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v6.13.7
   1/*
   2 * Copyright © 1997-2003 by The XFree86 Project, Inc.
   3 * Copyright © 2007 Dave Airlie
   4 * Copyright © 2007-2008 Intel Corporation
   5 *   Jesse Barnes <jesse.barnes@intel.com>
   6 * Copyright 2005-2006 Luc Verhaegen
   7 * Copyright (c) 2001, Andy Ritger  aritger@nvidia.com
   8 *
   9 * Permission is hereby granted, free of charge, to any person obtaining a
  10 * copy of this software and associated documentation files (the "Software"),
  11 * to deal in the Software without restriction, including without limitation
  12 * the rights to use, copy, modify, merge, publish, distribute, sublicense,
  13 * and/or sell copies of the Software, and to permit persons to whom the
  14 * Software is furnished to do so, subject to the following conditions:
  15 *
  16 * The above copyright notice and this permission notice shall be included in
  17 * all copies or substantial portions of the Software.
  18 *
  19 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
  20 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
  21 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.  IN NO EVENT SHALL
  22 * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR
  23 * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
  24 * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
  25 * OTHER DEALINGS IN THE SOFTWARE.
  26 *
  27 * Except as contained in this notice, the name of the copyright holder(s)
  28 * and author(s) shall not be used in advertising or otherwise to promote
  29 * the sale, use or other dealings in this Software without prior written
  30 * authorization from the copyright holder(s) and author(s).
  31 */
  32
  33#include <linux/ctype.h>
  34#include <linux/export.h>
  35#include <linux/fb.h> /* for KHZ2PICOS() */
  36#include <linux/list.h>
  37#include <linux/list_sort.h>
  38#include <linux/of.h>
 
  39
  40#include <video/of_display_timing.h>
  41#include <video/of_videomode.h>
  42#include <video/videomode.h>
  43
  44#include <drm/drm_crtc.h>
  45#include <drm/drm_device.h>
  46#include <drm/drm_edid.h>
  47#include <drm/drm_modes.h>
  48#include <drm/drm_print.h>
  49
  50#include "drm_crtc_internal.h"
  51
  52/**
  53 * drm_mode_debug_printmodeline - print a mode to dmesg
  54 * @mode: mode to print
  55 *
  56 * Describe @mode using DRM_DEBUG.
  57 */
  58void drm_mode_debug_printmodeline(const struct drm_display_mode *mode)
  59{
  60	DRM_DEBUG_KMS("Modeline " DRM_MODE_FMT "\n", DRM_MODE_ARG(mode));
  61}
  62EXPORT_SYMBOL(drm_mode_debug_printmodeline);
  63
  64/**
  65 * drm_mode_create - create a new display mode
  66 * @dev: DRM device
  67 *
  68 * Create a new, cleared drm_display_mode with kzalloc, allocate an ID for it
  69 * and return it.
  70 *
  71 * Returns:
  72 * Pointer to new mode on success, NULL on error.
  73 */
  74struct drm_display_mode *drm_mode_create(struct drm_device *dev)
  75{
  76	struct drm_display_mode *nmode;
  77
  78	nmode = kzalloc(sizeof(struct drm_display_mode), GFP_KERNEL);
  79	if (!nmode)
  80		return NULL;
  81
  82	return nmode;
  83}
  84EXPORT_SYMBOL(drm_mode_create);
  85
  86/**
  87 * drm_mode_destroy - remove a mode
  88 * @dev: DRM device
  89 * @mode: mode to remove
  90 *
  91 * Release @mode's unique ID, then free it @mode structure itself using kfree.
  92 */
  93void drm_mode_destroy(struct drm_device *dev, struct drm_display_mode *mode)
  94{
  95	if (!mode)
  96		return;
  97
  98	kfree(mode);
  99}
 100EXPORT_SYMBOL(drm_mode_destroy);
 101
 102/**
 103 * drm_mode_probed_add - add a mode to a connector's probed_mode list
 104 * @connector: connector the new mode
 105 * @mode: mode data
 106 *
 107 * Add @mode to @connector's probed_mode list for later use. This list should
 108 * then in a second step get filtered and all the modes actually supported by
 109 * the hardware moved to the @connector's modes list.
 110 */
 111void drm_mode_probed_add(struct drm_connector *connector,
 112			 struct drm_display_mode *mode)
 113{
 114	WARN_ON(!mutex_is_locked(&connector->dev->mode_config.mutex));
 115
 116	list_add_tail(&mode->head, &connector->probed_modes);
 117}
 118EXPORT_SYMBOL(drm_mode_probed_add);
 119
 120enum drm_mode_analog {
 121	DRM_MODE_ANALOG_NTSC, /* 525 lines, 60Hz */
 122	DRM_MODE_ANALOG_PAL, /* 625 lines, 50Hz */
 123};
 124
 125/*
 126 * The timings come from:
 127 * - https://web.archive.org/web/20220406232708/http://www.kolumbus.fi/pami1/video/pal_ntsc.html
 128 * - https://web.archive.org/web/20220406124914/http://martin.hinner.info/vga/pal.html
 129 * - https://web.archive.org/web/20220609202433/http://www.batsocks.co.uk/readme/video_timing.htm
 130 */
 131#define NTSC_LINE_DURATION_NS		63556U
 132#define NTSC_LINES_NUMBER		525
 133
 134#define NTSC_HBLK_DURATION_TYP_NS	10900U
 135#define NTSC_HBLK_DURATION_MIN_NS	(NTSC_HBLK_DURATION_TYP_NS - 200)
 136#define NTSC_HBLK_DURATION_MAX_NS	(NTSC_HBLK_DURATION_TYP_NS + 200)
 137
 138#define NTSC_HACT_DURATION_TYP_NS	(NTSC_LINE_DURATION_NS - NTSC_HBLK_DURATION_TYP_NS)
 139#define NTSC_HACT_DURATION_MIN_NS	(NTSC_LINE_DURATION_NS - NTSC_HBLK_DURATION_MAX_NS)
 140#define NTSC_HACT_DURATION_MAX_NS	(NTSC_LINE_DURATION_NS - NTSC_HBLK_DURATION_MIN_NS)
 141
 142#define NTSC_HFP_DURATION_TYP_NS	1500
 143#define NTSC_HFP_DURATION_MIN_NS	1270
 144#define NTSC_HFP_DURATION_MAX_NS	2220
 145
 146#define NTSC_HSLEN_DURATION_TYP_NS	4700
 147#define NTSC_HSLEN_DURATION_MIN_NS	(NTSC_HSLEN_DURATION_TYP_NS - 100)
 148#define NTSC_HSLEN_DURATION_MAX_NS	(NTSC_HSLEN_DURATION_TYP_NS + 100)
 149
 150#define NTSC_HBP_DURATION_TYP_NS	4700
 151
 152/*
 153 * I couldn't find the actual tolerance for the back porch, so let's
 154 * just reuse the sync length ones.
 155 */
 156#define NTSC_HBP_DURATION_MIN_NS	(NTSC_HBP_DURATION_TYP_NS - 100)
 157#define NTSC_HBP_DURATION_MAX_NS	(NTSC_HBP_DURATION_TYP_NS + 100)
 158
 159#define PAL_LINE_DURATION_NS		64000U
 160#define PAL_LINES_NUMBER		625
 161
 162#define PAL_HACT_DURATION_TYP_NS	51950U
 163#define PAL_HACT_DURATION_MIN_NS	(PAL_HACT_DURATION_TYP_NS - 100)
 164#define PAL_HACT_DURATION_MAX_NS	(PAL_HACT_DURATION_TYP_NS + 400)
 165
 166#define PAL_HBLK_DURATION_TYP_NS	(PAL_LINE_DURATION_NS - PAL_HACT_DURATION_TYP_NS)
 167#define PAL_HBLK_DURATION_MIN_NS	(PAL_LINE_DURATION_NS - PAL_HACT_DURATION_MAX_NS)
 168#define PAL_HBLK_DURATION_MAX_NS	(PAL_LINE_DURATION_NS - PAL_HACT_DURATION_MIN_NS)
 169
 170#define PAL_HFP_DURATION_TYP_NS		1650
 171#define PAL_HFP_DURATION_MIN_NS		(PAL_HFP_DURATION_TYP_NS - 100)
 172#define PAL_HFP_DURATION_MAX_NS		(PAL_HFP_DURATION_TYP_NS + 400)
 173
 174#define PAL_HSLEN_DURATION_TYP_NS	4700
 175#define PAL_HSLEN_DURATION_MIN_NS	(PAL_HSLEN_DURATION_TYP_NS - 200)
 176#define PAL_HSLEN_DURATION_MAX_NS	(PAL_HSLEN_DURATION_TYP_NS + 200)
 177
 178#define PAL_HBP_DURATION_TYP_NS		5700
 179#define PAL_HBP_DURATION_MIN_NS		(PAL_HBP_DURATION_TYP_NS - 200)
 180#define PAL_HBP_DURATION_MAX_NS		(PAL_HBP_DURATION_TYP_NS + 200)
 181
 182struct analog_param_field {
 183	unsigned int even, odd;
 184};
 185
 186#define PARAM_FIELD(_odd, _even)		\
 187	{ .even = _even, .odd = _odd }
 188
 189struct analog_param_range {
 190	unsigned int	min, typ, max;
 191};
 192
 193#define PARAM_RANGE(_min, _typ, _max)		\
 194	{ .min = _min, .typ = _typ, .max = _max }
 195
 196struct analog_parameters {
 197	unsigned int			num_lines;
 198	unsigned int			line_duration_ns;
 199
 200	struct analog_param_range	hact_ns;
 201	struct analog_param_range	hfp_ns;
 202	struct analog_param_range	hslen_ns;
 203	struct analog_param_range	hbp_ns;
 204	struct analog_param_range	hblk_ns;
 205
 206	unsigned int			bt601_hfp;
 207
 208	struct analog_param_field	vfp_lines;
 209	struct analog_param_field	vslen_lines;
 210	struct analog_param_field	vbp_lines;
 211};
 212
 213#define TV_MODE_PARAMETER(_mode, _lines, _line_dur, _hact, _hfp,	\
 214			  _hslen, _hbp, _hblk, _bt601_hfp, _vfp,	\
 215			  _vslen, _vbp)					\
 216	[_mode] = {							\
 217		.num_lines = _lines,					\
 218		.line_duration_ns = _line_dur,				\
 219		.hact_ns = _hact,					\
 220		.hfp_ns = _hfp,						\
 221		.hslen_ns = _hslen,					\
 222		.hbp_ns = _hbp,						\
 223		.hblk_ns = _hblk,					\
 224		.bt601_hfp = _bt601_hfp,				\
 225		.vfp_lines = _vfp,					\
 226		.vslen_lines = _vslen,					\
 227		.vbp_lines = _vbp,					\
 228	}
 229
 230static const struct analog_parameters tv_modes_parameters[] = {
 231	TV_MODE_PARAMETER(DRM_MODE_ANALOG_NTSC,
 232			  NTSC_LINES_NUMBER,
 233			  NTSC_LINE_DURATION_NS,
 234			  PARAM_RANGE(NTSC_HACT_DURATION_MIN_NS,
 235				      NTSC_HACT_DURATION_TYP_NS,
 236				      NTSC_HACT_DURATION_MAX_NS),
 237			  PARAM_RANGE(NTSC_HFP_DURATION_MIN_NS,
 238				      NTSC_HFP_DURATION_TYP_NS,
 239				      NTSC_HFP_DURATION_MAX_NS),
 240			  PARAM_RANGE(NTSC_HSLEN_DURATION_MIN_NS,
 241				      NTSC_HSLEN_DURATION_TYP_NS,
 242				      NTSC_HSLEN_DURATION_MAX_NS),
 243			  PARAM_RANGE(NTSC_HBP_DURATION_MIN_NS,
 244				      NTSC_HBP_DURATION_TYP_NS,
 245				      NTSC_HBP_DURATION_MAX_NS),
 246			  PARAM_RANGE(NTSC_HBLK_DURATION_MIN_NS,
 247				      NTSC_HBLK_DURATION_TYP_NS,
 248				      NTSC_HBLK_DURATION_MAX_NS),
 249			  16,
 250			  PARAM_FIELD(3, 3),
 251			  PARAM_FIELD(3, 3),
 252			  PARAM_FIELD(16, 17)),
 253	TV_MODE_PARAMETER(DRM_MODE_ANALOG_PAL,
 254			  PAL_LINES_NUMBER,
 255			  PAL_LINE_DURATION_NS,
 256			  PARAM_RANGE(PAL_HACT_DURATION_MIN_NS,
 257				      PAL_HACT_DURATION_TYP_NS,
 258				      PAL_HACT_DURATION_MAX_NS),
 259			  PARAM_RANGE(PAL_HFP_DURATION_MIN_NS,
 260				      PAL_HFP_DURATION_TYP_NS,
 261				      PAL_HFP_DURATION_MAX_NS),
 262			  PARAM_RANGE(PAL_HSLEN_DURATION_MIN_NS,
 263				      PAL_HSLEN_DURATION_TYP_NS,
 264				      PAL_HSLEN_DURATION_MAX_NS),
 265			  PARAM_RANGE(PAL_HBP_DURATION_MIN_NS,
 266				      PAL_HBP_DURATION_TYP_NS,
 267				      PAL_HBP_DURATION_MAX_NS),
 268			  PARAM_RANGE(PAL_HBLK_DURATION_MIN_NS,
 269				      PAL_HBLK_DURATION_TYP_NS,
 270				      PAL_HBLK_DURATION_MAX_NS),
 271			  12,
 272
 273			  /*
 274			   * The front porch is actually 6 short sync
 275			   * pulses for the even field, and 5 for the
 276			   * odd field. Each sync takes half a life so
 277			   * the odd field front porch is shorter by
 278			   * half a line.
 279			   *
 280			   * In progressive, we're supposed to use 6
 281			   * pulses, so we're fine there
 282			   */
 283			  PARAM_FIELD(3, 2),
 284
 285			  /*
 286			   * The vsync length is 5 long sync pulses,
 287			   * each field taking half a line. We're
 288			   * shorter for both fields by half a line.
 289			   *
 290			   * In progressive, we're supposed to use 5
 291			   * pulses, so we're off by half
 292			   * a line.
 293			   *
 294			   * In interlace, we're now off by half a line
 295			   * for the even field and one line for the odd
 296			   * field.
 297			   */
 298			  PARAM_FIELD(3, 3),
 299
 300			  /*
 301			   * The back porch starts with post-equalizing
 302			   * pulses, consisting in 5 short sync pulses
 303			   * for the even field, 4 for the odd field. In
 304			   * progressive, it's 5 short syncs.
 305			   *
 306			   * In progressive, we thus have 2.5 lines,
 307			   * plus the 0.5 line we were missing
 308			   * previously, so we should use 3 lines.
 309			   *
 310			   * In interlace, the even field is in the
 311			   * exact same case than progressive. For the
 312			   * odd field, we should be using 2 lines but
 313			   * we're one line short, so we'll make up for
 314			   * it here by using 3.
 315			   *
 316			   * The entire blanking area is supposed to
 317			   * take 25 lines, so we also need to account
 318			   * for the rest of the blanking area that
 319			   * can't be in either the front porch or sync
 320			   * period.
 321			   */
 322			  PARAM_FIELD(19, 20)),
 323};
 324
 325static int fill_analog_mode(struct drm_device *dev,
 326			    struct drm_display_mode *mode,
 327			    const struct analog_parameters *params,
 328			    unsigned long pixel_clock_hz,
 329			    unsigned int hactive,
 330			    unsigned int vactive,
 331			    bool interlace)
 332{
 333	unsigned long pixel_duration_ns = NSEC_PER_SEC / pixel_clock_hz;
 334	unsigned int htotal, vtotal;
 335	unsigned int max_hact, hact_duration_ns;
 336	unsigned int hblk, hblk_duration_ns;
 337	unsigned int hfp, hfp_duration_ns;
 338	unsigned int hslen, hslen_duration_ns;
 339	unsigned int hbp, hbp_duration_ns;
 340	unsigned int porches, porches_duration_ns;
 341	unsigned int vfp, vfp_min;
 342	unsigned int vbp, vbp_min;
 343	unsigned int vslen;
 344	bool bt601 = false;
 345	int porches_rem;
 346	u64 result;
 347
 348	drm_dbg_kms(dev,
 349		    "Generating a %ux%u%c, %u-line mode with a %lu kHz clock\n",
 350		    hactive, vactive,
 351		    interlace ? 'i' : 'p',
 352		    params->num_lines,
 353		    pixel_clock_hz / 1000);
 354
 355	max_hact = params->hact_ns.max / pixel_duration_ns;
 356	if (pixel_clock_hz == 13500000 && hactive > max_hact && hactive <= 720) {
 357		drm_dbg_kms(dev, "Trying to generate a BT.601 mode. Disabling checks.\n");
 358		bt601 = true;
 359	}
 360
 361	/*
 362	 * Our pixel duration is going to be round down by the division,
 363	 * so rounding up is probably going to introduce even more
 364	 * deviation.
 365	 */
 366	result = (u64)params->line_duration_ns * pixel_clock_hz;
 367	do_div(result, NSEC_PER_SEC);
 368	htotal = result;
 369
 370	drm_dbg_kms(dev, "Total Horizontal Number of Pixels: %u\n", htotal);
 371
 372	hact_duration_ns = hactive * pixel_duration_ns;
 373	if (!bt601 &&
 374	    (hact_duration_ns < params->hact_ns.min ||
 375	     hact_duration_ns > params->hact_ns.max)) {
 376		drm_err(dev, "Invalid horizontal active area duration: %uns (min: %u, max %u)\n",
 377			hact_duration_ns, params->hact_ns.min, params->hact_ns.max);
 378		return -EINVAL;
 379	}
 380
 381	hblk = htotal - hactive;
 382	drm_dbg_kms(dev, "Horizontal Blanking Period: %u\n", hblk);
 383
 384	hblk_duration_ns = hblk * pixel_duration_ns;
 385	if (!bt601 &&
 386	    (hblk_duration_ns < params->hblk_ns.min ||
 387	     hblk_duration_ns > params->hblk_ns.max)) {
 388		drm_err(dev, "Invalid horizontal blanking duration: %uns (min: %u, max %u)\n",
 389			hblk_duration_ns, params->hblk_ns.min, params->hblk_ns.max);
 390		return -EINVAL;
 391	}
 392
 393	hslen = DIV_ROUND_UP(params->hslen_ns.typ, pixel_duration_ns);
 394	drm_dbg_kms(dev, "Horizontal Sync Period: %u\n", hslen);
 395
 396	hslen_duration_ns = hslen * pixel_duration_ns;
 397	if (!bt601 &&
 398	    (hslen_duration_ns < params->hslen_ns.min ||
 399	     hslen_duration_ns > params->hslen_ns.max)) {
 400		drm_err(dev, "Invalid horizontal sync duration: %uns (min: %u, max %u)\n",
 401			hslen_duration_ns, params->hslen_ns.min, params->hslen_ns.max);
 402		return -EINVAL;
 403	}
 404
 405	porches = hblk - hslen;
 406	drm_dbg_kms(dev, "Remaining horizontal pixels for both porches: %u\n", porches);
 407
 408	porches_duration_ns = porches * pixel_duration_ns;
 409	if (!bt601 &&
 410	    (porches_duration_ns > (params->hfp_ns.max + params->hbp_ns.max) ||
 411	     porches_duration_ns < (params->hfp_ns.min + params->hbp_ns.min))) {
 412		drm_err(dev, "Invalid horizontal porches duration: %uns\n",
 413			porches_duration_ns);
 414		return -EINVAL;
 415	}
 416
 417	if (bt601) {
 418		hfp = params->bt601_hfp;
 419	} else {
 420		unsigned int hfp_min = DIV_ROUND_UP(params->hfp_ns.min,
 421						    pixel_duration_ns);
 422		unsigned int hbp_min = DIV_ROUND_UP(params->hbp_ns.min,
 423						    pixel_duration_ns);
 424		int porches_rem = porches - hfp_min - hbp_min;
 425
 426		hfp = hfp_min + DIV_ROUND_UP(porches_rem, 2);
 427	}
 428
 429	drm_dbg_kms(dev, "Horizontal Front Porch: %u\n", hfp);
 430
 431	hfp_duration_ns = hfp * pixel_duration_ns;
 432	if (!bt601 &&
 433	    (hfp_duration_ns < params->hfp_ns.min ||
 434	     hfp_duration_ns > params->hfp_ns.max)) {
 435		drm_err(dev, "Invalid horizontal front porch duration: %uns (min: %u, max %u)\n",
 436			hfp_duration_ns, params->hfp_ns.min, params->hfp_ns.max);
 437		return -EINVAL;
 438	}
 439
 440	hbp = porches - hfp;
 441	drm_dbg_kms(dev, "Horizontal Back Porch: %u\n", hbp);
 442
 443	hbp_duration_ns = hbp * pixel_duration_ns;
 444	if (!bt601 &&
 445	    (hbp_duration_ns < params->hbp_ns.min ||
 446	     hbp_duration_ns > params->hbp_ns.max)) {
 447		drm_err(dev, "Invalid horizontal back porch duration: %uns (min: %u, max %u)\n",
 448			hbp_duration_ns, params->hbp_ns.min, params->hbp_ns.max);
 449		return -EINVAL;
 450	}
 451
 452	if (htotal != (hactive + hfp + hslen + hbp))
 453		return -EINVAL;
 454
 455	mode->clock = pixel_clock_hz / 1000;
 456	mode->hdisplay = hactive;
 457	mode->hsync_start = mode->hdisplay + hfp;
 458	mode->hsync_end = mode->hsync_start + hslen;
 459	mode->htotal = mode->hsync_end + hbp;
 460
 461	if (interlace) {
 462		vfp_min = params->vfp_lines.even + params->vfp_lines.odd;
 463		vbp_min = params->vbp_lines.even + params->vbp_lines.odd;
 464		vslen = params->vslen_lines.even + params->vslen_lines.odd;
 465	} else {
 466		/*
 467		 * By convention, NTSC (aka 525/60) systems start with
 468		 * the even field, but PAL (aka 625/50) systems start
 469		 * with the odd one.
 470		 *
 471		 * PAL systems also have asymmetric timings between the
 472		 * even and odd field, while NTSC is symmetric.
 473		 *
 474		 * Moreover, if we want to create a progressive mode for
 475		 * PAL, we need to use the odd field timings.
 476		 *
 477		 * Since odd == even for NTSC, we can just use the odd
 478		 * one all the time to simplify the code a bit.
 479		 */
 480		vfp_min = params->vfp_lines.odd;
 481		vbp_min = params->vbp_lines.odd;
 482		vslen = params->vslen_lines.odd;
 483	}
 484
 485	drm_dbg_kms(dev, "Vertical Sync Period: %u\n", vslen);
 486
 487	porches = params->num_lines - vactive - vslen;
 488	drm_dbg_kms(dev, "Remaining vertical pixels for both porches: %u\n", porches);
 489
 490	porches_rem = porches - vfp_min - vbp_min;
 491	vfp = vfp_min + (porches_rem / 2);
 492	drm_dbg_kms(dev, "Vertical Front Porch: %u\n", vfp);
 493
 494	vbp = porches - vfp;
 495	drm_dbg_kms(dev, "Vertical Back Porch: %u\n", vbp);
 496
 497	vtotal = vactive + vfp + vslen + vbp;
 498	if (params->num_lines != vtotal) {
 499		drm_err(dev, "Invalid vertical total: %upx (expected %upx)\n",
 500			vtotal, params->num_lines);
 501		return -EINVAL;
 502	}
 503
 504	mode->vdisplay = vactive;
 505	mode->vsync_start = mode->vdisplay + vfp;
 506	mode->vsync_end = mode->vsync_start + vslen;
 507	mode->vtotal = mode->vsync_end + vbp;
 508
 509	if (mode->vtotal != params->num_lines)
 510		return -EINVAL;
 511
 512	mode->type = DRM_MODE_TYPE_DRIVER;
 513	mode->flags = DRM_MODE_FLAG_NVSYNC | DRM_MODE_FLAG_NHSYNC;
 514	if (interlace)
 515		mode->flags |= DRM_MODE_FLAG_INTERLACE;
 516
 517	drm_mode_set_name(mode);
 518
 519	drm_dbg_kms(dev, "Generated mode " DRM_MODE_FMT "\n", DRM_MODE_ARG(mode));
 520
 521	return 0;
 522}
 523
 524/**
 525 * drm_analog_tv_mode - create a display mode for an analog TV
 526 * @dev: drm device
 527 * @tv_mode: TV Mode standard to create a mode for. See DRM_MODE_TV_MODE_*.
 528 * @pixel_clock_hz: Pixel Clock Frequency, in Hertz
 529 * @hdisplay: hdisplay size
 530 * @vdisplay: vdisplay size
 531 * @interlace: whether to compute an interlaced mode
 532 *
 533 * This function creates a struct drm_display_mode instance suited for
 534 * an analog TV output, for one of the usual analog TV modes. Where
 535 * this is DRM_MODE_TV_MODE_MONOCHROME, a 625-line mode will be created.
 536 *
 537 * Note that @hdisplay is larger than the usual constraints for the PAL
 538 * and NTSC timings, and we'll choose to ignore most timings constraints
 539 * to reach those resolutions.
 540 *
 541 * Returns:
 542 * A pointer to the mode, allocated with drm_mode_create(). Returns NULL
 543 * on error.
 544 */
 545struct drm_display_mode *drm_analog_tv_mode(struct drm_device *dev,
 546					    enum drm_connector_tv_mode tv_mode,
 547					    unsigned long pixel_clock_hz,
 548					    unsigned int hdisplay,
 549					    unsigned int vdisplay,
 550					    bool interlace)
 551{
 552	struct drm_display_mode *mode;
 553	enum drm_mode_analog analog;
 554	int ret;
 555
 556	switch (tv_mode) {
 557	case DRM_MODE_TV_MODE_NTSC:
 558		fallthrough;
 559	case DRM_MODE_TV_MODE_NTSC_443:
 560		fallthrough;
 561	case DRM_MODE_TV_MODE_NTSC_J:
 562		fallthrough;
 563	case DRM_MODE_TV_MODE_PAL_M:
 564		analog = DRM_MODE_ANALOG_NTSC;
 565		break;
 566
 567	case DRM_MODE_TV_MODE_PAL:
 568		fallthrough;
 569	case DRM_MODE_TV_MODE_PAL_N:
 570		fallthrough;
 571	case DRM_MODE_TV_MODE_SECAM:
 572		fallthrough;
 573	case DRM_MODE_TV_MODE_MONOCHROME:
 574		analog = DRM_MODE_ANALOG_PAL;
 575		break;
 576
 577	default:
 578		return NULL;
 579	}
 580
 581	mode = drm_mode_create(dev);
 582	if (!mode)
 583		return NULL;
 584
 585	ret = fill_analog_mode(dev, mode,
 586			       &tv_modes_parameters[analog],
 587			       pixel_clock_hz, hdisplay, vdisplay, interlace);
 588	if (ret)
 589		goto err_free_mode;
 590
 591	return mode;
 592
 593err_free_mode:
 594	drm_mode_destroy(dev, mode);
 595	return NULL;
 596}
 597EXPORT_SYMBOL(drm_analog_tv_mode);
 598
 599/**
 600 * drm_cvt_mode -create a modeline based on the CVT algorithm
 601 * @dev: drm device
 602 * @hdisplay: hdisplay size
 603 * @vdisplay: vdisplay size
 604 * @vrefresh: vrefresh rate
 605 * @reduced: whether to use reduced blanking
 606 * @interlaced: whether to compute an interlaced mode
 607 * @margins: whether to add margins (borders)
 608 *
 609 * This function is called to generate the modeline based on CVT algorithm
 610 * according to the hdisplay, vdisplay, vrefresh.
 611 * It is based from the VESA(TM) Coordinated Video Timing Generator by
 612 * Graham Loveridge April 9, 2003 available at
 613 * http://www.elo.utfsm.cl/~elo212/docs/CVTd6r1.xls
 614 *
 615 * And it is copied from xf86CVTmode in xserver/hw/xfree86/modes/xf86cvt.c.
 616 * What I have done is to translate it by using integer calculation.
 617 *
 618 * Returns:
 619 * The modeline based on the CVT algorithm stored in a drm_display_mode object.
 620 * The display mode object is allocated with drm_mode_create(). Returns NULL
 621 * when no mode could be allocated.
 622 */
 623struct drm_display_mode *drm_cvt_mode(struct drm_device *dev, int hdisplay,
 624				      int vdisplay, int vrefresh,
 625				      bool reduced, bool interlaced, bool margins)
 626{
 627#define HV_FACTOR			1000
 628	/* 1) top/bottom margin size (% of height) - default: 1.8, */
 629#define	CVT_MARGIN_PERCENTAGE		18
 630	/* 2) character cell horizontal granularity (pixels) - default 8 */
 631#define	CVT_H_GRANULARITY		8
 632	/* 3) Minimum vertical porch (lines) - default 3 */
 633#define	CVT_MIN_V_PORCH			3
 634	/* 4) Minimum number of vertical back porch lines - default 6 */
 635#define	CVT_MIN_V_BPORCH		6
 636	/* Pixel Clock step (kHz) */
 637#define CVT_CLOCK_STEP			250
 638	struct drm_display_mode *drm_mode;
 639	unsigned int vfieldrate, hperiod;
 640	int hdisplay_rnd, hmargin, vdisplay_rnd, vmargin, vsync;
 641	int interlace;
 642	u64 tmp;
 643
 644	if (!hdisplay || !vdisplay)
 645		return NULL;
 646
 647	/* allocate the drm_display_mode structure. If failure, we will
 648	 * return directly
 649	 */
 650	drm_mode = drm_mode_create(dev);
 651	if (!drm_mode)
 652		return NULL;
 653
 654	/* the CVT default refresh rate is 60Hz */
 655	if (!vrefresh)
 656		vrefresh = 60;
 657
 658	/* the required field fresh rate */
 659	if (interlaced)
 660		vfieldrate = vrefresh * 2;
 661	else
 662		vfieldrate = vrefresh;
 663
 664	/* horizontal pixels */
 665	hdisplay_rnd = hdisplay - (hdisplay % CVT_H_GRANULARITY);
 666
 667	/* determine the left&right borders */
 668	hmargin = 0;
 669	if (margins) {
 670		hmargin = hdisplay_rnd * CVT_MARGIN_PERCENTAGE / 1000;
 671		hmargin -= hmargin % CVT_H_GRANULARITY;
 672	}
 673	/* find the total active pixels */
 674	drm_mode->hdisplay = hdisplay_rnd + 2 * hmargin;
 675
 676	/* find the number of lines per field */
 677	if (interlaced)
 678		vdisplay_rnd = vdisplay / 2;
 679	else
 680		vdisplay_rnd = vdisplay;
 681
 682	/* find the top & bottom borders */
 683	vmargin = 0;
 684	if (margins)
 685		vmargin = vdisplay_rnd * CVT_MARGIN_PERCENTAGE / 1000;
 686
 687	drm_mode->vdisplay = vdisplay + 2 * vmargin;
 688
 689	/* Interlaced */
 690	if (interlaced)
 691		interlace = 1;
 692	else
 693		interlace = 0;
 694
 695	/* Determine VSync Width from aspect ratio */
 696	if (!(vdisplay % 3) && ((vdisplay * 4 / 3) == hdisplay))
 697		vsync = 4;
 698	else if (!(vdisplay % 9) && ((vdisplay * 16 / 9) == hdisplay))
 699		vsync = 5;
 700	else if (!(vdisplay % 10) && ((vdisplay * 16 / 10) == hdisplay))
 701		vsync = 6;
 702	else if (!(vdisplay % 4) && ((vdisplay * 5 / 4) == hdisplay))
 703		vsync = 7;
 704	else if (!(vdisplay % 9) && ((vdisplay * 15 / 9) == hdisplay))
 705		vsync = 7;
 706	else /* custom */
 707		vsync = 10;
 708
 709	if (!reduced) {
 710		/* simplify the GTF calculation */
 711		/* 4) Minimum time of vertical sync + back porch interval (µs)
 712		 * default 550.0
 713		 */
 714		int tmp1, tmp2;
 715#define CVT_MIN_VSYNC_BP	550
 716		/* 3) Nominal HSync width (% of line period) - default 8 */
 717#define CVT_HSYNC_PERCENTAGE	8
 718		unsigned int hblank_percentage;
 719		int vsyncandback_porch, __maybe_unused vback_porch, hblank;
 720
 721		/* estimated the horizontal period */
 722		tmp1 = HV_FACTOR * 1000000  -
 723				CVT_MIN_VSYNC_BP * HV_FACTOR * vfieldrate;
 724		tmp2 = (vdisplay_rnd + 2 * vmargin + CVT_MIN_V_PORCH) * 2 +
 725				interlace;
 726		hperiod = tmp1 * 2 / (tmp2 * vfieldrate);
 727
 728		tmp1 = CVT_MIN_VSYNC_BP * HV_FACTOR / hperiod + 1;
 729		/* 9. Find number of lines in sync + backporch */
 730		if (tmp1 < (vsync + CVT_MIN_V_PORCH))
 731			vsyncandback_porch = vsync + CVT_MIN_V_PORCH;
 732		else
 733			vsyncandback_porch = tmp1;
 734		/* 10. Find number of lines in back porch */
 735		vback_porch = vsyncandback_porch - vsync;
 736		drm_mode->vtotal = vdisplay_rnd + 2 * vmargin +
 737				vsyncandback_porch + CVT_MIN_V_PORCH;
 738		/* 5) Definition of Horizontal blanking time limitation */
 739		/* Gradient (%/kHz) - default 600 */
 740#define CVT_M_FACTOR	600
 741		/* Offset (%) - default 40 */
 742#define CVT_C_FACTOR	40
 743		/* Blanking time scaling factor - default 128 */
 744#define CVT_K_FACTOR	128
 745		/* Scaling factor weighting - default 20 */
 746#define CVT_J_FACTOR	20
 747#define CVT_M_PRIME	(CVT_M_FACTOR * CVT_K_FACTOR / 256)
 748#define CVT_C_PRIME	((CVT_C_FACTOR - CVT_J_FACTOR) * CVT_K_FACTOR / 256 + \
 749			 CVT_J_FACTOR)
 750		/* 12. Find ideal blanking duty cycle from formula */
 751		hblank_percentage = CVT_C_PRIME * HV_FACTOR - CVT_M_PRIME *
 752					hperiod / 1000;
 753		/* 13. Blanking time */
 754		if (hblank_percentage < 20 * HV_FACTOR)
 755			hblank_percentage = 20 * HV_FACTOR;
 756		hblank = drm_mode->hdisplay * hblank_percentage /
 757			 (100 * HV_FACTOR - hblank_percentage);
 758		hblank -= hblank % (2 * CVT_H_GRANULARITY);
 759		/* 14. find the total pixels per line */
 760		drm_mode->htotal = drm_mode->hdisplay + hblank;
 761		drm_mode->hsync_end = drm_mode->hdisplay + hblank / 2;
 762		drm_mode->hsync_start = drm_mode->hsync_end -
 763			(drm_mode->htotal * CVT_HSYNC_PERCENTAGE) / 100;
 764		drm_mode->hsync_start += CVT_H_GRANULARITY -
 765			drm_mode->hsync_start % CVT_H_GRANULARITY;
 766		/* fill the Vsync values */
 767		drm_mode->vsync_start = drm_mode->vdisplay + CVT_MIN_V_PORCH;
 768		drm_mode->vsync_end = drm_mode->vsync_start + vsync;
 769	} else {
 770		/* Reduced blanking */
 771		/* Minimum vertical blanking interval time (µs)- default 460 */
 772#define CVT_RB_MIN_VBLANK	460
 773		/* Fixed number of clocks for horizontal sync */
 774#define CVT_RB_H_SYNC		32
 775		/* Fixed number of clocks for horizontal blanking */
 776#define CVT_RB_H_BLANK		160
 777		/* Fixed number of lines for vertical front porch - default 3*/
 778#define CVT_RB_VFPORCH		3
 779		int vbilines;
 780		int tmp1, tmp2;
 781		/* 8. Estimate Horizontal period. */
 782		tmp1 = HV_FACTOR * 1000000 -
 783			CVT_RB_MIN_VBLANK * HV_FACTOR * vfieldrate;
 784		tmp2 = vdisplay_rnd + 2 * vmargin;
 785		hperiod = tmp1 / (tmp2 * vfieldrate);
 786		/* 9. Find number of lines in vertical blanking */
 787		vbilines = CVT_RB_MIN_VBLANK * HV_FACTOR / hperiod + 1;
 788		/* 10. Check if vertical blanking is sufficient */
 789		if (vbilines < (CVT_RB_VFPORCH + vsync + CVT_MIN_V_BPORCH))
 790			vbilines = CVT_RB_VFPORCH + vsync + CVT_MIN_V_BPORCH;
 791		/* 11. Find total number of lines in vertical field */
 792		drm_mode->vtotal = vdisplay_rnd + 2 * vmargin + vbilines;
 793		/* 12. Find total number of pixels in a line */
 794		drm_mode->htotal = drm_mode->hdisplay + CVT_RB_H_BLANK;
 795		/* Fill in HSync values */
 796		drm_mode->hsync_end = drm_mode->hdisplay + CVT_RB_H_BLANK / 2;
 797		drm_mode->hsync_start = drm_mode->hsync_end - CVT_RB_H_SYNC;
 798		/* Fill in VSync values */
 799		drm_mode->vsync_start = drm_mode->vdisplay + CVT_RB_VFPORCH;
 800		drm_mode->vsync_end = drm_mode->vsync_start + vsync;
 801	}
 802	/* 15/13. Find pixel clock frequency (kHz for xf86) */
 803	tmp = drm_mode->htotal; /* perform intermediate calcs in u64 */
 804	tmp *= HV_FACTOR * 1000;
 805	do_div(tmp, hperiod);
 806	tmp -= drm_mode->clock % CVT_CLOCK_STEP;
 807	drm_mode->clock = tmp;
 808	/* 18/16. Find actual vertical frame frequency */
 809	/* ignore - just set the mode flag for interlaced */
 810	if (interlaced) {
 811		drm_mode->vtotal *= 2;
 812		drm_mode->flags |= DRM_MODE_FLAG_INTERLACE;
 813	}
 814	/* Fill the mode line name */
 815	drm_mode_set_name(drm_mode);
 816	if (reduced)
 817		drm_mode->flags |= (DRM_MODE_FLAG_PHSYNC |
 818					DRM_MODE_FLAG_NVSYNC);
 819	else
 820		drm_mode->flags |= (DRM_MODE_FLAG_PVSYNC |
 821					DRM_MODE_FLAG_NHSYNC);
 822
 823	return drm_mode;
 824}
 825EXPORT_SYMBOL(drm_cvt_mode);
 826
 827/**
 828 * drm_gtf_mode_complex - create the modeline based on the full GTF algorithm
 829 * @dev: drm device
 830 * @hdisplay: hdisplay size
 831 * @vdisplay: vdisplay size
 832 * @vrefresh: vrefresh rate.
 833 * @interlaced: whether to compute an interlaced mode
 834 * @margins: desired margin (borders) size
 835 * @GTF_M: extended GTF formula parameters
 836 * @GTF_2C: extended GTF formula parameters
 837 * @GTF_K: extended GTF formula parameters
 838 * @GTF_2J: extended GTF formula parameters
 839 *
 840 * GTF feature blocks specify C and J in multiples of 0.5, so we pass them
 841 * in here multiplied by two.  For a C of 40, pass in 80.
 842 *
 843 * Returns:
 844 * The modeline based on the full GTF algorithm stored in a drm_display_mode object.
 845 * The display mode object is allocated with drm_mode_create(). Returns NULL
 846 * when no mode could be allocated.
 847 */
 848struct drm_display_mode *
 849drm_gtf_mode_complex(struct drm_device *dev, int hdisplay, int vdisplay,
 850		     int vrefresh, bool interlaced, int margins,
 851		     int GTF_M, int GTF_2C, int GTF_K, int GTF_2J)
 852{	/* 1) top/bottom margin size (% of height) - default: 1.8, */
 853#define	GTF_MARGIN_PERCENTAGE		18
 854	/* 2) character cell horizontal granularity (pixels) - default 8 */
 855#define	GTF_CELL_GRAN			8
 856	/* 3) Minimum vertical porch (lines) - default 3 */
 857#define	GTF_MIN_V_PORCH			1
 858	/* width of vsync in lines */
 859#define V_SYNC_RQD			3
 860	/* width of hsync as % of total line */
 861#define H_SYNC_PERCENT			8
 862	/* min time of vsync + back porch (microsec) */
 863#define MIN_VSYNC_PLUS_BP		550
 864	/* C' and M' are part of the Blanking Duty Cycle computation */
 865#define GTF_C_PRIME	((((GTF_2C - GTF_2J) * GTF_K / 256) + GTF_2J) / 2)
 866#define GTF_M_PRIME	(GTF_K * GTF_M / 256)
 867	struct drm_display_mode *drm_mode;
 868	unsigned int hdisplay_rnd, vdisplay_rnd, vfieldrate_rqd;
 869	int top_margin, bottom_margin;
 870	int interlace;
 871	unsigned int hfreq_est;
 872	int vsync_plus_bp, __maybe_unused vback_porch;
 873	unsigned int vtotal_lines, __maybe_unused vfieldrate_est;
 874	unsigned int __maybe_unused hperiod;
 875	unsigned int vfield_rate, __maybe_unused vframe_rate;
 876	int left_margin, right_margin;
 877	unsigned int total_active_pixels, ideal_duty_cycle;
 878	unsigned int hblank, total_pixels, pixel_freq;
 879	int hsync, hfront_porch, vodd_front_porch_lines;
 880	unsigned int tmp1, tmp2;
 881
 882	if (!hdisplay || !vdisplay)
 883		return NULL;
 884
 885	drm_mode = drm_mode_create(dev);
 886	if (!drm_mode)
 887		return NULL;
 888
 889	/* 1. In order to give correct results, the number of horizontal
 890	 * pixels requested is first processed to ensure that it is divisible
 891	 * by the character size, by rounding it to the nearest character
 892	 * cell boundary:
 893	 */
 894	hdisplay_rnd = (hdisplay + GTF_CELL_GRAN / 2) / GTF_CELL_GRAN;
 895	hdisplay_rnd = hdisplay_rnd * GTF_CELL_GRAN;
 896
 897	/* 2. If interlace is requested, the number of vertical lines assumed
 898	 * by the calculation must be halved, as the computation calculates
 899	 * the number of vertical lines per field.
 900	 */
 901	if (interlaced)
 902		vdisplay_rnd = vdisplay / 2;
 903	else
 904		vdisplay_rnd = vdisplay;
 905
 906	/* 3. Find the frame rate required: */
 907	if (interlaced)
 908		vfieldrate_rqd = vrefresh * 2;
 909	else
 910		vfieldrate_rqd = vrefresh;
 911
 912	/* 4. Find number of lines in Top margin: */
 913	top_margin = 0;
 914	if (margins)
 915		top_margin = (vdisplay_rnd * GTF_MARGIN_PERCENTAGE + 500) /
 916				1000;
 917	/* 5. Find number of lines in bottom margin: */
 918	bottom_margin = top_margin;
 919
 920	/* 6. If interlace is required, then set variable interlace: */
 921	if (interlaced)
 922		interlace = 1;
 923	else
 924		interlace = 0;
 925
 926	/* 7. Estimate the Horizontal frequency */
 927	{
 928		tmp1 = (1000000  - MIN_VSYNC_PLUS_BP * vfieldrate_rqd) / 500;
 929		tmp2 = (vdisplay_rnd + 2 * top_margin + GTF_MIN_V_PORCH) *
 930				2 + interlace;
 931		hfreq_est = (tmp2 * 1000 * vfieldrate_rqd) / tmp1;
 932	}
 933
 934	/* 8. Find the number of lines in V sync + back porch */
 935	/* [V SYNC+BP] = RINT(([MIN VSYNC+BP] * hfreq_est / 1000000)) */
 936	vsync_plus_bp = MIN_VSYNC_PLUS_BP * hfreq_est / 1000;
 937	vsync_plus_bp = (vsync_plus_bp + 500) / 1000;
 938	/*  9. Find the number of lines in V back porch alone: */
 939	vback_porch = vsync_plus_bp - V_SYNC_RQD;
 940	/*  10. Find the total number of lines in Vertical field period: */
 941	vtotal_lines = vdisplay_rnd + top_margin + bottom_margin +
 942			vsync_plus_bp + GTF_MIN_V_PORCH;
 943	/*  11. Estimate the Vertical field frequency: */
 944	vfieldrate_est = hfreq_est / vtotal_lines;
 945	/*  12. Find the actual horizontal period: */
 946	hperiod = 1000000 / (vfieldrate_rqd * vtotal_lines);
 947
 948	/*  13. Find the actual Vertical field frequency: */
 949	vfield_rate = hfreq_est / vtotal_lines;
 950	/*  14. Find the Vertical frame frequency: */
 951	if (interlaced)
 952		vframe_rate = vfield_rate / 2;
 953	else
 954		vframe_rate = vfield_rate;
 955	/*  15. Find number of pixels in left margin: */
 956	if (margins)
 957		left_margin = (hdisplay_rnd * GTF_MARGIN_PERCENTAGE + 500) /
 958				1000;
 959	else
 960		left_margin = 0;
 961
 962	/* 16.Find number of pixels in right margin: */
 963	right_margin = left_margin;
 964	/* 17.Find total number of active pixels in image and left and right */
 965	total_active_pixels = hdisplay_rnd + left_margin + right_margin;
 966	/* 18.Find the ideal blanking duty cycle from blanking duty cycle */
 967	ideal_duty_cycle = GTF_C_PRIME * 1000 -
 968				(GTF_M_PRIME * 1000000 / hfreq_est);
 969	/* 19.Find the number of pixels in the blanking time to the nearest
 970	 * double character cell: */
 971	hblank = total_active_pixels * ideal_duty_cycle /
 972			(100000 - ideal_duty_cycle);
 973	hblank = (hblank + GTF_CELL_GRAN) / (2 * GTF_CELL_GRAN);
 974	hblank = hblank * 2 * GTF_CELL_GRAN;
 975	/* 20.Find total number of pixels: */
 976	total_pixels = total_active_pixels + hblank;
 977	/* 21.Find pixel clock frequency: */
 978	pixel_freq = total_pixels * hfreq_est / 1000;
 979	/* Stage 1 computations are now complete; I should really pass
 980	 * the results to another function and do the Stage 2 computations,
 981	 * but I only need a few more values so I'll just append the
 982	 * computations here for now */
 983	/* 17. Find the number of pixels in the horizontal sync period: */
 984	hsync = H_SYNC_PERCENT * total_pixels / 100;
 985	hsync = (hsync + GTF_CELL_GRAN / 2) / GTF_CELL_GRAN;
 986	hsync = hsync * GTF_CELL_GRAN;
 987	/* 18. Find the number of pixels in horizontal front porch period */
 988	hfront_porch = hblank / 2 - hsync;
 989	/*  36. Find the number of lines in the odd front porch period: */
 990	vodd_front_porch_lines = GTF_MIN_V_PORCH ;
 991
 992	/* finally, pack the results in the mode struct */
 993	drm_mode->hdisplay = hdisplay_rnd;
 994	drm_mode->hsync_start = hdisplay_rnd + hfront_porch;
 995	drm_mode->hsync_end = drm_mode->hsync_start + hsync;
 996	drm_mode->htotal = total_pixels;
 997	drm_mode->vdisplay = vdisplay_rnd;
 998	drm_mode->vsync_start = vdisplay_rnd + vodd_front_porch_lines;
 999	drm_mode->vsync_end = drm_mode->vsync_start + V_SYNC_RQD;
1000	drm_mode->vtotal = vtotal_lines;
1001
1002	drm_mode->clock = pixel_freq;
1003
1004	if (interlaced) {
1005		drm_mode->vtotal *= 2;
1006		drm_mode->flags |= DRM_MODE_FLAG_INTERLACE;
1007	}
1008
1009	drm_mode_set_name(drm_mode);
1010	if (GTF_M == 600 && GTF_2C == 80 && GTF_K == 128 && GTF_2J == 40)
1011		drm_mode->flags = DRM_MODE_FLAG_NHSYNC | DRM_MODE_FLAG_PVSYNC;
1012	else
1013		drm_mode->flags = DRM_MODE_FLAG_PHSYNC | DRM_MODE_FLAG_NVSYNC;
1014
1015	return drm_mode;
1016}
1017EXPORT_SYMBOL(drm_gtf_mode_complex);
1018
1019/**
1020 * drm_gtf_mode - create the modeline based on the GTF algorithm
1021 * @dev: drm device
1022 * @hdisplay: hdisplay size
1023 * @vdisplay: vdisplay size
1024 * @vrefresh: vrefresh rate.
1025 * @interlaced: whether to compute an interlaced mode
1026 * @margins: desired margin (borders) size
1027 *
1028 * return the modeline based on GTF algorithm
1029 *
1030 * This function is to create the modeline based on the GTF algorithm.
1031 * Generalized Timing Formula is derived from:
1032 *
1033 *	GTF Spreadsheet by Andy Morrish (1/5/97)
1034 *	available at https://www.vesa.org
1035 *
1036 * And it is copied from the file of xserver/hw/xfree86/modes/xf86gtf.c.
1037 * What I have done is to translate it by using integer calculation.
1038 * I also refer to the function of fb_get_mode in the file of
1039 * drivers/video/fbmon.c
1040 *
1041 * Standard GTF parameters::
1042 *
1043 *     M = 600
1044 *     C = 40
1045 *     K = 128
1046 *     J = 20
1047 *
1048 * Returns:
1049 * The modeline based on the GTF algorithm stored in a drm_display_mode object.
1050 * The display mode object is allocated with drm_mode_create(). Returns NULL
1051 * when no mode could be allocated.
1052 */
1053struct drm_display_mode *
1054drm_gtf_mode(struct drm_device *dev, int hdisplay, int vdisplay, int vrefresh,
1055	     bool interlaced, int margins)
1056{
1057	return drm_gtf_mode_complex(dev, hdisplay, vdisplay, vrefresh,
1058				    interlaced, margins,
1059				    600, 40 * 2, 128, 20 * 2);
1060}
1061EXPORT_SYMBOL(drm_gtf_mode);
1062
1063#ifdef CONFIG_VIDEOMODE_HELPERS
1064/**
1065 * drm_display_mode_from_videomode - fill in @dmode using @vm,
1066 * @vm: videomode structure to use as source
1067 * @dmode: drm_display_mode structure to use as destination
1068 *
1069 * Fills out @dmode using the display mode specified in @vm.
1070 */
1071void drm_display_mode_from_videomode(const struct videomode *vm,
1072				     struct drm_display_mode *dmode)
1073{
1074	dmode->hdisplay = vm->hactive;
1075	dmode->hsync_start = dmode->hdisplay + vm->hfront_porch;
1076	dmode->hsync_end = dmode->hsync_start + vm->hsync_len;
1077	dmode->htotal = dmode->hsync_end + vm->hback_porch;
1078
1079	dmode->vdisplay = vm->vactive;
1080	dmode->vsync_start = dmode->vdisplay + vm->vfront_porch;
1081	dmode->vsync_end = dmode->vsync_start + vm->vsync_len;
1082	dmode->vtotal = dmode->vsync_end + vm->vback_porch;
1083
1084	dmode->clock = vm->pixelclock / 1000;
1085
1086	dmode->flags = 0;
1087	if (vm->flags & DISPLAY_FLAGS_HSYNC_HIGH)
1088		dmode->flags |= DRM_MODE_FLAG_PHSYNC;
1089	else if (vm->flags & DISPLAY_FLAGS_HSYNC_LOW)
1090		dmode->flags |= DRM_MODE_FLAG_NHSYNC;
1091	if (vm->flags & DISPLAY_FLAGS_VSYNC_HIGH)
1092		dmode->flags |= DRM_MODE_FLAG_PVSYNC;
1093	else if (vm->flags & DISPLAY_FLAGS_VSYNC_LOW)
1094		dmode->flags |= DRM_MODE_FLAG_NVSYNC;
1095	if (vm->flags & DISPLAY_FLAGS_INTERLACED)
1096		dmode->flags |= DRM_MODE_FLAG_INTERLACE;
1097	if (vm->flags & DISPLAY_FLAGS_DOUBLESCAN)
1098		dmode->flags |= DRM_MODE_FLAG_DBLSCAN;
1099	if (vm->flags & DISPLAY_FLAGS_DOUBLECLK)
1100		dmode->flags |= DRM_MODE_FLAG_DBLCLK;
1101	drm_mode_set_name(dmode);
1102}
1103EXPORT_SYMBOL_GPL(drm_display_mode_from_videomode);
1104
1105/**
1106 * drm_display_mode_to_videomode - fill in @vm using @dmode,
1107 * @dmode: drm_display_mode structure to use as source
1108 * @vm: videomode structure to use as destination
1109 *
1110 * Fills out @vm using the display mode specified in @dmode.
1111 */
1112void drm_display_mode_to_videomode(const struct drm_display_mode *dmode,
1113				   struct videomode *vm)
1114{
1115	vm->hactive = dmode->hdisplay;
1116	vm->hfront_porch = dmode->hsync_start - dmode->hdisplay;
1117	vm->hsync_len = dmode->hsync_end - dmode->hsync_start;
1118	vm->hback_porch = dmode->htotal - dmode->hsync_end;
1119
1120	vm->vactive = dmode->vdisplay;
1121	vm->vfront_porch = dmode->vsync_start - dmode->vdisplay;
1122	vm->vsync_len = dmode->vsync_end - dmode->vsync_start;
1123	vm->vback_porch = dmode->vtotal - dmode->vsync_end;
1124
1125	vm->pixelclock = dmode->clock * 1000;
1126
1127	vm->flags = 0;
1128	if (dmode->flags & DRM_MODE_FLAG_PHSYNC)
1129		vm->flags |= DISPLAY_FLAGS_HSYNC_HIGH;
1130	else if (dmode->flags & DRM_MODE_FLAG_NHSYNC)
1131		vm->flags |= DISPLAY_FLAGS_HSYNC_LOW;
1132	if (dmode->flags & DRM_MODE_FLAG_PVSYNC)
1133		vm->flags |= DISPLAY_FLAGS_VSYNC_HIGH;
1134	else if (dmode->flags & DRM_MODE_FLAG_NVSYNC)
1135		vm->flags |= DISPLAY_FLAGS_VSYNC_LOW;
1136	if (dmode->flags & DRM_MODE_FLAG_INTERLACE)
1137		vm->flags |= DISPLAY_FLAGS_INTERLACED;
1138	if (dmode->flags & DRM_MODE_FLAG_DBLSCAN)
1139		vm->flags |= DISPLAY_FLAGS_DOUBLESCAN;
1140	if (dmode->flags & DRM_MODE_FLAG_DBLCLK)
1141		vm->flags |= DISPLAY_FLAGS_DOUBLECLK;
1142}
1143EXPORT_SYMBOL_GPL(drm_display_mode_to_videomode);
1144
1145/**
1146 * drm_bus_flags_from_videomode - extract information about pixelclk and
1147 * DE polarity from videomode and store it in a separate variable
1148 * @vm: videomode structure to use
1149 * @bus_flags: information about pixelclk, sync and DE polarity will be stored
1150 * here
1151 *
1152 * Sets DRM_BUS_FLAG_DE_(LOW|HIGH),  DRM_BUS_FLAG_PIXDATA_DRIVE_(POS|NEG)EDGE
1153 * and DISPLAY_FLAGS_SYNC_(POS|NEG)EDGE in @bus_flags according to DISPLAY_FLAGS
1154 * found in @vm
1155 */
1156void drm_bus_flags_from_videomode(const struct videomode *vm, u32 *bus_flags)
1157{
1158	*bus_flags = 0;
1159	if (vm->flags & DISPLAY_FLAGS_PIXDATA_POSEDGE)
1160		*bus_flags |= DRM_BUS_FLAG_PIXDATA_DRIVE_POSEDGE;
1161	if (vm->flags & DISPLAY_FLAGS_PIXDATA_NEGEDGE)
1162		*bus_flags |= DRM_BUS_FLAG_PIXDATA_DRIVE_NEGEDGE;
1163
1164	if (vm->flags & DISPLAY_FLAGS_SYNC_POSEDGE)
1165		*bus_flags |= DRM_BUS_FLAG_SYNC_DRIVE_POSEDGE;
1166	if (vm->flags & DISPLAY_FLAGS_SYNC_NEGEDGE)
1167		*bus_flags |= DRM_BUS_FLAG_SYNC_DRIVE_NEGEDGE;
1168
1169	if (vm->flags & DISPLAY_FLAGS_DE_LOW)
1170		*bus_flags |= DRM_BUS_FLAG_DE_LOW;
1171	if (vm->flags & DISPLAY_FLAGS_DE_HIGH)
1172		*bus_flags |= DRM_BUS_FLAG_DE_HIGH;
1173}
1174EXPORT_SYMBOL_GPL(drm_bus_flags_from_videomode);
1175
1176#ifdef CONFIG_OF
1177/**
1178 * of_get_drm_display_mode - get a drm_display_mode from devicetree
1179 * @np: device_node with the timing specification
1180 * @dmode: will be set to the return value
1181 * @bus_flags: information about pixelclk, sync and DE polarity
1182 * @index: index into the list of display timings in devicetree
1183 *
1184 * This function is expensive and should only be used, if only one mode is to be
1185 * read from DT. To get multiple modes start with of_get_display_timings and
1186 * work with that instead.
1187 *
1188 * Returns:
1189 * 0 on success, a negative errno code when no of videomode node was found.
1190 */
1191int of_get_drm_display_mode(struct device_node *np,
1192			    struct drm_display_mode *dmode, u32 *bus_flags,
1193			    int index)
1194{
1195	struct videomode vm;
1196	int ret;
1197
1198	ret = of_get_videomode(np, &vm, index);
1199	if (ret)
1200		return ret;
1201
1202	drm_display_mode_from_videomode(&vm, dmode);
1203	if (bus_flags)
1204		drm_bus_flags_from_videomode(&vm, bus_flags);
1205
1206	pr_debug("%pOF: got %dx%d display mode: " DRM_MODE_FMT "\n",
1207		 np, vm.hactive, vm.vactive, DRM_MODE_ARG(dmode));
 
1208
1209	return 0;
1210}
1211EXPORT_SYMBOL_GPL(of_get_drm_display_mode);
1212
1213/**
1214 * of_get_drm_panel_display_mode - get a panel-timing drm_display_mode from devicetree
1215 * @np: device_node with the panel-timing specification
1216 * @dmode: will be set to the return value
1217 * @bus_flags: information about pixelclk, sync and DE polarity
1218 *
1219 * The mandatory Device Tree properties width-mm and height-mm
1220 * are read and set on the display mode.
1221 *
1222 * Returns:
1223 * Zero on success, negative error code on failure.
1224 */
1225int of_get_drm_panel_display_mode(struct device_node *np,
1226				  struct drm_display_mode *dmode, u32 *bus_flags)
1227{
1228	u32 width_mm = 0, height_mm = 0;
1229	struct display_timing timing;
1230	struct videomode vm;
1231	int ret;
1232
1233	ret = of_get_display_timing(np, "panel-timing", &timing);
1234	if (ret)
1235		return ret;
1236
1237	videomode_from_timing(&timing, &vm);
1238
1239	memset(dmode, 0, sizeof(*dmode));
1240	drm_display_mode_from_videomode(&vm, dmode);
1241	if (bus_flags)
1242		drm_bus_flags_from_videomode(&vm, bus_flags);
1243
1244	ret = of_property_read_u32(np, "width-mm", &width_mm);
1245	if (ret)
1246		return ret;
1247
1248	ret = of_property_read_u32(np, "height-mm", &height_mm);
1249	if (ret)
1250		return ret;
1251
1252	dmode->width_mm = width_mm;
1253	dmode->height_mm = height_mm;
1254
1255	pr_debug(DRM_MODE_FMT "\n", DRM_MODE_ARG(dmode));
1256
1257	return 0;
1258}
1259EXPORT_SYMBOL_GPL(of_get_drm_panel_display_mode);
1260#endif /* CONFIG_OF */
1261#endif /* CONFIG_VIDEOMODE_HELPERS */
1262
1263/**
1264 * drm_mode_set_name - set the name on a mode
1265 * @mode: name will be set in this mode
1266 *
1267 * Set the name of @mode to a standard format which is <hdisplay>x<vdisplay>
1268 * with an optional 'i' suffix for interlaced modes.
1269 */
1270void drm_mode_set_name(struct drm_display_mode *mode)
1271{
1272	bool interlaced = !!(mode->flags & DRM_MODE_FLAG_INTERLACE);
1273
1274	snprintf(mode->name, DRM_DISPLAY_MODE_LEN, "%dx%d%s",
1275		 mode->hdisplay, mode->vdisplay,
1276		 interlaced ? "i" : "");
1277}
1278EXPORT_SYMBOL(drm_mode_set_name);
1279
1280/**
1281 * drm_mode_vrefresh - get the vrefresh of a mode
1282 * @mode: mode
1283 *
1284 * Returns:
1285 * @modes's vrefresh rate in Hz, rounded to the nearest integer. Calculates the
1286 * value first if it is not yet set.
1287 */
1288int drm_mode_vrefresh(const struct drm_display_mode *mode)
1289{
1290	unsigned int num = 1, den = 1;
1291
1292	if (mode->htotal == 0 || mode->vtotal == 0)
1293		return 0;
1294
 
 
 
1295	if (mode->flags & DRM_MODE_FLAG_INTERLACE)
1296		num *= 2;
1297	if (mode->flags & DRM_MODE_FLAG_DBLSCAN)
1298		den *= 2;
1299	if (mode->vscan > 1)
1300		den *= mode->vscan;
1301
1302	if (check_mul_overflow(mode->clock, num, &num))
1303		return 0;
1304
1305	if (check_mul_overflow(mode->htotal * mode->vtotal, den, &den))
1306		return 0;
1307
1308	return DIV_ROUND_CLOSEST_ULL(mul_u32_u32(num, 1000), den);
1309}
1310EXPORT_SYMBOL(drm_mode_vrefresh);
1311
1312/**
1313 * drm_mode_get_hv_timing - Fetches hdisplay/vdisplay for given mode
1314 * @mode: mode to query
1315 * @hdisplay: hdisplay value to fill in
1316 * @vdisplay: vdisplay value to fill in
1317 *
1318 * The vdisplay value will be doubled if the specified mode is a stereo mode of
1319 * the appropriate layout.
1320 */
1321void drm_mode_get_hv_timing(const struct drm_display_mode *mode,
1322			    int *hdisplay, int *vdisplay)
1323{
1324	struct drm_display_mode adjusted;
1325
1326	drm_mode_init(&adjusted, mode);
1327
1328	drm_mode_set_crtcinfo(&adjusted, CRTC_STEREO_DOUBLE_ONLY);
1329	*hdisplay = adjusted.crtc_hdisplay;
1330	*vdisplay = adjusted.crtc_vdisplay;
1331}
1332EXPORT_SYMBOL(drm_mode_get_hv_timing);
1333
1334/**
1335 * drm_mode_set_crtcinfo - set CRTC modesetting timing parameters
1336 * @p: mode
1337 * @adjust_flags: a combination of adjustment flags
1338 *
1339 * Setup the CRTC modesetting timing parameters for @p, adjusting if necessary.
1340 *
1341 * - The CRTC_INTERLACE_HALVE_V flag can be used to halve vertical timings of
1342 *   interlaced modes.
1343 * - The CRTC_STEREO_DOUBLE flag can be used to compute the timings for
1344 *   buffers containing two eyes (only adjust the timings when needed, eg. for
1345 *   "frame packing" or "side by side full").
1346 * - The CRTC_NO_DBLSCAN and CRTC_NO_VSCAN flags request that adjustment *not*
1347 *   be performed for doublescan and vscan > 1 modes respectively.
1348 */
1349void drm_mode_set_crtcinfo(struct drm_display_mode *p, int adjust_flags)
1350{
1351	if (!p)
1352		return;
1353
1354	p->crtc_clock = p->clock;
1355	p->crtc_hdisplay = p->hdisplay;
1356	p->crtc_hsync_start = p->hsync_start;
1357	p->crtc_hsync_end = p->hsync_end;
1358	p->crtc_htotal = p->htotal;
1359	p->crtc_hskew = p->hskew;
1360	p->crtc_vdisplay = p->vdisplay;
1361	p->crtc_vsync_start = p->vsync_start;
1362	p->crtc_vsync_end = p->vsync_end;
1363	p->crtc_vtotal = p->vtotal;
1364
1365	if (p->flags & DRM_MODE_FLAG_INTERLACE) {
1366		if (adjust_flags & CRTC_INTERLACE_HALVE_V) {
1367			p->crtc_vdisplay /= 2;
1368			p->crtc_vsync_start /= 2;
1369			p->crtc_vsync_end /= 2;
1370			p->crtc_vtotal /= 2;
1371		}
1372	}
1373
1374	if (!(adjust_flags & CRTC_NO_DBLSCAN)) {
1375		if (p->flags & DRM_MODE_FLAG_DBLSCAN) {
1376			p->crtc_vdisplay *= 2;
1377			p->crtc_vsync_start *= 2;
1378			p->crtc_vsync_end *= 2;
1379			p->crtc_vtotal *= 2;
1380		}
1381	}
1382
1383	if (!(adjust_flags & CRTC_NO_VSCAN)) {
1384		if (p->vscan > 1) {
1385			p->crtc_vdisplay *= p->vscan;
1386			p->crtc_vsync_start *= p->vscan;
1387			p->crtc_vsync_end *= p->vscan;
1388			p->crtc_vtotal *= p->vscan;
1389		}
1390	}
1391
1392	if (adjust_flags & CRTC_STEREO_DOUBLE) {
1393		unsigned int layout = p->flags & DRM_MODE_FLAG_3D_MASK;
1394
1395		switch (layout) {
1396		case DRM_MODE_FLAG_3D_FRAME_PACKING:
1397			p->crtc_clock *= 2;
1398			p->crtc_vdisplay += p->crtc_vtotal;
1399			p->crtc_vsync_start += p->crtc_vtotal;
1400			p->crtc_vsync_end += p->crtc_vtotal;
1401			p->crtc_vtotal += p->crtc_vtotal;
1402			break;
1403		}
1404	}
1405
1406	p->crtc_vblank_start = min(p->crtc_vsync_start, p->crtc_vdisplay);
1407	p->crtc_vblank_end = max(p->crtc_vsync_end, p->crtc_vtotal);
1408	p->crtc_hblank_start = min(p->crtc_hsync_start, p->crtc_hdisplay);
1409	p->crtc_hblank_end = max(p->crtc_hsync_end, p->crtc_htotal);
1410}
1411EXPORT_SYMBOL(drm_mode_set_crtcinfo);
1412
1413/**
1414 * drm_mode_copy - copy the mode
1415 * @dst: mode to overwrite
1416 * @src: mode to copy
1417 *
1418 * Copy an existing mode into another mode, preserving the
1419 * list head of the destination mode.
1420 */
1421void drm_mode_copy(struct drm_display_mode *dst, const struct drm_display_mode *src)
1422{
1423	struct list_head head = dst->head;
1424
1425	*dst = *src;
1426	dst->head = head;
1427}
1428EXPORT_SYMBOL(drm_mode_copy);
1429
1430/**
1431 * drm_mode_init - initialize the mode from another mode
1432 * @dst: mode to overwrite
1433 * @src: mode to copy
1434 *
1435 * Copy an existing mode into another mode, zeroing the
1436 * list head of the destination mode. Typically used
1437 * to guarantee the list head is not left with stack
1438 * garbage in on-stack modes.
1439 */
1440void drm_mode_init(struct drm_display_mode *dst, const struct drm_display_mode *src)
1441{
1442	memset(dst, 0, sizeof(*dst));
1443	drm_mode_copy(dst, src);
1444}
1445EXPORT_SYMBOL(drm_mode_init);
1446
1447/**
1448 * drm_mode_duplicate - allocate and duplicate an existing mode
1449 * @dev: drm_device to allocate the duplicated mode for
1450 * @mode: mode to duplicate
1451 *
1452 * Just allocate a new mode, copy the existing mode into it, and return
1453 * a pointer to it.  Used to create new instances of established modes.
1454 *
1455 * Returns:
1456 * Pointer to duplicated mode on success, NULL on error.
1457 */
1458struct drm_display_mode *drm_mode_duplicate(struct drm_device *dev,
1459					    const struct drm_display_mode *mode)
1460{
1461	struct drm_display_mode *nmode;
1462
1463	nmode = drm_mode_create(dev);
1464	if (!nmode)
1465		return NULL;
1466
1467	drm_mode_copy(nmode, mode);
1468
1469	return nmode;
1470}
1471EXPORT_SYMBOL(drm_mode_duplicate);
1472
1473static bool drm_mode_match_timings(const struct drm_display_mode *mode1,
1474				   const struct drm_display_mode *mode2)
1475{
1476	return mode1->hdisplay == mode2->hdisplay &&
1477		mode1->hsync_start == mode2->hsync_start &&
1478		mode1->hsync_end == mode2->hsync_end &&
1479		mode1->htotal == mode2->htotal &&
1480		mode1->hskew == mode2->hskew &&
1481		mode1->vdisplay == mode2->vdisplay &&
1482		mode1->vsync_start == mode2->vsync_start &&
1483		mode1->vsync_end == mode2->vsync_end &&
1484		mode1->vtotal == mode2->vtotal &&
1485		mode1->vscan == mode2->vscan;
1486}
1487
1488static bool drm_mode_match_clock(const struct drm_display_mode *mode1,
1489				  const struct drm_display_mode *mode2)
1490{
1491	/*
1492	 * do clock check convert to PICOS
1493	 * so fb modes get matched the same
1494	 */
1495	if (mode1->clock && mode2->clock)
1496		return KHZ2PICOS(mode1->clock) == KHZ2PICOS(mode2->clock);
1497	else
1498		return mode1->clock == mode2->clock;
1499}
1500
1501static bool drm_mode_match_flags(const struct drm_display_mode *mode1,
1502				 const struct drm_display_mode *mode2)
1503{
1504	return (mode1->flags & ~DRM_MODE_FLAG_3D_MASK) ==
1505		(mode2->flags & ~DRM_MODE_FLAG_3D_MASK);
1506}
1507
1508static bool drm_mode_match_3d_flags(const struct drm_display_mode *mode1,
1509				    const struct drm_display_mode *mode2)
1510{
1511	return (mode1->flags & DRM_MODE_FLAG_3D_MASK) ==
1512		(mode2->flags & DRM_MODE_FLAG_3D_MASK);
1513}
1514
1515static bool drm_mode_match_aspect_ratio(const struct drm_display_mode *mode1,
1516					const struct drm_display_mode *mode2)
1517{
1518	return mode1->picture_aspect_ratio == mode2->picture_aspect_ratio;
1519}
1520
1521/**
1522 * drm_mode_match - test modes for (partial) equality
1523 * @mode1: first mode
1524 * @mode2: second mode
1525 * @match_flags: which parts need to match (DRM_MODE_MATCH_*)
1526 *
1527 * Check to see if @mode1 and @mode2 are equivalent.
1528 *
1529 * Returns:
1530 * True if the modes are (partially) equal, false otherwise.
1531 */
1532bool drm_mode_match(const struct drm_display_mode *mode1,
1533		    const struct drm_display_mode *mode2,
1534		    unsigned int match_flags)
1535{
1536	if (!mode1 && !mode2)
1537		return true;
1538
1539	if (!mode1 || !mode2)
1540		return false;
1541
1542	if (match_flags & DRM_MODE_MATCH_TIMINGS &&
1543	    !drm_mode_match_timings(mode1, mode2))
1544		return false;
1545
1546	if (match_flags & DRM_MODE_MATCH_CLOCK &&
1547	    !drm_mode_match_clock(mode1, mode2))
1548		return false;
1549
1550	if (match_flags & DRM_MODE_MATCH_FLAGS &&
1551	    !drm_mode_match_flags(mode1, mode2))
1552		return false;
1553
1554	if (match_flags & DRM_MODE_MATCH_3D_FLAGS &&
1555	    !drm_mode_match_3d_flags(mode1, mode2))
1556		return false;
1557
1558	if (match_flags & DRM_MODE_MATCH_ASPECT_RATIO &&
1559	    !drm_mode_match_aspect_ratio(mode1, mode2))
1560		return false;
1561
1562	return true;
1563}
1564EXPORT_SYMBOL(drm_mode_match);
1565
1566/**
1567 * drm_mode_equal - test modes for equality
1568 * @mode1: first mode
1569 * @mode2: second mode
1570 *
1571 * Check to see if @mode1 and @mode2 are equivalent.
1572 *
1573 * Returns:
1574 * True if the modes are equal, false otherwise.
1575 */
1576bool drm_mode_equal(const struct drm_display_mode *mode1,
1577		    const struct drm_display_mode *mode2)
1578{
1579	return drm_mode_match(mode1, mode2,
1580			      DRM_MODE_MATCH_TIMINGS |
1581			      DRM_MODE_MATCH_CLOCK |
1582			      DRM_MODE_MATCH_FLAGS |
1583			      DRM_MODE_MATCH_3D_FLAGS|
1584			      DRM_MODE_MATCH_ASPECT_RATIO);
1585}
1586EXPORT_SYMBOL(drm_mode_equal);
1587
1588/**
1589 * drm_mode_equal_no_clocks - test modes for equality
1590 * @mode1: first mode
1591 * @mode2: second mode
1592 *
1593 * Check to see if @mode1 and @mode2 are equivalent, but
1594 * don't check the pixel clocks.
1595 *
1596 * Returns:
1597 * True if the modes are equal, false otherwise.
1598 */
1599bool drm_mode_equal_no_clocks(const struct drm_display_mode *mode1,
1600			      const struct drm_display_mode *mode2)
1601{
1602	return drm_mode_match(mode1, mode2,
1603			      DRM_MODE_MATCH_TIMINGS |
1604			      DRM_MODE_MATCH_FLAGS |
1605			      DRM_MODE_MATCH_3D_FLAGS);
1606}
1607EXPORT_SYMBOL(drm_mode_equal_no_clocks);
1608
1609/**
1610 * drm_mode_equal_no_clocks_no_stereo - test modes for equality
1611 * @mode1: first mode
1612 * @mode2: second mode
1613 *
1614 * Check to see if @mode1 and @mode2 are equivalent, but
1615 * don't check the pixel clocks nor the stereo layout.
1616 *
1617 * Returns:
1618 * True if the modes are equal, false otherwise.
1619 */
1620bool drm_mode_equal_no_clocks_no_stereo(const struct drm_display_mode *mode1,
1621					const struct drm_display_mode *mode2)
1622{
1623	return drm_mode_match(mode1, mode2,
1624			      DRM_MODE_MATCH_TIMINGS |
1625			      DRM_MODE_MATCH_FLAGS);
1626}
1627EXPORT_SYMBOL(drm_mode_equal_no_clocks_no_stereo);
1628
1629static enum drm_mode_status
1630drm_mode_validate_basic(const struct drm_display_mode *mode)
1631{
1632	if (mode->type & ~DRM_MODE_TYPE_ALL)
1633		return MODE_BAD;
1634
1635	if (mode->flags & ~DRM_MODE_FLAG_ALL)
1636		return MODE_BAD;
1637
1638	if ((mode->flags & DRM_MODE_FLAG_3D_MASK) > DRM_MODE_FLAG_3D_MAX)
1639		return MODE_BAD;
1640
1641	if (mode->clock == 0)
1642		return MODE_CLOCK_LOW;
1643
1644	if (mode->hdisplay == 0 ||
1645	    mode->hsync_start < mode->hdisplay ||
1646	    mode->hsync_end < mode->hsync_start ||
1647	    mode->htotal < mode->hsync_end)
1648		return MODE_H_ILLEGAL;
1649
1650	if (mode->vdisplay == 0 ||
1651	    mode->vsync_start < mode->vdisplay ||
1652	    mode->vsync_end < mode->vsync_start ||
1653	    mode->vtotal < mode->vsync_end)
1654		return MODE_V_ILLEGAL;
1655
1656	return MODE_OK;
1657}
1658
1659/**
1660 * drm_mode_validate_driver - make sure the mode is somewhat sane
1661 * @dev: drm device
1662 * @mode: mode to check
1663 *
1664 * First do basic validation on the mode, and then allow the driver
1665 * to check for device/driver specific limitations via the optional
1666 * &drm_mode_config_helper_funcs.mode_valid hook.
1667 *
1668 * Returns:
1669 * The mode status
1670 */
1671enum drm_mode_status
1672drm_mode_validate_driver(struct drm_device *dev,
1673			const struct drm_display_mode *mode)
1674{
1675	enum drm_mode_status status;
1676
1677	status = drm_mode_validate_basic(mode);
1678	if (status != MODE_OK)
1679		return status;
1680
1681	if (dev->mode_config.funcs->mode_valid)
1682		return dev->mode_config.funcs->mode_valid(dev, mode);
1683	else
1684		return MODE_OK;
1685}
1686EXPORT_SYMBOL(drm_mode_validate_driver);
1687
1688/**
1689 * drm_mode_validate_size - make sure modes adhere to size constraints
1690 * @mode: mode to check
1691 * @maxX: maximum width
1692 * @maxY: maximum height
1693 *
1694 * This function is a helper which can be used to validate modes against size
1695 * limitations of the DRM device/connector. If a mode is too big its status
1696 * member is updated with the appropriate validation failure code. The list
1697 * itself is not changed.
1698 *
1699 * Returns:
1700 * The mode status
1701 */
1702enum drm_mode_status
1703drm_mode_validate_size(const struct drm_display_mode *mode,
1704		       int maxX, int maxY)
1705{
1706	if (maxX > 0 && mode->hdisplay > maxX)
1707		return MODE_VIRTUAL_X;
1708
1709	if (maxY > 0 && mode->vdisplay > maxY)
1710		return MODE_VIRTUAL_Y;
1711
1712	return MODE_OK;
1713}
1714EXPORT_SYMBOL(drm_mode_validate_size);
1715
1716/**
1717 * drm_mode_validate_ycbcr420 - add 'ycbcr420-only' modes only when allowed
1718 * @mode: mode to check
1719 * @connector: drm connector under action
1720 *
1721 * This function is a helper which can be used to filter out any YCBCR420
1722 * only mode, when the source doesn't support it.
1723 *
1724 * Returns:
1725 * The mode status
1726 */
1727enum drm_mode_status
1728drm_mode_validate_ycbcr420(const struct drm_display_mode *mode,
1729			   struct drm_connector *connector)
1730{
1731	if (!connector->ycbcr_420_allowed &&
1732	    drm_mode_is_420_only(&connector->display_info, mode))
1733		return MODE_NO_420;
1734
1735	return MODE_OK;
1736}
1737EXPORT_SYMBOL(drm_mode_validate_ycbcr420);
1738
1739#define MODE_STATUS(status) [MODE_ ## status + 3] = #status
1740
1741static const char * const drm_mode_status_names[] = {
1742	MODE_STATUS(OK),
1743	MODE_STATUS(HSYNC),
1744	MODE_STATUS(VSYNC),
1745	MODE_STATUS(H_ILLEGAL),
1746	MODE_STATUS(V_ILLEGAL),
1747	MODE_STATUS(BAD_WIDTH),
1748	MODE_STATUS(NOMODE),
1749	MODE_STATUS(NO_INTERLACE),
1750	MODE_STATUS(NO_DBLESCAN),
1751	MODE_STATUS(NO_VSCAN),
1752	MODE_STATUS(MEM),
1753	MODE_STATUS(VIRTUAL_X),
1754	MODE_STATUS(VIRTUAL_Y),
1755	MODE_STATUS(MEM_VIRT),
1756	MODE_STATUS(NOCLOCK),
1757	MODE_STATUS(CLOCK_HIGH),
1758	MODE_STATUS(CLOCK_LOW),
1759	MODE_STATUS(CLOCK_RANGE),
1760	MODE_STATUS(BAD_HVALUE),
1761	MODE_STATUS(BAD_VVALUE),
1762	MODE_STATUS(BAD_VSCAN),
1763	MODE_STATUS(HSYNC_NARROW),
1764	MODE_STATUS(HSYNC_WIDE),
1765	MODE_STATUS(HBLANK_NARROW),
1766	MODE_STATUS(HBLANK_WIDE),
1767	MODE_STATUS(VSYNC_NARROW),
1768	MODE_STATUS(VSYNC_WIDE),
1769	MODE_STATUS(VBLANK_NARROW),
1770	MODE_STATUS(VBLANK_WIDE),
1771	MODE_STATUS(PANEL),
1772	MODE_STATUS(INTERLACE_WIDTH),
1773	MODE_STATUS(ONE_WIDTH),
1774	MODE_STATUS(ONE_HEIGHT),
1775	MODE_STATUS(ONE_SIZE),
1776	MODE_STATUS(NO_REDUCED),
1777	MODE_STATUS(NO_STEREO),
1778	MODE_STATUS(NO_420),
1779	MODE_STATUS(STALE),
1780	MODE_STATUS(BAD),
1781	MODE_STATUS(ERROR),
1782};
1783
1784#undef MODE_STATUS
1785
1786const char *drm_get_mode_status_name(enum drm_mode_status status)
1787{
1788	int index = status + 3;
1789
1790	if (WARN_ON(index < 0 || index >= ARRAY_SIZE(drm_mode_status_names)))
1791		return "";
1792
1793	return drm_mode_status_names[index];
1794}
1795
1796/**
1797 * drm_mode_prune_invalid - remove invalid modes from mode list
1798 * @dev: DRM device
1799 * @mode_list: list of modes to check
1800 * @verbose: be verbose about it
1801 *
1802 * This helper function can be used to prune a display mode list after
1803 * validation has been completed. All modes whose status is not MODE_OK will be
1804 * removed from the list, and if @verbose the status code and mode name is also
1805 * printed to dmesg.
1806 */
1807void drm_mode_prune_invalid(struct drm_device *dev,
1808			    struct list_head *mode_list, bool verbose)
1809{
1810	struct drm_display_mode *mode, *t;
1811
1812	list_for_each_entry_safe(mode, t, mode_list, head) {
1813		if (mode->status != MODE_OK) {
1814			list_del(&mode->head);
1815			if (mode->type & DRM_MODE_TYPE_USERDEF) {
1816				drm_warn(dev, "User-defined mode not supported: "
1817					 DRM_MODE_FMT "\n", DRM_MODE_ARG(mode));
1818			}
1819			if (verbose) {
1820				drm_dbg_kms(dev, "Rejected mode: " DRM_MODE_FMT " (%s)\n",
1821					    DRM_MODE_ARG(mode), drm_get_mode_status_name(mode->status));
 
 
1822			}
1823			drm_mode_destroy(dev, mode);
1824		}
1825	}
1826}
1827EXPORT_SYMBOL(drm_mode_prune_invalid);
1828
1829/**
1830 * drm_mode_compare - compare modes for favorability
1831 * @priv: unused
1832 * @lh_a: list_head for first mode
1833 * @lh_b: list_head for second mode
1834 *
1835 * Compare two modes, given by @lh_a and @lh_b, returning a value indicating
1836 * which is better.
1837 *
1838 * Returns:
1839 * Negative if @lh_a is better than @lh_b, zero if they're equivalent, or
1840 * positive if @lh_b is better than @lh_a.
1841 */
1842static int drm_mode_compare(void *priv, const struct list_head *lh_a,
1843			    const struct list_head *lh_b)
1844{
1845	struct drm_display_mode *a = list_entry(lh_a, struct drm_display_mode, head);
1846	struct drm_display_mode *b = list_entry(lh_b, struct drm_display_mode, head);
1847	int diff;
1848
1849	diff = ((b->type & DRM_MODE_TYPE_PREFERRED) != 0) -
1850		((a->type & DRM_MODE_TYPE_PREFERRED) != 0);
1851	if (diff)
1852		return diff;
1853	diff = b->hdisplay * b->vdisplay - a->hdisplay * a->vdisplay;
1854	if (diff)
1855		return diff;
1856
1857	diff = drm_mode_vrefresh(b) - drm_mode_vrefresh(a);
1858	if (diff)
1859		return diff;
1860
1861	diff = b->clock - a->clock;
1862	return diff;
1863}
1864
1865/**
1866 * drm_mode_sort - sort mode list
1867 * @mode_list: list of drm_display_mode structures to sort
1868 *
1869 * Sort @mode_list by favorability, moving good modes to the head of the list.
1870 */
1871void drm_mode_sort(struct list_head *mode_list)
1872{
1873	list_sort(NULL, mode_list, drm_mode_compare);
1874}
1875EXPORT_SYMBOL(drm_mode_sort);
1876
1877/**
1878 * drm_connector_list_update - update the mode list for the connector
1879 * @connector: the connector to update
1880 *
1881 * This moves the modes from the @connector probed_modes list
1882 * to the actual mode list. It compares the probed mode against the current
1883 * list and only adds different/new modes.
1884 *
1885 * This is just a helper functions doesn't validate any modes itself and also
1886 * doesn't prune any invalid modes. Callers need to do that themselves.
1887 */
1888void drm_connector_list_update(struct drm_connector *connector)
1889{
1890	struct drm_display_mode *pmode, *pt;
1891
1892	WARN_ON(!mutex_is_locked(&connector->dev->mode_config.mutex));
1893
1894	list_for_each_entry_safe(pmode, pt, &connector->probed_modes, head) {
1895		struct drm_display_mode *mode;
1896		bool found_it = false;
1897
1898		/* go through current modes checking for the new probed mode */
1899		list_for_each_entry(mode, &connector->modes, head) {
1900			if (!drm_mode_equal(pmode, mode))
1901				continue;
1902
1903			found_it = true;
1904
1905			/*
1906			 * If the old matching mode is stale (ie. left over
1907			 * from a previous probe) just replace it outright.
1908			 * Otherwise just merge the type bits between all
1909			 * equal probed modes.
1910			 *
1911			 * If two probed modes are considered equal, pick the
1912			 * actual timings from the one that's marked as
1913			 * preferred (in case the match isn't 100%). If
1914			 * multiple or zero preferred modes are present, favor
1915			 * the mode added to the probed_modes list first.
1916			 */
1917			if (mode->status == MODE_STALE) {
1918				drm_mode_copy(mode, pmode);
1919			} else if ((mode->type & DRM_MODE_TYPE_PREFERRED) == 0 &&
1920				   (pmode->type & DRM_MODE_TYPE_PREFERRED) != 0) {
1921				pmode->type |= mode->type;
1922				drm_mode_copy(mode, pmode);
1923			} else {
1924				mode->type |= pmode->type;
1925			}
1926
1927			list_del(&pmode->head);
1928			drm_mode_destroy(connector->dev, pmode);
1929			break;
1930		}
1931
1932		if (!found_it) {
1933			list_move_tail(&pmode->head, &connector->modes);
1934		}
1935	}
1936}
1937EXPORT_SYMBOL(drm_connector_list_update);
1938
1939static int drm_mode_parse_cmdline_bpp(const char *str, char **end_ptr,
1940				      struct drm_cmdline_mode *mode)
1941{
1942	unsigned int bpp;
1943
1944	if (str[0] != '-')
1945		return -EINVAL;
1946
1947	str++;
1948	bpp = simple_strtol(str, end_ptr, 10);
1949	if (*end_ptr == str)
1950		return -EINVAL;
1951
1952	mode->bpp = bpp;
1953	mode->bpp_specified = true;
1954
1955	return 0;
1956}
1957
1958static int drm_mode_parse_cmdline_refresh(const char *str, char **end_ptr,
1959					  struct drm_cmdline_mode *mode)
1960{
1961	unsigned int refresh;
1962
1963	if (str[0] != '@')
1964		return -EINVAL;
1965
1966	str++;
1967	refresh = simple_strtol(str, end_ptr, 10);
1968	if (*end_ptr == str)
1969		return -EINVAL;
1970
1971	mode->refresh = refresh;
1972	mode->refresh_specified = true;
1973
1974	return 0;
1975}
1976
1977static int drm_mode_parse_cmdline_extra(const char *str, int length,
1978					bool freestanding,
1979					const struct drm_connector *connector,
1980					struct drm_cmdline_mode *mode)
1981{
1982	int i;
1983
1984	for (i = 0; i < length; i++) {
1985		switch (str[i]) {
1986		case 'i':
1987			if (freestanding)
1988				return -EINVAL;
1989
1990			mode->interlace = true;
1991			break;
1992		case 'm':
1993			if (freestanding)
1994				return -EINVAL;
1995
1996			mode->margins = true;
1997			break;
1998		case 'D':
1999			if (mode->force != DRM_FORCE_UNSPECIFIED)
2000				return -EINVAL;
2001
2002			if ((connector->connector_type != DRM_MODE_CONNECTOR_DVII) &&
2003			    (connector->connector_type != DRM_MODE_CONNECTOR_HDMIB))
2004				mode->force = DRM_FORCE_ON;
2005			else
2006				mode->force = DRM_FORCE_ON_DIGITAL;
2007			break;
2008		case 'd':
2009			if (mode->force != DRM_FORCE_UNSPECIFIED)
2010				return -EINVAL;
2011
2012			mode->force = DRM_FORCE_OFF;
2013			break;
2014		case 'e':
2015			if (mode->force != DRM_FORCE_UNSPECIFIED)
2016				return -EINVAL;
2017
2018			mode->force = DRM_FORCE_ON;
2019			break;
2020		default:
2021			return -EINVAL;
2022		}
2023	}
2024
2025	return 0;
2026}
2027
2028static int drm_mode_parse_cmdline_res_mode(const char *str, unsigned int length,
2029					   bool extras,
2030					   const struct drm_connector *connector,
2031					   struct drm_cmdline_mode *mode)
2032{
2033	const char *str_start = str;
2034	bool rb = false, cvt = false;
2035	int xres = 0, yres = 0;
2036	int remaining, i;
2037	char *end_ptr;
2038
2039	xres = simple_strtol(str, &end_ptr, 10);
2040	if (end_ptr == str)
2041		return -EINVAL;
2042
2043	if (end_ptr[0] != 'x')
2044		return -EINVAL;
2045	end_ptr++;
2046
2047	str = end_ptr;
2048	yres = simple_strtol(str, &end_ptr, 10);
2049	if (end_ptr == str)
2050		return -EINVAL;
2051
2052	remaining = length - (end_ptr - str_start);
2053	if (remaining < 0)
2054		return -EINVAL;
2055
2056	for (i = 0; i < remaining; i++) {
2057		switch (end_ptr[i]) {
2058		case 'M':
2059			cvt = true;
2060			break;
2061		case 'R':
2062			rb = true;
2063			break;
2064		default:
2065			/*
2066			 * Try to pass that to our extras parsing
2067			 * function to handle the case where the
2068			 * extras are directly after the resolution
2069			 */
2070			if (extras) {
2071				int ret = drm_mode_parse_cmdline_extra(end_ptr + i,
2072								       1,
2073								       false,
2074								       connector,
2075								       mode);
2076				if (ret)
2077					return ret;
2078			} else {
2079				return -EINVAL;
2080			}
2081		}
2082	}
2083
2084	mode->xres = xres;
2085	mode->yres = yres;
2086	mode->cvt = cvt;
2087	mode->rb = rb;
2088
2089	return 0;
2090}
2091
2092static int drm_mode_parse_cmdline_int(const char *delim, unsigned int *int_ret)
2093{
2094	const char *value;
2095	char *endp;
2096
2097	/*
2098	 * delim must point to the '=', otherwise it is a syntax error and
2099	 * if delim points to the terminating zero, then delim + 1 will point
2100	 * past the end of the string.
2101	 */
2102	if (*delim != '=')
2103		return -EINVAL;
2104
2105	value = delim + 1;
2106	*int_ret = simple_strtol(value, &endp, 10);
2107
2108	/* Make sure we have parsed something */
2109	if (endp == value)
2110		return -EINVAL;
2111
2112	return 0;
2113}
2114
2115static int drm_mode_parse_panel_orientation(const char *delim,
2116					    struct drm_cmdline_mode *mode)
2117{
2118	const char *value;
2119
2120	if (*delim != '=')
2121		return -EINVAL;
2122
2123	value = delim + 1;
2124	delim = strchr(value, ',');
2125	if (!delim)
2126		delim = value + strlen(value);
2127
2128	if (!strncmp(value, "normal", delim - value))
2129		mode->panel_orientation = DRM_MODE_PANEL_ORIENTATION_NORMAL;
2130	else if (!strncmp(value, "upside_down", delim - value))
2131		mode->panel_orientation = DRM_MODE_PANEL_ORIENTATION_BOTTOM_UP;
2132	else if (!strncmp(value, "left_side_up", delim - value))
2133		mode->panel_orientation = DRM_MODE_PANEL_ORIENTATION_LEFT_UP;
2134	else if (!strncmp(value, "right_side_up", delim - value))
2135		mode->panel_orientation = DRM_MODE_PANEL_ORIENTATION_RIGHT_UP;
2136	else
2137		return -EINVAL;
2138
2139	return 0;
2140}
2141
2142static int drm_mode_parse_tv_mode(const char *delim,
2143				  struct drm_cmdline_mode *mode)
2144{
2145	const char *value;
2146	int ret;
2147
2148	if (*delim != '=')
2149		return -EINVAL;
2150
2151	value = delim + 1;
2152	delim = strchr(value, ',');
2153	if (!delim)
2154		delim = value + strlen(value);
2155
2156	ret = drm_get_tv_mode_from_name(value, delim - value);
2157	if (ret < 0)
2158		return ret;
2159
2160	mode->tv_mode_specified = true;
2161	mode->tv_mode = ret;
2162
2163	return 0;
2164}
2165
2166static int drm_mode_parse_cmdline_options(const char *str,
2167					  bool freestanding,
2168					  const struct drm_connector *connector,
2169					  struct drm_cmdline_mode *mode)
2170{
2171	unsigned int deg, margin, rotation = 0;
2172	const char *delim, *option, *sep;
2173
2174	option = str;
2175	do {
2176		delim = strchr(option, '=');
2177		if (!delim) {
2178			delim = strchr(option, ',');
2179
2180			if (!delim)
2181				delim = option + strlen(option);
2182		}
2183
2184		if (!strncmp(option, "rotate", delim - option)) {
2185			if (drm_mode_parse_cmdline_int(delim, &deg))
2186				return -EINVAL;
2187
2188			switch (deg) {
2189			case 0:
2190				rotation |= DRM_MODE_ROTATE_0;
2191				break;
2192
2193			case 90:
2194				rotation |= DRM_MODE_ROTATE_90;
2195				break;
2196
2197			case 180:
2198				rotation |= DRM_MODE_ROTATE_180;
2199				break;
2200
2201			case 270:
2202				rotation |= DRM_MODE_ROTATE_270;
2203				break;
2204
2205			default:
2206				return -EINVAL;
2207			}
2208		} else if (!strncmp(option, "reflect_x", delim - option)) {
2209			rotation |= DRM_MODE_REFLECT_X;
2210		} else if (!strncmp(option, "reflect_y", delim - option)) {
2211			rotation |= DRM_MODE_REFLECT_Y;
2212		} else if (!strncmp(option, "margin_right", delim - option)) {
2213			if (drm_mode_parse_cmdline_int(delim, &margin))
2214				return -EINVAL;
2215
2216			mode->tv_margins.right = margin;
2217		} else if (!strncmp(option, "margin_left", delim - option)) {
2218			if (drm_mode_parse_cmdline_int(delim, &margin))
2219				return -EINVAL;
2220
2221			mode->tv_margins.left = margin;
2222		} else if (!strncmp(option, "margin_top", delim - option)) {
2223			if (drm_mode_parse_cmdline_int(delim, &margin))
2224				return -EINVAL;
2225
2226			mode->tv_margins.top = margin;
2227		} else if (!strncmp(option, "margin_bottom", delim - option)) {
2228			if (drm_mode_parse_cmdline_int(delim, &margin))
2229				return -EINVAL;
2230
2231			mode->tv_margins.bottom = margin;
2232		} else if (!strncmp(option, "panel_orientation", delim - option)) {
2233			if (drm_mode_parse_panel_orientation(delim, mode))
2234				return -EINVAL;
2235		} else if (!strncmp(option, "tv_mode", delim - option)) {
2236			if (drm_mode_parse_tv_mode(delim, mode))
2237				return -EINVAL;
2238		} else {
2239			return -EINVAL;
2240		}
2241		sep = strchr(delim, ',');
2242		option = sep + 1;
2243	} while (sep);
2244
2245	if (rotation && freestanding)
2246		return -EINVAL;
2247
2248	if (!(rotation & DRM_MODE_ROTATE_MASK))
2249		rotation |= DRM_MODE_ROTATE_0;
2250
2251	/* Make sure there is exactly one rotation defined */
2252	if (!is_power_of_2(rotation & DRM_MODE_ROTATE_MASK))
2253		return -EINVAL;
2254
2255	mode->rotation_reflection = rotation;
2256
2257	return 0;
2258}
2259
2260struct drm_named_mode {
2261	const char *name;
2262	unsigned int pixel_clock_khz;
2263	unsigned int xres;
2264	unsigned int yres;
2265	unsigned int flags;
2266	unsigned int tv_mode;
2267};
2268
2269#define NAMED_MODE(_name, _pclk, _x, _y, _flags, _mode)	\
2270	{						\
2271		.name = _name,				\
2272		.pixel_clock_khz = _pclk,		\
2273		.xres = _x,				\
2274		.yres = _y,				\
2275		.flags = _flags,			\
2276		.tv_mode = _mode,			\
2277	}
2278
2279static const struct drm_named_mode drm_named_modes[] = {
2280	NAMED_MODE("NTSC", 13500, 720, 480, DRM_MODE_FLAG_INTERLACE, DRM_MODE_TV_MODE_NTSC),
2281	NAMED_MODE("NTSC-J", 13500, 720, 480, DRM_MODE_FLAG_INTERLACE, DRM_MODE_TV_MODE_NTSC_J),
2282	NAMED_MODE("PAL", 13500, 720, 576, DRM_MODE_FLAG_INTERLACE, DRM_MODE_TV_MODE_PAL),
2283	NAMED_MODE("PAL-M", 13500, 720, 480, DRM_MODE_FLAG_INTERLACE, DRM_MODE_TV_MODE_PAL_M),
2284};
2285
2286static int drm_mode_parse_cmdline_named_mode(const char *name,
2287					     unsigned int name_end,
2288					     struct drm_cmdline_mode *cmdline_mode)
2289{
2290	unsigned int i;
2291
2292	if (!name_end)
2293		return 0;
2294
2295	/* If the name starts with a digit, it's not a named mode */
2296	if (isdigit(name[0]))
2297		return 0;
2298
2299	/*
2300	 * If there's an equal sign in the name, the command-line
2301	 * contains only an option and no mode.
2302	 */
2303	if (strnchr(name, name_end, '='))
2304		return 0;
2305
2306	/* The connection status extras can be set without a mode. */
2307	if (name_end == 1 &&
2308	    (name[0] == 'd' || name[0] == 'D' || name[0] == 'e'))
2309		return 0;
2310
2311	/*
2312	 * We're sure we're a named mode at this point, iterate over the
2313	 * list of modes we're aware of.
2314	 */
2315	for (i = 0; i < ARRAY_SIZE(drm_named_modes); i++) {
2316		const struct drm_named_mode *mode = &drm_named_modes[i];
2317		int ret;
2318
2319		ret = str_has_prefix(name, mode->name);
2320		if (ret != name_end)
2321			continue;
2322
2323		strscpy(cmdline_mode->name, mode->name, sizeof(cmdline_mode->name));
2324		cmdline_mode->pixel_clock = mode->pixel_clock_khz;
2325		cmdline_mode->xres = mode->xres;
2326		cmdline_mode->yres = mode->yres;
2327		cmdline_mode->interlace = !!(mode->flags & DRM_MODE_FLAG_INTERLACE);
2328		cmdline_mode->tv_mode = mode->tv_mode;
2329		cmdline_mode->tv_mode_specified = true;
2330		cmdline_mode->specified = true;
2331
2332		return 1;
2333	}
2334
2335	return -EINVAL;
2336}
2337
2338/**
2339 * drm_mode_parse_command_line_for_connector - parse command line modeline for connector
2340 * @mode_option: optional per connector mode option
2341 * @connector: connector to parse modeline for
2342 * @mode: preallocated drm_cmdline_mode structure to fill out
2343 *
2344 * This parses @mode_option command line modeline for modes and options to
2345 * configure the connector.
 
2346 *
2347 * This uses the same parameters as the fb modedb.c, except for an extra
2348 * force-enable, force-enable-digital and force-disable bit at the end::
2349 *
2350 *	<xres>x<yres>[M][R][-<bpp>][@<refresh>][i][m][eDd]
2351 *
2352 * Additionals options can be provided following the mode, using a comma to
2353 * separate each option. Valid options can be found in
2354 * Documentation/fb/modedb.rst.
2355 *
2356 * The intermediate drm_cmdline_mode structure is required to store additional
2357 * options from the command line modline like the force-enable/disable flag.
2358 *
2359 * Returns:
2360 * True if a valid modeline has been parsed, false otherwise.
2361 */
2362bool drm_mode_parse_command_line_for_connector(const char *mode_option,
2363					       const struct drm_connector *connector,
2364					       struct drm_cmdline_mode *mode)
2365{
2366	const char *name;
2367	bool freestanding = false, parse_extras = false;
2368	unsigned int bpp_off = 0, refresh_off = 0, options_off = 0;
2369	unsigned int mode_end = 0;
2370	const char *bpp_ptr = NULL, *refresh_ptr = NULL, *extra_ptr = NULL;
2371	const char *options_ptr = NULL;
2372	char *bpp_end_ptr = NULL, *refresh_end_ptr = NULL;
2373	int len, ret;
2374
2375	memset(mode, 0, sizeof(*mode));
2376	mode->panel_orientation = DRM_MODE_PANEL_ORIENTATION_UNKNOWN;
2377
2378	if (!mode_option)
2379		return false;
2380
2381	name = mode_option;
2382
2383	/* Locate the start of named options */
2384	options_ptr = strchr(name, ',');
2385	if (options_ptr)
2386		options_off = options_ptr - name;
2387	else
2388		options_off = strlen(name);
2389
2390	/* Try to locate the bpp and refresh specifiers, if any */
2391	bpp_ptr = strnchr(name, options_off, '-');
2392	while (bpp_ptr && !isdigit(bpp_ptr[1]))
2393		bpp_ptr = strnchr(bpp_ptr + 1, options_off, '-');
2394	if (bpp_ptr)
2395		bpp_off = bpp_ptr - name;
2396
2397	refresh_ptr = strnchr(name, options_off, '@');
2398	if (refresh_ptr)
2399		refresh_off = refresh_ptr - name;
2400
2401	/* Locate the end of the name / resolution, and parse it */
2402	if (bpp_ptr) {
2403		mode_end = bpp_off;
2404	} else if (refresh_ptr) {
2405		mode_end = refresh_off;
2406	} else if (options_ptr) {
2407		mode_end = options_off;
2408		parse_extras = true;
2409	} else {
2410		mode_end = strlen(name);
2411		parse_extras = true;
2412	}
2413
2414	if (!mode_end)
2415		return false;
2416
2417	ret = drm_mode_parse_cmdline_named_mode(name, mode_end, mode);
2418	if (ret < 0)
2419		return false;
2420
2421	/*
2422	 * Having a mode that starts by a letter (and thus is named) and
2423	 * an at-sign (used to specify a refresh rate) is disallowed.
2424	 */
2425	if (ret && refresh_ptr)
2426		return false;
2427
2428	/* No named mode? Check for a normal mode argument, e.g. 1024x768 */
2429	if (!mode->specified && isdigit(name[0])) {
2430		ret = drm_mode_parse_cmdline_res_mode(name, mode_end,
2431						      parse_extras,
2432						      connector,
2433						      mode);
2434		if (ret)
2435			return false;
2436
2437		mode->specified = true;
2438	}
2439
2440	/* No mode? Check for freestanding extras and/or options */
2441	if (!mode->specified) {
2442		unsigned int len = strlen(mode_option);
2443
2444		if (bpp_ptr || refresh_ptr)
2445			return false; /* syntax error */
2446
2447		if (len == 1 || (len >= 2 && mode_option[1] == ','))
2448			extra_ptr = mode_option;
2449		else
2450			options_ptr = mode_option - 1;
2451
2452		freestanding = true;
2453	}
2454
2455	if (bpp_ptr) {
2456		ret = drm_mode_parse_cmdline_bpp(bpp_ptr, &bpp_end_ptr, mode);
2457		if (ret)
2458			return false;
2459
2460		mode->bpp_specified = true;
2461	}
2462
2463	if (refresh_ptr) {
2464		ret = drm_mode_parse_cmdline_refresh(refresh_ptr,
2465						     &refresh_end_ptr, mode);
2466		if (ret)
2467			return false;
2468
2469		mode->refresh_specified = true;
2470	}
2471
2472	/*
2473	 * Locate the end of the bpp / refresh, and parse the extras
2474	 * if relevant
2475	 */
2476	if (bpp_ptr && refresh_ptr)
2477		extra_ptr = max(bpp_end_ptr, refresh_end_ptr);
2478	else if (bpp_ptr)
2479		extra_ptr = bpp_end_ptr;
2480	else if (refresh_ptr)
2481		extra_ptr = refresh_end_ptr;
2482
2483	if (extra_ptr) {
2484		if (options_ptr)
2485			len = options_ptr - extra_ptr;
2486		else
2487			len = strlen(extra_ptr);
2488
2489		ret = drm_mode_parse_cmdline_extra(extra_ptr, len, freestanding,
2490						   connector, mode);
2491		if (ret)
2492			return false;
2493	}
2494
2495	if (options_ptr) {
2496		ret = drm_mode_parse_cmdline_options(options_ptr + 1,
2497						     freestanding,
2498						     connector, mode);
2499		if (ret)
2500			return false;
2501	}
2502
2503	return true;
2504}
2505EXPORT_SYMBOL(drm_mode_parse_command_line_for_connector);
2506
2507static struct drm_display_mode *drm_named_mode(struct drm_device *dev,
2508					       struct drm_cmdline_mode *cmd)
2509{
2510	unsigned int i;
2511
2512	for (i = 0; i < ARRAY_SIZE(drm_named_modes); i++) {
2513		const struct drm_named_mode *named_mode = &drm_named_modes[i];
2514
2515		if (strcmp(cmd->name, named_mode->name))
2516			continue;
2517
2518		if (!cmd->tv_mode_specified)
2519			continue;
2520
2521		return drm_analog_tv_mode(dev,
2522					  named_mode->tv_mode,
2523					  named_mode->pixel_clock_khz * 1000,
2524					  named_mode->xres,
2525					  named_mode->yres,
2526					  named_mode->flags & DRM_MODE_FLAG_INTERLACE);
2527	}
2528
2529	return NULL;
2530}
2531
2532/**
2533 * drm_mode_create_from_cmdline_mode - convert a command line modeline into a DRM display mode
2534 * @dev: DRM device to create the new mode for
2535 * @cmd: input command line modeline
2536 *
2537 * Returns:
2538 * Pointer to converted mode on success, NULL on error.
2539 */
2540struct drm_display_mode *
2541drm_mode_create_from_cmdline_mode(struct drm_device *dev,
2542				  struct drm_cmdline_mode *cmd)
2543{
2544	struct drm_display_mode *mode;
2545
2546	if (cmd->xres == 0 || cmd->yres == 0)
2547		return NULL;
2548
2549	if (strlen(cmd->name))
2550		mode = drm_named_mode(dev, cmd);
2551	else if (cmd->cvt)
2552		mode = drm_cvt_mode(dev,
2553				    cmd->xres, cmd->yres,
2554				    cmd->refresh_specified ? cmd->refresh : 60,
2555				    cmd->rb, cmd->interlace,
2556				    cmd->margins);
2557	else
2558		mode = drm_gtf_mode(dev,
2559				    cmd->xres, cmd->yres,
2560				    cmd->refresh_specified ? cmd->refresh : 60,
2561				    cmd->interlace,
2562				    cmd->margins);
2563	if (!mode)
2564		return NULL;
2565
2566	mode->type |= DRM_MODE_TYPE_USERDEF;
2567	/* fix up 1368x768: GFT/CVT can't express 1366 width due to alignment */
2568	if (cmd->xres == 1366)
2569		drm_mode_fixup_1366x768(mode);
2570	drm_mode_set_crtcinfo(mode, CRTC_INTERLACE_HALVE_V);
2571	return mode;
2572}
2573EXPORT_SYMBOL(drm_mode_create_from_cmdline_mode);
2574
2575/**
2576 * drm_mode_convert_to_umode - convert a drm_display_mode into a modeinfo
2577 * @out: drm_mode_modeinfo struct to return to the user
2578 * @in: drm_display_mode to use
2579 *
2580 * Convert a drm_display_mode into a drm_mode_modeinfo structure to return to
2581 * the user.
2582 */
2583void drm_mode_convert_to_umode(struct drm_mode_modeinfo *out,
2584			       const struct drm_display_mode *in)
2585{
2586	out->clock = in->clock;
2587	out->hdisplay = in->hdisplay;
2588	out->hsync_start = in->hsync_start;
2589	out->hsync_end = in->hsync_end;
2590	out->htotal = in->htotal;
2591	out->hskew = in->hskew;
2592	out->vdisplay = in->vdisplay;
2593	out->vsync_start = in->vsync_start;
2594	out->vsync_end = in->vsync_end;
2595	out->vtotal = in->vtotal;
2596	out->vscan = in->vscan;
2597	out->vrefresh = drm_mode_vrefresh(in);
2598	out->flags = in->flags;
2599	out->type = in->type;
2600
2601	switch (in->picture_aspect_ratio) {
2602	case HDMI_PICTURE_ASPECT_4_3:
2603		out->flags |= DRM_MODE_FLAG_PIC_AR_4_3;
2604		break;
2605	case HDMI_PICTURE_ASPECT_16_9:
2606		out->flags |= DRM_MODE_FLAG_PIC_AR_16_9;
2607		break;
2608	case HDMI_PICTURE_ASPECT_64_27:
2609		out->flags |= DRM_MODE_FLAG_PIC_AR_64_27;
2610		break;
2611	case HDMI_PICTURE_ASPECT_256_135:
2612		out->flags |= DRM_MODE_FLAG_PIC_AR_256_135;
2613		break;
2614	default:
2615		WARN(1, "Invalid aspect ratio (0%x) on mode\n",
2616		     in->picture_aspect_ratio);
2617		fallthrough;
2618	case HDMI_PICTURE_ASPECT_NONE:
2619		out->flags |= DRM_MODE_FLAG_PIC_AR_NONE;
2620		break;
2621	}
2622
2623	strscpy_pad(out->name, in->name, sizeof(out->name));
 
2624}
2625
2626/**
2627 * drm_mode_convert_umode - convert a modeinfo into a drm_display_mode
2628 * @dev: drm device
2629 * @out: drm_display_mode to return to the user
2630 * @in: drm_mode_modeinfo to use
2631 *
2632 * Convert a drm_mode_modeinfo into a drm_display_mode structure to return to
2633 * the caller.
2634 *
2635 * Returns:
2636 * Zero on success, negative errno on failure.
2637 */
2638int drm_mode_convert_umode(struct drm_device *dev,
2639			   struct drm_display_mode *out,
2640			   const struct drm_mode_modeinfo *in)
2641{
2642	if (in->clock > INT_MAX || in->vrefresh > INT_MAX)
2643		return -ERANGE;
2644
2645	out->clock = in->clock;
2646	out->hdisplay = in->hdisplay;
2647	out->hsync_start = in->hsync_start;
2648	out->hsync_end = in->hsync_end;
2649	out->htotal = in->htotal;
2650	out->hskew = in->hskew;
2651	out->vdisplay = in->vdisplay;
2652	out->vsync_start = in->vsync_start;
2653	out->vsync_end = in->vsync_end;
2654	out->vtotal = in->vtotal;
2655	out->vscan = in->vscan;
2656	out->flags = in->flags;
2657	/*
2658	 * Old xf86-video-vmware (possibly others too) used to
2659	 * leave 'type' uninitialized. Just ignore any bits we
2660	 * don't like. It's a just hint after all, and more
2661	 * useful for the kernel->userspace direction anyway.
2662	 */
2663	out->type = in->type & DRM_MODE_TYPE_ALL;
2664	strscpy_pad(out->name, in->name, sizeof(out->name));
 
2665
2666	/* Clearing picture aspect ratio bits from out flags,
2667	 * as the aspect-ratio information is not stored in
2668	 * flags for kernel-mode, but in picture_aspect_ratio.
2669	 */
2670	out->flags &= ~DRM_MODE_FLAG_PIC_AR_MASK;
2671
2672	switch (in->flags & DRM_MODE_FLAG_PIC_AR_MASK) {
2673	case DRM_MODE_FLAG_PIC_AR_4_3:
2674		out->picture_aspect_ratio = HDMI_PICTURE_ASPECT_4_3;
2675		break;
2676	case DRM_MODE_FLAG_PIC_AR_16_9:
2677		out->picture_aspect_ratio = HDMI_PICTURE_ASPECT_16_9;
2678		break;
2679	case DRM_MODE_FLAG_PIC_AR_64_27:
2680		out->picture_aspect_ratio = HDMI_PICTURE_ASPECT_64_27;
2681		break;
2682	case DRM_MODE_FLAG_PIC_AR_256_135:
2683		out->picture_aspect_ratio = HDMI_PICTURE_ASPECT_256_135;
2684		break;
2685	case DRM_MODE_FLAG_PIC_AR_NONE:
2686		out->picture_aspect_ratio = HDMI_PICTURE_ASPECT_NONE;
2687		break;
2688	default:
2689		return -EINVAL;
2690	}
2691
2692	out->status = drm_mode_validate_driver(dev, out);
2693	if (out->status != MODE_OK)
2694		return -EINVAL;
2695
2696	drm_mode_set_crtcinfo(out, CRTC_INTERLACE_HALVE_V);
2697
2698	return 0;
2699}
2700
2701/**
2702 * drm_mode_is_420_only - if a given videomode can be only supported in YCBCR420
2703 * output format
2704 *
2705 * @display: display under action
2706 * @mode: video mode to be tested.
2707 *
2708 * Returns:
2709 * true if the mode can be supported in YCBCR420 format
2710 * false if not.
2711 */
2712bool drm_mode_is_420_only(const struct drm_display_info *display,
2713			  const struct drm_display_mode *mode)
2714{
2715	u8 vic = drm_match_cea_mode(mode);
2716
2717	return test_bit(vic, display->hdmi.y420_vdb_modes);
2718}
2719EXPORT_SYMBOL(drm_mode_is_420_only);
2720
2721/**
2722 * drm_mode_is_420_also - if a given videomode can be supported in YCBCR420
2723 * output format also (along with RGB/YCBCR444/422)
2724 *
2725 * @display: display under action.
2726 * @mode: video mode to be tested.
2727 *
2728 * Returns:
2729 * true if the mode can be support YCBCR420 format
2730 * false if not.
2731 */
2732bool drm_mode_is_420_also(const struct drm_display_info *display,
2733			  const struct drm_display_mode *mode)
2734{
2735	u8 vic = drm_match_cea_mode(mode);
2736
2737	return test_bit(vic, display->hdmi.y420_cmdb_modes);
2738}
2739EXPORT_SYMBOL(drm_mode_is_420_also);
2740/**
2741 * drm_mode_is_420 - if a given videomode can be supported in YCBCR420
2742 * output format
2743 *
2744 * @display: display under action.
2745 * @mode: video mode to be tested.
2746 *
2747 * Returns:
2748 * true if the mode can be supported in YCBCR420 format
2749 * false if not.
2750 */
2751bool drm_mode_is_420(const struct drm_display_info *display,
2752		     const struct drm_display_mode *mode)
2753{
2754	return drm_mode_is_420_only(display, mode) ||
2755		drm_mode_is_420_also(display, mode);
2756}
2757EXPORT_SYMBOL(drm_mode_is_420);
2758
2759/**
2760 * drm_set_preferred_mode - Sets the preferred mode of a connector
2761 * @connector: connector whose mode list should be processed
2762 * @hpref: horizontal resolution of preferred mode
2763 * @vpref: vertical resolution of preferred mode
2764 *
2765 * Marks a mode as preferred if it matches the resolution specified by @hpref
2766 * and @vpref.
2767 */
2768void drm_set_preferred_mode(struct drm_connector *connector,
2769			    int hpref, int vpref)
2770{
2771	struct drm_display_mode *mode;
2772
2773	list_for_each_entry(mode, &connector->probed_modes, head) {
2774		if (mode->hdisplay == hpref &&
2775		    mode->vdisplay == vpref)
2776			mode->type |= DRM_MODE_TYPE_PREFERRED;
2777	}
2778}
2779EXPORT_SYMBOL(drm_set_preferred_mode);
v6.2
   1/*
   2 * Copyright © 1997-2003 by The XFree86 Project, Inc.
   3 * Copyright © 2007 Dave Airlie
   4 * Copyright © 2007-2008 Intel Corporation
   5 *   Jesse Barnes <jesse.barnes@intel.com>
   6 * Copyright 2005-2006 Luc Verhaegen
   7 * Copyright (c) 2001, Andy Ritger  aritger@nvidia.com
   8 *
   9 * Permission is hereby granted, free of charge, to any person obtaining a
  10 * copy of this software and associated documentation files (the "Software"),
  11 * to deal in the Software without restriction, including without limitation
  12 * the rights to use, copy, modify, merge, publish, distribute, sublicense,
  13 * and/or sell copies of the Software, and to permit persons to whom the
  14 * Software is furnished to do so, subject to the following conditions:
  15 *
  16 * The above copyright notice and this permission notice shall be included in
  17 * all copies or substantial portions of the Software.
  18 *
  19 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
  20 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
  21 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.  IN NO EVENT SHALL
  22 * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR
  23 * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
  24 * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
  25 * OTHER DEALINGS IN THE SOFTWARE.
  26 *
  27 * Except as contained in this notice, the name of the copyright holder(s)
  28 * and author(s) shall not be used in advertising or otherwise to promote
  29 * the sale, use or other dealings in this Software without prior written
  30 * authorization from the copyright holder(s) and author(s).
  31 */
  32
  33#include <linux/ctype.h>
 
 
  34#include <linux/list.h>
  35#include <linux/list_sort.h>
  36#include <linux/export.h>
  37#include <linux/fb.h>
  38
  39#include <video/of_display_timing.h>
  40#include <video/of_videomode.h>
  41#include <video/videomode.h>
  42
  43#include <drm/drm_crtc.h>
  44#include <drm/drm_device.h>
  45#include <drm/drm_edid.h>
  46#include <drm/drm_modes.h>
  47#include <drm/drm_print.h>
  48
  49#include "drm_crtc_internal.h"
  50
  51/**
  52 * drm_mode_debug_printmodeline - print a mode to dmesg
  53 * @mode: mode to print
  54 *
  55 * Describe @mode using DRM_DEBUG.
  56 */
  57void drm_mode_debug_printmodeline(const struct drm_display_mode *mode)
  58{
  59	DRM_DEBUG_KMS("Modeline " DRM_MODE_FMT "\n", DRM_MODE_ARG(mode));
  60}
  61EXPORT_SYMBOL(drm_mode_debug_printmodeline);
  62
  63/**
  64 * drm_mode_create - create a new display mode
  65 * @dev: DRM device
  66 *
  67 * Create a new, cleared drm_display_mode with kzalloc, allocate an ID for it
  68 * and return it.
  69 *
  70 * Returns:
  71 * Pointer to new mode on success, NULL on error.
  72 */
  73struct drm_display_mode *drm_mode_create(struct drm_device *dev)
  74{
  75	struct drm_display_mode *nmode;
  76
  77	nmode = kzalloc(sizeof(struct drm_display_mode), GFP_KERNEL);
  78	if (!nmode)
  79		return NULL;
  80
  81	return nmode;
  82}
  83EXPORT_SYMBOL(drm_mode_create);
  84
  85/**
  86 * drm_mode_destroy - remove a mode
  87 * @dev: DRM device
  88 * @mode: mode to remove
  89 *
  90 * Release @mode's unique ID, then free it @mode structure itself using kfree.
  91 */
  92void drm_mode_destroy(struct drm_device *dev, struct drm_display_mode *mode)
  93{
  94	if (!mode)
  95		return;
  96
  97	kfree(mode);
  98}
  99EXPORT_SYMBOL(drm_mode_destroy);
 100
 101/**
 102 * drm_mode_probed_add - add a mode to a connector's probed_mode list
 103 * @connector: connector the new mode
 104 * @mode: mode data
 105 *
 106 * Add @mode to @connector's probed_mode list for later use. This list should
 107 * then in a second step get filtered and all the modes actually supported by
 108 * the hardware moved to the @connector's modes list.
 109 */
 110void drm_mode_probed_add(struct drm_connector *connector,
 111			 struct drm_display_mode *mode)
 112{
 113	WARN_ON(!mutex_is_locked(&connector->dev->mode_config.mutex));
 114
 115	list_add_tail(&mode->head, &connector->probed_modes);
 116}
 117EXPORT_SYMBOL(drm_mode_probed_add);
 118
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 119/**
 120 * drm_cvt_mode -create a modeline based on the CVT algorithm
 121 * @dev: drm device
 122 * @hdisplay: hdisplay size
 123 * @vdisplay: vdisplay size
 124 * @vrefresh: vrefresh rate
 125 * @reduced: whether to use reduced blanking
 126 * @interlaced: whether to compute an interlaced mode
 127 * @margins: whether to add margins (borders)
 128 *
 129 * This function is called to generate the modeline based on CVT algorithm
 130 * according to the hdisplay, vdisplay, vrefresh.
 131 * It is based from the VESA(TM) Coordinated Video Timing Generator by
 132 * Graham Loveridge April 9, 2003 available at
 133 * http://www.elo.utfsm.cl/~elo212/docs/CVTd6r1.xls
 134 *
 135 * And it is copied from xf86CVTmode in xserver/hw/xfree86/modes/xf86cvt.c.
 136 * What I have done is to translate it by using integer calculation.
 137 *
 138 * Returns:
 139 * The modeline based on the CVT algorithm stored in a drm_display_mode object.
 140 * The display mode object is allocated with drm_mode_create(). Returns NULL
 141 * when no mode could be allocated.
 142 */
 143struct drm_display_mode *drm_cvt_mode(struct drm_device *dev, int hdisplay,
 144				      int vdisplay, int vrefresh,
 145				      bool reduced, bool interlaced, bool margins)
 146{
 147#define HV_FACTOR			1000
 148	/* 1) top/bottom margin size (% of height) - default: 1.8, */
 149#define	CVT_MARGIN_PERCENTAGE		18
 150	/* 2) character cell horizontal granularity (pixels) - default 8 */
 151#define	CVT_H_GRANULARITY		8
 152	/* 3) Minimum vertical porch (lines) - default 3 */
 153#define	CVT_MIN_V_PORCH			3
 154	/* 4) Minimum number of vertical back porch lines - default 6 */
 155#define	CVT_MIN_V_BPORCH		6
 156	/* Pixel Clock step (kHz) */
 157#define CVT_CLOCK_STEP			250
 158	struct drm_display_mode *drm_mode;
 159	unsigned int vfieldrate, hperiod;
 160	int hdisplay_rnd, hmargin, vdisplay_rnd, vmargin, vsync;
 161	int interlace;
 162	u64 tmp;
 163
 164	if (!hdisplay || !vdisplay)
 165		return NULL;
 166
 167	/* allocate the drm_display_mode structure. If failure, we will
 168	 * return directly
 169	 */
 170	drm_mode = drm_mode_create(dev);
 171	if (!drm_mode)
 172		return NULL;
 173
 174	/* the CVT default refresh rate is 60Hz */
 175	if (!vrefresh)
 176		vrefresh = 60;
 177
 178	/* the required field fresh rate */
 179	if (interlaced)
 180		vfieldrate = vrefresh * 2;
 181	else
 182		vfieldrate = vrefresh;
 183
 184	/* horizontal pixels */
 185	hdisplay_rnd = hdisplay - (hdisplay % CVT_H_GRANULARITY);
 186
 187	/* determine the left&right borders */
 188	hmargin = 0;
 189	if (margins) {
 190		hmargin = hdisplay_rnd * CVT_MARGIN_PERCENTAGE / 1000;
 191		hmargin -= hmargin % CVT_H_GRANULARITY;
 192	}
 193	/* find the total active pixels */
 194	drm_mode->hdisplay = hdisplay_rnd + 2 * hmargin;
 195
 196	/* find the number of lines per field */
 197	if (interlaced)
 198		vdisplay_rnd = vdisplay / 2;
 199	else
 200		vdisplay_rnd = vdisplay;
 201
 202	/* find the top & bottom borders */
 203	vmargin = 0;
 204	if (margins)
 205		vmargin = vdisplay_rnd * CVT_MARGIN_PERCENTAGE / 1000;
 206
 207	drm_mode->vdisplay = vdisplay + 2 * vmargin;
 208
 209	/* Interlaced */
 210	if (interlaced)
 211		interlace = 1;
 212	else
 213		interlace = 0;
 214
 215	/* Determine VSync Width from aspect ratio */
 216	if (!(vdisplay % 3) && ((vdisplay * 4 / 3) == hdisplay))
 217		vsync = 4;
 218	else if (!(vdisplay % 9) && ((vdisplay * 16 / 9) == hdisplay))
 219		vsync = 5;
 220	else if (!(vdisplay % 10) && ((vdisplay * 16 / 10) == hdisplay))
 221		vsync = 6;
 222	else if (!(vdisplay % 4) && ((vdisplay * 5 / 4) == hdisplay))
 223		vsync = 7;
 224	else if (!(vdisplay % 9) && ((vdisplay * 15 / 9) == hdisplay))
 225		vsync = 7;
 226	else /* custom */
 227		vsync = 10;
 228
 229	if (!reduced) {
 230		/* simplify the GTF calculation */
 231		/* 4) Minimum time of vertical sync + back porch interval (µs)
 232		 * default 550.0
 233		 */
 234		int tmp1, tmp2;
 235#define CVT_MIN_VSYNC_BP	550
 236		/* 3) Nominal HSync width (% of line period) - default 8 */
 237#define CVT_HSYNC_PERCENTAGE	8
 238		unsigned int hblank_percentage;
 239		int vsyncandback_porch, __maybe_unused vback_porch, hblank;
 240
 241		/* estimated the horizontal period */
 242		tmp1 = HV_FACTOR * 1000000  -
 243				CVT_MIN_VSYNC_BP * HV_FACTOR * vfieldrate;
 244		tmp2 = (vdisplay_rnd + 2 * vmargin + CVT_MIN_V_PORCH) * 2 +
 245				interlace;
 246		hperiod = tmp1 * 2 / (tmp2 * vfieldrate);
 247
 248		tmp1 = CVT_MIN_VSYNC_BP * HV_FACTOR / hperiod + 1;
 249		/* 9. Find number of lines in sync + backporch */
 250		if (tmp1 < (vsync + CVT_MIN_V_PORCH))
 251			vsyncandback_porch = vsync + CVT_MIN_V_PORCH;
 252		else
 253			vsyncandback_porch = tmp1;
 254		/* 10. Find number of lines in back porch */
 255		vback_porch = vsyncandback_porch - vsync;
 256		drm_mode->vtotal = vdisplay_rnd + 2 * vmargin +
 257				vsyncandback_porch + CVT_MIN_V_PORCH;
 258		/* 5) Definition of Horizontal blanking time limitation */
 259		/* Gradient (%/kHz) - default 600 */
 260#define CVT_M_FACTOR	600
 261		/* Offset (%) - default 40 */
 262#define CVT_C_FACTOR	40
 263		/* Blanking time scaling factor - default 128 */
 264#define CVT_K_FACTOR	128
 265		/* Scaling factor weighting - default 20 */
 266#define CVT_J_FACTOR	20
 267#define CVT_M_PRIME	(CVT_M_FACTOR * CVT_K_FACTOR / 256)
 268#define CVT_C_PRIME	((CVT_C_FACTOR - CVT_J_FACTOR) * CVT_K_FACTOR / 256 + \
 269			 CVT_J_FACTOR)
 270		/* 12. Find ideal blanking duty cycle from formula */
 271		hblank_percentage = CVT_C_PRIME * HV_FACTOR - CVT_M_PRIME *
 272					hperiod / 1000;
 273		/* 13. Blanking time */
 274		if (hblank_percentage < 20 * HV_FACTOR)
 275			hblank_percentage = 20 * HV_FACTOR;
 276		hblank = drm_mode->hdisplay * hblank_percentage /
 277			 (100 * HV_FACTOR - hblank_percentage);
 278		hblank -= hblank % (2 * CVT_H_GRANULARITY);
 279		/* 14. find the total pixels per line */
 280		drm_mode->htotal = drm_mode->hdisplay + hblank;
 281		drm_mode->hsync_end = drm_mode->hdisplay + hblank / 2;
 282		drm_mode->hsync_start = drm_mode->hsync_end -
 283			(drm_mode->htotal * CVT_HSYNC_PERCENTAGE) / 100;
 284		drm_mode->hsync_start += CVT_H_GRANULARITY -
 285			drm_mode->hsync_start % CVT_H_GRANULARITY;
 286		/* fill the Vsync values */
 287		drm_mode->vsync_start = drm_mode->vdisplay + CVT_MIN_V_PORCH;
 288		drm_mode->vsync_end = drm_mode->vsync_start + vsync;
 289	} else {
 290		/* Reduced blanking */
 291		/* Minimum vertical blanking interval time (µs)- default 460 */
 292#define CVT_RB_MIN_VBLANK	460
 293		/* Fixed number of clocks for horizontal sync */
 294#define CVT_RB_H_SYNC		32
 295		/* Fixed number of clocks for horizontal blanking */
 296#define CVT_RB_H_BLANK		160
 297		/* Fixed number of lines for vertical front porch - default 3*/
 298#define CVT_RB_VFPORCH		3
 299		int vbilines;
 300		int tmp1, tmp2;
 301		/* 8. Estimate Horizontal period. */
 302		tmp1 = HV_FACTOR * 1000000 -
 303			CVT_RB_MIN_VBLANK * HV_FACTOR * vfieldrate;
 304		tmp2 = vdisplay_rnd + 2 * vmargin;
 305		hperiod = tmp1 / (tmp2 * vfieldrate);
 306		/* 9. Find number of lines in vertical blanking */
 307		vbilines = CVT_RB_MIN_VBLANK * HV_FACTOR / hperiod + 1;
 308		/* 10. Check if vertical blanking is sufficient */
 309		if (vbilines < (CVT_RB_VFPORCH + vsync + CVT_MIN_V_BPORCH))
 310			vbilines = CVT_RB_VFPORCH + vsync + CVT_MIN_V_BPORCH;
 311		/* 11. Find total number of lines in vertical field */
 312		drm_mode->vtotal = vdisplay_rnd + 2 * vmargin + vbilines;
 313		/* 12. Find total number of pixels in a line */
 314		drm_mode->htotal = drm_mode->hdisplay + CVT_RB_H_BLANK;
 315		/* Fill in HSync values */
 316		drm_mode->hsync_end = drm_mode->hdisplay + CVT_RB_H_BLANK / 2;
 317		drm_mode->hsync_start = drm_mode->hsync_end - CVT_RB_H_SYNC;
 318		/* Fill in VSync values */
 319		drm_mode->vsync_start = drm_mode->vdisplay + CVT_RB_VFPORCH;
 320		drm_mode->vsync_end = drm_mode->vsync_start + vsync;
 321	}
 322	/* 15/13. Find pixel clock frequency (kHz for xf86) */
 323	tmp = drm_mode->htotal; /* perform intermediate calcs in u64 */
 324	tmp *= HV_FACTOR * 1000;
 325	do_div(tmp, hperiod);
 326	tmp -= drm_mode->clock % CVT_CLOCK_STEP;
 327	drm_mode->clock = tmp;
 328	/* 18/16. Find actual vertical frame frequency */
 329	/* ignore - just set the mode flag for interlaced */
 330	if (interlaced) {
 331		drm_mode->vtotal *= 2;
 332		drm_mode->flags |= DRM_MODE_FLAG_INTERLACE;
 333	}
 334	/* Fill the mode line name */
 335	drm_mode_set_name(drm_mode);
 336	if (reduced)
 337		drm_mode->flags |= (DRM_MODE_FLAG_PHSYNC |
 338					DRM_MODE_FLAG_NVSYNC);
 339	else
 340		drm_mode->flags |= (DRM_MODE_FLAG_PVSYNC |
 341					DRM_MODE_FLAG_NHSYNC);
 342
 343	return drm_mode;
 344}
 345EXPORT_SYMBOL(drm_cvt_mode);
 346
 347/**
 348 * drm_gtf_mode_complex - create the modeline based on the full GTF algorithm
 349 * @dev: drm device
 350 * @hdisplay: hdisplay size
 351 * @vdisplay: vdisplay size
 352 * @vrefresh: vrefresh rate.
 353 * @interlaced: whether to compute an interlaced mode
 354 * @margins: desired margin (borders) size
 355 * @GTF_M: extended GTF formula parameters
 356 * @GTF_2C: extended GTF formula parameters
 357 * @GTF_K: extended GTF formula parameters
 358 * @GTF_2J: extended GTF formula parameters
 359 *
 360 * GTF feature blocks specify C and J in multiples of 0.5, so we pass them
 361 * in here multiplied by two.  For a C of 40, pass in 80.
 362 *
 363 * Returns:
 364 * The modeline based on the full GTF algorithm stored in a drm_display_mode object.
 365 * The display mode object is allocated with drm_mode_create(). Returns NULL
 366 * when no mode could be allocated.
 367 */
 368struct drm_display_mode *
 369drm_gtf_mode_complex(struct drm_device *dev, int hdisplay, int vdisplay,
 370		     int vrefresh, bool interlaced, int margins,
 371		     int GTF_M, int GTF_2C, int GTF_K, int GTF_2J)
 372{	/* 1) top/bottom margin size (% of height) - default: 1.8, */
 373#define	GTF_MARGIN_PERCENTAGE		18
 374	/* 2) character cell horizontal granularity (pixels) - default 8 */
 375#define	GTF_CELL_GRAN			8
 376	/* 3) Minimum vertical porch (lines) - default 3 */
 377#define	GTF_MIN_V_PORCH			1
 378	/* width of vsync in lines */
 379#define V_SYNC_RQD			3
 380	/* width of hsync as % of total line */
 381#define H_SYNC_PERCENT			8
 382	/* min time of vsync + back porch (microsec) */
 383#define MIN_VSYNC_PLUS_BP		550
 384	/* C' and M' are part of the Blanking Duty Cycle computation */
 385#define GTF_C_PRIME	((((GTF_2C - GTF_2J) * GTF_K / 256) + GTF_2J) / 2)
 386#define GTF_M_PRIME	(GTF_K * GTF_M / 256)
 387	struct drm_display_mode *drm_mode;
 388	unsigned int hdisplay_rnd, vdisplay_rnd, vfieldrate_rqd;
 389	int top_margin, bottom_margin;
 390	int interlace;
 391	unsigned int hfreq_est;
 392	int vsync_plus_bp, __maybe_unused vback_porch;
 393	unsigned int vtotal_lines, __maybe_unused vfieldrate_est;
 394	unsigned int __maybe_unused hperiod;
 395	unsigned int vfield_rate, __maybe_unused vframe_rate;
 396	int left_margin, right_margin;
 397	unsigned int total_active_pixels, ideal_duty_cycle;
 398	unsigned int hblank, total_pixels, pixel_freq;
 399	int hsync, hfront_porch, vodd_front_porch_lines;
 400	unsigned int tmp1, tmp2;
 401
 402	if (!hdisplay || !vdisplay)
 403		return NULL;
 404
 405	drm_mode = drm_mode_create(dev);
 406	if (!drm_mode)
 407		return NULL;
 408
 409	/* 1. In order to give correct results, the number of horizontal
 410	 * pixels requested is first processed to ensure that it is divisible
 411	 * by the character size, by rounding it to the nearest character
 412	 * cell boundary:
 413	 */
 414	hdisplay_rnd = (hdisplay + GTF_CELL_GRAN / 2) / GTF_CELL_GRAN;
 415	hdisplay_rnd = hdisplay_rnd * GTF_CELL_GRAN;
 416
 417	/* 2. If interlace is requested, the number of vertical lines assumed
 418	 * by the calculation must be halved, as the computation calculates
 419	 * the number of vertical lines per field.
 420	 */
 421	if (interlaced)
 422		vdisplay_rnd = vdisplay / 2;
 423	else
 424		vdisplay_rnd = vdisplay;
 425
 426	/* 3. Find the frame rate required: */
 427	if (interlaced)
 428		vfieldrate_rqd = vrefresh * 2;
 429	else
 430		vfieldrate_rqd = vrefresh;
 431
 432	/* 4. Find number of lines in Top margin: */
 433	top_margin = 0;
 434	if (margins)
 435		top_margin = (vdisplay_rnd * GTF_MARGIN_PERCENTAGE + 500) /
 436				1000;
 437	/* 5. Find number of lines in bottom margin: */
 438	bottom_margin = top_margin;
 439
 440	/* 6. If interlace is required, then set variable interlace: */
 441	if (interlaced)
 442		interlace = 1;
 443	else
 444		interlace = 0;
 445
 446	/* 7. Estimate the Horizontal frequency */
 447	{
 448		tmp1 = (1000000  - MIN_VSYNC_PLUS_BP * vfieldrate_rqd) / 500;
 449		tmp2 = (vdisplay_rnd + 2 * top_margin + GTF_MIN_V_PORCH) *
 450				2 + interlace;
 451		hfreq_est = (tmp2 * 1000 * vfieldrate_rqd) / tmp1;
 452	}
 453
 454	/* 8. Find the number of lines in V sync + back porch */
 455	/* [V SYNC+BP] = RINT(([MIN VSYNC+BP] * hfreq_est / 1000000)) */
 456	vsync_plus_bp = MIN_VSYNC_PLUS_BP * hfreq_est / 1000;
 457	vsync_plus_bp = (vsync_plus_bp + 500) / 1000;
 458	/*  9. Find the number of lines in V back porch alone: */
 459	vback_porch = vsync_plus_bp - V_SYNC_RQD;
 460	/*  10. Find the total number of lines in Vertical field period: */
 461	vtotal_lines = vdisplay_rnd + top_margin + bottom_margin +
 462			vsync_plus_bp + GTF_MIN_V_PORCH;
 463	/*  11. Estimate the Vertical field frequency: */
 464	vfieldrate_est = hfreq_est / vtotal_lines;
 465	/*  12. Find the actual horizontal period: */
 466	hperiod = 1000000 / (vfieldrate_rqd * vtotal_lines);
 467
 468	/*  13. Find the actual Vertical field frequency: */
 469	vfield_rate = hfreq_est / vtotal_lines;
 470	/*  14. Find the Vertical frame frequency: */
 471	if (interlaced)
 472		vframe_rate = vfield_rate / 2;
 473	else
 474		vframe_rate = vfield_rate;
 475	/*  15. Find number of pixels in left margin: */
 476	if (margins)
 477		left_margin = (hdisplay_rnd * GTF_MARGIN_PERCENTAGE + 500) /
 478				1000;
 479	else
 480		left_margin = 0;
 481
 482	/* 16.Find number of pixels in right margin: */
 483	right_margin = left_margin;
 484	/* 17.Find total number of active pixels in image and left and right */
 485	total_active_pixels = hdisplay_rnd + left_margin + right_margin;
 486	/* 18.Find the ideal blanking duty cycle from blanking duty cycle */
 487	ideal_duty_cycle = GTF_C_PRIME * 1000 -
 488				(GTF_M_PRIME * 1000000 / hfreq_est);
 489	/* 19.Find the number of pixels in the blanking time to the nearest
 490	 * double character cell: */
 491	hblank = total_active_pixels * ideal_duty_cycle /
 492			(100000 - ideal_duty_cycle);
 493	hblank = (hblank + GTF_CELL_GRAN) / (2 * GTF_CELL_GRAN);
 494	hblank = hblank * 2 * GTF_CELL_GRAN;
 495	/* 20.Find total number of pixels: */
 496	total_pixels = total_active_pixels + hblank;
 497	/* 21.Find pixel clock frequency: */
 498	pixel_freq = total_pixels * hfreq_est / 1000;
 499	/* Stage 1 computations are now complete; I should really pass
 500	 * the results to another function and do the Stage 2 computations,
 501	 * but I only need a few more values so I'll just append the
 502	 * computations here for now */
 503	/* 17. Find the number of pixels in the horizontal sync period: */
 504	hsync = H_SYNC_PERCENT * total_pixels / 100;
 505	hsync = (hsync + GTF_CELL_GRAN / 2) / GTF_CELL_GRAN;
 506	hsync = hsync * GTF_CELL_GRAN;
 507	/* 18. Find the number of pixels in horizontal front porch period */
 508	hfront_porch = hblank / 2 - hsync;
 509	/*  36. Find the number of lines in the odd front porch period: */
 510	vodd_front_porch_lines = GTF_MIN_V_PORCH ;
 511
 512	/* finally, pack the results in the mode struct */
 513	drm_mode->hdisplay = hdisplay_rnd;
 514	drm_mode->hsync_start = hdisplay_rnd + hfront_porch;
 515	drm_mode->hsync_end = drm_mode->hsync_start + hsync;
 516	drm_mode->htotal = total_pixels;
 517	drm_mode->vdisplay = vdisplay_rnd;
 518	drm_mode->vsync_start = vdisplay_rnd + vodd_front_porch_lines;
 519	drm_mode->vsync_end = drm_mode->vsync_start + V_SYNC_RQD;
 520	drm_mode->vtotal = vtotal_lines;
 521
 522	drm_mode->clock = pixel_freq;
 523
 524	if (interlaced) {
 525		drm_mode->vtotal *= 2;
 526		drm_mode->flags |= DRM_MODE_FLAG_INTERLACE;
 527	}
 528
 529	drm_mode_set_name(drm_mode);
 530	if (GTF_M == 600 && GTF_2C == 80 && GTF_K == 128 && GTF_2J == 40)
 531		drm_mode->flags = DRM_MODE_FLAG_NHSYNC | DRM_MODE_FLAG_PVSYNC;
 532	else
 533		drm_mode->flags = DRM_MODE_FLAG_PHSYNC | DRM_MODE_FLAG_NVSYNC;
 534
 535	return drm_mode;
 536}
 537EXPORT_SYMBOL(drm_gtf_mode_complex);
 538
 539/**
 540 * drm_gtf_mode - create the modeline based on the GTF algorithm
 541 * @dev: drm device
 542 * @hdisplay: hdisplay size
 543 * @vdisplay: vdisplay size
 544 * @vrefresh: vrefresh rate.
 545 * @interlaced: whether to compute an interlaced mode
 546 * @margins: desired margin (borders) size
 547 *
 548 * return the modeline based on GTF algorithm
 549 *
 550 * This function is to create the modeline based on the GTF algorithm.
 551 * Generalized Timing Formula is derived from:
 552 *
 553 *	GTF Spreadsheet by Andy Morrish (1/5/97)
 554 *	available at https://www.vesa.org
 555 *
 556 * And it is copied from the file of xserver/hw/xfree86/modes/xf86gtf.c.
 557 * What I have done is to translate it by using integer calculation.
 558 * I also refer to the function of fb_get_mode in the file of
 559 * drivers/video/fbmon.c
 560 *
 561 * Standard GTF parameters::
 562 *
 563 *     M = 600
 564 *     C = 40
 565 *     K = 128
 566 *     J = 20
 567 *
 568 * Returns:
 569 * The modeline based on the GTF algorithm stored in a drm_display_mode object.
 570 * The display mode object is allocated with drm_mode_create(). Returns NULL
 571 * when no mode could be allocated.
 572 */
 573struct drm_display_mode *
 574drm_gtf_mode(struct drm_device *dev, int hdisplay, int vdisplay, int vrefresh,
 575	     bool interlaced, int margins)
 576{
 577	return drm_gtf_mode_complex(dev, hdisplay, vdisplay, vrefresh,
 578				    interlaced, margins,
 579				    600, 40 * 2, 128, 20 * 2);
 580}
 581EXPORT_SYMBOL(drm_gtf_mode);
 582
 583#ifdef CONFIG_VIDEOMODE_HELPERS
 584/**
 585 * drm_display_mode_from_videomode - fill in @dmode using @vm,
 586 * @vm: videomode structure to use as source
 587 * @dmode: drm_display_mode structure to use as destination
 588 *
 589 * Fills out @dmode using the display mode specified in @vm.
 590 */
 591void drm_display_mode_from_videomode(const struct videomode *vm,
 592				     struct drm_display_mode *dmode)
 593{
 594	dmode->hdisplay = vm->hactive;
 595	dmode->hsync_start = dmode->hdisplay + vm->hfront_porch;
 596	dmode->hsync_end = dmode->hsync_start + vm->hsync_len;
 597	dmode->htotal = dmode->hsync_end + vm->hback_porch;
 598
 599	dmode->vdisplay = vm->vactive;
 600	dmode->vsync_start = dmode->vdisplay + vm->vfront_porch;
 601	dmode->vsync_end = dmode->vsync_start + vm->vsync_len;
 602	dmode->vtotal = dmode->vsync_end + vm->vback_porch;
 603
 604	dmode->clock = vm->pixelclock / 1000;
 605
 606	dmode->flags = 0;
 607	if (vm->flags & DISPLAY_FLAGS_HSYNC_HIGH)
 608		dmode->flags |= DRM_MODE_FLAG_PHSYNC;
 609	else if (vm->flags & DISPLAY_FLAGS_HSYNC_LOW)
 610		dmode->flags |= DRM_MODE_FLAG_NHSYNC;
 611	if (vm->flags & DISPLAY_FLAGS_VSYNC_HIGH)
 612		dmode->flags |= DRM_MODE_FLAG_PVSYNC;
 613	else if (vm->flags & DISPLAY_FLAGS_VSYNC_LOW)
 614		dmode->flags |= DRM_MODE_FLAG_NVSYNC;
 615	if (vm->flags & DISPLAY_FLAGS_INTERLACED)
 616		dmode->flags |= DRM_MODE_FLAG_INTERLACE;
 617	if (vm->flags & DISPLAY_FLAGS_DOUBLESCAN)
 618		dmode->flags |= DRM_MODE_FLAG_DBLSCAN;
 619	if (vm->flags & DISPLAY_FLAGS_DOUBLECLK)
 620		dmode->flags |= DRM_MODE_FLAG_DBLCLK;
 621	drm_mode_set_name(dmode);
 622}
 623EXPORT_SYMBOL_GPL(drm_display_mode_from_videomode);
 624
 625/**
 626 * drm_display_mode_to_videomode - fill in @vm using @dmode,
 627 * @dmode: drm_display_mode structure to use as source
 628 * @vm: videomode structure to use as destination
 629 *
 630 * Fills out @vm using the display mode specified in @dmode.
 631 */
 632void drm_display_mode_to_videomode(const struct drm_display_mode *dmode,
 633				   struct videomode *vm)
 634{
 635	vm->hactive = dmode->hdisplay;
 636	vm->hfront_porch = dmode->hsync_start - dmode->hdisplay;
 637	vm->hsync_len = dmode->hsync_end - dmode->hsync_start;
 638	vm->hback_porch = dmode->htotal - dmode->hsync_end;
 639
 640	vm->vactive = dmode->vdisplay;
 641	vm->vfront_porch = dmode->vsync_start - dmode->vdisplay;
 642	vm->vsync_len = dmode->vsync_end - dmode->vsync_start;
 643	vm->vback_porch = dmode->vtotal - dmode->vsync_end;
 644
 645	vm->pixelclock = dmode->clock * 1000;
 646
 647	vm->flags = 0;
 648	if (dmode->flags & DRM_MODE_FLAG_PHSYNC)
 649		vm->flags |= DISPLAY_FLAGS_HSYNC_HIGH;
 650	else if (dmode->flags & DRM_MODE_FLAG_NHSYNC)
 651		vm->flags |= DISPLAY_FLAGS_HSYNC_LOW;
 652	if (dmode->flags & DRM_MODE_FLAG_PVSYNC)
 653		vm->flags |= DISPLAY_FLAGS_VSYNC_HIGH;
 654	else if (dmode->flags & DRM_MODE_FLAG_NVSYNC)
 655		vm->flags |= DISPLAY_FLAGS_VSYNC_LOW;
 656	if (dmode->flags & DRM_MODE_FLAG_INTERLACE)
 657		vm->flags |= DISPLAY_FLAGS_INTERLACED;
 658	if (dmode->flags & DRM_MODE_FLAG_DBLSCAN)
 659		vm->flags |= DISPLAY_FLAGS_DOUBLESCAN;
 660	if (dmode->flags & DRM_MODE_FLAG_DBLCLK)
 661		vm->flags |= DISPLAY_FLAGS_DOUBLECLK;
 662}
 663EXPORT_SYMBOL_GPL(drm_display_mode_to_videomode);
 664
 665/**
 666 * drm_bus_flags_from_videomode - extract information about pixelclk and
 667 * DE polarity from videomode and store it in a separate variable
 668 * @vm: videomode structure to use
 669 * @bus_flags: information about pixelclk, sync and DE polarity will be stored
 670 * here
 671 *
 672 * Sets DRM_BUS_FLAG_DE_(LOW|HIGH),  DRM_BUS_FLAG_PIXDATA_DRIVE_(POS|NEG)EDGE
 673 * and DISPLAY_FLAGS_SYNC_(POS|NEG)EDGE in @bus_flags according to DISPLAY_FLAGS
 674 * found in @vm
 675 */
 676void drm_bus_flags_from_videomode(const struct videomode *vm, u32 *bus_flags)
 677{
 678	*bus_flags = 0;
 679	if (vm->flags & DISPLAY_FLAGS_PIXDATA_POSEDGE)
 680		*bus_flags |= DRM_BUS_FLAG_PIXDATA_DRIVE_POSEDGE;
 681	if (vm->flags & DISPLAY_FLAGS_PIXDATA_NEGEDGE)
 682		*bus_flags |= DRM_BUS_FLAG_PIXDATA_DRIVE_NEGEDGE;
 683
 684	if (vm->flags & DISPLAY_FLAGS_SYNC_POSEDGE)
 685		*bus_flags |= DRM_BUS_FLAG_SYNC_DRIVE_POSEDGE;
 686	if (vm->flags & DISPLAY_FLAGS_SYNC_NEGEDGE)
 687		*bus_flags |= DRM_BUS_FLAG_SYNC_DRIVE_NEGEDGE;
 688
 689	if (vm->flags & DISPLAY_FLAGS_DE_LOW)
 690		*bus_flags |= DRM_BUS_FLAG_DE_LOW;
 691	if (vm->flags & DISPLAY_FLAGS_DE_HIGH)
 692		*bus_flags |= DRM_BUS_FLAG_DE_HIGH;
 693}
 694EXPORT_SYMBOL_GPL(drm_bus_flags_from_videomode);
 695
 696#ifdef CONFIG_OF
 697/**
 698 * of_get_drm_display_mode - get a drm_display_mode from devicetree
 699 * @np: device_node with the timing specification
 700 * @dmode: will be set to the return value
 701 * @bus_flags: information about pixelclk, sync and DE polarity
 702 * @index: index into the list of display timings in devicetree
 703 *
 704 * This function is expensive and should only be used, if only one mode is to be
 705 * read from DT. To get multiple modes start with of_get_display_timings and
 706 * work with that instead.
 707 *
 708 * Returns:
 709 * 0 on success, a negative errno code when no of videomode node was found.
 710 */
 711int of_get_drm_display_mode(struct device_node *np,
 712			    struct drm_display_mode *dmode, u32 *bus_flags,
 713			    int index)
 714{
 715	struct videomode vm;
 716	int ret;
 717
 718	ret = of_get_videomode(np, &vm, index);
 719	if (ret)
 720		return ret;
 721
 722	drm_display_mode_from_videomode(&vm, dmode);
 723	if (bus_flags)
 724		drm_bus_flags_from_videomode(&vm, bus_flags);
 725
 726	pr_debug("%pOF: got %dx%d display mode\n",
 727		np, vm.hactive, vm.vactive);
 728	drm_mode_debug_printmodeline(dmode);
 729
 730	return 0;
 731}
 732EXPORT_SYMBOL_GPL(of_get_drm_display_mode);
 733
 734/**
 735 * of_get_drm_panel_display_mode - get a panel-timing drm_display_mode from devicetree
 736 * @np: device_node with the panel-timing specification
 737 * @dmode: will be set to the return value
 738 * @bus_flags: information about pixelclk, sync and DE polarity
 739 *
 740 * The mandatory Device Tree properties width-mm and height-mm
 741 * are read and set on the display mode.
 742 *
 743 * Returns:
 744 * Zero on success, negative error code on failure.
 745 */
 746int of_get_drm_panel_display_mode(struct device_node *np,
 747				  struct drm_display_mode *dmode, u32 *bus_flags)
 748{
 749	u32 width_mm = 0, height_mm = 0;
 750	struct display_timing timing;
 751	struct videomode vm;
 752	int ret;
 753
 754	ret = of_get_display_timing(np, "panel-timing", &timing);
 755	if (ret)
 756		return ret;
 757
 758	videomode_from_timing(&timing, &vm);
 759
 760	memset(dmode, 0, sizeof(*dmode));
 761	drm_display_mode_from_videomode(&vm, dmode);
 762	if (bus_flags)
 763		drm_bus_flags_from_videomode(&vm, bus_flags);
 764
 765	ret = of_property_read_u32(np, "width-mm", &width_mm);
 766	if (ret)
 767		return ret;
 768
 769	ret = of_property_read_u32(np, "height-mm", &height_mm);
 770	if (ret)
 771		return ret;
 772
 773	dmode->width_mm = width_mm;
 774	dmode->height_mm = height_mm;
 775
 776	drm_mode_debug_printmodeline(dmode);
 777
 778	return 0;
 779}
 780EXPORT_SYMBOL_GPL(of_get_drm_panel_display_mode);
 781#endif /* CONFIG_OF */
 782#endif /* CONFIG_VIDEOMODE_HELPERS */
 783
 784/**
 785 * drm_mode_set_name - set the name on a mode
 786 * @mode: name will be set in this mode
 787 *
 788 * Set the name of @mode to a standard format which is <hdisplay>x<vdisplay>
 789 * with an optional 'i' suffix for interlaced modes.
 790 */
 791void drm_mode_set_name(struct drm_display_mode *mode)
 792{
 793	bool interlaced = !!(mode->flags & DRM_MODE_FLAG_INTERLACE);
 794
 795	snprintf(mode->name, DRM_DISPLAY_MODE_LEN, "%dx%d%s",
 796		 mode->hdisplay, mode->vdisplay,
 797		 interlaced ? "i" : "");
 798}
 799EXPORT_SYMBOL(drm_mode_set_name);
 800
 801/**
 802 * drm_mode_vrefresh - get the vrefresh of a mode
 803 * @mode: mode
 804 *
 805 * Returns:
 806 * @modes's vrefresh rate in Hz, rounded to the nearest integer. Calculates the
 807 * value first if it is not yet set.
 808 */
 809int drm_mode_vrefresh(const struct drm_display_mode *mode)
 810{
 811	unsigned int num, den;
 812
 813	if (mode->htotal == 0 || mode->vtotal == 0)
 814		return 0;
 815
 816	num = mode->clock;
 817	den = mode->htotal * mode->vtotal;
 818
 819	if (mode->flags & DRM_MODE_FLAG_INTERLACE)
 820		num *= 2;
 821	if (mode->flags & DRM_MODE_FLAG_DBLSCAN)
 822		den *= 2;
 823	if (mode->vscan > 1)
 824		den *= mode->vscan;
 825
 
 
 
 
 
 
 826	return DIV_ROUND_CLOSEST_ULL(mul_u32_u32(num, 1000), den);
 827}
 828EXPORT_SYMBOL(drm_mode_vrefresh);
 829
 830/**
 831 * drm_mode_get_hv_timing - Fetches hdisplay/vdisplay for given mode
 832 * @mode: mode to query
 833 * @hdisplay: hdisplay value to fill in
 834 * @vdisplay: vdisplay value to fill in
 835 *
 836 * The vdisplay value will be doubled if the specified mode is a stereo mode of
 837 * the appropriate layout.
 838 */
 839void drm_mode_get_hv_timing(const struct drm_display_mode *mode,
 840			    int *hdisplay, int *vdisplay)
 841{
 842	struct drm_display_mode adjusted;
 843
 844	drm_mode_init(&adjusted, mode);
 845
 846	drm_mode_set_crtcinfo(&adjusted, CRTC_STEREO_DOUBLE_ONLY);
 847	*hdisplay = adjusted.crtc_hdisplay;
 848	*vdisplay = adjusted.crtc_vdisplay;
 849}
 850EXPORT_SYMBOL(drm_mode_get_hv_timing);
 851
 852/**
 853 * drm_mode_set_crtcinfo - set CRTC modesetting timing parameters
 854 * @p: mode
 855 * @adjust_flags: a combination of adjustment flags
 856 *
 857 * Setup the CRTC modesetting timing parameters for @p, adjusting if necessary.
 858 *
 859 * - The CRTC_INTERLACE_HALVE_V flag can be used to halve vertical timings of
 860 *   interlaced modes.
 861 * - The CRTC_STEREO_DOUBLE flag can be used to compute the timings for
 862 *   buffers containing two eyes (only adjust the timings when needed, eg. for
 863 *   "frame packing" or "side by side full").
 864 * - The CRTC_NO_DBLSCAN and CRTC_NO_VSCAN flags request that adjustment *not*
 865 *   be performed for doublescan and vscan > 1 modes respectively.
 866 */
 867void drm_mode_set_crtcinfo(struct drm_display_mode *p, int adjust_flags)
 868{
 869	if (!p)
 870		return;
 871
 872	p->crtc_clock = p->clock;
 873	p->crtc_hdisplay = p->hdisplay;
 874	p->crtc_hsync_start = p->hsync_start;
 875	p->crtc_hsync_end = p->hsync_end;
 876	p->crtc_htotal = p->htotal;
 877	p->crtc_hskew = p->hskew;
 878	p->crtc_vdisplay = p->vdisplay;
 879	p->crtc_vsync_start = p->vsync_start;
 880	p->crtc_vsync_end = p->vsync_end;
 881	p->crtc_vtotal = p->vtotal;
 882
 883	if (p->flags & DRM_MODE_FLAG_INTERLACE) {
 884		if (adjust_flags & CRTC_INTERLACE_HALVE_V) {
 885			p->crtc_vdisplay /= 2;
 886			p->crtc_vsync_start /= 2;
 887			p->crtc_vsync_end /= 2;
 888			p->crtc_vtotal /= 2;
 889		}
 890	}
 891
 892	if (!(adjust_flags & CRTC_NO_DBLSCAN)) {
 893		if (p->flags & DRM_MODE_FLAG_DBLSCAN) {
 894			p->crtc_vdisplay *= 2;
 895			p->crtc_vsync_start *= 2;
 896			p->crtc_vsync_end *= 2;
 897			p->crtc_vtotal *= 2;
 898		}
 899	}
 900
 901	if (!(adjust_flags & CRTC_NO_VSCAN)) {
 902		if (p->vscan > 1) {
 903			p->crtc_vdisplay *= p->vscan;
 904			p->crtc_vsync_start *= p->vscan;
 905			p->crtc_vsync_end *= p->vscan;
 906			p->crtc_vtotal *= p->vscan;
 907		}
 908	}
 909
 910	if (adjust_flags & CRTC_STEREO_DOUBLE) {
 911		unsigned int layout = p->flags & DRM_MODE_FLAG_3D_MASK;
 912
 913		switch (layout) {
 914		case DRM_MODE_FLAG_3D_FRAME_PACKING:
 915			p->crtc_clock *= 2;
 916			p->crtc_vdisplay += p->crtc_vtotal;
 917			p->crtc_vsync_start += p->crtc_vtotal;
 918			p->crtc_vsync_end += p->crtc_vtotal;
 919			p->crtc_vtotal += p->crtc_vtotal;
 920			break;
 921		}
 922	}
 923
 924	p->crtc_vblank_start = min(p->crtc_vsync_start, p->crtc_vdisplay);
 925	p->crtc_vblank_end = max(p->crtc_vsync_end, p->crtc_vtotal);
 926	p->crtc_hblank_start = min(p->crtc_hsync_start, p->crtc_hdisplay);
 927	p->crtc_hblank_end = max(p->crtc_hsync_end, p->crtc_htotal);
 928}
 929EXPORT_SYMBOL(drm_mode_set_crtcinfo);
 930
 931/**
 932 * drm_mode_copy - copy the mode
 933 * @dst: mode to overwrite
 934 * @src: mode to copy
 935 *
 936 * Copy an existing mode into another mode, preserving the
 937 * list head of the destination mode.
 938 */
 939void drm_mode_copy(struct drm_display_mode *dst, const struct drm_display_mode *src)
 940{
 941	struct list_head head = dst->head;
 942
 943	*dst = *src;
 944	dst->head = head;
 945}
 946EXPORT_SYMBOL(drm_mode_copy);
 947
 948/**
 949 * drm_mode_init - initialize the mode from another mode
 950 * @dst: mode to overwrite
 951 * @src: mode to copy
 952 *
 953 * Copy an existing mode into another mode, zeroing the
 954 * list head of the destination mode. Typically used
 955 * to guarantee the list head is not left with stack
 956 * garbage in on-stack modes.
 957 */
 958void drm_mode_init(struct drm_display_mode *dst, const struct drm_display_mode *src)
 959{
 960	memset(dst, 0, sizeof(*dst));
 961	drm_mode_copy(dst, src);
 962}
 963EXPORT_SYMBOL(drm_mode_init);
 964
 965/**
 966 * drm_mode_duplicate - allocate and duplicate an existing mode
 967 * @dev: drm_device to allocate the duplicated mode for
 968 * @mode: mode to duplicate
 969 *
 970 * Just allocate a new mode, copy the existing mode into it, and return
 971 * a pointer to it.  Used to create new instances of established modes.
 972 *
 973 * Returns:
 974 * Pointer to duplicated mode on success, NULL on error.
 975 */
 976struct drm_display_mode *drm_mode_duplicate(struct drm_device *dev,
 977					    const struct drm_display_mode *mode)
 978{
 979	struct drm_display_mode *nmode;
 980
 981	nmode = drm_mode_create(dev);
 982	if (!nmode)
 983		return NULL;
 984
 985	drm_mode_copy(nmode, mode);
 986
 987	return nmode;
 988}
 989EXPORT_SYMBOL(drm_mode_duplicate);
 990
 991static bool drm_mode_match_timings(const struct drm_display_mode *mode1,
 992				   const struct drm_display_mode *mode2)
 993{
 994	return mode1->hdisplay == mode2->hdisplay &&
 995		mode1->hsync_start == mode2->hsync_start &&
 996		mode1->hsync_end == mode2->hsync_end &&
 997		mode1->htotal == mode2->htotal &&
 998		mode1->hskew == mode2->hskew &&
 999		mode1->vdisplay == mode2->vdisplay &&
1000		mode1->vsync_start == mode2->vsync_start &&
1001		mode1->vsync_end == mode2->vsync_end &&
1002		mode1->vtotal == mode2->vtotal &&
1003		mode1->vscan == mode2->vscan;
1004}
1005
1006static bool drm_mode_match_clock(const struct drm_display_mode *mode1,
1007				  const struct drm_display_mode *mode2)
1008{
1009	/*
1010	 * do clock check convert to PICOS
1011	 * so fb modes get matched the same
1012	 */
1013	if (mode1->clock && mode2->clock)
1014		return KHZ2PICOS(mode1->clock) == KHZ2PICOS(mode2->clock);
1015	else
1016		return mode1->clock == mode2->clock;
1017}
1018
1019static bool drm_mode_match_flags(const struct drm_display_mode *mode1,
1020				 const struct drm_display_mode *mode2)
1021{
1022	return (mode1->flags & ~DRM_MODE_FLAG_3D_MASK) ==
1023		(mode2->flags & ~DRM_MODE_FLAG_3D_MASK);
1024}
1025
1026static bool drm_mode_match_3d_flags(const struct drm_display_mode *mode1,
1027				    const struct drm_display_mode *mode2)
1028{
1029	return (mode1->flags & DRM_MODE_FLAG_3D_MASK) ==
1030		(mode2->flags & DRM_MODE_FLAG_3D_MASK);
1031}
1032
1033static bool drm_mode_match_aspect_ratio(const struct drm_display_mode *mode1,
1034					const struct drm_display_mode *mode2)
1035{
1036	return mode1->picture_aspect_ratio == mode2->picture_aspect_ratio;
1037}
1038
1039/**
1040 * drm_mode_match - test modes for (partial) equality
1041 * @mode1: first mode
1042 * @mode2: second mode
1043 * @match_flags: which parts need to match (DRM_MODE_MATCH_*)
1044 *
1045 * Check to see if @mode1 and @mode2 are equivalent.
1046 *
1047 * Returns:
1048 * True if the modes are (partially) equal, false otherwise.
1049 */
1050bool drm_mode_match(const struct drm_display_mode *mode1,
1051		    const struct drm_display_mode *mode2,
1052		    unsigned int match_flags)
1053{
1054	if (!mode1 && !mode2)
1055		return true;
1056
1057	if (!mode1 || !mode2)
1058		return false;
1059
1060	if (match_flags & DRM_MODE_MATCH_TIMINGS &&
1061	    !drm_mode_match_timings(mode1, mode2))
1062		return false;
1063
1064	if (match_flags & DRM_MODE_MATCH_CLOCK &&
1065	    !drm_mode_match_clock(mode1, mode2))
1066		return false;
1067
1068	if (match_flags & DRM_MODE_MATCH_FLAGS &&
1069	    !drm_mode_match_flags(mode1, mode2))
1070		return false;
1071
1072	if (match_flags & DRM_MODE_MATCH_3D_FLAGS &&
1073	    !drm_mode_match_3d_flags(mode1, mode2))
1074		return false;
1075
1076	if (match_flags & DRM_MODE_MATCH_ASPECT_RATIO &&
1077	    !drm_mode_match_aspect_ratio(mode1, mode2))
1078		return false;
1079
1080	return true;
1081}
1082EXPORT_SYMBOL(drm_mode_match);
1083
1084/**
1085 * drm_mode_equal - test modes for equality
1086 * @mode1: first mode
1087 * @mode2: second mode
1088 *
1089 * Check to see if @mode1 and @mode2 are equivalent.
1090 *
1091 * Returns:
1092 * True if the modes are equal, false otherwise.
1093 */
1094bool drm_mode_equal(const struct drm_display_mode *mode1,
1095		    const struct drm_display_mode *mode2)
1096{
1097	return drm_mode_match(mode1, mode2,
1098			      DRM_MODE_MATCH_TIMINGS |
1099			      DRM_MODE_MATCH_CLOCK |
1100			      DRM_MODE_MATCH_FLAGS |
1101			      DRM_MODE_MATCH_3D_FLAGS|
1102			      DRM_MODE_MATCH_ASPECT_RATIO);
1103}
1104EXPORT_SYMBOL(drm_mode_equal);
1105
1106/**
1107 * drm_mode_equal_no_clocks - test modes for equality
1108 * @mode1: first mode
1109 * @mode2: second mode
1110 *
1111 * Check to see if @mode1 and @mode2 are equivalent, but
1112 * don't check the pixel clocks.
1113 *
1114 * Returns:
1115 * True if the modes are equal, false otherwise.
1116 */
1117bool drm_mode_equal_no_clocks(const struct drm_display_mode *mode1,
1118			      const struct drm_display_mode *mode2)
1119{
1120	return drm_mode_match(mode1, mode2,
1121			      DRM_MODE_MATCH_TIMINGS |
1122			      DRM_MODE_MATCH_FLAGS |
1123			      DRM_MODE_MATCH_3D_FLAGS);
1124}
1125EXPORT_SYMBOL(drm_mode_equal_no_clocks);
1126
1127/**
1128 * drm_mode_equal_no_clocks_no_stereo - test modes for equality
1129 * @mode1: first mode
1130 * @mode2: second mode
1131 *
1132 * Check to see if @mode1 and @mode2 are equivalent, but
1133 * don't check the pixel clocks nor the stereo layout.
1134 *
1135 * Returns:
1136 * True if the modes are equal, false otherwise.
1137 */
1138bool drm_mode_equal_no_clocks_no_stereo(const struct drm_display_mode *mode1,
1139					const struct drm_display_mode *mode2)
1140{
1141	return drm_mode_match(mode1, mode2,
1142			      DRM_MODE_MATCH_TIMINGS |
1143			      DRM_MODE_MATCH_FLAGS);
1144}
1145EXPORT_SYMBOL(drm_mode_equal_no_clocks_no_stereo);
1146
1147static enum drm_mode_status
1148drm_mode_validate_basic(const struct drm_display_mode *mode)
1149{
1150	if (mode->type & ~DRM_MODE_TYPE_ALL)
1151		return MODE_BAD;
1152
1153	if (mode->flags & ~DRM_MODE_FLAG_ALL)
1154		return MODE_BAD;
1155
1156	if ((mode->flags & DRM_MODE_FLAG_3D_MASK) > DRM_MODE_FLAG_3D_MAX)
1157		return MODE_BAD;
1158
1159	if (mode->clock == 0)
1160		return MODE_CLOCK_LOW;
1161
1162	if (mode->hdisplay == 0 ||
1163	    mode->hsync_start < mode->hdisplay ||
1164	    mode->hsync_end < mode->hsync_start ||
1165	    mode->htotal < mode->hsync_end)
1166		return MODE_H_ILLEGAL;
1167
1168	if (mode->vdisplay == 0 ||
1169	    mode->vsync_start < mode->vdisplay ||
1170	    mode->vsync_end < mode->vsync_start ||
1171	    mode->vtotal < mode->vsync_end)
1172		return MODE_V_ILLEGAL;
1173
1174	return MODE_OK;
1175}
1176
1177/**
1178 * drm_mode_validate_driver - make sure the mode is somewhat sane
1179 * @dev: drm device
1180 * @mode: mode to check
1181 *
1182 * First do basic validation on the mode, and then allow the driver
1183 * to check for device/driver specific limitations via the optional
1184 * &drm_mode_config_helper_funcs.mode_valid hook.
1185 *
1186 * Returns:
1187 * The mode status
1188 */
1189enum drm_mode_status
1190drm_mode_validate_driver(struct drm_device *dev,
1191			const struct drm_display_mode *mode)
1192{
1193	enum drm_mode_status status;
1194
1195	status = drm_mode_validate_basic(mode);
1196	if (status != MODE_OK)
1197		return status;
1198
1199	if (dev->mode_config.funcs->mode_valid)
1200		return dev->mode_config.funcs->mode_valid(dev, mode);
1201	else
1202		return MODE_OK;
1203}
1204EXPORT_SYMBOL(drm_mode_validate_driver);
1205
1206/**
1207 * drm_mode_validate_size - make sure modes adhere to size constraints
1208 * @mode: mode to check
1209 * @maxX: maximum width
1210 * @maxY: maximum height
1211 *
1212 * This function is a helper which can be used to validate modes against size
1213 * limitations of the DRM device/connector. If a mode is too big its status
1214 * member is updated with the appropriate validation failure code. The list
1215 * itself is not changed.
1216 *
1217 * Returns:
1218 * The mode status
1219 */
1220enum drm_mode_status
1221drm_mode_validate_size(const struct drm_display_mode *mode,
1222		       int maxX, int maxY)
1223{
1224	if (maxX > 0 && mode->hdisplay > maxX)
1225		return MODE_VIRTUAL_X;
1226
1227	if (maxY > 0 && mode->vdisplay > maxY)
1228		return MODE_VIRTUAL_Y;
1229
1230	return MODE_OK;
1231}
1232EXPORT_SYMBOL(drm_mode_validate_size);
1233
1234/**
1235 * drm_mode_validate_ycbcr420 - add 'ycbcr420-only' modes only when allowed
1236 * @mode: mode to check
1237 * @connector: drm connector under action
1238 *
1239 * This function is a helper which can be used to filter out any YCBCR420
1240 * only mode, when the source doesn't support it.
1241 *
1242 * Returns:
1243 * The mode status
1244 */
1245enum drm_mode_status
1246drm_mode_validate_ycbcr420(const struct drm_display_mode *mode,
1247			   struct drm_connector *connector)
1248{
1249	if (!connector->ycbcr_420_allowed &&
1250	    drm_mode_is_420_only(&connector->display_info, mode))
1251		return MODE_NO_420;
1252
1253	return MODE_OK;
1254}
1255EXPORT_SYMBOL(drm_mode_validate_ycbcr420);
1256
1257#define MODE_STATUS(status) [MODE_ ## status + 3] = #status
1258
1259static const char * const drm_mode_status_names[] = {
1260	MODE_STATUS(OK),
1261	MODE_STATUS(HSYNC),
1262	MODE_STATUS(VSYNC),
1263	MODE_STATUS(H_ILLEGAL),
1264	MODE_STATUS(V_ILLEGAL),
1265	MODE_STATUS(BAD_WIDTH),
1266	MODE_STATUS(NOMODE),
1267	MODE_STATUS(NO_INTERLACE),
1268	MODE_STATUS(NO_DBLESCAN),
1269	MODE_STATUS(NO_VSCAN),
1270	MODE_STATUS(MEM),
1271	MODE_STATUS(VIRTUAL_X),
1272	MODE_STATUS(VIRTUAL_Y),
1273	MODE_STATUS(MEM_VIRT),
1274	MODE_STATUS(NOCLOCK),
1275	MODE_STATUS(CLOCK_HIGH),
1276	MODE_STATUS(CLOCK_LOW),
1277	MODE_STATUS(CLOCK_RANGE),
1278	MODE_STATUS(BAD_HVALUE),
1279	MODE_STATUS(BAD_VVALUE),
1280	MODE_STATUS(BAD_VSCAN),
1281	MODE_STATUS(HSYNC_NARROW),
1282	MODE_STATUS(HSYNC_WIDE),
1283	MODE_STATUS(HBLANK_NARROW),
1284	MODE_STATUS(HBLANK_WIDE),
1285	MODE_STATUS(VSYNC_NARROW),
1286	MODE_STATUS(VSYNC_WIDE),
1287	MODE_STATUS(VBLANK_NARROW),
1288	MODE_STATUS(VBLANK_WIDE),
1289	MODE_STATUS(PANEL),
1290	MODE_STATUS(INTERLACE_WIDTH),
1291	MODE_STATUS(ONE_WIDTH),
1292	MODE_STATUS(ONE_HEIGHT),
1293	MODE_STATUS(ONE_SIZE),
1294	MODE_STATUS(NO_REDUCED),
1295	MODE_STATUS(NO_STEREO),
1296	MODE_STATUS(NO_420),
1297	MODE_STATUS(STALE),
1298	MODE_STATUS(BAD),
1299	MODE_STATUS(ERROR),
1300};
1301
1302#undef MODE_STATUS
1303
1304const char *drm_get_mode_status_name(enum drm_mode_status status)
1305{
1306	int index = status + 3;
1307
1308	if (WARN_ON(index < 0 || index >= ARRAY_SIZE(drm_mode_status_names)))
1309		return "";
1310
1311	return drm_mode_status_names[index];
1312}
1313
1314/**
1315 * drm_mode_prune_invalid - remove invalid modes from mode list
1316 * @dev: DRM device
1317 * @mode_list: list of modes to check
1318 * @verbose: be verbose about it
1319 *
1320 * This helper function can be used to prune a display mode list after
1321 * validation has been completed. All modes whose status is not MODE_OK will be
1322 * removed from the list, and if @verbose the status code and mode name is also
1323 * printed to dmesg.
1324 */
1325void drm_mode_prune_invalid(struct drm_device *dev,
1326			    struct list_head *mode_list, bool verbose)
1327{
1328	struct drm_display_mode *mode, *t;
1329
1330	list_for_each_entry_safe(mode, t, mode_list, head) {
1331		if (mode->status != MODE_OK) {
1332			list_del(&mode->head);
1333			if (mode->type & DRM_MODE_TYPE_USERDEF) {
1334				drm_warn(dev, "User-defined mode not supported: "
1335					 DRM_MODE_FMT "\n", DRM_MODE_ARG(mode));
1336			}
1337			if (verbose) {
1338				drm_mode_debug_printmodeline(mode);
1339				DRM_DEBUG_KMS("Not using %s mode: %s\n",
1340					      mode->name,
1341					      drm_get_mode_status_name(mode->status));
1342			}
1343			drm_mode_destroy(dev, mode);
1344		}
1345	}
1346}
1347EXPORT_SYMBOL(drm_mode_prune_invalid);
1348
1349/**
1350 * drm_mode_compare - compare modes for favorability
1351 * @priv: unused
1352 * @lh_a: list_head for first mode
1353 * @lh_b: list_head for second mode
1354 *
1355 * Compare two modes, given by @lh_a and @lh_b, returning a value indicating
1356 * which is better.
1357 *
1358 * Returns:
1359 * Negative if @lh_a is better than @lh_b, zero if they're equivalent, or
1360 * positive if @lh_b is better than @lh_a.
1361 */
1362static int drm_mode_compare(void *priv, const struct list_head *lh_a,
1363			    const struct list_head *lh_b)
1364{
1365	struct drm_display_mode *a = list_entry(lh_a, struct drm_display_mode, head);
1366	struct drm_display_mode *b = list_entry(lh_b, struct drm_display_mode, head);
1367	int diff;
1368
1369	diff = ((b->type & DRM_MODE_TYPE_PREFERRED) != 0) -
1370		((a->type & DRM_MODE_TYPE_PREFERRED) != 0);
1371	if (diff)
1372		return diff;
1373	diff = b->hdisplay * b->vdisplay - a->hdisplay * a->vdisplay;
1374	if (diff)
1375		return diff;
1376
1377	diff = drm_mode_vrefresh(b) - drm_mode_vrefresh(a);
1378	if (diff)
1379		return diff;
1380
1381	diff = b->clock - a->clock;
1382	return diff;
1383}
1384
1385/**
1386 * drm_mode_sort - sort mode list
1387 * @mode_list: list of drm_display_mode structures to sort
1388 *
1389 * Sort @mode_list by favorability, moving good modes to the head of the list.
1390 */
1391void drm_mode_sort(struct list_head *mode_list)
1392{
1393	list_sort(NULL, mode_list, drm_mode_compare);
1394}
1395EXPORT_SYMBOL(drm_mode_sort);
1396
1397/**
1398 * drm_connector_list_update - update the mode list for the connector
1399 * @connector: the connector to update
1400 *
1401 * This moves the modes from the @connector probed_modes list
1402 * to the actual mode list. It compares the probed mode against the current
1403 * list and only adds different/new modes.
1404 *
1405 * This is just a helper functions doesn't validate any modes itself and also
1406 * doesn't prune any invalid modes. Callers need to do that themselves.
1407 */
1408void drm_connector_list_update(struct drm_connector *connector)
1409{
1410	struct drm_display_mode *pmode, *pt;
1411
1412	WARN_ON(!mutex_is_locked(&connector->dev->mode_config.mutex));
1413
1414	list_for_each_entry_safe(pmode, pt, &connector->probed_modes, head) {
1415		struct drm_display_mode *mode;
1416		bool found_it = false;
1417
1418		/* go through current modes checking for the new probed mode */
1419		list_for_each_entry(mode, &connector->modes, head) {
1420			if (!drm_mode_equal(pmode, mode))
1421				continue;
1422
1423			found_it = true;
1424
1425			/*
1426			 * If the old matching mode is stale (ie. left over
1427			 * from a previous probe) just replace it outright.
1428			 * Otherwise just merge the type bits between all
1429			 * equal probed modes.
1430			 *
1431			 * If two probed modes are considered equal, pick the
1432			 * actual timings from the one that's marked as
1433			 * preferred (in case the match isn't 100%). If
1434			 * multiple or zero preferred modes are present, favor
1435			 * the mode added to the probed_modes list first.
1436			 */
1437			if (mode->status == MODE_STALE) {
1438				drm_mode_copy(mode, pmode);
1439			} else if ((mode->type & DRM_MODE_TYPE_PREFERRED) == 0 &&
1440				   (pmode->type & DRM_MODE_TYPE_PREFERRED) != 0) {
1441				pmode->type |= mode->type;
1442				drm_mode_copy(mode, pmode);
1443			} else {
1444				mode->type |= pmode->type;
1445			}
1446
1447			list_del(&pmode->head);
1448			drm_mode_destroy(connector->dev, pmode);
1449			break;
1450		}
1451
1452		if (!found_it) {
1453			list_move_tail(&pmode->head, &connector->modes);
1454		}
1455	}
1456}
1457EXPORT_SYMBOL(drm_connector_list_update);
1458
1459static int drm_mode_parse_cmdline_bpp(const char *str, char **end_ptr,
1460				      struct drm_cmdline_mode *mode)
1461{
1462	unsigned int bpp;
1463
1464	if (str[0] != '-')
1465		return -EINVAL;
1466
1467	str++;
1468	bpp = simple_strtol(str, end_ptr, 10);
1469	if (*end_ptr == str)
1470		return -EINVAL;
1471
1472	mode->bpp = bpp;
1473	mode->bpp_specified = true;
1474
1475	return 0;
1476}
1477
1478static int drm_mode_parse_cmdline_refresh(const char *str, char **end_ptr,
1479					  struct drm_cmdline_mode *mode)
1480{
1481	unsigned int refresh;
1482
1483	if (str[0] != '@')
1484		return -EINVAL;
1485
1486	str++;
1487	refresh = simple_strtol(str, end_ptr, 10);
1488	if (*end_ptr == str)
1489		return -EINVAL;
1490
1491	mode->refresh = refresh;
1492	mode->refresh_specified = true;
1493
1494	return 0;
1495}
1496
1497static int drm_mode_parse_cmdline_extra(const char *str, int length,
1498					bool freestanding,
1499					const struct drm_connector *connector,
1500					struct drm_cmdline_mode *mode)
1501{
1502	int i;
1503
1504	for (i = 0; i < length; i++) {
1505		switch (str[i]) {
1506		case 'i':
1507			if (freestanding)
1508				return -EINVAL;
1509
1510			mode->interlace = true;
1511			break;
1512		case 'm':
1513			if (freestanding)
1514				return -EINVAL;
1515
1516			mode->margins = true;
1517			break;
1518		case 'D':
1519			if (mode->force != DRM_FORCE_UNSPECIFIED)
1520				return -EINVAL;
1521
1522			if ((connector->connector_type != DRM_MODE_CONNECTOR_DVII) &&
1523			    (connector->connector_type != DRM_MODE_CONNECTOR_HDMIB))
1524				mode->force = DRM_FORCE_ON;
1525			else
1526				mode->force = DRM_FORCE_ON_DIGITAL;
1527			break;
1528		case 'd':
1529			if (mode->force != DRM_FORCE_UNSPECIFIED)
1530				return -EINVAL;
1531
1532			mode->force = DRM_FORCE_OFF;
1533			break;
1534		case 'e':
1535			if (mode->force != DRM_FORCE_UNSPECIFIED)
1536				return -EINVAL;
1537
1538			mode->force = DRM_FORCE_ON;
1539			break;
1540		default:
1541			return -EINVAL;
1542		}
1543	}
1544
1545	return 0;
1546}
1547
1548static int drm_mode_parse_cmdline_res_mode(const char *str, unsigned int length,
1549					   bool extras,
1550					   const struct drm_connector *connector,
1551					   struct drm_cmdline_mode *mode)
1552{
1553	const char *str_start = str;
1554	bool rb = false, cvt = false;
1555	int xres = 0, yres = 0;
1556	int remaining, i;
1557	char *end_ptr;
1558
1559	xres = simple_strtol(str, &end_ptr, 10);
1560	if (end_ptr == str)
1561		return -EINVAL;
1562
1563	if (end_ptr[0] != 'x')
1564		return -EINVAL;
1565	end_ptr++;
1566
1567	str = end_ptr;
1568	yres = simple_strtol(str, &end_ptr, 10);
1569	if (end_ptr == str)
1570		return -EINVAL;
1571
1572	remaining = length - (end_ptr - str_start);
1573	if (remaining < 0)
1574		return -EINVAL;
1575
1576	for (i = 0; i < remaining; i++) {
1577		switch (end_ptr[i]) {
1578		case 'M':
1579			cvt = true;
1580			break;
1581		case 'R':
1582			rb = true;
1583			break;
1584		default:
1585			/*
1586			 * Try to pass that to our extras parsing
1587			 * function to handle the case where the
1588			 * extras are directly after the resolution
1589			 */
1590			if (extras) {
1591				int ret = drm_mode_parse_cmdline_extra(end_ptr + i,
1592								       1,
1593								       false,
1594								       connector,
1595								       mode);
1596				if (ret)
1597					return ret;
1598			} else {
1599				return -EINVAL;
1600			}
1601		}
1602	}
1603
1604	mode->xres = xres;
1605	mode->yres = yres;
1606	mode->cvt = cvt;
1607	mode->rb = rb;
1608
1609	return 0;
1610}
1611
1612static int drm_mode_parse_cmdline_int(const char *delim, unsigned int *int_ret)
1613{
1614	const char *value;
1615	char *endp;
1616
1617	/*
1618	 * delim must point to the '=', otherwise it is a syntax error and
1619	 * if delim points to the terminating zero, then delim + 1 will point
1620	 * past the end of the string.
1621	 */
1622	if (*delim != '=')
1623		return -EINVAL;
1624
1625	value = delim + 1;
1626	*int_ret = simple_strtol(value, &endp, 10);
1627
1628	/* Make sure we have parsed something */
1629	if (endp == value)
1630		return -EINVAL;
1631
1632	return 0;
1633}
1634
1635static int drm_mode_parse_panel_orientation(const char *delim,
1636					    struct drm_cmdline_mode *mode)
1637{
1638	const char *value;
1639
1640	if (*delim != '=')
1641		return -EINVAL;
1642
1643	value = delim + 1;
1644	delim = strchr(value, ',');
1645	if (!delim)
1646		delim = value + strlen(value);
1647
1648	if (!strncmp(value, "normal", delim - value))
1649		mode->panel_orientation = DRM_MODE_PANEL_ORIENTATION_NORMAL;
1650	else if (!strncmp(value, "upside_down", delim - value))
1651		mode->panel_orientation = DRM_MODE_PANEL_ORIENTATION_BOTTOM_UP;
1652	else if (!strncmp(value, "left_side_up", delim - value))
1653		mode->panel_orientation = DRM_MODE_PANEL_ORIENTATION_LEFT_UP;
1654	else if (!strncmp(value, "right_side_up", delim - value))
1655		mode->panel_orientation = DRM_MODE_PANEL_ORIENTATION_RIGHT_UP;
1656	else
1657		return -EINVAL;
1658
1659	return 0;
1660}
1661
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1662static int drm_mode_parse_cmdline_options(const char *str,
1663					  bool freestanding,
1664					  const struct drm_connector *connector,
1665					  struct drm_cmdline_mode *mode)
1666{
1667	unsigned int deg, margin, rotation = 0;
1668	const char *delim, *option, *sep;
1669
1670	option = str;
1671	do {
1672		delim = strchr(option, '=');
1673		if (!delim) {
1674			delim = strchr(option, ',');
1675
1676			if (!delim)
1677				delim = option + strlen(option);
1678		}
1679
1680		if (!strncmp(option, "rotate", delim - option)) {
1681			if (drm_mode_parse_cmdline_int(delim, &deg))
1682				return -EINVAL;
1683
1684			switch (deg) {
1685			case 0:
1686				rotation |= DRM_MODE_ROTATE_0;
1687				break;
1688
1689			case 90:
1690				rotation |= DRM_MODE_ROTATE_90;
1691				break;
1692
1693			case 180:
1694				rotation |= DRM_MODE_ROTATE_180;
1695				break;
1696
1697			case 270:
1698				rotation |= DRM_MODE_ROTATE_270;
1699				break;
1700
1701			default:
1702				return -EINVAL;
1703			}
1704		} else if (!strncmp(option, "reflect_x", delim - option)) {
1705			rotation |= DRM_MODE_REFLECT_X;
1706		} else if (!strncmp(option, "reflect_y", delim - option)) {
1707			rotation |= DRM_MODE_REFLECT_Y;
1708		} else if (!strncmp(option, "margin_right", delim - option)) {
1709			if (drm_mode_parse_cmdline_int(delim, &margin))
1710				return -EINVAL;
1711
1712			mode->tv_margins.right = margin;
1713		} else if (!strncmp(option, "margin_left", delim - option)) {
1714			if (drm_mode_parse_cmdline_int(delim, &margin))
1715				return -EINVAL;
1716
1717			mode->tv_margins.left = margin;
1718		} else if (!strncmp(option, "margin_top", delim - option)) {
1719			if (drm_mode_parse_cmdline_int(delim, &margin))
1720				return -EINVAL;
1721
1722			mode->tv_margins.top = margin;
1723		} else if (!strncmp(option, "margin_bottom", delim - option)) {
1724			if (drm_mode_parse_cmdline_int(delim, &margin))
1725				return -EINVAL;
1726
1727			mode->tv_margins.bottom = margin;
1728		} else if (!strncmp(option, "panel_orientation", delim - option)) {
1729			if (drm_mode_parse_panel_orientation(delim, mode))
1730				return -EINVAL;
 
 
 
1731		} else {
1732			return -EINVAL;
1733		}
1734		sep = strchr(delim, ',');
1735		option = sep + 1;
1736	} while (sep);
1737
1738	if (rotation && freestanding)
1739		return -EINVAL;
1740
1741	if (!(rotation & DRM_MODE_ROTATE_MASK))
1742		rotation |= DRM_MODE_ROTATE_0;
1743
1744	/* Make sure there is exactly one rotation defined */
1745	if (!is_power_of_2(rotation & DRM_MODE_ROTATE_MASK))
1746		return -EINVAL;
1747
1748	mode->rotation_reflection = rotation;
1749
1750	return 0;
1751}
1752
1753struct drm_named_mode {
1754	const char *name;
1755	unsigned int pixel_clock_khz;
1756	unsigned int xres;
1757	unsigned int yres;
1758	unsigned int flags;
 
1759};
1760
1761#define NAMED_MODE(_name, _pclk, _x, _y, _flags)	\
1762	{						\
1763		.name = _name,				\
1764		.pixel_clock_khz = _pclk,		\
1765		.xres = _x,				\
1766		.yres = _y,				\
1767		.flags = _flags,			\
 
1768	}
1769
1770static const struct drm_named_mode drm_named_modes[] = {
1771	NAMED_MODE("NTSC", 13500, 720, 480, DRM_MODE_FLAG_INTERLACE),
1772	NAMED_MODE("PAL", 13500, 720, 576, DRM_MODE_FLAG_INTERLACE),
 
 
1773};
1774
1775static int drm_mode_parse_cmdline_named_mode(const char *name,
1776					     unsigned int name_end,
1777					     struct drm_cmdline_mode *cmdline_mode)
1778{
1779	unsigned int i;
1780
1781	if (!name_end)
1782		return 0;
1783
1784	/* If the name starts with a digit, it's not a named mode */
1785	if (isdigit(name[0]))
1786		return 0;
1787
1788	/*
1789	 * If there's an equal sign in the name, the command-line
1790	 * contains only an option and no mode.
1791	 */
1792	if (strnchr(name, name_end, '='))
1793		return 0;
1794
1795	/* The connection status extras can be set without a mode. */
1796	if (name_end == 1 &&
1797	    (name[0] == 'd' || name[0] == 'D' || name[0] == 'e'))
1798		return 0;
1799
1800	/*
1801	 * We're sure we're a named mode at this point, iterate over the
1802	 * list of modes we're aware of.
1803	 */
1804	for (i = 0; i < ARRAY_SIZE(drm_named_modes); i++) {
1805		const struct drm_named_mode *mode = &drm_named_modes[i];
1806		int ret;
1807
1808		ret = str_has_prefix(name, mode->name);
1809		if (ret != name_end)
1810			continue;
1811
1812		strcpy(cmdline_mode->name, mode->name);
1813		cmdline_mode->pixel_clock = mode->pixel_clock_khz;
1814		cmdline_mode->xres = mode->xres;
1815		cmdline_mode->yres = mode->yres;
1816		cmdline_mode->interlace = !!(mode->flags & DRM_MODE_FLAG_INTERLACE);
 
 
1817		cmdline_mode->specified = true;
1818
1819		return 1;
1820	}
1821
1822	return -EINVAL;
1823}
1824
1825/**
1826 * drm_mode_parse_command_line_for_connector - parse command line modeline for connector
1827 * @mode_option: optional per connector mode option
1828 * @connector: connector to parse modeline for
1829 * @mode: preallocated drm_cmdline_mode structure to fill out
1830 *
1831 * This parses @mode_option command line modeline for modes and options to
1832 * configure the connector. If @mode_option is NULL the default command line
1833 * modeline in fb_mode_option will be parsed instead.
1834 *
1835 * This uses the same parameters as the fb modedb.c, except for an extra
1836 * force-enable, force-enable-digital and force-disable bit at the end::
1837 *
1838 *	<xres>x<yres>[M][R][-<bpp>][@<refresh>][i][m][eDd]
1839 *
1840 * Additionals options can be provided following the mode, using a comma to
1841 * separate each option. Valid options can be found in
1842 * Documentation/fb/modedb.rst.
1843 *
1844 * The intermediate drm_cmdline_mode structure is required to store additional
1845 * options from the command line modline like the force-enable/disable flag.
1846 *
1847 * Returns:
1848 * True if a valid modeline has been parsed, false otherwise.
1849 */
1850bool drm_mode_parse_command_line_for_connector(const char *mode_option,
1851					       const struct drm_connector *connector,
1852					       struct drm_cmdline_mode *mode)
1853{
1854	const char *name;
1855	bool freestanding = false, parse_extras = false;
1856	unsigned int bpp_off = 0, refresh_off = 0, options_off = 0;
1857	unsigned int mode_end = 0;
1858	const char *bpp_ptr = NULL, *refresh_ptr = NULL, *extra_ptr = NULL;
1859	const char *options_ptr = NULL;
1860	char *bpp_end_ptr = NULL, *refresh_end_ptr = NULL;
1861	int len, ret;
1862
1863	memset(mode, 0, sizeof(*mode));
1864	mode->panel_orientation = DRM_MODE_PANEL_ORIENTATION_UNKNOWN;
1865
1866	if (!mode_option)
1867		return false;
1868
1869	name = mode_option;
1870
1871	/* Locate the start of named options */
1872	options_ptr = strchr(name, ',');
1873	if (options_ptr)
1874		options_off = options_ptr - name;
1875	else
1876		options_off = strlen(name);
1877
1878	/* Try to locate the bpp and refresh specifiers, if any */
1879	bpp_ptr = strnchr(name, options_off, '-');
1880	while (bpp_ptr && !isdigit(bpp_ptr[1]))
1881		bpp_ptr = strnchr(bpp_ptr + 1, options_off, '-');
1882	if (bpp_ptr)
1883		bpp_off = bpp_ptr - name;
1884
1885	refresh_ptr = strnchr(name, options_off, '@');
1886	if (refresh_ptr)
1887		refresh_off = refresh_ptr - name;
1888
1889	/* Locate the end of the name / resolution, and parse it */
1890	if (bpp_ptr) {
1891		mode_end = bpp_off;
1892	} else if (refresh_ptr) {
1893		mode_end = refresh_off;
1894	} else if (options_ptr) {
1895		mode_end = options_off;
1896		parse_extras = true;
1897	} else {
1898		mode_end = strlen(name);
1899		parse_extras = true;
1900	}
1901
1902	if (!mode_end)
1903		return false;
1904
1905	ret = drm_mode_parse_cmdline_named_mode(name, mode_end, mode);
1906	if (ret < 0)
1907		return false;
1908
1909	/*
1910	 * Having a mode that starts by a letter (and thus is named) and
1911	 * an at-sign (used to specify a refresh rate) is disallowed.
1912	 */
1913	if (ret && refresh_ptr)
1914		return false;
1915
1916	/* No named mode? Check for a normal mode argument, e.g. 1024x768 */
1917	if (!mode->specified && isdigit(name[0])) {
1918		ret = drm_mode_parse_cmdline_res_mode(name, mode_end,
1919						      parse_extras,
1920						      connector,
1921						      mode);
1922		if (ret)
1923			return false;
1924
1925		mode->specified = true;
1926	}
1927
1928	/* No mode? Check for freestanding extras and/or options */
1929	if (!mode->specified) {
1930		unsigned int len = strlen(mode_option);
1931
1932		if (bpp_ptr || refresh_ptr)
1933			return false; /* syntax error */
1934
1935		if (len == 1 || (len >= 2 && mode_option[1] == ','))
1936			extra_ptr = mode_option;
1937		else
1938			options_ptr = mode_option - 1;
1939
1940		freestanding = true;
1941	}
1942
1943	if (bpp_ptr) {
1944		ret = drm_mode_parse_cmdline_bpp(bpp_ptr, &bpp_end_ptr, mode);
1945		if (ret)
1946			return false;
1947
1948		mode->bpp_specified = true;
1949	}
1950
1951	if (refresh_ptr) {
1952		ret = drm_mode_parse_cmdline_refresh(refresh_ptr,
1953						     &refresh_end_ptr, mode);
1954		if (ret)
1955			return false;
1956
1957		mode->refresh_specified = true;
1958	}
1959
1960	/*
1961	 * Locate the end of the bpp / refresh, and parse the extras
1962	 * if relevant
1963	 */
1964	if (bpp_ptr && refresh_ptr)
1965		extra_ptr = max(bpp_end_ptr, refresh_end_ptr);
1966	else if (bpp_ptr)
1967		extra_ptr = bpp_end_ptr;
1968	else if (refresh_ptr)
1969		extra_ptr = refresh_end_ptr;
1970
1971	if (extra_ptr) {
1972		if (options_ptr)
1973			len = options_ptr - extra_ptr;
1974		else
1975			len = strlen(extra_ptr);
1976
1977		ret = drm_mode_parse_cmdline_extra(extra_ptr, len, freestanding,
1978						   connector, mode);
1979		if (ret)
1980			return false;
1981	}
1982
1983	if (options_ptr) {
1984		ret = drm_mode_parse_cmdline_options(options_ptr + 1,
1985						     freestanding,
1986						     connector, mode);
1987		if (ret)
1988			return false;
1989	}
1990
1991	return true;
1992}
1993EXPORT_SYMBOL(drm_mode_parse_command_line_for_connector);
1994
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1995/**
1996 * drm_mode_create_from_cmdline_mode - convert a command line modeline into a DRM display mode
1997 * @dev: DRM device to create the new mode for
1998 * @cmd: input command line modeline
1999 *
2000 * Returns:
2001 * Pointer to converted mode on success, NULL on error.
2002 */
2003struct drm_display_mode *
2004drm_mode_create_from_cmdline_mode(struct drm_device *dev,
2005				  struct drm_cmdline_mode *cmd)
2006{
2007	struct drm_display_mode *mode;
2008
2009	if (cmd->xres == 0 || cmd->yres == 0)
2010		return NULL;
2011
2012	if (cmd->cvt)
 
 
2013		mode = drm_cvt_mode(dev,
2014				    cmd->xres, cmd->yres,
2015				    cmd->refresh_specified ? cmd->refresh : 60,
2016				    cmd->rb, cmd->interlace,
2017				    cmd->margins);
2018	else
2019		mode = drm_gtf_mode(dev,
2020				    cmd->xres, cmd->yres,
2021				    cmd->refresh_specified ? cmd->refresh : 60,
2022				    cmd->interlace,
2023				    cmd->margins);
2024	if (!mode)
2025		return NULL;
2026
2027	mode->type |= DRM_MODE_TYPE_USERDEF;
2028	/* fix up 1368x768: GFT/CVT can't express 1366 width due to alignment */
2029	if (cmd->xres == 1366)
2030		drm_mode_fixup_1366x768(mode);
2031	drm_mode_set_crtcinfo(mode, CRTC_INTERLACE_HALVE_V);
2032	return mode;
2033}
2034EXPORT_SYMBOL(drm_mode_create_from_cmdline_mode);
2035
2036/**
2037 * drm_mode_convert_to_umode - convert a drm_display_mode into a modeinfo
2038 * @out: drm_mode_modeinfo struct to return to the user
2039 * @in: drm_display_mode to use
2040 *
2041 * Convert a drm_display_mode into a drm_mode_modeinfo structure to return to
2042 * the user.
2043 */
2044void drm_mode_convert_to_umode(struct drm_mode_modeinfo *out,
2045			       const struct drm_display_mode *in)
2046{
2047	out->clock = in->clock;
2048	out->hdisplay = in->hdisplay;
2049	out->hsync_start = in->hsync_start;
2050	out->hsync_end = in->hsync_end;
2051	out->htotal = in->htotal;
2052	out->hskew = in->hskew;
2053	out->vdisplay = in->vdisplay;
2054	out->vsync_start = in->vsync_start;
2055	out->vsync_end = in->vsync_end;
2056	out->vtotal = in->vtotal;
2057	out->vscan = in->vscan;
2058	out->vrefresh = drm_mode_vrefresh(in);
2059	out->flags = in->flags;
2060	out->type = in->type;
2061
2062	switch (in->picture_aspect_ratio) {
2063	case HDMI_PICTURE_ASPECT_4_3:
2064		out->flags |= DRM_MODE_FLAG_PIC_AR_4_3;
2065		break;
2066	case HDMI_PICTURE_ASPECT_16_9:
2067		out->flags |= DRM_MODE_FLAG_PIC_AR_16_9;
2068		break;
2069	case HDMI_PICTURE_ASPECT_64_27:
2070		out->flags |= DRM_MODE_FLAG_PIC_AR_64_27;
2071		break;
2072	case HDMI_PICTURE_ASPECT_256_135:
2073		out->flags |= DRM_MODE_FLAG_PIC_AR_256_135;
2074		break;
2075	default:
2076		WARN(1, "Invalid aspect ratio (0%x) on mode\n",
2077		     in->picture_aspect_ratio);
2078		fallthrough;
2079	case HDMI_PICTURE_ASPECT_NONE:
2080		out->flags |= DRM_MODE_FLAG_PIC_AR_NONE;
2081		break;
2082	}
2083
2084	strncpy(out->name, in->name, DRM_DISPLAY_MODE_LEN);
2085	out->name[DRM_DISPLAY_MODE_LEN-1] = 0;
2086}
2087
2088/**
2089 * drm_mode_convert_umode - convert a modeinfo into a drm_display_mode
2090 * @dev: drm device
2091 * @out: drm_display_mode to return to the user
2092 * @in: drm_mode_modeinfo to use
2093 *
2094 * Convert a drm_mode_modeinfo into a drm_display_mode structure to return to
2095 * the caller.
2096 *
2097 * Returns:
2098 * Zero on success, negative errno on failure.
2099 */
2100int drm_mode_convert_umode(struct drm_device *dev,
2101			   struct drm_display_mode *out,
2102			   const struct drm_mode_modeinfo *in)
2103{
2104	if (in->clock > INT_MAX || in->vrefresh > INT_MAX)
2105		return -ERANGE;
2106
2107	out->clock = in->clock;
2108	out->hdisplay = in->hdisplay;
2109	out->hsync_start = in->hsync_start;
2110	out->hsync_end = in->hsync_end;
2111	out->htotal = in->htotal;
2112	out->hskew = in->hskew;
2113	out->vdisplay = in->vdisplay;
2114	out->vsync_start = in->vsync_start;
2115	out->vsync_end = in->vsync_end;
2116	out->vtotal = in->vtotal;
2117	out->vscan = in->vscan;
2118	out->flags = in->flags;
2119	/*
2120	 * Old xf86-video-vmware (possibly others too) used to
2121	 * leave 'type' uninitialized. Just ignore any bits we
2122	 * don't like. It's a just hint after all, and more
2123	 * useful for the kernel->userspace direction anyway.
2124	 */
2125	out->type = in->type & DRM_MODE_TYPE_ALL;
2126	strncpy(out->name, in->name, DRM_DISPLAY_MODE_LEN);
2127	out->name[DRM_DISPLAY_MODE_LEN-1] = 0;
2128
2129	/* Clearing picture aspect ratio bits from out flags,
2130	 * as the aspect-ratio information is not stored in
2131	 * flags for kernel-mode, but in picture_aspect_ratio.
2132	 */
2133	out->flags &= ~DRM_MODE_FLAG_PIC_AR_MASK;
2134
2135	switch (in->flags & DRM_MODE_FLAG_PIC_AR_MASK) {
2136	case DRM_MODE_FLAG_PIC_AR_4_3:
2137		out->picture_aspect_ratio = HDMI_PICTURE_ASPECT_4_3;
2138		break;
2139	case DRM_MODE_FLAG_PIC_AR_16_9:
2140		out->picture_aspect_ratio = HDMI_PICTURE_ASPECT_16_9;
2141		break;
2142	case DRM_MODE_FLAG_PIC_AR_64_27:
2143		out->picture_aspect_ratio = HDMI_PICTURE_ASPECT_64_27;
2144		break;
2145	case DRM_MODE_FLAG_PIC_AR_256_135:
2146		out->picture_aspect_ratio = HDMI_PICTURE_ASPECT_256_135;
2147		break;
2148	case DRM_MODE_FLAG_PIC_AR_NONE:
2149		out->picture_aspect_ratio = HDMI_PICTURE_ASPECT_NONE;
2150		break;
2151	default:
2152		return -EINVAL;
2153	}
2154
2155	out->status = drm_mode_validate_driver(dev, out);
2156	if (out->status != MODE_OK)
2157		return -EINVAL;
2158
2159	drm_mode_set_crtcinfo(out, CRTC_INTERLACE_HALVE_V);
2160
2161	return 0;
2162}
2163
2164/**
2165 * drm_mode_is_420_only - if a given videomode can be only supported in YCBCR420
2166 * output format
2167 *
2168 * @display: display under action
2169 * @mode: video mode to be tested.
2170 *
2171 * Returns:
2172 * true if the mode can be supported in YCBCR420 format
2173 * false if not.
2174 */
2175bool drm_mode_is_420_only(const struct drm_display_info *display,
2176			  const struct drm_display_mode *mode)
2177{
2178	u8 vic = drm_match_cea_mode(mode);
2179
2180	return test_bit(vic, display->hdmi.y420_vdb_modes);
2181}
2182EXPORT_SYMBOL(drm_mode_is_420_only);
2183
2184/**
2185 * drm_mode_is_420_also - if a given videomode can be supported in YCBCR420
2186 * output format also (along with RGB/YCBCR444/422)
2187 *
2188 * @display: display under action.
2189 * @mode: video mode to be tested.
2190 *
2191 * Returns:
2192 * true if the mode can be support YCBCR420 format
2193 * false if not.
2194 */
2195bool drm_mode_is_420_also(const struct drm_display_info *display,
2196			  const struct drm_display_mode *mode)
2197{
2198	u8 vic = drm_match_cea_mode(mode);
2199
2200	return test_bit(vic, display->hdmi.y420_cmdb_modes);
2201}
2202EXPORT_SYMBOL(drm_mode_is_420_also);
2203/**
2204 * drm_mode_is_420 - if a given videomode can be supported in YCBCR420
2205 * output format
2206 *
2207 * @display: display under action.
2208 * @mode: video mode to be tested.
2209 *
2210 * Returns:
2211 * true if the mode can be supported in YCBCR420 format
2212 * false if not.
2213 */
2214bool drm_mode_is_420(const struct drm_display_info *display,
2215		     const struct drm_display_mode *mode)
2216{
2217	return drm_mode_is_420_only(display, mode) ||
2218		drm_mode_is_420_also(display, mode);
2219}
2220EXPORT_SYMBOL(drm_mode_is_420);