(dsi)); 1561 if (r) 1562 return r; 1563 1564 dsi_enable_scp_clk(dsi); 1565 1566 /* A dummy read using the SCP interface to any DSIPHY register is 1567 * required after DSIPHY reset to complete the reset of the DSI complex 1568 * I/O. */ 1569 dsi_read_reg(dsi, DSI_DSIPHY_CFG5); 1570 1571 if (!wait_for_bit_change(dsi, DSI_DSIPHY_CFG5, 30, 1)) { 1572 DSSERR("CIO SCP Clock domain not coming out of reset.\n"); 1573 r = -EIO; 1574 goto err_scp_clk_dom; 1575 } 1576 1577 r = dsi_set_lane_config(dsi); 1578 if (r) 1579 goto err_scp_clk_dom; 1580 1581 /* set TX STOP MODE timer to maximum for this operation */ 1582 l = dsi_read_reg(dsi, DSI_TIMING1); 1583 l = FLD_MOD(l, 1, 15, 15); /* FORCE_TX_STOP_MODE_IO */ 1584 l = FLD_MOD(l, 1, 14, 14); /* STOP_STATE_X16_IO */ 1585 l = FLD_MOD(l, 1, 13, 13); /* STOP_STATE_X4_IO */ 1586 l = FLD_MOD(l, 0x1fff, 12, 0); /* STOP_STATE_COUNTER_IO */ 1587 dsi_write_reg(dsi, DSI_TIMING1, l); 1588 1589 r = dsi_cio_power(dsi, DSI_COMPLEXIO_POWER_ON); 1590 if (r) 1591 goto err_cio_pwr; 1592 1593 if (!wait_for_bit_change(dsi, DSI_COMPLEXIO_CFG1, 29, 1)) { 1594 DSSERR("CIO PWR clock domain not coming out of reset.\n"); 1595 r = -ENODEV; 1596 goto err_cio_pwr_dom; 1597 } 1598 1599 dsi_if_enable(dsi, true); 1600 dsi_if_enable(dsi, false); 1601 REG_FLD_MOD(dsi, DSI_CLK_CTRL, 1, 20, 20); /* LP_CLK_ENABLE */ 1602 1603 r = dsi_cio_wait_tx_clk_esc_reset(dsi); 1604 if (r) 1605 goto err_tx_clk_esc_rst; 1606 1607 /* FORCE_TX_STOP_MODE_IO */ 1608 REG_FLD_MOD(dsi, DSI_TIMING1, 0, 15, 15); 1609 1610 dsi_cio_timings(dsi); 1611 1612 /* DDR_CLK_ALWAYS_ON */ 1613 REG_FLD_MOD(dsi, DSI_CLK_CTRL, 1614 !(dsi->dsidev->mode_flags & MIPI_DSI_CLOCK_NON_CONTINUOUS), 1615 13, 13); 1616 1617 DSSDBG("CIO init done\n"); 1618 1619 return 0; 1620 1621 err_tx_clk_esc_rst: 1622 REG_FLD_MOD(dsi, DSI_CLK_CTRL, 0, 20, 20); /* LP_CLK_ENABLE */ 1623 err_cio_pwr_dom: 1624 dsi_cio_power(dsi, DSI_COMPLEXIO_POWER_OFF); 1625 err_cio_pwr: 1626 err_scp_clk_dom: 1627 dsi_disable_scp_clk(dsi); 1628 dsi_disable_pads(dsi); 1629 return r; 1630 } 1631 1632 static void dsi_cio_uninit(struct dsi_data *dsi) 1633 { 1634 /* DDR_CLK_ALWAYS_ON */ 1635 REG_FLD_MOD(dsi, DSI_CLK_CTRL, 0, 13, 13); 1636 1637 dsi_cio_power(dsi, DSI_COMPLEXIO_POWER_OFF); 1638 dsi_disable_scp_clk(dsi); 1639 dsi_disable_pads(dsi); 1640 } 1641 1642 static void dsi_config_tx_fifo(struct dsi_data *dsi, 1643 enum fifo_size size1, enum fifo_size size2, 1644 enum fifo_size size3, enum fifo_size size4) 1645 { 1646 u32 r = 0; 1647 int add = 0; 1648 int i; 1649 1650 dsi->vc[0].tx_fifo_size = size1; 1651 dsi->vc[1].tx_fifo_size = size2; 1652 dsi->vc[2].tx_fifo_size = size3; 1653 dsi->vc[3].tx_fifo_size = size4; 1654 1655 for (i = 0; i < 4; i++) { 1656 u8 v; 1657 int size = dsi->vc[i].tx_fifo_size; 1658 1659 if (add + size > 4) { 1660 DSSERR("Illegal FIFO configuration\n"); 1661 BUG(); 1662 return; 1663 } 1664 1665 v = FLD_VAL(add, 2, 0) | FLD_VAL(size, 7, 4); 1666 r |= v << (8 * i); 1667 /*DSSDBG("TX FIFO vc %d: size %d, add %d\n", i, size, add); */ 1668 add += size; 1669 } 1670 1671 dsi_write_reg(dsi, DSI_TX_FIFO_VC_SIZE, r); 1672 } 1673 1674 static void dsi_config_rx_fifo(struct dsi_data *dsi, 1675 enum fifo_size size1, enum fifo_size size2, 1676 enum fifo_size size3, enum fifo_size size4) 1677 { 1678 u32 r = 0; 1679 int add = 0; 1680 int i; 1681 1682 dsi->vc[0].rx_fifo_size = size1; 1683 dsi->vc[1].rx_fifo_size = size2; 1684 dsi->vc[2].rx_fifo_size = size3; 1685 dsi->vc[3].rx_fifo_size = size4; 1686 1687 for (i = 0; i < 4; i++) { 1688 u8 v; 1689 int size = dsi->vc[i].rx_fifo_size; 1690 1691 if (add + size > 4) { 1692 DSSERR("Illegal FIFO configuration\n"); 1693 BUG(); 1694 return; 1695 } 1696 1697 v = FLD_VAL(add, 2, 0) | FLD_VAL(size, 7, 4); 1698 r |= v << (8 * i); 1699 /*DSSDBG("RX FIFO vc %d: size %d, add %d\n", i, size, add); */ 1700 add += size; 1701 } 1702 1703 dsi_write_reg(dsi, DSI_RX_FIFO_VC_SIZE, r); 1704 } 1705 1706 static int dsi_force_tx_stop_mode_io(struct dsi_data *dsi) 1707 { 1708 u32 r; 1709 1710 r = dsi_read_reg(dsi, DSI_TIMING1); 1711 r = FLD_MOD(r, 1, 15, 15); /* FORCE_TX_STOP_MODE_IO */ 1712 dsi_write_reg(dsi, DSI_TIMING1, r); 1713 1714 if (!wait_for_bit_change(dsi, DSI_TIMING1, 15, 0)) { 1715 DSSERR("TX_STOP bit not going down\n"); 1716 return -EIO; 1717 } 1718 1719 return 0; 1720 } 1721 1722 static bool dsi_vc_is_enabled(struct dsi_data *dsi, int vc) 1723 { 1724 return REG_GET(dsi, DSI_VC_CTRL(vc), 0, 0); 1725 } 1726 1727 static void dsi_packet_sent_handler_vp(void *data, u32 mask) 1728 { 1729 struct dsi_packet_sent_handler_data *vp_data = 1730 (struct dsi_packet_sent_handler_data *) data; 1731 struct dsi_data *dsi = vp_data->dsi; 1732 const int vc = dsi->update_vc; 1733 u8 bit = dsi->te_enabled ? 30 : 31; 1734 1735 if (REG_GET(dsi, DSI_VC_TE(vc), bit, bit) == 0) 1736 complete(vp_data->completion); 1737 } 1738 1739 static int dsi_sync_vc_vp(struct dsi_data *dsi, int vc) 1740 { 1741 DECLARE_COMPLETION_ONSTACK(completion); 1742 struct dsi_packet_sent_handler_data vp_data = { 1743 .dsi = dsi, 1744 .completion = &completion 1745 }; 1746 int r = 0; 1747 u8 bit; 1748 1749 bit = dsi->te_enabled ? 30 : 31; 1750 1751 r = dsi_register_isr_vc(dsi, vc, dsi_packet_sent_handler_vp, 1752 &vp_data, DSI_VC_IRQ_PACKET_SENT); 1753 if (r) 1754 goto err0; 1755 1756 /* Wait for completion only if TE_EN/TE_START is still set */ 1757 if (REG_GET(dsi, DSI_VC_TE(vc), bit, bit)) { 1758 if (wait_for_completion_timeout(&completion, 1759 msecs_to_jiffies(10)) == 0) { 1760 DSSERR("Failed to complete previous frame transfer\n"); 1761 r = -EIO; 1762 goto err1; 1763 } 1764 } 1765 1766 dsi_unregister_isr_vc(dsi, vc, dsi_packet_sent_handler_vp, 1767 &vp_data, DSI_VC_IRQ_PACKET_SENT); 1768 1769 return 0; 1770 err1: 1771 dsi_unregister_isr_vc(dsi, vc, dsi_packet_sent_handler_vp, 1772 &vp_data, DSI_VC_IRQ_PACKET_SENT); 1773 err0: 1774 return r; 1775 } 1776 1777 static void dsi_packet_sent_handler_l4(void *data, u32 mask) 1778 { 1779 struct dsi_packet_sent_handler_data *l4_data = 1780 (struct dsi_packet_sent_handler_data *) data; 1781 struct dsi_data *dsi = l4_data->dsi; 1782 const int vc = dsi->update_vc; 1783 1784 if (REG_GET(dsi, DSI_VC_CTRL(vc), 5, 5) == 0) 1785 complete(l4_data->completion); 1786 } 1787 1788 static int dsi_sync_vc_l4(struct dsi_data *dsi, int vc) 1789 { 1790 DECLARE_COMPLETION_ONSTACK(completion); 1791 struct dsi_packet_sent_handler_data l4_data = { 1792 .dsi = dsi, 1793 .completion = &completion 1794 }; 1795 int r = 0; 1796 1797 r = dsi_register_isr_vc(dsi, vc, dsi_packet_sent_handler_l4, 1798 &l4_data, DSI_VC_IRQ_PACKET_SENT); 1799 if (r) 1800 goto err0; 1801 1802 /* Wait for completion only if TX_FIFO_NOT_EMPTY is still set */ 1803 if (REG_GET(dsi, DSI_VC_CTRL(vc), 5, 5)) { 1804 if (wait_for_completion_timeout(&completion, 1805 msecs_to_jiffies(10)) == 0) { 1806 DSSERR("Failed to complete previous l4 transfer\n"); 1807 r = -EIO; 1808 goto err1; 1809 } 1810 } 1811 1812 dsi_unregister_isr_vc(dsi, vc, dsi_packet_sent_handler_l4, 1813 &l4_data, DSI_VC_IRQ_PACKET_SENT); 1814 1815 return 0; 1816 err1: 1817 dsi_unregister_isr_vc(dsi, vc, dsi_packet_sent_handler_l4, 1818 &l4_data, DSI_VC_IRQ_PACKET_SENT); 1819 err0: 1820 return r; 1821 } 1822 1823 static int dsi_sync_vc(struct dsi_data *dsi, int vc) 1824 { 1825 WARN_ON(!dsi_bus_is_locked(dsi)); 1826 1827 WARN_ON(in_interrupt()); 1828 1829 if (!dsi_vc_is_enabled(dsi, vc)) 1830 return 0; 1831 1832 switch (dsi->vc[vc].source) { 1833 case DSI_VC_SOURCE_VP: 1834 return dsi_sync_vc_vp(dsi, vc); 1835 case DSI_VC_SOURCE_L4: 1836 return dsi_sync_vc_l4(dsi, vc); 1837 default: 1838 BUG(); 1839 return -EINVAL; 1840 } 1841 } 1842 1843 static int dsi_vc_enable(struct dsi_data *dsi, int vc, bool enable) 1844 { 1845 DSSDBG("dsi_vc_enable vc %d, enable %d\n", 1846 vc, enable); 1847 1848 enable = enable ? 1 : 0; 1849 1850 REG_FLD_MOD(dsi, DSI_VC_CTRL(vc), enable, 0, 0); 1851 1852 if (!wait_for_bit_change(dsi, DSI_VC_CTRL(vc), 0, enable)) { 1853 DSSERR("Failed to set dsi_vc_enable to %d\n", enable); 1854 return -EIO; 1855 } 1856 1857 return 0; 1858 } 1859 1860 static void dsi_vc_initial_config(struct dsi_data *dsi, int vc) 1861 { 1862 u32 r; 1863 1864 DSSDBG("Initial config of VC %d", vc); 1865 1866 r = dsi_read_reg(dsi, DSI_VC_CTRL(vc)); 1867 1868 if (FLD_GET(r, 15, 15)) /* VC_BUSY */ 1869 DSSERR("VC(%d) busy when trying to configure it!\n", 1870 vc); 1871 1872 r = FLD_MOD(r, 0, 1, 1); /* SOURCE, 0 = L4 */ 1873 r = FLD_MOD(r, 0, 2, 2); /* BTA_SHORT_EN */ 1874 r = FLD_MOD(r, 0, 3, 3); /* BTA_LONG_EN */ 1875 r = FLD_MOD(r, 0, 4, 4); /* MODE, 0 = command */ 1876 r = FLD_MOD(r, 1, 7, 7); /* CS_TX_EN */ 1877 r = FLD_MOD(r, 1, 8, 8); /* ECC_TX_EN */ 1878 r = FLD_MOD(r, 0, 9, 9); /* MODE_SPEED, high speed on/off */ 1879 if (dsi->data->quirks & DSI_QUIRK_VC_OCP_WIDTH) 1880 r = FLD_MOD(r, 3, 11, 10); /* OCP_WIDTH = 32 bit */ 1881 1882 r = FLD_MOD(r, 4, 29, 27); /* DMA_RX_REQ_NB = no dma */ 1883 r = FLD_MOD(r, 4, 23, 21); /* DMA_TX_REQ_NB = no dma */ 1884 1885 dsi_write_reg(dsi, DSI_VC_CTRL(vc), r); 1886 1887 dsi->vc[vc].source = DSI_VC_SOURCE_L4; 1888 } 1889 1890 static void dsi_vc_enable_hs(struct omap_dss_device *dssdev, int vc, 1891 bool enable) 1892 { 1893 struct dsi_data *dsi = to_dsi_data(dssdev); 1894 1895 DSSDBG("dsi_vc_enable_hs(%d, %d)\n", vc, enable); 1896 1897 if (REG_GET(dsi, DSI_VC_CTRL(vc), 9, 9) == enable) 1898 return; 1899 1900 WARN_ON(!dsi_bus_is_locked(dsi)); 1901 1902 dsi_vc_enable(dsi, vc, 0); 1903 dsi_if_enable(dsi, 0); 1904 1905 REG_FLD_MOD(dsi, DSI_VC_CTRL(vc), enable, 9, 9); 1906 1907 dsi_vc_enable(dsi, vc, 1); 1908 dsi_if_enable(dsi, 1); 1909 1910 dsi_force_tx_stop_mode_io(dsi); 1911 } 1912 1913 static void dsi_vc_flush_long_data(struct dsi_data *dsi, int vc) 1914 { 1915 while (REG_GET(dsi, DSI_VC_CTRL(vc), 20, 20)) { 1916 u32 val; 1917 val = dsi_read_reg(dsi, DSI_VC_SHORT_PACKET_HEADER(vc)); 1918 DSSDBG("\t\tb1 %#02x b2 %#02x b3 %#02x b4 %#02x\n", 1919 (val >> 0) & 0xff, 1920 (val >> 8) & 0xff, 1921 (val >> 16) & 0xff, 1922 (val >> 24) & 0xff); 1923 } 1924 } 1925 1926 static void dsi_show_rx_ack_with_err(u16 err) 1927 { 1928 DSSERR("\tACK with ERROR (%#x):\n", err); 1929 if (err & (1 << 0)) 1930 DSSERR("\t\tSoT Error\n"); 1931 if (err & (1 << 1)) 1932 DSSERR("\t\tSoT Sync Error\n"); 1933 if (err & (1 << 2)) 1934 DSSERR("\t\tEoT Sync Error\n"); 1935 if (err & (1 << 3)) 1936 DSSERR("\t\tEscape Mode Entry Command Error\n"); 1937 if (err & (1 << 4)) 1938 DSSERR("\t\tLP Transmit Sync Error\n"); 1939 if (err & (1 << 5)) 1940 DSSERR("\t\tHS Receive Timeout Error\n"); 1941 if (err & (1 << 6)) 1942 DSSERR("\t\tFalse Control Error\n"); 1943 if (err & (1 << 7)) 1944 DSSERR("\t\t(reserved7)\n"); 1945 if (err & (1 << 8)) 1946 DSSERR("\t\tECC Error, single-bit (corrected)\n"); 1947 if (err & (1 << 9)) 1948 DSSERR("\t\tECC Error, multi-bit (not corrected)\n"); 1949 if (err & (1 << 10)) 1950 DSSERR("\t\tChecksum Error\n"); 1951 if (err & (1 << 11)) 1952 DSSERR("\t\tData type not recognized\n"); 1953 if (err & (1 << 12)) 1954 DSSERR("\t\tInvalid VC ID\n"); 1955 if (err & (1 << 13)) 1956 DSSERR("\t\tInvalid Transmission Length\n"); 1957 if (err & (1 << 14)) 1958 DSSERR("\t\t(reserved14)\n"); 1959 if (err & (1 << 15)) 1960 DSSERR("\t\tDSI Protocol Violation\n"); 1961 } 1962 1963 static u16 dsi_vc_flush_receive_data(struct dsi_data *dsi, int vc) 1964 { 1965 /* RX_FIFO_NOT_EMPTY */ 1966 while (REG_GET(dsi, DSI_VC_CTRL(vc), 20, 20)) { 1967 u32 val; 1968 u8 dt; 1969 val = dsi_read_reg(dsi, DSI_VC_SHORT_PACKET_HEADER(vc)); 1970 DSSERR("\trawval %#08x\n", val); 1971 dt = FLD_GET(val, 5, 0); 1972 if (dt == MIPI_DSI_RX_ACKNOWLEDGE_AND_ERROR_REPORT) { 1973 u16 err = FLD_GET(val, 23, 8); 1974 dsi_show_rx_ack_with_err(err); 1975 } else if (dt == MIPI_DSI_RX_DCS_SHORT_READ_RESPONSE_1BYTE) { 1976 DSSERR("\tDCS short response, 1 byte: %#x\n", 1977 FLD_GET(val, 23, 8)); 1978 } else if (dt == MIPI_DSI_RX_DCS_SHORT_READ_RESPONSE_2BYTE) { 1979 DSSERR("\tDCS short response, 2 byte: %#x\n", 1980 FLD_GET(val, 23, 8)); 1981 } else if (dt == MIPI_DSI_RX_DCS_LONG_READ_RESPONSE) { 1982 DSSERR("\tDCS long response, len %d\n", 1983 FLD_GET(val, 23, 8)); 1984 dsi_vc_flush_long_data(dsi, vc); 1985 } else { 1986 DSSERR("\tunknown datatype 0x%02x\n", dt); 1987 } 1988 } 1989 return 0; 1990 } 1991 1992 static int dsi_vc_send_bta(struct dsi_data *dsi, int vc) 1993 { 1994 if (dsi->debug_write || dsi->debug_read) 1995 DSSDBG("dsi_vc_send_bta %d\n", vc); 1996 1997 WARN_ON(!dsi_bus_is_locked(dsi)); 1998 1999 /* RX_FIFO_NOT_EMPTY */ 2000 if (REG_GET(dsi, DSI_VC_CTRL(vc), 20, 20)) { 2001 DSSERR("rx fifo not empty when sending BTA, dumping data:\n"); 2002 dsi_vc_flush_receive_data(dsi, vc); 2003 } 2004 2005 REG_FLD_MOD(dsi, DSI_VC_CTRL(vc), 1, 6, 6); /* BTA_EN */ 2006 2007 /* flush posted write */ 2008 dsi_read_reg(dsi, DSI_VC_CTRL(vc)); 2009 2010 return 0; 2011 } 2012 2013 static int dsi_vc_send_bta_sync(struct omap_dss_device *dssdev, int vc) 2014 { 2015 struct dsi_data *dsi = to_dsi_data(dssdev); 2016 DECLARE_COMPLETION_ONSTACK(completion); 2017 int r = 0; 2018 u32 err; 2019 2020 r = dsi_register_isr_vc(dsi, vc, dsi_completion_handler, 2021 &completion, DSI_VC_IRQ_BTA); 2022 if (r) 2023 goto err0; 2024 2025 r = dsi_register_isr(dsi, dsi_completion_handler, &completion, 2026 DSI_IRQ_ERROR_MASK); 2027 if (r) 2028 goto err1; 2029 2030 r = dsi_vc_send_bta(dsi, vc); 2031 if (r) 2032 goto err2; 2033 2034 if (wait_for_completion_timeout(&completion, 2035 msecs_to_jiffies(500)) == 0) { 2036 DSSERR("Failed to receive BTA\n"); 2037 r = -EIO; 2038 goto err2; 2039 } 2040 2041 err = dsi_get_errors(dsi); 2042 if (err) { 2043 DSSERR("Error while sending BTA: %x\n", err); 2044 r = -EIO; 2045 goto err2; 2046 } 2047 err2: 2048 dsi_unregister_isr(dsi, dsi_completion_handler, &completion, 2049 DSI_IRQ_ERROR_MASK); 2050 err1: 2051 dsi_unregister_isr_vc(dsi, vc, dsi_completion_handler, 2052 &completion, DSI_VC_IRQ_BTA); 2053 err0: 2054 return r; 2055 } 2056 2057 static inline void dsi_vc_write_long_header(struct dsi_data *dsi, int vc, 2058 int channel, u8 data_type, u16 len, 2059 u8 ecc) 2060 { 2061 u32 val; 2062 u8 data_id; 2063 2064 WARN_ON(!dsi_bus_is_locked(dsi)); 2065 2066 data_id = data_type | channel << 6; 2067 2068 val = FLD_VAL(data_id, 7, 0) | FLD_VAL(len, 23, 8) | 2069 FLD_VAL(ecc, 31, 24); 2070 2071 dsi_write_reg(dsi, DSI_VC_LONG_PACKET_HEADER(vc), val); 2072 } 2073 2074 static inline void dsi_vc_write_long_payload(struct dsi_data *dsi, int vc, 2075 u8 b1, u8 b2, u8 b3, u8 b4) 2076 { 2077 u32 val; 2078 2079 val = b4 << 24 | b3 << 16 | b2 << 8 | b1 << 0; 2080 2081 /* DSSDBG("\twriting %02x, %02x, %02x, %02x (%#010x)\n", 2082 b1, b2, b3, b4, val); */ 2083 2084 dsi_write_reg(dsi, DSI_VC_LONG_PACKET_PAYLOAD(vc), val); 2085 } 2086 2087 static int dsi_vc_send_long(struct dsi_data *dsi, int vc, 2088 const struct mipi_dsi_msg *msg) 2089 { 2090 /*u32 val; */ 2091 int i; 2092 const u8 *p; 2093 int r = 0; 2094 u8 b1, b2, b3, b4; 2095 2096 if (dsi->debug_write) 2097 DSSDBG("dsi_vc_send_long, %d bytes\n", msg->tx_len); 2098 2099 /* len + header */ 2100 if (dsi->vc[vc].tx_fifo_size * 32 * 4 < msg->tx_len + 4) { 2101 DSSERR("unable to send long packet: packet too long.\n"); 2102 return -EINVAL; 2103 } 2104 2105 dsi_vc_write_long_header(dsi, vc, msg->channel, msg->type, msg->tx_len, 0); 2106 2107 p = msg->tx_buf; 2108 for (i = 0; i < msg->tx_len >> 2; i++) { 2109 if (dsi->debug_write) 2110 DSSDBG("\tsending full packet %d\n", i); 2111 2112 b1 = *p++; 2113 b2 = *p++; 2114 b3 = *p++; 2115 b4 = *p++; 2116 2117 dsi_vc_write_long_payload(dsi, vc, b1, b2, b3, b4); 2118 } 2119 2120 i = msg->tx_len % 4; 2121 if (i) { 2122 b1 = 0; b2 = 0; b3 = 0; 2123 2124 if (dsi->debug_write) 2125 DSSDBG("\tsending remainder bytes %d\n", i); 2126 2127 switch (i) { 2128 case 3: 2129 b1 = *p++; 2130 b2 = *p++; 2131 b3 = *p++; 2132 break; 2133 case 2: 2134 b1 = *p++; 2135 b2 = *p++; 2136 break; 2137 case 1: 2138 b1 = *p++; 2139 break; 2140 } 2141 2142 dsi_vc_write_long_payload(dsi, vc, b1, b2, b3, 0); 2143 } 2144 2145 return r; 2146 } 2147 2148 static int dsi_vc_send_short(struct dsi_data *dsi, int vc, 2149 const struct mipi_dsi_msg *msg) 2150 { 2151 struct mipi_dsi_packet pkt; 2152 u32 r; 2153 2154 r = mipi_dsi_create_packet(&pkt, msg); 2155 if (r < 0) 2156 return r; 2157 2158 WARN_ON(!dsi_bus_is_locked(dsi)); 2159 2160 if (dsi->debug_write) 2161 DSSDBG("dsi_vc_send_short(vc%d, dt %#x, b1 %#x, b2 %#x)\n", 2162 vc, msg->type, pkt.header[1], pkt.header[2]); 2163 2164 if (FLD_GET(dsi_read_reg(dsi, DSI_VC_CTRL(vc)), 16, 16)) { 2165 DSSERR("ERROR FIFO FULL, aborting transfer\n"); 2166 return -EINVAL; 2167 } 2168 2169 r = pkt.header[3] << 24 | pkt.header[2] << 16 | pkt.header[1] << 8 | 2170 pkt.header[0]; 2171 2172 dsi_write_reg(dsi, DSI_VC_SHORT_PACKET_HEADER(vc), r); 2173 2174 return 0; 2175 } 2176 2177 static int dsi_vc_send_null(struct dsi_data *dsi, int vc, int channel) 2178 { 2179 const struct mipi_dsi_msg msg = { 2180 .channel = channel, 2181 .type = MIPI_DSI_NULL_PACKET, 2182 }; 2183 2184 return dsi_vc_send_long(dsi, vc, &msg); 2185 } 2186 2187 static int dsi_vc_write_common(struct omap_dss_device *dssdev, int vc, 2188 const struct mipi_dsi_msg *msg) 2189 { 2190 struct dsi_data *dsi = to_dsi_data(dssdev); 2191 int r; 2192 2193 if (mipi_dsi_packet_format_is_short(msg->type)) 2194 r = dsi_vc_send_short(dsi, vc, msg); 2195 else 2196 r = dsi_vc_send_long(dsi, vc, msg); 2197 2198 if (r < 0) 2199 return r; 2200 2201 /* 2202 * TODO: we do not always have to do the BTA sync, for example 2203 * we can improve performance by setting the update window 2204 * information without sending BTA sync between the commands. 2205 * In that case we can return early. 2206 */ 2207 2208 r = dsi_vc_send_bta_sync(dssdev, vc); 2209 if (r) { 2210 DSSERR("bta sync failed\n"); 2211 return r; 2212 } 2213 2214 /* RX_FIFO_NOT_EMPTY */ 2215 if (REG_GET(dsi, DSI_VC_CTRL(vc), 20, 20)) { 2216 DSSERR("rx fifo not empty after write, dumping data:\n"); 2217 dsi_vc_flush_receive_data(dsi, vc); 2218 return -EIO; 2219 } 2220 2221 return 0; 2222 } 2223 2224 static int dsi_vc_read_rx_fifo(struct dsi_data *dsi, int vc, u8 *buf, 2225 int buflen, enum dss_dsi_content_type type) 2226 { 2227 u32 val; 2228 u8 dt; 2229 int r; 2230 2231 /* RX_FIFO_NOT_EMPTY */ 2232 if (REG_GET(dsi, DSI_VC_CTRL(vc), 20, 20) == 0) { 2233 DSSERR("RX fifo empty when trying to read.\n"); 2234 r = -EIO; 2235 goto err; 2236 } 2237 2238 val = dsi_read_reg(dsi, DSI_VC_SHORT_PACKET_HEADER(vc)); 2239 if (dsi->debug_read) 2240 DSSDBG("\theader: %08x\n", val); 2241 dt = FLD_GET(val, 5, 0); 2242 if (dt == MIPI_DSI_RX_ACKNOWLEDGE_AND_ERROR_REPORT) { 2243 u16 err = FLD_GET(val, 23, 8); 2244 dsi_show_rx_ack_with_err(err); 2245 r = -EIO; 2246 goto err; 2247 2248 } else if (dt == (type == DSS_DSI_CONTENT_GENERIC ? 2249 MIPI_DSI_RX_GENERIC_SHORT_READ_RESPONSE_1BYTE : 2250 MIPI_DSI_RX_DCS_SHORT_READ_RESPONSE_1BYTE)) { 2251 u8 data = FLD_GET(val, 15, 8); 2252 if (dsi->debug_read) 2253 DSSDBG("\t%s short response, 1 byte: %02x\n", 2254 type == DSS_DSI_CONTENT_GENERIC ? "GENERIC" : 2255 "DCS", data); 2256 2257 if (buflen < 1) { 2258 r = -EIO; 2259 goto err; 2260 } 2261 2262 buf[0] = data; 2263 2264 return 1; 2265 } else if (dt == (type == DSS_DSI_CONTENT_GENERIC ? 2266 MIPI_DSI_RX_GENERIC_SHORT_READ_RESPONSE_2BYTE : 2267 MIPI_DSI_RX_DCS_SHORT_READ_RESPONSE_2BYTE)) { 2268 u16 data = FLD_GET(val, 23, 8); 2269 if (dsi->debug_read) 2270 DSSDBG("\t%s short response, 2 byte: %04x\n", 2271 type == DSS_DSI_CONTENT_GENERIC ? "GENERIC" : 2272 "DCS", data); 2273 2274 if (buflen < 2) { 2275 r = -EIO; 2276 goto err; 2277 } 2278 2279 buf[0] = data & 0xff; 2280 buf[1] = (data >> 8) & 0xff; 2281 2282 return 2; 2283 } else if (dt == (type == DSS_DSI_CONTENT_GENERIC ? 2284 MIPI_DSI_RX_GENERIC_LONG_READ_RESPONSE : 2285 MIPI_DSI_RX_DCS_LONG_READ_RESPONSE)) { 2286 int w; 2287 int len = FLD_GET(val, 23, 8); 2288 if (dsi->debug_read) 2289 DSSDBG("\t%s long response, len %d\n", 2290 type == DSS_DSI_CONTENT_GENERIC ? "GENERIC" : 2291 "DCS", len); 2292 2293 if (len > buflen) { 2294 r = -EIO; 2295 goto err; 2296 } 2297 2298 /* two byte checksum ends the packet, not included in len */ 2299 for (w = 0; w < len + 2;) { 2300 int b; 2301 val = dsi_read_reg(dsi, 2302 DSI_VC_SHORT_PACKET_HEADER(vc)); 2303 if (dsi->debug_read) 2304 DSSDBG("\t\t%02x %02x %02x %02x\n", 2305 (val >> 0) & 0xff, 2306 (val >> 8) & 0xff, 2307 (val >> 16) & 0xff, 2308 (val >> 24) & 0xff); 2309 2310 for (b = 0; b < 4; ++b) { 2311 if (w < len) 2312 buf[w] = (val >> (b * 8)) & 0xff; 2313 /* we discard the 2 byte checksum */ 2314 ++w; 2315 } 2316 } 2317 2318 return len; 2319 } else { 2320 DSSERR("\tunknown datatype 0x%02x\n", dt); 2321 r = -EIO; 2322 goto err; 2323 } 2324 2325 err: 2326 DSSERR("dsi_vc_read_rx_fifo(vc %d type %s) failed\n", vc, 2327 type == DSS_DSI_CONTENT_GENERIC ? "GENERIC" : "DCS"); 2328 2329 return r; 2330 } 2331 2332 static int dsi_vc_dcs_read(struct omap_dss_device *dssdev, int vc, 2333 const struct mipi_dsi_msg *msg) 2334 { 2335 struct dsi_data *dsi = to_dsi_data(dssdev); 2336 u8 cmd = ((u8 *)msg->tx_buf)[0]; 2337 int r; 2338 2339 if (dsi->debug_read) 2340 DSSDBG("%s(vc %d, cmd %x)\n", __func__, vc, cmd); 2341 2342 r = dsi_vc_send_short(dsi, vc, msg); 2343 if (r) 2344 goto err; 2345 2346 r = dsi_vc_send_bta_sync(dssdev, vc); 2347 if (r) 2348 goto err; 2349 2350 r = dsi_vc_read_rx_fifo(dsi, vc, msg->rx_buf, msg->rx_len, 2351 DSS_DSI_CONTENT_DCS); 2352 if (r < 0) 2353 goto err; 2354 2355 if (r != msg->rx_len) { 2356 r = -EIO; 2357 goto err; 2358 } 2359 2360 return 0; 2361 err: 2362 DSSERR("%s(vc %d, cmd 0x%02x) failed\n", __func__, vc, cmd); 2363 return r; 2364 } 2365 2366 static int dsi_vc_generic_read(struct omap_dss_device *dssdev, int vc, 2367 const struct mipi_dsi_msg *msg) 2368 { 2369 struct dsi_data *dsi = to_dsi_data(dssdev); 2370 int r; 2371 2372 r = dsi_vc_send_short(dsi, vc, msg); 2373 if (r) 2374 goto err; 2375 2376 r = dsi_vc_send_bta_sync(dssdev, vc); 2377 if (r) 2378 goto err; 2379 2380 r = dsi_vc_read_rx_fifo(dsi, vc, msg->rx_buf, msg->rx_len, 2381 DSS_DSI_CONTENT_GENERIC); 2382 if (r < 0) 2383 goto err; 2384 2385 if (r != msg->rx_len) { 2386 r = -EIO; 2387 goto err; 2388 } 2389 2390 return 0; 2391 err: 2392 DSSERR("%s(vc %d, reqlen %d) failed\n", __func__, vc, msg->tx_len); 2393 return r; 2394 } 2395 2396 static void dsi_set_lp_rx_timeout(struct dsi_data *dsi, unsigned int ticks, 2397 bool x4, bool x16) 2398 { 2399 unsigned long fck; 2400 unsigned long total_ticks; 2401 u32 r; 2402 2403 BUG_ON(ticks > 0x1fff); 2404 2405 /* ticks in DSI_FCK */ 2406 fck = dsi_fclk_rate(dsi); 2407 2408 r = dsi_read_reg(dsi, DSI_TIMING2); 2409 r = FLD_MOD(r, 1, 15, 15); /* LP_RX_TO */ 2410 r = FLD_MOD(r, x16 ? 1 : 0, 14, 14); /* LP_RX_TO_X16 */ 2411 r = FLD_MOD(r, x4 ? 1 : 0, 13, 13); /* LP_RX_TO_X4 */ 2412 r = FLD_MOD(r, ticks, 12, 0); /* LP_RX_COUNTER */ 2413 dsi_write_reg(dsi, DSI_TIMING2, r); 2414 2415 total_ticks = ticks * (x16 ? 16 : 1) * (x4 ? 4 : 1); 2416 2417 DSSDBG("LP_RX_TO %lu ticks (%#x%s%s) = %lu ns\n", 2418 total_ticks, 2419 ticks, x4 ? " x4" : "", x16 ? " x16" : "", 2420 (total_ticks * 1000) / (fck / 1000 / 1000)); 2421 } 2422 2423 static void dsi_set_ta_timeout(struct dsi_data *dsi, unsigned int ticks, 2424 bool x8, bool x16) 2425 { 2426 unsigned long fck; 2427 unsigned long total_ticks; 2428 u32 r; 2429 2430 BUG_ON(ticks > 0x1fff); 2431 2432 /* ticks in DSI_FCK */ 2433 fck = dsi_fclk_rate(dsi); 2434 2435 r = dsi_read_reg(dsi, DSI_TIMING1); 2436 r = FLD_MOD(r, 1, 31, 31); /* TA_TO */ 2437 r = FLD_MOD(r, x16 ? 1 : 0, 30, 30); /* TA_TO_X16 */ 2438 r = FLD_MOD(r, x8 ? 1 : 0, 29, 29); /* TA_TO_X8 */ 2439 r = FLD_MOD(r, ticks, 28, 16); /* TA_TO_COUNTER */ 2440 dsi_write_reg(dsi, DSI_TIMING1, r); 2441 2442 total_ticks = ticks * (x16 ? 16 : 1) * (x8 ? 8 : 1); 2443 2444 DSSDBG("TA_TO %lu ticks (%#x%s%s) = %lu ns\n", 2445 total_ticks, 2446 ticks, x8 ? " x8" : "", x16 ? " x16" : "", 2447 (total_ticks * 1000) / (fck / 1000 / 1000)); 2448 } 2449 2450 static void dsi_set_stop_state_counter(struct dsi_data *dsi, unsigned int ticks, 2451 bool x4, bool x16) 2452 { 2453 unsigned long fck; 2454 unsigned long total_ticks; 2455 u32 r; 2456 2457 BUG_ON(ticks > 0x1fff); 2458 2459 /* ticks in DSI_FCK */ 2460 fck = dsi_fclk_rate(dsi); 2461 2462 r = dsi_read_reg(dsi, DSI_TIMING1); 2463 r = FLD_MOD(r, 1, 15, 15); /* FORCE_TX_STOP_MODE_IO */ 2464 r = FLD_MOD(r, x16 ? 1 : 0, 14, 14); /* STOP_STATE_X16_IO */ 2465 r = FLD_MOD(r, x4 ? 1 : 0, 13, 13); /* STOP_STATE_X4_IO */ 2466 r = FLD_MOD(r, ticks, 12, 0); /* STOP_STATE_COUNTER_IO */ 2467 dsi_write_reg(dsi, DSI_TIMING1, r); 2468 2469 total_ticks = ticks * (x16 ? 16 : 1) * (x4 ? 4 : 1); 2470 2471 DSSDBG("STOP_STATE_COUNTER %lu ticks (%#x%s%s) = %lu ns\n", 2472 total_ticks, 2473 ticks, x4 ? " x4" : "", x16 ? " x16" : "", 2474 (total_ticks * 1000) / (fck / 1000 / 1000)); 2475 } 2476 2477 static void dsi_set_hs_tx_timeout(struct dsi_data *dsi, unsigned int ticks, 2478 bool x4, bool x16) 2479 { 2480 unsigned long fck; 2481 unsigned long total_ticks; 2482 u32 r; 2483 2484 BUG_ON(ticks > 0x1fff); 2485 2486 /* ticks in TxByteClkHS */ 2487 fck = dsi_get_txbyteclkhs(dsi); 2488 2489 r = dsi_read_reg(dsi, DSI_TIMING2); 2490 r = FLD_MOD(r, 1, 31, 31); /* HS_TX_TO */ 2491 r = FLD_MOD(r, x16 ? 1 : 0, 30, 30); /* HS_TX_TO_X16 */ 2492 r = FLD_MOD(r, x4 ? 1 : 0, 29, 29); /* HS_TX_TO_X8 (4 really) */ 2493 r = FLD_MOD(r, ticks, 28, 16); /* HS_TX_TO_COUNTER */ 2494 dsi_write_reg(dsi, DSI_TIMING2, r); 2495 2496 total_ticks = ticks * (x16 ? 16 : 1) * (x4 ? 4 : 1); 2497 2498 DSSDBG("HS_TX_TO %lu ticks (%#x%s%s) = %lu ns\n", 2499 total_ticks, 2500 ticks, x4 ? " x4" : "", x16 ? " x16" : "", 2501 (total_ticks * 1000) / (fck / 1000 / 1000)); 2502 } 2503 2504 static void dsi_config_vp_num_line_buffers(struct dsi_data *dsi) 2505 { 2506 int num_line_buffers; 2507 2508 if (dsi->mode == OMAP_DSS_DSI_VIDEO_MODE) { 2509 int bpp = mipi_dsi_pixel_format_to_bpp(dsi->pix_fmt); 2510 const struct videomode *vm = &dsi->vm; 2511 /* 2512 * Don't use line buffers if width is greater than the video 2513 * port's line buffer size 2514 */ 2515 if (dsi->line_buffer_size <= vm->hactive * bpp / 8) 2516 num_line_buffers = 0; 2517 else 2518 num_line_buffers = 2; 2519 } else { 2520 /* Use maximum number of line buffers in command mode */ 2521 num_line_buffers = 2; 2522 } 2523 2524 /* LINE_BUFFER */ 2525 REG_FLD_MOD(dsi, DSI_CTRL, num_line_buffers, 13, 12); 2526 } 2527 2528 static void dsi_config_vp_sync_events(struct dsi_data *dsi) 2529 { 2530 bool sync_end; 2531 u32 r; 2532 2533 if (dsi->vm_timings.trans_mode == OMAP_DSS_DSI_PULSE_MODE) 2534 sync_end = true; 2535 else 2536 sync_end = false; 2537 2538 r = dsi_read_reg(dsi, DSI_CTRL); 2539 r = FLD_MOD(r, 1, 9, 9); /* VP_DE_POL */ 2540 r = FLD_MOD(r, 1, 10, 10); /* VP_HSYNC_POL */ 2541 r = FLD_MOD(r, 1, 11, 11); /* VP_VSYNC_POL */ 2542 r = FLD_MOD(r, 1, 15, 15); /* VP_VSYNC_START */ 2543 r = FLD_MOD(r, sync_end, 16, 16); /* VP_VSYNC_END */ 2544 r = FLD_MOD(r, 1, 17, 17); /* VP_HSYNC_START */ 2545 r = FLD_MOD(r, sync_end, 18, 18); /* VP_HSYNC_END */ 2546 dsi_write_reg(dsi, DSI_CTRL, r); 2547 } 2548 2549 static void dsi_config_blanking_modes(struct dsi_data *dsi) 2550 { 2551 int blanking_mode = dsi->vm_timings.blanking_mode; 2552 int hfp_blanking_mode = dsi->vm_timings.hfp_blanking_mode; 2553 int hbp_blanking_mode = dsi->vm_timings.hbp_blanking_mode; 2554 int hsa_blanking_mode = dsi->vm_timings.hsa_blanking_mode; 2555 u32 r; 2556 2557 /* 2558 * 0 = TX FIFO packets sent or LPS in corresponding blanking periods 2559 * 1 = Long blanking packets are sent in corresponding blanking periods 2560 */ 2561 r = dsi_read_reg(dsi, DSI_CTRL); 2562 r = FLD_MOD(r, blanking_mode, 20, 20); /* BLANKING_MODE */ 2563 r = FLD_MOD(r, hfp_blanking_mode, 21, 21); /* HFP_BLANKING */ 2564 r = FLD_MOD(r, hbp_blanking_mode, 22, 22); /* HBP_BLANKING */ 2565 r = FLD_MOD(r, hsa_blanking_mode, 23, 23); /* HSA_BLANKING */ 2566 dsi_write_reg(dsi, DSI_CTRL, r); 2567 } 2568 2569 /* 2570 * According to section 'HS Command Mode Interleaving' in OMAP TRM, Scenario 3 2571 * results in maximum transition time for data and clock lanes to enter and 2572 * exit HS mode. Hence, this is the scenario where the least amount of command 2573 * mode data can be interleaved. We program the minimum amount of TXBYTECLKHS 2574 * clock cycles that can be used to interleave command mode data in HS so that 2575 * all scenarios are satisfied. 2576 */ 2577 static int dsi_compute_interleave_hs(int blank, bool ddr_alwon, int enter_hs, 2578 int exit_hs, int exiths_clk, int ddr_pre, int ddr_post) 2579 { 2580 int transition; 2581 2582 /* 2583 * If DDR_CLK_ALWAYS_ON is set, we need to consider HS mode transition 2584 * time of data lanes only, if it isn't set, we need to consider HS 2585 * transition time of both data and clock lanes. HS transition time 2586 * of Scenario 3 is considered. 2587 */ 2588 if (ddr_alwon) { 2589 transition = enter_hs + exit_hs + max(enter_hs, 2) + 1; 2590 } else { 2591 int trans1, trans2; 2592 trans1 = ddr_pre + enter_hs + exit_hs + max(enter_hs, 2) + 1; 2593 trans2 = ddr_pre + enter_hs + exiths_clk + ddr_post + ddr_pre + 2594 enter_hs + 1; 2595 transition = max(trans1, trans2); 2596 } 2597 2598 return blank > transition ? blank - transition : 0; 2599 } 2600 2601 /* 2602 * According to section 'LP Command Mode Interleaving' in OMAP TRM, Scenario 1 2603 * results in maximum transition time for data lanes to enter and exit LP mode. 2604 * Hence, this is the scenario where the least amount of command mode data can 2605 * be interleaved. We program the minimum amount of bytes that can be 2606 * interleaved in LP so that all scenarios are satisfied. 2607 */ 2608 static int dsi_compute_interleave_lp(int blank, int enter_hs, int exit_hs, 2609 int lp_clk_div, int tdsi_fclk) 2610 { 2611 int trans_lp; /* time required for a LP transition, in TXBYTECLKHS */ 2612 int tlp_avail; /* time left for interleaving commands, in CLKIN4DDR */ 2613 int ttxclkesc; /* period of LP transmit escape clock, in CLKIN4DDR */ 2614 int thsbyte_clk = 16; /* Period of TXBYTECLKHS clock, in CLKIN4DDR */ 2615 int lp_inter; /* cmd mode data that can be interleaved, in bytes */ 2616 2617 /* maximum LP transition time according to Scenario 1 */ 2618 trans_lp = exit_hs + max(enter_hs, 2) + 1; 2619 2620 /* CLKIN4DDR = 16 * TXBYTECLKHS */ 2621 tlp_avail = thsbyte_clk * (blank - trans_lp); 2622 2623 ttxclkesc = tdsi_fclk * lp_clk_div; 2624 2625 lp_inter = ((tlp_avail - 8 * thsbyte_clk - 5 * tdsi_fclk) / ttxclkesc - 2626 26) / 16; 2627 2628 return max(lp_inter, 0); 2629 } 2630 2631 static void dsi_config_cmd_mode_interleaving(struct dsi_data *dsi) 2632 { 2633 int blanking_mode; 2634 int hfp_blanking_mode, hbp_blanking_mode, hsa_blanking_mode; 2635 int hsa, hfp, hbp, width_bytes, bllp, lp_clk_div; 2636 int ddr_clk_pre, ddr_clk_post, enter_hs_mode_lat, exit_hs_mode_lat; 2637 int tclk_trail, ths_exit, exiths_clk; 2638 bool ddr_alwon; 2639 const struct videomode *vm = &dsi->vm; 2640 int bpp = mipi_dsi_pixel_format_to_bpp(dsi->pix_fmt); 2641 int ndl = dsi->num_lanes_used - 1; 2642 int dsi_fclk_hsdiv = dsi->user_dsi_cinfo.mX[HSDIV_DSI] + 1; 2643 int hsa_interleave_hs = 0, hsa_interleave_lp = 0; 2644 int hfp_interleave_hs = 0, hfp_interleave_lp = 0; 2645 int hbp_interleave_hs = 0, hbp_interleave_lp = 0; 2646 int bl_interleave_hs = 0, bl_interleave_lp = 0; 2647 u32 r; 2648 2649 r = dsi_read_reg(dsi, DSI_CTRL); 2650 blanking_mode = FLD_GET(r, 20, 20); 2651 hfp_blanking_mode = FLD_GET(r, 21, 21); 2652 hbp_blanking_mode = FLD_GET(r, 22, 22); 2653 hsa_blanking_mode = FLD_GET(r, 23, 23); 2654 2655 r = dsi_read_reg(dsi, DSI_VM_TIMING1); 2656 hbp = FLD_GET(r, 11, 0); 2657 hfp = FLD_GET(r, 23, 12); 2658 hsa = FLD_GET(r, 31, 24); 2659 2660 r = dsi_read_reg(dsi, DSI_CLK_TIMING); 2661 ddr_clk_post = FLD_GET(r, 7, 0); 2662 ddr_clk_pre = FLD_GET(r, 15, 8); 2663 2664 r = dsi_read_reg(dsi, DSI_VM_TIMING7); 2665 exit_hs_mode_lat = FLD_GET(r, 15, 0); 2666 enter_hs_mode_lat = FLD_GET(r, 31, 16); 2667 2668 r = dsi_read_reg(dsi, DSI_CLK_CTRL); 2669 lp_clk_div = FLD_GET(r, 12, 0); 2670 ddr_alwon = FLD_GET(r, 13, 13); 2671 2672 r = dsi_read_reg(dsi, DSI_DSIPHY_CFG0); 2673 ths_exit = FLD_GET(r, 7, 0); 2674 2675 r = dsi_read_reg(dsi, DSI_DSIPHY_CFG1); 2676 tclk_trail = FLD_GET(r, 15, 8); 2677 2678 exiths_clk = ths_exit + tclk_trail; 2679 2680 width_bytes = DIV_ROUND_UP(vm->hactive * bpp, 8); 2681 bllp = hbp + hfp + hsa + DIV_ROUND_UP(width_bytes + 6, ndl); 2682 2683 if (!hsa_blanking_mode) { 2684 hsa_interleave_hs = dsi_compute_interleave_hs(hsa, ddr_alwon, 2685 enter_hs_mode_lat, exit_hs_mode_lat, 2686 exiths_clk, ddr_clk_pre, ddr_clk_post); 2687 hsa_interleave_lp = dsi_compute_interleave_lp(hsa, 2688 enter_hs_mode_lat, exit_hs_mode_lat, 2689 lp_clk_div, dsi_fclk_hsdiv); 2690 } 2691 2692 if (!hfp_blanking_mode) { 2693 hfp_interleave_hs = dsi_compute_interleave_hs(hfp, ddr_alwon, 2694 enter_hs_mode_lat, exit_hs_mode_lat, 2695 exiths_clk, ddr_clk_pre, ddr_clk_post); 2696 hfp_interleave_lp = dsi_compute_interleave_lp(hfp, 2697 enter_hs_mode_lat, exit_hs_mode_lat, 2698 lp_clk_div, dsi_fclk_hsdiv); 2699 } 2700 2701 if (!hbp_blanking_mode) { 2702 hbp_interleave_hs = dsi_compute_interleave_hs(hbp, ddr_alwon, 2703 enter_hs_mode_lat, exit_hs_mode_lat, 2704 exiths_clk, ddr_clk_pre, ddr_clk_post); 2705 2706 hbp_interleave_lp = dsi_compute_interleave_lp(hbp, 2707 enter_hs_mode_lat, exit_hs_mode_lat, 2708 lp_clk_div, dsi_fclk_hsdiv); 2709 } 2710 2711 if (!blanking_mode) { 2712 bl_interleave_hs = dsi_compute_interleave_hs(bllp, ddr_alwon, 2713 enter_hs_mode_lat, exit_hs_mode_lat, 2714 exiths_clk, ddr_clk_pre, ddr_clk_post); 2715 2716 bl_interleave_lp = dsi_compute_interleave_lp(bllp, 2717 enter_hs_mode_lat, exit_hs_mode_lat, 2718 lp_clk_div, dsi_fclk_hsdiv); 2719 } 2720 2721 DSSDBG("DSI HS interleaving(TXBYTECLKHS) HSA %d, HFP %d, HBP %d, BLLP %d\n", 2722 hsa_interleave_hs, hfp_interleave_hs, hbp_interleave_hs, 2723 bl_interleave_hs); 2724 2725 DSSDBG("DSI LP interleaving(bytes) HSA %d, HFP %d, HBP %d, BLLP %d\n", 2726 hsa_interleave_lp, hfp_interleave_lp, hbp_interleave_lp, 2727 bl_interleave_lp); 2728 2729 r = dsi_read_reg(dsi, DSI_VM_TIMING4); 2730 r = FLD_MOD(r, hsa_interleave_hs, 23, 16); 2731 r = FLD_MOD(r, hfp_interleave_hs, 15, 8); 2732 r = FLD_MOD(r, hbp_interleave_hs, 7, 0); 2733 dsi_write_reg(dsi, DSI_VM_TIMING4, r); 2734 2735 r = dsi_read_reg(dsi, DSI_VM_TIMING5); 2736 r = FLD_MOD(r, hsa_interleave_lp, 23, 16); 2737 r = FLD_MOD(r, hfp_interleave_lp, 15, 8); 2738 r = FLD_MOD(r, hbp_interleave_lp, 7, 0); 2739 dsi_write_reg(dsi, DSI_VM_TIMING5, r); 2740 2741 r = dsi_read_reg(dsi, DSI_VM_TIMING6); 2742 r = FLD_MOD(r, bl_interleave_hs, 31, 15); 2743 r = FLD_MOD(r, bl_interleave_lp, 16, 0); 2744 dsi_write_reg(dsi, DSI_VM_TIMING6, r); 2745 } 2746 2747 static int dsi_proto_config(struct dsi_data *dsi) 2748 { 2749 u32 r; 2750 int buswidth = 0; 2751 2752 dsi_config_tx_fifo(dsi, DSI_FIFO_SIZE_32, 2753 DSI_FIFO_SIZE_32, 2754 DSI_FIFO_SIZE_32, 2755 DSI_FIFO_SIZE_32); 2756 2757 dsi_config_rx_fifo(dsi, DSI_FIFO_SIZE_32, 2758 DSI_FIFO_SIZE_32, 2759 DSI_FIFO_SIZE_32, 2760 DSI_FIFO_SIZE_32); 2761 2762 /* XXX what values for the timeouts? */ 2763 dsi_set_stop_state_counter(dsi, 0x1000, false, false); 2764 dsi_set_ta_timeout(dsi, 0x1fff, true, true); 2765 dsi_set_lp_rx_timeout(dsi, 0x1fff, true, true); 2766 dsi_set_hs_tx_timeout(dsi, 0x1fff, true, true); 2767 2768 switch (mipi_dsi_pixel_format_to_bpp(dsi->pix_fmt)) { 2769 case 16: 2770 buswidth = 0; 2771 break; 2772 case 18: 2773 buswidth = 1; 2774 break; 2775 case 24: 2776 buswidth = 2; 2777 break; 2778 default: 2779 BUG(); 2780 return -EINVAL; 2781 } 2782 2783 r = dsi_read_reg(dsi, DSI_CTRL); 2784 r = FLD_MOD(r, 1, 1, 1); /* CS_RX_EN */ 2785 r = FLD_MOD(r, 1, 2, 2); /* ECC_RX_EN */ 2786 r = FLD_MOD(r, 1, 3, 3); /* TX_FIFO_ARBITRATION */ 2787 r = FLD_MOD(r, 1, 4, 4); /* VP_CLK_RATIO, always 1, see errata*/ 2788 r = FLD_MOD(r, buswidth, 7, 6); /* VP_DATA_BUS_WIDTH */ 2789 r = FLD_MOD(r, 0, 8, 8); /* VP_CLK_POL */ 2790 r = FLD_MOD(r, 1, 14, 14); /* TRIGGER_RESET_MODE */ 2791 r = FLD_MOD(r, 1, 19, 19); /* EOT_ENABLE */ 2792 if (!(dsi->data->quirks & DSI_QUIRK_DCS_CMD_CONFIG_VC)) { 2793 r = FLD_MOD(r, 1, 24, 24); /* DCS_CMD_ENABLE */ 2794 /* DCS_CMD_CODE, 1=start, 0=continue */ 2795 r = FLD_MOD(r, 0, 25, 25); 2796 } 2797 2798 dsi_write_reg(dsi, DSI_CTRL, r); 2799 2800 dsi_config_vp_num_line_buffers(dsi); 2801 2802 if (dsi->mode == OMAP_DSS_DSI_VIDEO_MODE) { 2803 dsi_config_vp_sync_events(dsi); 2804 dsi_config_blanking_modes(dsi); 2805 dsi_config_cmd_mode_interleaving(dsi); 2806 } 2807 2808 dsi_vc_initial_config(dsi, 0); 2809 dsi_vc_initial_config(dsi, 1); 2810 dsi_vc_initial_config(dsi, 2); 2811 dsi_vc_initial_config(dsi, 3); 2812 2813 return 0; 2814 } 2815 2816 static void dsi_proto_timings(struct dsi_data *dsi) 2817 { 2818 unsigned int tlpx, tclk_zero, tclk_prepare; 2819 unsigned int tclk_pre, tclk_post; 2820 unsigned int ths_prepare, ths_prepare_ths_zero, ths_zero; 2821 unsigned int ths_trail, ths_exit; 2822 unsigned int ddr_clk_pre, ddr_clk_post; 2823 unsigned int enter_hs_mode_lat, exit_hs_mode_lat; 2824 unsigned int ths_eot; 2825 int ndl = dsi->num_lanes_used - 1; 2826 u32 r; 2827 2828 r = dsi_read_reg(dsi, DSI_DSIPHY_CFG0); 2829 ths_prepare = FLD_GET(r, 31, 24); 2830 ths_prepare_ths_zero = FLD_GET(r, 23, 16); 2831 ths_zero = ths_prepare_ths_zero - ths_prepare; 2832 ths_trail = FLD_GET(r, 15, 8); 2833 ths_exit = FLD_GET(r, 7, 0); 2834 2835 r = dsi_read_reg(dsi, DSI_DSIPHY_CFG1); 2836 tlpx = FLD_GET(r, 20, 16) * 2; 2837 tclk_zero = FLD_GET(r, 7, 0); 2838 2839 r = dsi_read_reg(dsi, DSI_DSIPHY_CFG2); 2840 tclk_prepare = FLD_GET(r, 7, 0); 2841 2842 /* min 8*UI */ 2843 tclk_pre = 20; 2844 /* min 60ns + 52*UI */ 2845 tclk_post = ns2ddr(dsi, 60) + 26; 2846 2847 ths_eot = DIV_ROUND_UP(4, ndl); 2848 2849 ddr_clk_pre = DIV_ROUND_UP(tclk_pre + tlpx + tclk_zero + tclk_prepare, 2850 4); 2851 ddr_clk_post = DIV_ROUND_UP(tclk_post + ths_trail, 4) + ths_eot; 2852 2853 BUG_ON(ddr_clk_pre == 0 || ddr_clk_pre > 255); 2854 BUG_ON(ddr_clk_post == 0 || ddr_clk_post > 255); 2855 2856 r = dsi_read_reg(dsi, DSI_CLK_TIMING); 2857 r = FLD_MOD(r, ddr_clk_pre, 15, 8); 2858 r = FLD_MOD(r, ddr_clk_post, 7, 0); 2859 dsi_write_reg(dsi, DSI_CLK_TIMING, r); 2860 2861 DSSDBG("ddr_clk_pre %u, ddr_clk_post %u\n", 2862 ddr_clk_pre, 2863 ddr_clk_post); 2864 2865 enter_hs_mode_lat = 1 + DIV_ROUND_UP(tlpx, 4) + 2866 DIV_ROUND_UP(ths_prepare, 4) + 2867 DIV_ROUND_UP(ths_zero + 3, 4); 2868 2869 exit_hs_mode_lat = DIV_ROUND_UP(ths_trail + ths_exit, 4) + 1 + ths_eot; 2870 2871 r = FLD_VAL(enter_hs_mode_lat, 31, 16) | 2872 FLD_VAL(exit_hs_mode_lat, 15, 0); 2873 dsi_write_reg(dsi, DSI_VM_TIMING7, r); 2874 2875 DSSDBG("enter_hs_mode_lat %u, exit_hs_mode_lat %u\n", 2876 enter_hs_mode_lat, exit_hs_mode_lat); 2877 2878 if (dsi->mode == OMAP_DSS_DSI_VIDEO_MODE) { 2879 /* TODO: Implement a video mode check_timings function */ 2880 int hsa = dsi->vm_timings.hsa; 2881 int hfp = dsi->vm_timings.hfp; 2882 int hbp = dsi->vm_timings.hbp; 2883 int vsa = dsi->vm_timings.vsa; 2884 int vfp = dsi->vm_timings.vfp; 2885 int vbp = dsi->vm_timings.vbp; 2886 int window_sync = dsi->vm_timings.window_sync; 2887 bool hsync_end; 2888 const struct videomode *vm = &dsi->vm; 2889 int bpp = mipi_dsi_pixel_format_to_bpp(dsi->pix_fmt); 2890 int tl, t_he, width_bytes; 2891 2892 hsync_end = dsi->vm_timings.trans_mode == OMAP_DSS_DSI_PULSE_MODE; 2893 t_he = hsync_end ? 2894 ((hsa == 0 && ndl == 3) ? 1 : DIV_ROUND_UP(4, ndl)) : 0; 2895 2896 width_bytes = DIV_ROUND_UP(vm->hactive * bpp, 8); 2897 2898 /* TL = t_HS + HSA + t_HE + HFP + ceil((WC + 6) / NDL) + HBP */ 2899 tl = DIV_ROUND_UP(4, ndl) + (hsync_end ? hsa : 0) + t_he + hfp + 2900 DIV_ROUND_UP(width_bytes + 6, ndl) + hbp; 2901 2902 DSSDBG("HBP: %d, HFP: %d, HSA: %d, TL: %d TXBYTECLKHS\n", hbp, 2903 hfp, hsync_end ? hsa : 0, tl); 2904 DSSDBG("VBP: %d, VFP: %d, VSA: %d, VACT: %d lines\n", vbp, vfp, 2905 vsa, vm->vactive); 2906 2907 r = dsi_read_reg(dsi, DSI_VM_TIMING1); 2908 r = FLD_MOD(r, hbp, 11, 0); /* HBP */ 2909 r = FLD_MOD(r, hfp, 23, 12); /* HFP */ 2910 r = FLD_MOD(r, hsync_end ? hsa : 0, 31, 24); /* HSA */ 2911 dsi_write_reg(dsi, DSI_VM_TIMING1, r); 2912 2913 r = dsi_read_reg(dsi, DSI_VM_TIMING2); 2914 r = FLD_MOD(r, vbp, 7, 0); /* VBP */ 2915 r = FLD_MOD(r, vfp, 15, 8); /* VFP */ 2916 r = FLD_MOD(r, vsa, 23, 16); /* VSA */ 2917 r = FLD_MOD(r, window_sync, 27, 24); /* WINDOW_SYNC */ 2918 dsi_write_reg(dsi, DSI_VM_TIMING2, r); 2919 2920 r = dsi_read_reg(dsi, DSI_VM_TIMING3); 2921 r = FLD_MOD(r, vm->vactive, 14, 0); /* VACT */ 2922 r = FLD_MOD(r, tl, 31, 16); /* TL */ 2923 dsi_write_reg(dsi, DSI_VM_TIMING3, r); 2924 } 2925 } 2926 2927 static int dsi_configure_pins(struct dsi_data *dsi, 2928 int num_pins, const u32 *pins) 2929 { 2930 struct dsi_lane_config lanes[DSI_MAX_NR_LANES]; 2931 int num_lanes; 2932 int i; 2933 2934 static const enum dsi_lane_function functions[] = { 2935 DSI_LANE_CLK, 2936 DSI_LANE_DATA1, 2937 DSI_LANE_DATA2, 2938 DSI_LANE_DATA3, 2939 DSI_LANE_DATA4, 2940 }; 2941 2942 if (num_pins < 4 || num_pins > dsi->num_lanes_supported * 2 2943 || num_pins % 2 != 0) 2944 return -EINVAL; 2945 2946 for (i = 0; i < DSI_MAX_NR_LANES; ++i) 2947 lanes[i].function = DSI_LANE_UNUSED; 2948 2949 num_lanes = 0; 2950 2951 for (i = 0; i < num_pins; i += 2) { 2952 u8 lane, pol; 2953 u32 dx, dy; 2954 2955 dx = pins[i]; 2956 dy = pins[i + 1]; 2957 2958 if (dx >= dsi->num_lanes_supported * 2) 2959 return -EINVAL; 2960 2961 if (dy >= dsi->num_lanes_supported * 2) 2962 return -EINVAL; 2963 2964 if (dx & 1) { 2965 if (dy != dx - 1) 2966 return -EINVAL; 2967 pol = 1; 2968 } else { 2969 if (dy != dx + 1) 2970 return -EINVAL; 2971 pol = 0; 2972 } 2973 2974 lane = dx / 2; 2975 2976 lanes[lane].function = functions[i / 2]; 2977 lanes[lane].polarity = pol; 2978 num_lanes++; 2979 } 2980 2981 memcpy(dsi->lanes, lanes, sizeof(dsi->lanes)); 2982 dsi->num_lanes_used = num_lanes; 2983 2984 return 0; 2985 } 2986 2987 static int dsi_enable_video_mode(struct dsi_data *dsi, int vc) 2988 { 2989 int bpp = mipi_dsi_pixel_format_to_bpp(dsi->pix_fmt); 2990 u8 data_type; 2991 u16 word_count; 2992 2993 switch (dsi->pix_fmt) { 2994 case MIPI_DSI_FMT_RGB888: 2995 data_type = MIPI_DSI_PACKED_PIXEL_STREAM_24; 2996 break; 2997 case MIPI_DSI_FMT_RGB666: 2998 data_type = MIPI_DSI_PIXEL_STREAM_3BYTE_18; 2999 break; 3000 case MIPI_DSI_FMT_RGB666_PACKED: 3001 data_type = MIPI_DSI_PACKED_PIXEL_STREAM_18; 3002 break; 3003 case MIPI_DSI_FMT_RGB565: 3004 data_type = MIPI_DSI_PACKED_PIXEL_STREAM_16; 3005 break; 3006 default: 3007 return -EINVAL; 3008 } 3009 3010 dsi_if_enable(dsi, false); 3011 dsi_vc_enable(dsi, vc, false); 3012 3013 /* MODE, 1 = video mode */ 3014 REG_FLD_MOD(dsi, DSI_VC_CTRL(vc), 1, 4, 4); 3015 3016 word_count = DIV_ROUND_UP(dsi->vm.hactive * bpp, 8); 3017 3018 dsi_vc_write_long_header(dsi, vc, dsi->dsidev->channel, data_type, 3019 word_count, 0); 3020 3021 dsi_vc_enable(dsi, vc, true); 3022 dsi_if_enable(dsi, true); 3023 3024 return 0; 3025 } 3026 3027 static void dsi_disable_video_mode(struct dsi_data *dsi, int vc) 3028 { 3029 dsi_if_enable(dsi, false); 3030 dsi_vc_enable(dsi, vc, false); 3031 3032 /* MODE, 0 = command mode */ 3033 REG_FLD_MOD(dsi, DSI_VC_CTRL(vc), 0, 4, 4); 3034 3035 dsi_vc_enable(dsi, vc, true); 3036 dsi_if_enable(dsi, true); 3037 } 3038 3039 static void dsi_enable_video_output(struct omap_dss_device *dssdev, int vc) 3040 { 3041 struct dsi_data *dsi = to_dsi_data(dssdev); 3042 int r; 3043 3044 r = dsi_init_dispc(dsi); 3045 if (r) { 3046 dev_err(dsi->dev, "failed to init dispc!\n"); 3047 return; 3048 } 3049 3050 if (dsi->mode == OMAP_DSS_DSI_VIDEO_MODE) { 3051 r = dsi_enable_video_mode(dsi, vc); 3052 if (r) 3053 goto err_video_mode; 3054 } 3055 3056 r = dss_mgr_enable(&dsi->output); 3057 if (r) 3058 goto err_mgr_enable; 3059 3060 return; 3061 3062 err_mgr_enable: 3063 if (dsi->mode == OMAP_DSS_DSI_VIDEO_MODE) { 3064 dsi_if_enable(dsi, false); 3065 dsi_vc_enable(dsi, vc, false); 3066 } 3067 err_video_mode: 3068 dsi_uninit_dispc(dsi); 3069 dev_err(dsi->dev, "failed to enable DSI encoder!\n"); 3070 return; 3071 } 3072 3073 static void dsi_disable_video_output(struct omap_dss_device *dssdev, int vc) 3074 { 3075 struct dsi_data *dsi = to_dsi_data(dssdev); 3076 3077 if (dsi->mode == OMAP_DSS_DSI_VIDEO_MODE) 3078 dsi_disable_video_mode(dsi, vc); 3079 3080 dss_mgr_disable(&dsi->output); 3081 3082 dsi_uninit_dispc(dsi); 3083 } 3084 3085 static void dsi_update_screen_dispc(struct dsi_data *dsi) 3086 { 3087 unsigned int bytespp; 3088 unsigned int bytespl; 3089 unsigned int bytespf; 3090 unsigned int total_len; 3091 unsigned int packet_payload; 3092 unsigned int packet_len; 3093 u32 l; 3094 int r; 3095 const unsigned vc = dsi->update_vc; 3096 const unsigned int line_buf_size = dsi->line_buffer_size; 3097 u16 w = dsi->vm.hactive; 3098 u16 h = dsi->vm.vactive; 3099 3100 DSSDBG("dsi_update_screen_dispc(%dx%d)\n", w, h); 3101 3102 bytespp = mipi_dsi_pixel_format_to_bpp(dsi->pix_fmt) / 8; 3103 bytespl = w * bytespp; 3104 bytespf = bytespl * h; 3105 3106 /* NOTE: packet_payload has to be equal to N * bytespl, where N is 3107 * number of lines in a packet. See errata about VP_CLK_RATIO */ 3108 3109 if (bytespf < line_buf_size) 3110 packet_payload = bytespf; 3111 else 3112 packet_payload = (line_buf_size) / bytespl * bytespl; 3113 3114 packet_len = packet_payload + 1; /* 1 byte for DCS cmd */ 3115 total_len = (bytespf / packet_payload) * packet_len; 3116 3117 if (bytespf % packet_payload) 3118 total_len += (bytespf % packet_payload) + 1; 3119 3120 l = FLD_VAL(total_len, 23, 0); /* TE_SIZE */ 3121 dsi_write_reg(dsi, DSI_VC_TE(vc), l); 3122 3123 dsi_vc_write_long_header(dsi, vc, dsi->dsidev->channel, MIPI_DSI_DCS_LONG_WRITE, 3124 packet_len, 0); 3125 3126 if (dsi->te_enabled) 3127 l = FLD_MOD(l, 1, 30, 30); /* TE_EN */ 3128 else 3129 l = FLD_MOD(l, 1, 31, 31); /* TE_START */ 3130 dsi_write_reg(dsi, DSI_VC_TE(vc), l); 3131 3132 /* We put SIDLEMODE to no-idle for the duration of the transfer, 3133 * because DSS interrupts are not capable of waking up the CPU and the 3134 * framedone interrupt could be delayed for quite a long time. I think 3135 * the same goes for any DSS interrupts, but for some reason I have not 3136 * seen the problem anywhere else than here. 3137 */ 3138 dispc_disable_sidle(dsi->dss->dispc); 3139 3140 dsi_perf_mark_start(dsi); 3141 3142 r = schedule_delayed_work(&dsi->framedone_timeout_work, 3143 msecs_to_jiffies(250)); 3144 BUG_ON(r == 0); 3145 3146 dss_mgr_start_update(&dsi->output); 3147 3148 if (dsi->te_enabled) { 3149 /* disable LP_RX_TO, so that we can receive TE. Time to wait 3150 * for TE is longer than the timer allows */ 3151 REG_FLD_MOD(dsi, DSI_TIMING2, 0, 15, 15); /* LP_RX_TO */ 3152 3153 dsi_vc_send_bta(dsi, vc); 3154 3155 #ifdef DSI_CATCH_MISSING_TE 3156 mod_timer(&dsi->te_timer, jiffies + msecs_to_jiffies(250)); 3157 #endif 3158 } 3159 } 3160 3161 #ifdef DSI_CATCH_MISSING_TE 3162 static void dsi_te_timeout(struct timer_list *unused) 3163 { 3164 DSSERR("TE not received for 250ms!\n"); 3165 } 3166 #endif 3167 3168 static void dsi_handle_framedone(struct dsi_data *dsi, int error) 3169 { 3170 /* SIDLEMODE back to smart-idle */ 3171 dispc_enable_sidle(dsi->dss->dispc); 3172 3173 if (dsi->te_enabled) { 3174 /* enable LP_RX_TO again after the TE */ 3175 REG_FLD_MOD(dsi, DSI_TIMING2, 1, 15, 15); /* LP_RX_TO */ 3176 } 3177 3178 dsi_bus_unlock(dsi); 3179 3180 if (!error) 3181 dsi_perf_show(dsi, "DISPC"); 3182 } 3183 3184 static void dsi_framedone_timeout_work_callback(struct work_struct *work) 3185 { 3186 struct dsi_data *dsi = container_of(work, struct dsi_data, 3187 framedone_timeout_work.work); 3188 /* XXX While extremely unlikely, we could get FRAMEDONE interrupt after 3189 * 250ms which would conflict with this timeout work. What should be 3190 * done is first cancel the transfer on the HW, and then cancel the 3191 * possibly scheduled framedone work. However, cancelling the transfer 3192 * on the HW is buggy, and would probably require resetting the whole 3193 * DSI */ 3194 3195 DSSERR("Framedone not received for 250ms!\n"); 3196 3197 dsi_handle_framedone(dsi, -ETIMEDOUT); 3198 } 3199 3200 static void dsi_framedone_irq_callback(void *data) 3201 { 3202 struct dsi_data *dsi = data; 3203 3204 /* Note: We get FRAMEDONE when DISPC has finished sending pixels and 3205 * turns itself off. However, DSI still has the pixels in its buffers, 3206 * and is sending the data. 3207 */ 3208 3209 cancel_delayed_work(&dsi->framedone_timeout_work); 3210 3211 DSSDBG("Framedone received!\n"); 3212 3213 dsi_handle_framedone(dsi, 0); 3214 } 3215 3216 static int _dsi_update(struct dsi_data *dsi) 3217 { 3218 dsi_perf_mark_setup(dsi); 3219 3220 #ifdef DSI_PERF_MEASURE 3221 dsi->update_bytes = dsi->vm.hactive * dsi->vm.vactive * 3222 mipi_dsi_pixel_format_to_bpp(dsi->pix_fmt) / 8; 3223 #endif 3224 dsi_update_screen_dispc(dsi); 3225 3226 return 0; 3227 } 3228 3229 static int _dsi_send_nop(struct dsi_data *dsi, int vc, int channel) 3230 { 3231 const u8 payload[] = { MIPI_DCS_NOP }; 3232 const struct mipi_dsi_msg msg = { 3233 .channel = channel, 3234 .type = MIPI_DSI_DCS_SHORT_WRITE, 3235 .tx_len = 1, 3236 .tx_buf = payload, 3237 }; 3238 3239 WARN_ON(!dsi_bus_is_locked(dsi)); 3240 3241 return _omap_dsi_host_transfer(dsi, vc, &msg); 3242 } 3243 3244 static int dsi_update_channel(struct omap_dss_device *dssdev, int vc) 3245 { 3246 struct dsi_data *dsi = to_dsi_data(dssdev); 3247 int r; 3248 3249 dsi_bus_lock(dsi); 3250 3251 if (!dsi->video_enabled) { 3252 r = -EIO; 3253 goto err; 3254 } 3255 3256 if (dsi->vm.hactive == 0 || dsi->vm.vactive == 0) { 3257 r = -EINVAL; 3258 goto err; 3259 } 3260 3261 DSSDBG("dsi_update_channel: %d", vc); 3262 3263 /* 3264 * Send NOP between the frames. If we don't send something here, the 3265 * updates stop working. This is probably related to DSI spec stating 3266 * that the DSI host should transition to LP at least once per frame. 3267 */ 3268 r = _dsi_send_nop(dsi, VC_CMD, dsi->dsidev->channel); 3269 if (r < 0) { 3270 DSSWARN("failed to send nop between frames: %d\n", r); 3271 goto err; 3272 } 3273 3274 dsi->update_vc = vc; 3275 3276 if (dsi->te_enabled && dsi->te_gpio) { 3277 schedule_delayed_work(&dsi->te_timeout_work, 3278 msecs_to_jiffies(250)); 3279 atomic_set(&dsi->do_ext_te_update, 1); 3280 } else { 3281 _dsi_update(dsi); 3282 } 3283 3284 return 0; 3285 3286 err: 3287 dsi_bus_unlock(dsi); 3288 return r; 3289 } 3290 3291 static int dsi_update_all(struct omap_dss_device *dssdev) 3292 { 3293 return dsi_update_channel(dssdev, VC_VIDEO); 3294 } 3295 3296 /* Display funcs */ 3297 3298 static int dsi_configure_dispc_clocks(struct dsi_data *dsi) 3299 { 3300 struct dispc_clock_info dispc_cinfo; 3301 int r; 3302 unsigned long fck; 3303 3304 fck = dsi_get_pll_hsdiv_dispc_rate(dsi); 3305 3306 dispc_cinfo.lck_div = dsi->user_dispc_cinfo.lck_div; 3307 dispc_cinfo.pck_div = dsi->user_dispc_cinfo.pck_div; 3308 3309 r = dispc_calc_clock_rates(dsi->dss->dispc, fck, &dispc_cinfo); 3310 if (r) { 3311 DSSERR("Failed to calc dispc clocks\n"); 3312 return r; 3313 } 3314 3315 dsi->mgr_config.clock_info = dispc_cinfo; 3316 3317 return 0; 3318 } 3319 3320 static int dsi_init_dispc(struct dsi_data *dsi) 3321 { 3322 enum omap_channel dispc_channel = dsi->output.dispc_channel; 3323 int r; 3324 3325 dss_select_lcd_clk_source(dsi->dss, dispc_channel, dsi->module_id == 0 ? 3326 DSS_CLK_SRC_PLL1_1 : 3327 DSS_CLK_SRC_PLL2_1); 3328 3329 if (dsi->mode == OMAP_DSS_DSI_CMD_MODE) { 3330 r = dss_mgr_register_framedone_handler(&dsi->output, 3331 dsi_framedone_irq_callback, dsi); 3332 if (r) { 3333 DSSERR("can't register FRAMEDONE handler\n"); 3334 goto err; 3335 } 3336 3337 dsi->mgr_config.stallmode = true; 3338 dsi->mgr_config.fifohandcheck = true; 3339 } else { 3340 dsi->mgr_config.stallmode = false; 3341 dsi->mgr_config.fifohandcheck = false; 3342 } 3343 3344 r = dsi_configure_dispc_clocks(dsi); 3345 if (r) 3346 goto err1; 3347 3348 dsi->mgr_config.io_pad_mode = DSS_IO_PAD_MODE_BYPASS; 3349 dsi->mgr_config.video_port_width = 3350 mipi_dsi_pixel_format_to_bpp(dsi->pix_fmt); 3351 dsi->mgr_config.lcden_sig_polarity = 0; 3352 3353 dss_mgr_set_lcd_config(&dsi->output, &dsi->mgr_config); 3354 3355 return 0; 3356 err1: 3357 if (dsi->mode == OMAP_DSS_DSI_CMD_MODE) 3358 dss_mgr_unregister_framedone_handler(&dsi->output, 3359 dsi_framedone_irq_callback, dsi); 3360 err: 3361 dss_select_lcd_clk_source(dsi->dss, dispc_channel, DSS_CLK_SRC_FCK); 3362 return r; 3363 } 3364 3365 static void dsi_uninit_dispc(struct dsi_data *dsi) 3366 { 3367 enum omap_channel dispc_channel = dsi->output.dispc_channel; 3368 3369 if (dsi->mode == OMAP_DSS_DSI_CMD_MODE) 3370 dss_mgr_unregister_framedone_handler(&dsi->output, 3371 dsi_framedone_irq_callback, dsi); 3372 3373 dss_select_lcd_clk_source(dsi->dss, dispc_channel, DSS_CLK_SRC_FCK); 3374 } 3375 3376 static int dsi_configure_dsi_clocks(struct dsi_data *dsi) 3377 { 3378 struct dss_pll_clock_info cinfo; 3379 int r; 3380 3381 cinfo = dsi->user_dsi_cinfo; 3382 3383 r = dss_pll_set_config(&dsi->pll, &cinfo); 3384 if (r) { 3385 DSSERR("Failed to set dsi clocks\n"); 3386 return r; 3387 } 3388 3389 return 0; 3390 } 3391 3392 static void dsi_setup_dsi_vcs(struct dsi_data *dsi) 3393 { 3394 /* Setup VC_CMD for LP and cpu transfers */ 3395 REG_FLD_MOD(dsi, DSI_VC_CTRL(VC_CMD), 0, 9, 9); /* LP */ 3396 3397 REG_FLD_MOD(dsi, DSI_VC_CTRL(VC_CMD), 0, 1, 1); /* SOURCE_L4 */ 3398 dsi->vc[VC_CMD].source = DSI_VC_SOURCE_L4; 3399 3400 /* Setup VC_VIDEO for HS and dispc transfers */ 3401 REG_FLD_MOD(dsi, DSI_VC_CTRL(VC_VIDEO), 1, 9, 9); /* HS */ 3402 3403 REG_FLD_MOD(dsi, DSI_VC_CTRL(VC_VIDEO), 1, 1, 1); /* SOURCE_VP */ 3404 dsi->vc[VC_VIDEO].source = DSI_VC_SOURCE_VP; 3405 3406 if ((dsi->data->quirks & DSI_QUIRK_DCS_CMD_CONFIG_VC) && 3407 !(dsi->dsidev->mode_flags & MIPI_DSI_MODE_VIDEO)) 3408 REG_FLD_MOD(dsi, DSI_VC_CTRL(VC_VIDEO), 1, 30, 30); /* DCS_CMD_ENABLE */ 3409 3410 dsi_vc_enable(dsi, VC_CMD, 1); 3411 dsi_vc_enable(dsi, VC_VIDEO, 1); 3412 3413 dsi_if_enable(dsi, 1); 3414 3415 dsi_force_tx_stop_mode_io(dsi); 3416 3417 /* start the DDR clock by sending a NULL packet */ 3418 if (!(dsi->dsidev->mode_flags & MIPI_DSI_CLOCK_NON_CONTINUOUS)) 3419 dsi_vc_send_null(dsi, VC_CMD, dsi->dsidev->channel); 3420 } 3421 3422 static int dsi_init_dsi(struct dsi_data *dsi) 3423 { 3424 int r; 3425 3426 r = dss_pll_enable(&dsi->pll); 3427 if (r) 3428 return r; 3429 3430 r = dsi_configure_dsi_clocks(dsi); 3431 if (r) 3432 goto err0; 3433 3434 dss_select_dsi_clk_source(dsi->dss, dsi->module_id, 3435 dsi->module_id == 0 ? 3436 DSS_CLK_SRC_PLL1_2 : DSS_CLK_SRC_PLL2_2); 3437 3438 DSSDBG("PLL OK\n"); 3439 3440 if (!dsi->vdds_dsi_enabled) { 3441 r = regulator_enable(dsi->vdds_dsi_reg); 3442 if (r) 3443 goto err1; 3444 3445 dsi->vdds_dsi_enabled = true; 3446 } 3447 3448 r = dsi_cio_init(dsi); 3449 if (r) 3450 goto err2; 3451 3452 _dsi_print_reset_status(dsi); 3453 3454 dsi_proto_timings(dsi); 3455 dsi_set_lp_clk_divisor(dsi); 3456 3457 if (1) 3458 _dsi_print_reset_status(dsi); 3459 3460 r = dsi_proto_config(dsi); 3461 if (r) 3462 goto err3; 3463 3464 dsi_setup_dsi_vcs(dsi); 3465 3466 return 0; 3467 err3: 3468 dsi_cio_uninit(dsi); 3469 err2: 3470 regulator_disable(dsi->vdds_dsi_reg); 3471 dsi->vdds_dsi_enabled = false; 3472 err1: 3473 dss_select_dsi_clk_source(dsi->dss, dsi->module_id, DSS_CLK_SRC_FCK); 3474 err0: 3475 dss_pll_disable(&dsi->pll); 3476 3477 return r; 3478 } 3479 3480 static void dsi_uninit_dsi(struct dsi_data *dsi) 3481 { 3482 /* disable interface */ 3483 dsi_if_enable(dsi, 0); 3484 dsi_vc_enable(dsi, 0, 0); 3485 dsi_vc_enable(dsi, 1, 0); 3486 dsi_vc_enable(dsi, 2, 0); 3487 dsi_vc_enable(dsi, 3, 0); 3488 3489 dss_select_dsi_clk_source(dsi->dss, dsi->module_id, DSS_CLK_SRC_FCK); 3490 dsi_cio_uninit(dsi); 3491 dss_pll_disable(&dsi->pll); 3492 3493 regulator_disable(dsi->vdds_dsi_reg); 3494 dsi->vdds_dsi_enabled = false; 3495 } 3496 3497 static void dsi_enable(struct dsi_data *dsi) 3498 { 3499 int r; 3500 3501 WARN_ON(!dsi_bus_is_locked(dsi)); 3502 3503 if (WARN_ON(dsi->iface_enabled)) 3504 return; 3505 3506 mutex_lock(&dsi->lock); 3507 3508 r = dsi_runtime_get(dsi); 3509 if (r) 3510 goto err_get_dsi; 3511 3512 _dsi_initialize_irq(dsi); 3513 3514 r = dsi_init_dsi(dsi); 3515 if (r) 3516 goto err_init_dsi; 3517 3518 dsi->iface_enabled = true; 3519 3520 mutex_unlock(&dsi->lock); 3521 3522 return; 3523 3524 err_init_dsi: 3525 dsi_runtime_put(dsi); 3526 err_get_dsi: 3527 mutex_unlock(&dsi->lock); 3528 DSSDBG("dsi_enable FAILED\n"); 3529 } 3530 3531 static void dsi_disable(struct dsi_data *dsi) 3532 { 3533 WARN_ON(!dsi_bus_is_locked(dsi)); 3534 3535 if (WARN_ON(!dsi->iface_enabled)) 3536 return; 3537 3538 mutex_lock(&dsi->lock); 3539 3540 dsi_sync_vc(dsi, 0); 3541 dsi_sync_vc(dsi, 1); 3542 dsi_sync_vc(dsi, 2); 3543 dsi_sync_vc(dsi, 3); 3544 3545 dsi_uninit_dsi(dsi); 3546 3547 dsi_runtime_put(dsi); 3548 3549 dsi->iface_enabled = false; 3550 3551 mutex_unlock(&dsi->lock); 3552 } 3553 3554 static int dsi_enable_te(struct dsi_data *dsi, bool enable) 3555 { 3556 dsi->te_enabled = enable; 3557 3558 if (dsi->te_gpio) { 3559 if (enable) 3560 enable_irq(dsi->te_irq); 3561 else 3562 disable_irq(dsi->te_irq); 3563 } 3564 3565 return 0; 3566 } 3567 3568 #ifdef PRINT_VERBOSE_VM_TIMINGS 3569 static void print_dsi_vm(const char *str, 3570 const struct omap_dss_dsi_videomode_timings *t) 3571 { 3572 unsigned long byteclk = t->hsclk / 4; 3573 int bl, wc, pps, tot; 3574 3575 wc = DIV_ROUND_UP(t->hact * t->bitspp, 8); 3576 pps = DIV_ROUND_UP(wc + 6, t->ndl); /* pixel packet size */ 3577 bl = t->hss + t->hsa + t->hse + t->hbp + t->hfp; 3578 tot = bl + pps; 3579 3580 #define TO_DSI_T(x) ((u32)div64_u64((u64)x * 1000000000llu, byteclk)) 3581 3582 pr_debug("%s bck %lu, %u/%u/%u/%u/%u/%u = %u+%u = %u, " 3583 "%u/%u/%u/%u/%u/%u = %u + %u = %u\n", 3584 str, 3585 byteclk, 3586 t->hss, t->hsa, t->hse, t->hbp, pps, t->hfp, 3587 bl, pps, tot, 3588 TO_DSI_T(t->hss), 3589 TO_DSI_T(t->hsa), 3590 TO_DSI_T(t->hse), 3591 TO_DSI_T(t->hbp), 3592 TO_DSI_T(pps), 3593 TO_DSI_T(t->hfp), 3594 3595 TO_DSI_T(bl), 3596 TO_DSI_T(pps), 3597 3598 TO_DSI_T(tot)); 3599 #undef TO_DSI_T 3600 } 3601 3602 static void print_dispc_vm(const char *str, const struct videomode *vm) 3603 { 3604 unsigned long pck = vm->pixelclock; 3605 int hact, bl, tot; 3606 3607 hact = vm->hactive; 3608 bl = vm->hsync_len + vm->hback_porch + vm->hfront_porch; 3609 tot = hact + bl; 3610 3611 #define TO_DISPC_T(x) ((u32)div64_u64((u64)x * 1000000000llu, pck)) 3612 3613 pr_debug("%s pck %lu, %u/%u/%u/%u = %u+%u = %u, " 3614 "%u/%u/%u/%u = %u + %u = %u\n", 3615 str, 3616 pck, 3617 vm->hsync_len, vm->hback_porch, hact, vm->hfront_porch, 3618 bl, hact, tot, 3619 TO_DISPC_T(vm->hsync_len), 3620 TO_DISPC_T(vm->hback_porch), 3621 TO_DISPC_T(hact), 3622 TO_DISPC_T(vm->hfront_porch), 3623 TO_DISPC_T(bl), 3624 TO_DISPC_T(hact), 3625 TO_DISPC_T(tot)); 3626 #undef TO_DISPC_T 3627 } 3628 3629 /* note: this is not quite accurate */ 3630 static void print_dsi_dispc_vm(const char *str, 3631 const struct omap_dss_dsi_videomode_timings *t) 3632 { 3633 struct videomode vm = { 0 }; 3634 unsigned long byteclk = t->hsclk / 4; 3635 unsigned long pck; 3636 u64 dsi_tput; 3637 int dsi_hact, dsi_htot; 3638 3639 dsi_tput = (u64)byteclk * t->ndl * 8; 3640 pck = (u32)div64_u64(dsi_tput, t->bitspp); 3641 dsi_hact = DIV_ROUND_UP(DIV_ROUND_UP(t->hact * t->bitspp, 8) + 6, t->ndl); 3642 dsi_htot = t->hss + t->hsa + t->hse + t->hbp + dsi_hact + t->hfp; 3643 3644 vm.pixelclock = pck; 3645 vm.hsync_len = div64_u64((u64)(t->hsa + t->hse) * pck, byteclk); 3646 vm.hback_porch = div64_u64((u64)t->hbp * pck, byteclk); 3647 vm.hfront_porch = div64_u64((u64)t->hfp * pck, byteclk); 3648 vm.hactive = t->hact; 3649 3650 print_dispc_vm(str, &vm); 3651 } 3652 #endif /* PRINT_VERBOSE_VM_TIMINGS */ 3653 3654 static bool dsi_cm_calc_dispc_cb(int lckd, int pckd, unsigned long lck, 3655 unsigned long pck, void *data) 3656 { 3657 struct dsi_clk_calc_ctx *ctx = data; 3658 struct videomode *vm = &ctx->vm; 3659 3660 ctx->dispc_cinfo.lck_div = lckd; 3661 ctx->dispc_cinfo.pck_div = pckd; 3662 ctx->dispc_cinfo.lck = lck; 3663 ctx->dispc_cinfo.pck = pck; 3664 3665 *vm = *ctx->config->vm; 3666 vm->pixelclock = pck; 3667 vm->hactive = ctx->config->vm->hactive; 3668 vm->vactive = ctx->config->vm->vactive; 3669 vm->hsync_len = vm->hfront_porch = vm->hback_porch = vm->vsync_len = 1; 3670 vm->vfront_porch = vm->vback_porch = 0; 3671 3672 return true; 3673 } 3674 3675 static bool dsi_cm_calc_hsdiv_cb(int m_dispc, unsigned long dispc, 3676 void *data) 3677 { 3678 struct dsi_clk_calc_ctx *ctx = data; 3679 3680 ctx->dsi_cinfo.mX[HSDIV_DISPC] = m_dispc; 3681 ctx->dsi_cinfo.clkout[HSDIV_DISPC] = dispc; 3682 3683 return dispc_div_calc(ctx->dsi->dss->dispc, dispc, 3684 ctx->req_pck_min, ctx->req_pck_max, 3685 dsi_cm_calc_dispc_cb, ctx); 3686 } 3687 3688 static bool dsi_cm_calc_pll_cb(int n, int m, unsigned long fint, 3689 unsigned long clkdco, void *data) 3690 { 3691 struct dsi_clk_calc_ctx *ctx = data; 3692 struct dsi_data *dsi = ctx->dsi; 3693 3694 ctx->dsi_cinfo.n = n; 3695 ctx->dsi_cinfo.m = m; 3696 ctx->dsi_cinfo.fint = fint; 3697 ctx->dsi_cinfo.clkdco = clkdco; 3698 3699 return dss_pll_hsdiv_calc_a(ctx->pll, clkdco, ctx->req_pck_min, 3700 dsi->data->max_fck_freq, 3701 dsi_cm_calc_hsdiv_cb, ctx); 3702 } 3703 3704 static bool dsi_cm_calc(struct dsi_data *dsi, 3705 const struct omap_dss_dsi_config *cfg, 3706 struct dsi_clk_calc_ctx *ctx) 3707 { 3708 unsigned long clkin; 3709 int bitspp, ndl; 3710 unsigned long pll_min, pll_max; 3711 unsigned long pck, txbyteclk; 3712 3713 clkin = clk_get_rate(dsi->pll.clkin); 3714 bitspp = mipi_dsi_pixel_format_to_bpp(cfg->pixel_format); 3715 ndl = dsi->num_lanes_used - 1; 3716 3717 /* 3718 * Here we should calculate minimum txbyteclk to be able to send the 3719 * frame in time, and also to handle TE. That's not very simple, though, 3720 * especially as we go to LP between each pixel packet due to HW 3721 * "feature". So let's just estimate very roughly and multiply by 1.5. 3722 */ 3723 pck = cfg->vm->pixelclock; 3724 pck = pck * 3 / 2; 3725 txbyteclk = pck * bitspp / 8 / ndl; 3726 3727 memset(ctx, 0, sizeof(*ctx)); 3728 ctx->dsi = dsi; 3729 ctx->pll = &dsi->pll; 3730 ctx->config = cfg; 3731 ctx->req_pck_min = pck; 3732 ctx->req_pck_nom = pck; 3733 ctx->req_pck_max = pck * 3 / 2; 3734 3735 pll_min = max(cfg->hs_clk_min * 4, txbyteclk * 4 * 4); 3736 pll_max = cfg->hs_clk_max * 4; 3737 3738 return dss_pll_calc_a(ctx->pll, clkin, 3739 pll_min, pll_max, 3740 dsi_cm_calc_pll_cb, ctx); 3741 } 3742 3743 static bool dsi_vm_calc_blanking(struct dsi_clk_calc_ctx *ctx) 3744 { 3745 struct dsi_data *dsi = ctx->dsi; 3746 const struct omap_dss_dsi_config *cfg = ctx->config; 3747 int bitspp = mipi_dsi_pixel_format_to_bpp(cfg->pixel_format); 3748 int ndl = dsi->num_lanes_used - 1; 3749 unsigned long hsclk = ctx->dsi_cinfo.clkdco / 4; 3750 unsigned long byteclk = hsclk / 4; 3751 3752 unsigned long dispc_pck, req_pck_min, req_pck_nom, req_pck_max; 3753 int xres; 3754 int panel_htot, panel_hbl; /* pixels */ 3755 int dispc_htot, dispc_hbl; /* pixels */ 3756 int dsi_htot, dsi_hact, dsi_hbl, hss, hse; /* byteclks */ 3757 int hfp, hsa, hbp; 3758 const struct videomode *req_vm; 3759 struct videomode *dispc_vm; 3760 struct omap_dss_dsi_videomode_timings *dsi_vm; 3761 u64 dsi_tput, dispc_tput; 3762 3763 dsi_tput = (u64)byteclk * ndl * 8; 3764 3765 req_vm = cfg->vm; 3766 req_pck_min = ctx->req_pck_min; 3767 req_pck_max = ctx->req_pck_max; 3768 req_pck_nom = ctx->req_pck_nom; 3769 3770 dispc_pck = ctx->dispc_cinfo.pck; 3771 dispc_tput = (u64)dispc_pck * bitspp; 3772 3773 xres = req_vm->hactive; 3774 3775 panel_hbl = req_vm->hfront_porch + req_vm->hback_porch + 3776 req_vm->hsync_len; 3777 panel_htot = xres + panel_hbl; 3778 3779 dsi_hact = DIV_ROUND_UP(DIV_ROUND_UP(xres * bitspp, 8) + 6, ndl); 3780 3781 /* 3782 * When there are no line buffers, DISPC and DSI must have the 3783 * same tput. Otherwise DISPC tput needs to be higher than DSI's. 3784 */ 3785 if (dsi->line_buffer_size < xres * bitspp / 8) { 3786 if (dispc_tput != dsi_tput) 3787 return false; 3788 } else { 3789 if (dispc_tput < dsi_tput) 3790 return false; 3791 } 3792 3793 /* DSI tput must be over the min requirement */ 3794 if (dsi_tput < (u64)bitspp * req_pck_min) 3795 return false; 3796 3797 /* When non-burst mode, DSI tput must be below max requirement. */ 3798 if (cfg->trans_mode != OMAP_DSS_DSI_BURST_MODE) { 3799 if (dsi_tput > (u64)bitspp * req_pck_max) 3800 return false; 3801 } 3802 3803 hss = DIV_ROUND_UP(4, ndl); 3804 3805 if (cfg->trans_mode == OMAP_DSS_DSI_PULSE_MODE) { 3806 if (ndl == 3 && req_vm->hsync_len == 0) 3807 hse = 1; 3808 else 3809 hse = DIV_ROUND_UP(4, ndl); 3810 } else { 3811 hse = 0; 3812 } 3813 3814 /* DSI htot to match the panel's nominal pck */ 3815 dsi_htot = div64_u64((u64)panel_htot * byteclk, req_pck_nom); 3816 3817 /* fail if there would be no time for blanking */ 3818 if (dsi_htot < hss + hse + dsi_hact) 3819 return false; 3820 3821 /* total DSI blanking needed to achieve panel's TL */ 3822 dsi_hbl = dsi_htot - dsi_hact; 3823 3824 /* DISPC htot to match the DSI TL */ 3825 dispc_htot = div64_u64((u64)dsi_htot * dispc_pck, byteclk); 3826 3827 /* verify that the DSI and DISPC TLs are the same */ 3828 if ((u64)dsi_htot * dispc_pck != (u64)dispc_htot * byteclk) 3829 return false; 3830 3831 dispc_hbl = dispc_htot - xres; 3832 3833 /* setup DSI videomode */ 3834 3835 dsi_vm = &ctx->dsi_vm; 3836 memset(dsi_vm, 0, sizeof(*dsi_vm)); 3837 3838 dsi_vm->hsclk = hsclk; 3839 3840 dsi_vm->ndl = ndl; 3841 dsi_vm->bitspp = bitspp; 3842 3843 if (cfg->trans_mode != OMAP_DSS_DSI_PULSE_MODE) { 3844 hsa = 0; 3845 } else if (ndl == 3 && req_vm->hsync_len == 0) { 3846 hsa = 0; 3847 } else { 3848 hsa = div64_u64((u64)req_vm->hsync_len * byteclk, req_pck_nom); 3849 hsa = max(hsa - hse, 1); 3850 } 3851 3852 hbp = div64_u64((u64)req_vm->hback_porch * byteclk, req_pck_nom); 3853 hbp = max(hbp, 1); 3854 3855 hfp = dsi_hbl - (hss + hsa + hse + hbp); 3856 if (hfp < 1) { 3857 int t; 3858 /* we need to take cycles from hbp */ 3859 3860 t = 1 - hfp; 3861 hbp = max(hbp - t, 1); 3862 hfp = dsi_hbl - (hss + hsa + hse + hbp); 3863 3864 if (hfp < 1 && hsa > 0) { 3865 /* we need to take cycles from hsa */ 3866 t = 1 - hfp; 3867 hsa = max(hsa - t, 1); 3868 hfp = dsi_hbl - (hss + hsa + hse + hbp); 3869 } 3870 } 3871 3872 if (hfp < 1) 3873 return false; 3874 3875 dsi_vm->hss = hss; 3876 dsi_vm->hsa = hsa; 3877 dsi_vm->hse = hse; 3878 dsi_vm->hbp = hbp; 3879 dsi_vm->hact = xres; 3880 dsi_vm->hfp = hfp; 3881 3882 dsi_vm->vsa = req_vm->vsync_len; 3883 dsi_vm->vbp = req_vm->vback_porch; 3884 dsi_vm->vact = req_vm->vactive; 3885 dsi_vm->vfp = req_vm->vfront_porch; 3886 3887 dsi_vm->trans_mode = cfg->trans_mode; 3888 3889 dsi_vm->blanking_mode = 0; 3890 dsi_vm->hsa_blanking_mode = 1; 3891 dsi_vm->hfp_blanking_mode = 1; 3892 dsi_vm->hbp_blanking_mode = 1; 3893 3894 dsi_vm->window_sync = 4; 3895 3896 /* setup DISPC videomode */ 3897 3898 dispc_vm = &ctx->vm; 3899 *dispc_vm = *req_vm; 3900 dispc_vm->pixelclock = dispc_pck; 3901 3902 if (cfg->trans_mode == OMAP_DSS_DSI_PULSE_MODE) { 3903 hsa = div64_u64((u64)req_vm->hsync_len * dispc_pck, 3904 req_pck_nom); 3905 hsa = max(hsa, 1); 3906 } else { 3907 hsa = 1; 3908 } 3909 3910 hbp = div64_u64((u64)req_vm->hback_porch * dispc_pck, req_pck_nom); 3911 hbp = max(hbp, 1); 3912 3913 hfp = dispc_hbl - hsa - hbp; 3914 if (hfp < 1) { 3915 int t; 3916 /* we need to take cycles from hbp */ 3917 3918 t = 1 - hfp; 3919 hbp = max(hbp - t, 1); 3920 hfp = dispc_hbl - hsa - hbp; 3921 3922 if (hfp < 1) { 3923 /* we need to take cycles from hsa */ 3924 t = 1 - hfp; 3925 hsa = max(hsa - t, 1); 3926 hfp = dispc_hbl - hsa - hbp; 3927 } 3928 } 3929 3930 if (hfp < 1) 3931 return false; 3932 3933 dispc_vm->hfront_porch = hfp; 3934 dispc_vm->hsync_len = hsa; 3935 dispc_vm->hback_porch = hbp; 3936 3937 return true; 3938 } 3939 3940 3941 static bool dsi_vm_calc_dispc_cb(int lckd, int pckd, unsigned long lck, 3942 unsigned long pck, void *data) 3943 { 3944 struct dsi_clk_calc_ctx *ctx = data; 3945 3946 ctx->dispc_cinfo.lck_div = lckd; 3947 ctx->dispc_cinfo.pck_div = pckd; 3948 ctx->dispc_cinfo.lck = lck; 3949 ctx->dispc_cinfo.pck = pck; 3950 3951 if (dsi_vm_calc_blanking(ctx) == false) 3952 return false; 3953 3954 #ifdef PRINT_VERBOSE_VM_TIMINGS 3955 print_dispc_vm("dispc", &ctx->vm); 3956 print_dsi_vm("dsi ", &ctx->dsi_vm); 3957 print_dispc_vm("req ", ctx->config->vm); 3958 print_dsi_dispc_vm("act ", &ctx->dsi_vm); 3959 #endif 3960 3961 return true; 3962 } 3963 3964 static bool dsi_vm_calc_hsdiv_cb(int m_dispc, unsigned long dispc, 3965 void *data) 3966 { 3967 struct dsi_clk_calc_ctx *ctx = data; 3968 unsigned long pck_max; 3969 3970 ctx->dsi_cinfo.mX[HSDIV_DISPC] = m_dispc; 3971 ctx->dsi_cinfo.clkout[HSDIV_DISPC] = dispc; 3972 3973 /* 3974 * In burst mode we can let the dispc pck be arbitrarily high, but it 3975 * limits our scaling abilities. So for now, don't aim too high. 3976 */ 3977 3978 if (ctx->config->trans_mode == OMAP_DSS_DSI_BURST_MODE) 3979 pck_max = ctx->req_pck_max + 10000000; 3980 else 3981 pck_max = ctx->req_pck_max; 3982 3983 return dispc_div_calc(ctx->dsi->dss->dispc, dispc, 3984 ctx->req_pck_min, pck_max, 3985 dsi_vm_calc_dispc_cb, ctx); 3986 } 3987 3988 static bool dsi_vm_calc_pll_cb(int n, int m, unsigned long fint, 3989 unsigned long clkdco, void *data) 3990 { 3991 struct dsi_clk_calc_ctx *ctx = data; 3992 struct dsi_data *dsi = ctx->dsi; 3993 3994 ctx->dsi_cinfo.n = n; 3995 ctx->dsi_cinfo.m = m; 3996 ctx->dsi_cinfo.fint = fint; 3997 ctx->dsi_cinfo.clkdco = clkdco; 3998 3999 return dss_pll_hsdiv_calc_a(ctx->pll, clkdco, ctx->req_pck_min, 4000 dsi->data->max_fck_freq, 4001 dsi_vm_calc_hsdiv_cb, ctx); 4002 } 4003 4004 static bool dsi_vm_calc(struct dsi_data *dsi, 4005 const struct omap_dss_dsi_config *cfg, 4006 struct dsi_clk_calc_ctx *ctx) 4007 { 4008 const struct videomode *vm = cfg->vm; 4009 unsigned long clkin; 4010 unsigned long pll_min; 4011 unsigned long pll_max; 4012 int ndl = dsi->num_lanes_used - 1; 4013 int bitspp = mipi_dsi_pixel_format_to_bpp(cfg->pixel_format); 4014 unsigned long byteclk_min; 4015 4016 clkin = clk_get_rate(dsi->pll.clkin); 4017 4018 memset(ctx, 0, sizeof(*ctx)); 4019 ctx->dsi = dsi; 4020 ctx->pll = &dsi->pll; 4021 ctx->config = cfg; 4022 4023 /* these limits should come from the panel driver */ 4024 ctx->req_pck_min = vm->pixelclock - 1000; 4025 ctx->req_pck_nom = vm->pixelclock; 4026 ctx->req_pck_max = vm->pixelclock + 1000; 4027 4028 byteclk_min = div64_u64((u64)ctx->req_pck_min * bitspp, ndl * 8); 4029 pll_min = max(cfg->hs_clk_min * 4, byteclk_min * 4 * 4); 4030 4031 if (cfg->trans_mode == OMAP_DSS_DSI_BURST_MODE) { 4032 pll_max = cfg->hs_clk_max * 4; 4033 } else { 4034 unsigned long byteclk_max; 4035 byteclk_max = div64_u64((u64)ctx->req_pck_max * bitspp, 4036 ndl * 8); 4037 4038 pll_max = byteclk_max * 4 * 4; 4039 } 4040 4041 return dss_pll_calc_a(ctx->pll, clkin, 4042 pll_min, pll_max, 4043 dsi_vm_calc_pll_cb, ctx); 4044 } 4045 4046 static bool dsi_is_video_mode(struct omap_dss_device *dssdev) 4047 { 4048 struct dsi_data *dsi = to_dsi_data(dssdev); 4049 4050 return dsi->mode == OMAP_DSS_DSI_VIDEO_MODE; 4051 } 4052 4053 static int __dsi_calc_config(struct dsi_data *dsi, 4054 const struct drm_display_mode *mode, 4055 struct dsi_clk_calc_ctx *ctx) 4056 { 4057 struct omap_dss_dsi_config cfg = dsi->config; 4058 struct videomode vm; 4059 bool ok; 4060 int r; 4061 4062 drm_display_mode_to_videomode(mode, &vm); 4063 4064 cfg.vm = &vm; 4065 cfg.mode = dsi->mode; 4066 cfg.pixel_format = dsi->pix_fmt; 4067 4068 if (dsi->mode == OMAP_DSS_DSI_VIDEO_MODE) 4069 ok = dsi_vm_calc(dsi, &cfg, ctx); 4070 else 4071 ok = dsi_cm_calc(dsi, &cfg, ctx); 4072 4073 if (!ok) 4074 return -EINVAL; 4075 4076 dsi_pll_calc_dsi_fck(dsi, &ctx->dsi_cinfo); 4077 4078 r = dsi_lp_clock_calc(ctx->dsi_cinfo.clkout[HSDIV_DSI], 4079 cfg.lp_clk_min, cfg.lp_clk_max, &ctx->lp_cinfo); 4080 if (r) 4081 return r; 4082 4083 return 0; 4084 } 4085 4086 static int dsi_set_config(struct omap_dss_device *dssdev, 4087 const struct drm_display_mode *mode) 4088 { 4089 struct dsi_data *dsi = to_dsi_data(dssdev); 4090 struct dsi_clk_calc_ctx ctx; 4091 int r; 4092 4093 mutex_lock(&dsi->lock); 4094 4095 r = __dsi_calc_config(dsi, mode, &ctx); 4096 if (r) { 4097 DSSERR("failed to find suitable DSI clock settings\n"); 4098 goto err; 4099 } 4100 4101 dsi->user_lp_cinfo = ctx.lp_cinfo; 4102 dsi->user_dsi_cinfo = ctx.dsi_cinfo; 4103 dsi->user_dispc_cinfo = ctx.dispc_cinfo; 4104 4105 dsi->vm = ctx.vm; 4106 4107 /* 4108 * override interlace, logic level and edge related parameters in 4109 * videomode with default values 4110 */ 4111 dsi->vm.flags &= ~DISPLAY_FLAGS_INTERLACED; 4112 dsi->vm.flags &= ~DISPLAY_FLAGS_HSYNC_LOW; 4113 dsi->vm.flags |= DISPLAY_FLAGS_HSYNC_HIGH; 4114 dsi->vm.flags &= ~DISPLAY_FLAGS_VSYNC_LOW; 4115 dsi->vm.flags |= DISPLAY_FLAGS_VSYNC_HIGH; 4116 /* 4117 * HACK: These flags should be handled through the omap_dss_device bus 4118 * flags, but this will only be possible when the DSI encoder will be 4119 * converted to the omapdrm-managed encoder model. 4120 */ 4121 dsi->vm.flags &= ~DISPLAY_FLAGS_PIXDATA_NEGEDGE; 4122 dsi->vm.flags |= DISPLAY_FLAGS_PIXDATA_POSEDGE; 4123 dsi->vm.flags &= ~DISPLAY_FLAGS_DE_LOW; 4124 dsi->vm.flags |= DISPLAY_FLAGS_DE_HIGH; 4125 dsi->vm.flags &= ~DISPLAY_FLAGS_SYNC_POSEDGE; 4126 dsi->vm.flags |= DISPLAY_FLAGS_SYNC_NEGEDGE; 4127 4128 dss_mgr_set_timings(&dsi->output, &dsi->vm); 4129 4130 dsi->vm_timings = ctx.dsi_vm; 4131 4132 mutex_unlock(&dsi->lock); 4133 4134 return 0; 4135 err: 4136 mutex_unlock(&dsi->lock); 4137 4138 return r; 4139 } 4140 4141 /* 4142 * Return a hardcoded dispc channel for the DSI output. This should work for 4143 * current use cases, but this can be later expanded to either resolve 4144 * the channel in some more dynamic manner, or get the channel as a user 4145 * parameter. 4146 */ 4147 static enum omap_channel dsi_get_dispc_channel(struct dsi_data *dsi) 4148 { 4149 switch (dsi->data->model) { 4150 case DSI_MODEL_OMAP3: 4151 return OMAP_DSS_CHANNEL_LCD; 4152 4153 case DSI_MODEL_OMAP4: 4154 switch (dsi->module_id) { 4155 case 0: 4156 return OMAP_DSS_CHANNEL_LCD; 4157 case 1: 4158 return OMAP_DSS_CHANNEL_LCD2; 4159 default: 4160 DSSWARN("unsupported module id\n"); 4161 return OMAP_DSS_CHANNEL_LCD; 4162 } 4163 4164 case DSI_MODEL_OMAP5: 4165 switch (dsi->module_id) { 4166 case 0: 4167 return OMAP_DSS_CHANNEL_LCD; 4168 case 1: 4169 return OMAP_DSS_CHANNEL_LCD3; 4170 default: 4171 DSSWARN("unsupported module id\n"); 4172 return OMAP_DSS_CHANNEL_LCD; 4173 } 4174 4175 default: 4176 DSSWARN("unsupported DSS version\n"); 4177 return OMAP_DSS_CHANNEL_LCD; 4178 } 4179 } 4180 4181 static ssize_t _omap_dsi_host_transfer(struct dsi_data *dsi, int vc, 4182 const struct mipi_dsi_msg *msg) 4183 { 4184 struct omap_dss_device *dssdev = &dsi->output; 4185 int r; 4186 4187 dsi_vc_enable_hs(dssdev, vc, !(msg->flags & MIPI_DSI_MSG_USE_LPM)); 4188 4189 switch (msg->type) { 4190 case MIPI_DSI_GENERIC_SHORT_WRITE_0_PARAM: 4191 case MIPI_DSI_GENERIC_SHORT_WRITE_1_PARAM: 4192 case MIPI_DSI_GENERIC_SHORT_WRITE_2_PARAM: 4193 case MIPI_DSI_GENERIC_LONG_WRITE: 4194 case MIPI_DSI_DCS_SHORT_WRITE: 4195 case MIPI_DSI_DCS_SHORT_WRITE_PARAM: 4196 case MIPI_DSI_DCS_LONG_WRITE: 4197 case MIPI_DSI_SET_MAXIMUM_RETURN_PACKET_SIZE: 4198 case MIPI_DSI_NULL_PACKET: 4199 r = dsi_vc_write_common(dssdev, vc, msg); 4200 break; 4201 case MIPI_DSI_GENERIC_READ_REQUEST_0_PARAM: 4202 case MIPI_DSI_GENERIC_READ_REQUEST_1_PARAM: 4203 case MIPI_DSI_GENERIC_READ_REQUEST_2_PARAM: 4204 r = dsi_vc_generic_read(dssdev, vc, msg); 4205 break; 4206 case MIPI_DSI_DCS_READ: 4207 r = dsi_vc_dcs_read(dssdev, vc, msg); 4208 break; 4209 default: 4210 r = -EINVAL; 4211 break; 4212 } 4213 4214 if (r < 0) 4215 return r; 4216 4217 if (msg->type == MIPI_DSI_DCS_SHORT_WRITE || 4218 msg->type == MIPI_DSI_DCS_SHORT_WRITE_PARAM) { 4219 u8 cmd = ((u8 *)msg->tx_buf)[0]; 4220 4221 if (cmd == MIPI_DCS_SET_TEAR_OFF) 4222 dsi_enable_te(dsi, false); 4223 else if (cmd == MIPI_DCS_SET_TEAR_ON) 4224 dsi_enable_te(dsi, true); 4225 } 4226 4227 return 0; 4228 } 4229 4230 static ssize_t omap_dsi_host_transfer(struct mipi_dsi_host *host, 4231 const struct mipi_dsi_msg *msg) 4232 { 4233 struct dsi_data *dsi = host_to_omap(host); 4234 int r; 4235 int vc = VC_CMD; 4236 4237 dsi_bus_lock(dsi); 4238 4239 if (!dsi->iface_enabled) { 4240 dsi_enable(dsi); 4241 schedule_delayed_work(&dsi->dsi_disable_work, msecs_to_jiffies(2000)); 4242 } 4243 4244 r = _omap_dsi_host_transfer(dsi, vc, msg); 4245 4246 dsi_bus_unlock(dsi); 4247 4248 return r; 4249 } 4250 4251 static int dsi_get_clocks(struct dsi_data *dsi) 4252 { 4253 struct clk *clk; 4254 4255 clk = devm_clk_get(dsi->dev, "fck"); 4256 if (IS_ERR(clk)) { 4257 DSSERR("can't get fck\n"); 4258 return PTR_ERR(clk); 4259 } 4260 4261 dsi->dss_clk = clk; 4262 4263 return 0; 4264 } 4265 4266 static const struct omapdss_dsi_ops dsi_ops = { 4267 .update = dsi_update_all, 4268 .is_video_mode = dsi_is_video_mode, 4269 }; 4270 4271 static irqreturn_t omap_dsi_te_irq_handler(int irq, void *dev_id) 4272 { 4273 struct dsi_data *dsi = (struct dsi_data *)dev_id; 4274 int old; 4275 4276 old = atomic_cmpxchg(&dsi->do_ext_te_update, 1, 0); 4277 if (old) { 4278 cancel_delayed_work(&dsi->te_timeout_work); 4279 _dsi_update(dsi); 4280 } 4281 4282 return IRQ_HANDLED; 4283 } 4284 4285 static void omap_dsi_te_timeout_work_callback(struct work_struct *work) 4286 { 4287 struct dsi_data *dsi = 4288 container_of(work, struct dsi_data, te_timeout_work.work); 4289 int old; 4290 4291 old = atomic_cmpxchg(&dsi->do_ext_te_update, 1, 0); 4292 if (old) { 4293 dev_err(dsi->dev, "TE not received for 250ms!\n"); 4294 _dsi_update(dsi); 4295 } 4296 } 4297 4298 static int omap_dsi_register_te_irq(struct dsi_data *dsi, 4299 struct mipi_dsi_device *client) 4300 { 4301 int err; 4302 int te_irq; 4303 4304 dsi->te_gpio = gpiod_get(&client->dev, "te-gpios", GPIOD_IN); 4305 if (IS_ERR(dsi->te_gpio)) { 4306 err = PTR_ERR(dsi->te_gpio); 4307 4308 if (err == -ENOENT) { 4309 dsi->te_gpio = NULL; 4310 return 0; 4311 } 4312 4313 dev_err(dsi->dev, "Could not get TE gpio: %d\n", err); 4314 return err; 4315 } 4316 4317 te_irq = gpiod_to_irq(dsi->te_gpio); 4318 if (te_irq < 0) { 4319 gpiod_put(dsi->te_gpio); 4320 dsi->te_gpio = NULL; 4321 return -EINVAL; 4322 } 4323 4324 dsi->te_irq = te_irq; 4325 4326 irq_set_status_flags(te_irq, IRQ_NOAUTOEN); 4327 4328 err = request_threaded_irq(te_irq, NULL, omap_dsi_te_irq_handler, 4329 IRQF_TRIGGER_RISING, "TE", dsi); 4330 if (err) { 4331 dev_err(dsi->dev, "request irq failed with %d\n", err); 4332 gpiod_put(dsi->te_gpio); 4333 dsi->te_gpio = NULL; 4334 return err; 4335 } 4336 4337 INIT_DEFERRABLE_WORK(&dsi->te_timeout_work, 4338 omap_dsi_te_timeout_work_callback); 4339 4340 dev_dbg(dsi->dev, "Using GPIO TE\n"); 4341 4342 return 0; 4343 } 4344 4345 static void omap_dsi_unregister_te_irq(struct dsi_data *dsi) 4346 { 4347 if (dsi->te_gpio) { 4348 free_irq(dsi->te_irq, dsi); 4349 cancel_delayed_work(&dsi->te_timeout_work); 4350 gpiod_put(dsi->te_gpio); 4351 dsi->te_gpio = NULL; 4352 } 4353 } 4354 4355 static int omap_dsi_host_attach(struct mipi_dsi_host *host, 4356 struct mipi_dsi_device *client) 4357 { 4358 struct dsi_data *dsi = host_to_omap(host); 4359 int r; 4360 4361 if (dsi->dsidev) { 4362 DSSERR("dsi client already attached\n"); 4363 return -EBUSY; 4364 } 4365 4366 if (mipi_dsi_pixel_format_to_bpp(client->format) < 0) { 4367 DSSERR("invalid pixel format\n"); 4368 return -EINVAL; 4369 } 4370 4371 atomic_set(&dsi->do_ext_te_update, 0); 4372 4373 if (client->mode_flags & MIPI_DSI_MODE_VIDEO) { 4374 dsi->mode = OMAP_DSS_DSI_VIDEO_MODE; 4375 } else { 4376 r = omap_dsi_register_te_irq(dsi, client); 4377 if (r) 4378 return r; 4379 4380 dsi->mode = OMAP_DSS_DSI_CMD_MODE; 4381 } 4382 4383 dsi->dsidev = client; 4384 dsi->pix_fmt = client->format; 4385 4386 dsi->config.hs_clk_min = 150000000; // TODO: get from client? 4387 dsi->config.hs_clk_max = client->hs_rate; 4388 dsi->config.lp_clk_min = 7000000; // TODO: get from client? 4389 dsi->config.lp_clk_max = client->lp_rate; 4390 4391 if (client->mode_flags & MIPI_DSI_MODE_VIDEO_BURST) 4392 dsi->config.trans_mode = OMAP_DSS_DSI_BURST_MODE; 4393 else if (client->mode_flags & MIPI_DSI_MODE_VIDEO_SYNC_PULSE) 4394 dsi->config.trans_mode = OMAP_DSS_DSI_PULSE_MODE; 4395 else 4396 dsi->config.trans_mode = OMAP_DSS_DSI_EVENT_MODE; 4397 4398 return 0; 4399 } 4400 4401 static int omap_dsi_host_detach(struct mipi_dsi_host *host, 4402 struct mipi_dsi_device *client) 4403 { 4404 struct dsi_data *dsi = host_to_omap(host); 4405 4406 if (WARN_ON(dsi->dsidev != client)) 4407 return -EINVAL; 4408 4409 cancel_delayed_work_sync(&dsi->dsi_disable_work); 4410 4411 dsi_bus_lock(dsi); 4412 4413 if (dsi->iface_enabled) 4414 dsi_disable(dsi); 4415 4416 dsi_bus_unlock(dsi); 4417 4418 omap_dsi_unregister_te_irq(dsi); 4419 dsi->dsidev = NULL; 4420 return 0; 4421 } 4422 4423 static const struct mipi_dsi_host_ops omap_dsi_host_ops = { 4424 .attach = omap_dsi_host_attach, 4425 .detach = omap_dsi_host_detach, 4426 .transfer = omap_dsi_host_transfer, 4427 }; 4428 4429 /* ----------------------------------------------------------------------------- 4430 * PLL 4431 */ 4432 4433 static const struct dss_pll_ops dsi_pll_ops = { 4434 .enable = dsi_pll_enable, 4435 .disable = dsi_pll_disable, 4436 .set_config = dss_pll_write_config_type_a, 4437 }; 4438 4439 static const struct dss_pll_hw dss_omap3_dsi_pll_hw = { 4440 .type = DSS_PLL_TYPE_A, 4441 4442 .n_max = (1 << 7) - 1, 4443 .m_max = (1 << 11) - 1, 4444 .mX_max = (1 << 4) - 1, 4445 .fint_min = 750000, 4446 .fint_max = 2100000, 4447 .clkdco_low = 1000000000, 4448 .clkdco_max = 1800000000, 4449 4450 .n_msb = 7, 4451 .n_lsb = 1, 4452 .m_msb = 18, 4453 .m_lsb = 8, 4454 4455 .mX_msb[0] = 22, 4456 .mX_lsb[0] = 19, 4457 .mX_msb[1] = 26, 4458 .mX_lsb[1] = 23, 4459 4460 .has_stopmode = true, 4461 .has_freqsel = true, 4462 .has_selfreqdco = false, 4463 .has_refsel = false, 4464 }; 4465 4466 static const struct dss_pll_hw dss_omap4_dsi_pll_hw = { 4467 .type = DSS_PLL_TYPE_A, 4468 4469 .n_max = (1 << 8) - 1, 4470 .m_max = (1 << 12) - 1, 4471 .mX_max = (1 << 5) - 1, 4472 .fint_min = 500000, 4473 .fint_max = 2500000, 4474 .clkdco_low = 1000000000, 4475 .clkdco_max = 1800000000, 4476 4477 .n_msb = 8, 4478 .n_lsb = 1, 4479 .m_msb = 20, 4480 .m_lsb = 9, 4481 4482 .mX_msb[0] = 25, 4483 .mX_lsb[0] = 21, 4484 .mX_msb[1] = 30, 4485 .mX_lsb[1] = 26, 4486 4487 .has_stopmode = true, 4488 .has_freqsel = false, 4489 .has_selfreqdco = false, 4490 .has_refsel = false, 4491 }; 4492 4493 static const struct dss_pll_hw dss_omap5_dsi_pll_hw = { 4494 .type = DSS_PLL_TYPE_A, 4495 4496 .n_max = (1 << 8) - 1, 4497 .m_max = (1 << 12) - 1, 4498 .mX_max = (1 << 5) - 1, 4499 .fint_min = 150000, 4500 .fint_max = 52000000, 4501 .clkdco_low = 1000000000, 4502 .clkdco_max = 1800000000, 4503 4504 .n_msb = 8, 4505 .n_lsb = 1, 4506 .m_msb = 20, 4507 .m_lsb = 9, 4508 4509 .mX_msb[0] = 25, 4510 .mX_lsb[0] = 21, 4511 .mX_msb[1] = 30, 4512 .mX_lsb[1] = 26, 4513 4514 .has_stopmode = true, 4515 .has_freqsel = false, 4516 .has_selfreqdco = true, 4517 .has_refsel = true, 4518 }; 4519 4520 static int dsi_init_pll_data(struct dss_device *dss, struct dsi_data *dsi) 4521 { 4522 struct dss_pll *pll = &dsi->pll; 4523 struct clk *clk; 4524 int r; 4525 4526 clk = devm_clk_get(dsi->dev, "sys_clk"); 4527 if (IS_ERR(clk)) { 4528 DSSERR("can't get sys_clk\n"); 4529 return PTR_ERR(clk); 4530 } 4531 4532 pll->name = dsi->module_id == 0 ? "dsi0" : "dsi1"; 4533 pll->id = dsi->module_id == 0 ? DSS_PLL_DSI1 : DSS_PLL_DSI2; 4534 pll->clkin = clk; 4535 pll->base = dsi->pll_base; 4536 pll->hw = dsi->data->pll_hw; 4537 pll->ops = &dsi_pll_ops; 4538 4539 r = dss_pll_register(dss, pll); 4540 if (r) 4541 return r; 4542 4543 return 0; 4544 } 4545 4546 /* ----------------------------------------------------------------------------- 4547 * Component Bind & Unbind 4548 */ 4549 4550 static int dsi_bind(struct device *dev, struct device *master, void *data) 4551 { 4552 struct dss_device *dss = dss_get_device(master); 4553 struct dsi_data *dsi = dev_get_drvdata(dev); 4554 char name[10]; 4555 u32 rev; 4556 int r; 4557 4558 dsi->dss = dss; 4559 4560 dsi_init_pll_data(dss, dsi); 4561 4562 r = dsi_runtime_get(dsi); 4563 if (r) 4564 return r; 4565 4566 rev = dsi_read_reg(dsi, DSI_REVISION); 4567 dev_dbg(dev, "OMAP DSI rev %d.%d\n", 4568 FLD_GET(rev, 7, 4), FLD_GET(rev, 3, 0)); 4569 4570 dsi->line_buffer_size = dsi_get_line_buf_size(dsi); 4571 4572 dsi_runtime_put(dsi); 4573 4574 snprintf(name, sizeof(name), "dsi%u_regs", dsi->module_id + 1); 4575 dsi->debugfs.regs = dss_debugfs_create_file(dss, name, 4576 dsi_dump_dsi_regs, dsi); 4577 #ifdef CONFIG_OMAP2_DSS_COLLECT_IRQ_STATS 4578 snprintf(name, sizeof(name), "dsi%u_irqs", dsi->module_id + 1); 4579 dsi->debugfs.irqs = dss_debugfs_create_file(dss, name, 4580 dsi_dump_dsi_irqs, dsi); 4581 #endif 4582 snprintf(name, sizeof(name), "dsi%u_clks", dsi->module_id + 1); 4583 dsi->debugfs.clks = dss_debugfs_create_file(dss, name, 4584 dsi_dump_dsi_clocks, dsi); 4585 4586 return 0; 4587 } 4588 4589 static void dsi_unbind(struct device *dev, struct device *master, void *data) 4590 { 4591 struct dsi_data *dsi = dev_get_drvdata(dev); 4592 4593 dss_debugfs_remove_file(dsi->debugfs.clks); 4594 dss_debugfs_remove_file(dsi->debugfs.irqs); 4595 dss_debugfs_remove_file(dsi->debugfs.regs); 4596 4597 WARN_ON(dsi->scp_clk_refcount > 0); 4598 4599 dss_pll_unregister(&dsi->pll); 4600 } 4601 4602 static const struct component_ops dsi_component_ops = { 4603 .bind = dsi_bind, 4604 .unbind = dsi_unbind, 4605 }; 4606 4607 /* ----------------------------------------------------------------------------- 4608 * DRM Bridge Operations 4609 */ 4610 4611 static int dsi_bridge_attach(struct drm_bridge *bridge, 4612 enum drm_bridge_attach_flags flags) 4613 { 4614 struct dsi_data *dsi = drm_bridge_to_dsi(bridge); 4615 4616 if (!(flags & DRM_BRIDGE_ATTACH_NO_CONNECTOR)) 4617 return -EINVAL; 4618 4619 return drm_bridge_attach(bridge->encoder, dsi->output.next_bridge, 4620 bridge, flags); 4621 } 4622 4623 static enum drm_mode_status 4624 dsi_bridge_mode_valid(struct drm_bridge *bridge, 4625 const struct drm_display_info *info, 4626 const struct drm_display_mode *mode) 4627 { 4628 struct dsi_data *dsi = drm_bridge_to_dsi(bridge); 4629 struct dsi_clk_calc_ctx ctx; 4630 int r; 4631 4632 mutex_lock(&dsi->lock); 4633 r = __dsi_calc_config(dsi, mode, &ctx); 4634 mutex_unlock(&dsi->lock); 4635 4636 return r ? MODE_CLOCK_RANGE : MODE_OK; 4637 } 4638 4639 static void dsi_bridge_mode_set(struct drm_bridge *bridge, 4640 const struct drm_display_mode *mode, 4641 const struct drm_display_mode *adjusted_mode) 4642 { 4643 struct dsi_data *dsi = drm_bridge_to_dsi(bridge); 4644 4645 dsi_set_config(&dsi->output, adjusted_mode); 4646 } 4647 4648 static void dsi_bridge_enable(struct drm_bridge *bridge) 4649 { 4650 struct dsi_data *dsi = drm_bridge_to_dsi(bridge); 4651 struct omap_dss_device *dssdev = &dsi->output; 4652 4653 cancel_delayed_work_sync(&dsi->dsi_disable_work); 4654 4655 dsi_bus_lock(dsi); 4656 4657 if (!dsi->iface_enabled) 4658 dsi_enable(dsi); 4659 4660 dsi_enable_video_output(dssdev, VC_VIDEO); 4661 4662 dsi->video_enabled = true; 4663 4664 dsi_bus_unlock(dsi); 4665 } 4666 4667 static void dsi_bridge_disable(struct drm_bridge *bridge) 4668 { 4669 struct dsi_data *dsi = drm_bridge_to_dsi(bridge); 4670 struct omap_dss_device *dssdev = &dsi->output; 4671 4672 cancel_delayed_work_sync(&dsi->dsi_disable_work); 4673 4674 dsi_bus_lock(dsi); 4675 4676 dsi->video_enabled = false; 4677 4678 dsi_disable_video_output(dssdev, VC_VIDEO); 4679 4680 dsi_disable(dsi); 4681 4682 dsi_bus_unlock(dsi); 4683 } 4684 4685 static const struct drm_bridge_funcs dsi_bridge_funcs = { 4686 .attach = dsi_bridge_attach, 4687 .mode_valid = dsi_bridge_mode_valid, 4688 .mode_set = dsi_bridge_mode_set, 4689 .enable = dsi_bridge_enable, 4690 .disable = dsi_bridge_disable, 4691 }; 4692 4693 static void dsi_bridge_init(struct dsi_data *dsi) 4694 { 4695 dsi->bridge.funcs = &dsi_bridge_funcs; 4696 dsi->bridge.of_node = dsi->host.dev->of_node; 4697 dsi->bridge.type = DRM_MODE_CONNECTOR_DSI; 4698 4699 drm_bridge_add(&dsi->bridge); 4700 } 4701 4702 static void dsi_bridge_cleanup(struct dsi_data *dsi) 4703 { 4704 drm_bridge_remove(&dsi->bridge); 4705 } 4706 4707 /* ----------------------------------------------------------------------------- 4708 * Probe & Remove, Suspend & Resume 4709 */ 4710 4711 static int dsi_init_output(struct dsi_data *dsi) 4712 { 4713 struct omap_dss_device *out = &dsi->output; 4714 int r; 4715 4716 dsi_bridge_init(dsi); 4717 4718 out->dev = dsi->dev; 4719 out->id = dsi->module_id == 0 ? 4720 OMAP_DSS_OUTPUT_DSI1 : OMAP_DSS_OUTPUT_DSI2; 4721 4722 out->type = OMAP_DISPLAY_TYPE_DSI; 4723 out->name = dsi->module_id == 0 ? "dsi.0" : "dsi.1"; 4724 out->dispc_channel = dsi_get_dispc_channel(dsi); 4725 out->dsi_ops = &dsi_ops; 4726 out->of_port = 0; 4727 out->bus_flags = DRM_BUS_FLAG_PIXDATA_DRIVE_POSEDGE 4728 | DRM_BUS_FLAG_DE_HIGH 4729 | DRM_BUS_FLAG_SYNC_DRIVE_NEGEDGE; 4730 4731 r = omapdss_device_init_output(out, &dsi->bridge); 4732 if (r < 0) { 4733 dsi_bridge_cleanup(dsi); 4734 return r; 4735 } 4736 4737 omapdss_device_register(out); 4738 4739 return 0; 4740 } 4741 4742 static void dsi_uninit_output(struct dsi_data *dsi) 4743 { 4744 struct omap_dss_device *out = &dsi->output; 4745 4746 omapdss_device_unregister(out); 4747 omapdss_device_cleanup_output(out); 4748 dsi_bridge_cleanup(dsi); 4749 } 4750 4751 static int dsi_probe_of(struct dsi_data *dsi) 4752 { 4753 struct device_node *node = dsi->dev->of_node; 4754 struct property *prop; 4755 u32 lane_arr[10]; 4756 int len, num_pins; 4757 int r; 4758 struct device_node *ep; 4759 4760 ep = of_graph_get_endpoint_by_regs(node, 0, 0); 4761 if (!ep) 4762 return 0; 4763 4764 prop = of_find_property(ep, "lanes", &len); 4765 if (prop == NULL) { 4766 dev_err(dsi->dev, "failed to find lane data\n"); 4767 r = -EINVAL; 4768 goto err; 4769 } 4770 4771 num_pins = len / sizeof(u32); 4772 4773 if (num_pins < 4 || num_pins % 2 != 0 || 4774 num_pins > dsi->num_lanes_supported * 2) { 4775 dev_err(dsi->dev, "bad number of lanes\n"); 4776 r = -EINVAL; 4777 goto err; 4778 } 4779 4780 r = of_property_read_u32_array(ep, "lanes", lane_arr, num_pins); 4781 if (r) { 4782 dev_err(dsi->dev, "failed to read lane data\n"); 4783 goto err; 4784 } 4785 4786 r = dsi_configure_pins(dsi, num_pins, lane_arr); 4787 if (r) { 4788 dev_err(dsi->dev, "failed to configure pins"); 4789 goto err; 4790 } 4791 4792 of_node_put(ep); 4793 4794 return 0; 4795 4796 err: 4797 of_node_put(ep); 4798 return r; 4799 } 4800 4801 static const struct dsi_of_data dsi_of_data_omap34xx = { 4802 .model = DSI_MODEL_OMAP3, 4803 .pll_hw = &dss_omap3_dsi_pll_hw, 4804 .modules = (const struct dsi_module_id_data[]) { 4805 { .address = 0x4804fc00, .id = 0, }, 4806 { }, 4807 }, 4808 .max_fck_freq = 173000000, 4809 .max_pll_lpdiv = (1 << 13) - 1, 4810 .quirks = DSI_QUIRK_REVERSE_TXCLKESC, 4811 }; 4812 4813 static const struct dsi_of_data dsi_of_data_omap36xx = { 4814 .model = DSI_MODEL_OMAP3, 4815 .pll_hw = &dss_omap3_dsi_pll_hw, 4816 .modules = (const struct dsi_module_id_data[]) { 4817 { .address = 0x4804fc00, .id = 0, }, 4818 { }, 4819 }, 4820 .max_fck_freq = 173000000, 4821 .max_pll_lpdiv = (1 << 13) - 1, 4822 .quirks = DSI_QUIRK_PLL_PWR_BUG, 4823 }; 4824 4825 static const struct dsi_of_data dsi_of_data_omap4 = { 4826 .model = DSI_MODEL_OMAP4, 4827 .pll_hw = &dss_omap4_dsi_pll_hw, 4828 .modules = (const struct dsi_module_id_data[]) { 4829 { .address = 0x58004000, .id = 0, }, 4830 { .address = 0x58005000, .id = 1, }, 4831 { }, 4832 }, 4833 .max_fck_freq = 170000000, 4834 .max_pll_lpdiv = (1 << 13) - 1, 4835 .quirks = DSI_QUIRK_DCS_CMD_CONFIG_VC | DSI_QUIRK_VC_OCP_WIDTH 4836 | DSI_QUIRK_GNQ, 4837 }; 4838 4839 static const struct dsi_of_data dsi_of_data_omap5 = { 4840 .model = DSI_MODEL_OMAP5, 4841 .pll_hw = &dss_omap5_dsi_pll_hw, 4842 .modules = (const struct dsi_module_id_data[]) { 4843 { .address = 0x58004000, .id = 0, }, 4844 { .address = 0x58009000, .id = 1, }, 4845 { }, 4846 }, 4847 .max_fck_freq = 209250000, 4848 .max_pll_lpdiv = (1 << 13) - 1, 4849 .quirks = DSI_QUIRK_DCS_CMD_CONFIG_VC | DSI_QUIRK_VC_OCP_WIDTH 4850 | DSI_QUIRK_GNQ | DSI_QUIRK_PHY_DCC, 4851 }; 4852 4853 static const struct of_device_id dsi_of_match[] = { 4854 { .compatible = "ti,omap3-dsi", .data = &dsi_of_data_omap36xx, }, 4855 { .compatible = "ti,omap4-dsi", .data = &dsi_of_data_omap4, }, 4856 { .compatible = "ti,omap5-dsi", .data = &dsi_of_data_omap5, }, 4857 {}, 4858 }; 4859 4860 static const struct soc_device_attribute dsi_soc_devices[] = { 4861 { .machine = "OMAP3[45]*", .data = &dsi_of_data_omap34xx }, 4862 { .machine = "AM35*", .data = &dsi_of_data_omap34xx }, 4863 { /* sentinel */ } 4864 }; 4865 4866 static void omap_dsi_disable_work_callback(struct work_struct *work) 4867 { 4868 struct dsi_data *dsi = container_of(work, struct dsi_data, dsi_disable_work.work); 4869 4870 dsi_bus_lock(dsi); 4871 4872 if (dsi->iface_enabled && !dsi->video_enabled) 4873 dsi_disable(dsi); 4874 4875 dsi_bus_unlock(dsi); 4876 } 4877 4878 static int dsi_probe(struct platform_device *pdev) 4879 { 4880 const struct soc_device_attribute *soc; 4881 const struct dsi_module_id_data *d; 4882 struct device *dev = &pdev->dev; 4883 struct dsi_data *dsi; 4884 struct resource *dsi_mem; 4885 struct resource *res; 4886 unsigned int i; 4887 int r; 4888 4889 dsi = devm_kzalloc(dev, sizeof(*dsi), GFP_KERNEL); 4890 if (!dsi) 4891 return -ENOMEM; 4892 4893 dsi->dev = dev; 4894 dev_set_drvdata(dev, dsi); 4895 4896 spin_lock_init(&dsi->irq_lock); 4897 spin_lock_init(&dsi->errors_lock); 4898 dsi->errors = 0; 4899 4900 #ifdef CONFIG_OMAP2_DSS_COLLECT_IRQ_STATS 4901 spin_lock_init(&dsi->irq_stats_lock); 4902 dsi->irq_stats.last_reset = jiffies; 4903 #endif 4904 4905 mutex_init(&dsi->lock); 4906 sema_init(&dsi->bus_lock, 1); 4907 4908 INIT_DEFERRABLE_WORK(&dsi->framedone_timeout_work, 4909 dsi_framedone_timeout_work_callback); 4910 4911 INIT_DEFERRABLE_WORK(&dsi->dsi_disable_work, omap_dsi_disable_work_callback); 4912 4913 #ifdef DSI_CATCH_MISSING_TE 4914 timer_setup(&dsi->te_timer, dsi_te_timeout, 0); 4915 #endif 4916 4917 dsi_mem = platform_get_resource_byname(pdev, IORESOURCE_MEM, "proto"); 4918 dsi->proto_base = devm_ioremap_resource(dev, dsi_mem); 4919 if (IS_ERR(dsi->proto_base)) 4920 return PTR_ERR(dsi->proto_base); 4921 4922 res = platform_get_resource_byname(pdev, IORESOURCE_MEM, "phy"); 4923 dsi->phy_base = devm_ioremap_resource(dev, res); 4924 if (IS_ERR(dsi->phy_base)) 4925 return PTR_ERR(dsi->phy_base); 4926 4927 res = platform_get_resource_byname(pdev, IORESOURCE_MEM, "pll"); 4928 dsi->pll_base = devm_ioremap_resource(dev, res); 4929 if (IS_ERR(dsi->pll_base)) 4930 return PTR_ERR(dsi->pll_base); 4931 4932 dsi->irq = platform_get_irq(pdev, 0); 4933 if (dsi->irq < 0) { 4934 DSSERR("platform_get_irq failed\n"); 4935 return -ENODEV; 4936 } 4937 4938 r = devm_request_irq(dev, dsi->irq, omap_dsi_irq_handler, 4939 IRQF_SHARED, dev_name(dev), dsi); 4940 if (r < 0) { 4941 DSSERR("request_irq failed\n"); 4942 return r; 4943 } 4944 4945 dsi->vdds_dsi_reg = devm_regulator_get(dev, "vdd"); 4946 if (IS_ERR(dsi->vdds_dsi_reg)) { 4947 if (PTR_ERR(dsi->vdds_dsi_reg) != -EPROBE_DEFER) 4948 DSSERR("can't get DSI VDD regulator\n"); 4949 return PTR_ERR(dsi->vdds_dsi_reg); 4950 } 4951 4952 soc = soc_device_match(dsi_soc_devices); 4953 if (soc) 4954 dsi->data = soc->data; 4955 else 4956 dsi->data = of_match_node(dsi_of_match, dev->of_node)->data; 4957 4958 d = dsi->data->modules; 4959 while (d->address != 0 && d->address != dsi_mem->start) 4960 d++; 4961 4962 if (d->address == 0) { 4963 DSSERR("unsupported DSI module\n"); 4964 return -ENODEV; 4965 } 4966 4967 dsi->module_id = d->id; 4968 4969 if (dsi->data->model == DSI_MODEL_OMAP4 || 4970 dsi->data->model == DSI_MODEL_OMAP5) { 4971 struct device_node *np; 4972 4973 /* 4974 * The OMAP4/5 display DT bindings don't reference the padconf 4975 * syscon. Our only option to retrieve it is to find it by name. 4976 */ 4977 np = of_find_node_by_name(NULL, 4978 dsi->data->model == DSI_MODEL_OMAP4 ? 4979 "omap4_padconf_global" : "omap5_padconf_global"); 4980 if (!np) 4981 return -ENODEV; 4982 4983 dsi->syscon = syscon_node_to_regmap(np); 4984 of_node_put(np); 4985 } 4986 4987 /* DSI VCs initialization */ 4988 for (i = 0; i < ARRAY_SIZE(dsi->vc); i++) 4989 dsi->vc[i].source = DSI_VC_SOURCE_L4; 4990 4991 r = dsi_get_clocks(dsi); 4992 if (r) 4993 return r; 4994 4995 pm_runtime_enable(dev); 4996 4997 /* DSI on OMAP3 doesn't have register DSI_GNQ, set number 4998 * of data to 3 by default */ 4999 if (dsi->data->quirks & DSI_QUIRK_GNQ) { 5000 dsi_runtime_get(dsi); 5001 /* NB_DATA_LANES */ 5002 dsi->num_lanes_supported = 1 + REG_GET(dsi, DSI_GNQ, 11, 9); 5003 dsi_runtime_put(dsi); 5004 } else { 5005 dsi->num_lanes_supported = 3; 5006 } 5007 5008 dsi->host.ops = &omap_dsi_host_ops; 5009 dsi->host.dev = &pdev->dev; 5010 5011 r = dsi_probe_of(dsi); 5012 if (r) { 5013 DSSERR("Invalid DSI DT data\n"); 5014 goto err_pm_disable; 5015 } 5016 5017 r = mipi_dsi_host_register(&dsi->host); 5018 if (r < 0) { 5019 dev_err(&pdev->dev, "failed to register DSI host: %d\n", r); 5020 goto err_pm_disable; 5021 } 5022 5023 r = dsi_init_output(dsi); 5024 if (r) 5025 goto err_dsi_host_unregister; 5026 5027 r = component_add(&pdev->dev, &dsi_component_ops); 5028 if (r) 5029 goto err_uninit_output; 5030 5031 return 0; 5032 5033 err_uninit_output: 5034 dsi_uninit_output(dsi); 5035 err_dsi_host_unregister: 5036 mipi_dsi_host_unregister(&dsi->host); 5037 err_pm_disable: 5038 pm_runtime_disable(dev); 5039 return r; 5040 } 5041 5042 static int dsi_remove(struct platform_device *pdev) 5043 { 5044 struct dsi_data *dsi = platform_get_drvdata(pdev); 5045 5046 component_del(&pdev->dev, &dsi_component_ops); 5047 5048 dsi_uninit_output(dsi); 5049 5050 mipi_dsi_host_unregister(&dsi->host); 5051 5052 pm_runtime_disable(&pdev->dev); 5053 5054 if (dsi->vdds_dsi_reg != NULL && dsi->vdds_dsi_enabled) { 5055 regulator_disable(dsi->vdds_dsi_reg); 5056 dsi->vdds_dsi_enabled = false; 5057 } 5058 5059 return 0; 5060 } 5061 5062 static int dsi_runtime_suspend(struct device *dev) 5063 { 5064 struct dsi_data *dsi = dev_get_drvdata(dev); 5065 5066 dsi->is_enabled = false; 5067 /* ensure the irq handler sees the is_enabled value */ 5068 smp_wmb(); 5069 /* wait for current handler to finish before turning the DSI off */ 5070 synchronize_irq(dsi->irq); 5071 5072 return 0; 5073 } 5074 5075 static int dsi_runtime_resume(struct device *dev) 5076 { 5077 struct dsi_data *dsi = dev_get_drvdata(dev); 5078 5079 dsi->is_enabled = true; 5080 /* ensure the irq handler sees the is_enabled value */ 5081 smp_wmb(); 5082 5083 return 0; 5084 } 5085 5086 static const struct dev_pm_ops dsi_pm_ops = { 5087 .runtime_suspend = dsi_runtime_suspend, 5088 .runtime_resume = dsi_runtime_resume, 5089 SET_LATE_SYSTEM_SLEEP_PM_OPS(pm_runtime_force_suspend, pm_runtime_force_resume) 5090 }; 5091 5092 struct platform_driver omap_dsihw_driver = { 5093 .probe = dsi_probe, 5094 .remove = dsi_remove, 5095 .driver = { 5096 .name = "omapdss_dsi", 5097 .pm = &dsi_pm_ops, 5098 .of_match_table = dsi_of_match, 5099 .suppress_bind_attrs = true, 5100 }, 5101 }; 5102