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a4fc5ed6
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1/*
2 * Copyright © 2008 Intel Corporation
3 *
4 * Permission is hereby granted, free of charge, to any person obtaining a
5 * copy of this software and associated documentation files (the "Software"),
6 * to deal in the Software without restriction, including without limitation
7 * the rights to use, copy, modify, merge, publish, distribute, sublicense,
8 * and/or sell copies of the Software, and to permit persons to whom the
9 * Software is furnished to do so, subject to the following conditions:
10 *
11 * The above copyright notice and this permission notice (including the next
12 * paragraph) shall be included in all copies or substantial portions of the
13 * Software.
14 *
15 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
16 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
17 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
18 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
19 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
20 * FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS
21 * IN THE SOFTWARE.
22 *
23 * Authors:
24 * Keith Packard <keithp@keithp.com>
25 *
26 */
27
28#include <linux/i2c.h>
5a0e3ad6 29#include <linux/slab.h>
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30#include "drmP.h"
31#include "drm.h"
32#include "drm_crtc.h"
33#include "drm_crtc_helper.h"
34#include "intel_drv.h"
35#include "i915_drm.h"
36#include "i915_drv.h"
ab2c0672 37#include "drm_dp_helper.h"
a4fc5ed6 38
ae266c98 39
a4fc5ed6
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40#define DP_LINK_STATUS_SIZE 6
41#define DP_LINK_CHECK_TIMEOUT (10 * 1000)
42
43#define DP_LINK_CONFIGURATION_SIZE 9
44
ea5b213a
CW
45struct intel_dp {
46 struct intel_encoder base;
a4fc5ed6
KP
47 uint32_t output_reg;
48 uint32_t DP;
49 uint8_t link_configuration[DP_LINK_CONFIGURATION_SIZE];
a4fc5ed6 50 bool has_audio;
c8110e52 51 int dpms_mode;
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52 uint8_t link_bw;
53 uint8_t lane_count;
54 uint8_t dpcd[4];
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55 struct i2c_adapter adapter;
56 struct i2c_algo_dp_aux_data algo;
f0917379 57 bool is_pch_edp;
33a34e4e
JB
58 uint8_t train_set[4];
59 uint8_t link_status[DP_LINK_STATUS_SIZE];
a4fc5ed6
KP
60};
61
cfcb0fc9
JB
62/**
63 * is_edp - is the given port attached to an eDP panel (either CPU or PCH)
64 * @intel_dp: DP struct
65 *
66 * If a CPU or PCH DP output is attached to an eDP panel, this function
67 * will return true, and false otherwise.
68 */
69static bool is_edp(struct intel_dp *intel_dp)
70{
71 return intel_dp->base.type == INTEL_OUTPUT_EDP;
72}
73
74/**
75 * is_pch_edp - is the port on the PCH and attached to an eDP panel?
76 * @intel_dp: DP struct
77 *
78 * Returns true if the given DP struct corresponds to a PCH DP port attached
79 * to an eDP panel, false otherwise. Helpful for determining whether we
80 * may need FDI resources for a given DP output or not.
81 */
82static bool is_pch_edp(struct intel_dp *intel_dp)
83{
84 return intel_dp->is_pch_edp;
85}
86
ea5b213a
CW
87static struct intel_dp *enc_to_intel_dp(struct drm_encoder *encoder)
88{
4ef69c7a 89 return container_of(encoder, struct intel_dp, base.base);
ea5b213a 90}
a4fc5ed6 91
df0e9248
CW
92static struct intel_dp *intel_attached_dp(struct drm_connector *connector)
93{
94 return container_of(intel_attached_encoder(connector),
95 struct intel_dp, base);
96}
97
814948ad
JB
98/**
99 * intel_encoder_is_pch_edp - is the given encoder a PCH attached eDP?
100 * @encoder: DRM encoder
101 *
102 * Return true if @encoder corresponds to a PCH attached eDP panel. Needed
103 * by intel_display.c.
104 */
105bool intel_encoder_is_pch_edp(struct drm_encoder *encoder)
106{
107 struct intel_dp *intel_dp;
108
109 if (!encoder)
110 return false;
111
112 intel_dp = enc_to_intel_dp(encoder);
113
114 return is_pch_edp(intel_dp);
115}
116
33a34e4e
JB
117static void intel_dp_start_link_train(struct intel_dp *intel_dp);
118static void intel_dp_complete_link_train(struct intel_dp *intel_dp);
ea5b213a 119static void intel_dp_link_down(struct intel_dp *intel_dp);
a4fc5ed6 120
32f9d658 121void
21d40d37 122intel_edp_link_config (struct intel_encoder *intel_encoder,
ea5b213a 123 int *lane_num, int *link_bw)
32f9d658 124{
ea5b213a 125 struct intel_dp *intel_dp = container_of(intel_encoder, struct intel_dp, base);
32f9d658 126
ea5b213a
CW
127 *lane_num = intel_dp->lane_count;
128 if (intel_dp->link_bw == DP_LINK_BW_1_62)
32f9d658 129 *link_bw = 162000;
ea5b213a 130 else if (intel_dp->link_bw == DP_LINK_BW_2_7)
32f9d658
ZW
131 *link_bw = 270000;
132}
133
a4fc5ed6 134static int
ea5b213a 135intel_dp_max_lane_count(struct intel_dp *intel_dp)
a4fc5ed6 136{
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137 int max_lane_count = 4;
138
ea5b213a
CW
139 if (intel_dp->dpcd[0] >= 0x11) {
140 max_lane_count = intel_dp->dpcd[2] & 0x1f;
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141 switch (max_lane_count) {
142 case 1: case 2: case 4:
143 break;
144 default:
145 max_lane_count = 4;
146 }
147 }
148 return max_lane_count;
149}
150
151static int
ea5b213a 152intel_dp_max_link_bw(struct intel_dp *intel_dp)
a4fc5ed6 153{
ea5b213a 154 int max_link_bw = intel_dp->dpcd[1];
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155
156 switch (max_link_bw) {
157 case DP_LINK_BW_1_62:
158 case DP_LINK_BW_2_7:
159 break;
160 default:
161 max_link_bw = DP_LINK_BW_1_62;
162 break;
163 }
164 return max_link_bw;
165}
166
167static int
168intel_dp_link_clock(uint8_t link_bw)
169{
170 if (link_bw == DP_LINK_BW_2_7)
171 return 270000;
172 else
173 return 162000;
174}
175
176/* I think this is a fiction */
177static int
ea5b213a 178intel_dp_link_required(struct drm_device *dev, struct intel_dp *intel_dp, int pixel_clock)
a4fc5ed6 179{
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ZW
180 struct drm_i915_private *dev_priv = dev->dev_private;
181
4d926461 182 if (is_edp(intel_dp))
5ceb0f9b 183 return (pixel_clock * dev_priv->edp.bpp + 7) / 8;
885a5fb5
ZW
184 else
185 return pixel_clock * 3;
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186}
187
fe27d53e
DA
188static int
189intel_dp_max_data_rate(int max_link_clock, int max_lanes)
190{
191 return (max_link_clock * max_lanes * 8) / 10;
192}
193
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194static int
195intel_dp_mode_valid(struct drm_connector *connector,
196 struct drm_display_mode *mode)
197{
df0e9248 198 struct intel_dp *intel_dp = intel_attached_dp(connector);
7de56f43
ZY
199 struct drm_device *dev = connector->dev;
200 struct drm_i915_private *dev_priv = dev->dev_private;
ea5b213a
CW
201 int max_link_clock = intel_dp_link_clock(intel_dp_max_link_bw(intel_dp));
202 int max_lanes = intel_dp_max_lane_count(intel_dp);
a4fc5ed6 203
4d926461 204 if (is_edp(intel_dp) && dev_priv->panel_fixed_mode) {
7de56f43
ZY
205 if (mode->hdisplay > dev_priv->panel_fixed_mode->hdisplay)
206 return MODE_PANEL;
207
208 if (mode->vdisplay > dev_priv->panel_fixed_mode->vdisplay)
209 return MODE_PANEL;
210 }
211
fe27d53e
DA
212 /* only refuse the mode on non eDP since we have seen some wierd eDP panels
213 which are outside spec tolerances but somehow work by magic */
cfcb0fc9 214 if (!is_edp(intel_dp) &&
ea5b213a 215 (intel_dp_link_required(connector->dev, intel_dp, mode->clock)
fe27d53e 216 > intel_dp_max_data_rate(max_link_clock, max_lanes)))
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217 return MODE_CLOCK_HIGH;
218
219 if (mode->clock < 10000)
220 return MODE_CLOCK_LOW;
221
222 return MODE_OK;
223}
224
225static uint32_t
226pack_aux(uint8_t *src, int src_bytes)
227{
228 int i;
229 uint32_t v = 0;
230
231 if (src_bytes > 4)
232 src_bytes = 4;
233 for (i = 0; i < src_bytes; i++)
234 v |= ((uint32_t) src[i]) << ((3-i) * 8);
235 return v;
236}
237
238static void
239unpack_aux(uint32_t src, uint8_t *dst, int dst_bytes)
240{
241 int i;
242 if (dst_bytes > 4)
243 dst_bytes = 4;
244 for (i = 0; i < dst_bytes; i++)
245 dst[i] = src >> ((3-i) * 8);
246}
247
fb0f8fbf
KP
248/* hrawclock is 1/4 the FSB frequency */
249static int
250intel_hrawclk(struct drm_device *dev)
251{
252 struct drm_i915_private *dev_priv = dev->dev_private;
253 uint32_t clkcfg;
254
255 clkcfg = I915_READ(CLKCFG);
256 switch (clkcfg & CLKCFG_FSB_MASK) {
257 case CLKCFG_FSB_400:
258 return 100;
259 case CLKCFG_FSB_533:
260 return 133;
261 case CLKCFG_FSB_667:
262 return 166;
263 case CLKCFG_FSB_800:
264 return 200;
265 case CLKCFG_FSB_1067:
266 return 266;
267 case CLKCFG_FSB_1333:
268 return 333;
269 /* these two are just a guess; one of them might be right */
270 case CLKCFG_FSB_1600:
271 case CLKCFG_FSB_1600_ALT:
272 return 400;
273 default:
274 return 133;
275 }
276}
277
a4fc5ed6 278static int
ea5b213a 279intel_dp_aux_ch(struct intel_dp *intel_dp,
a4fc5ed6
KP
280 uint8_t *send, int send_bytes,
281 uint8_t *recv, int recv_size)
282{
ea5b213a 283 uint32_t output_reg = intel_dp->output_reg;
4ef69c7a 284 struct drm_device *dev = intel_dp->base.base.dev;
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KP
285 struct drm_i915_private *dev_priv = dev->dev_private;
286 uint32_t ch_ctl = output_reg + 0x10;
287 uint32_t ch_data = ch_ctl + 4;
288 int i;
289 int recv_bytes;
a4fc5ed6 290 uint32_t status;
fb0f8fbf 291 uint32_t aux_clock_divider;
e3421a18 292 int try, precharge;
a4fc5ed6
KP
293
294 /* The clock divider is based off the hrawclk,
fb0f8fbf
KP
295 * and would like to run at 2MHz. So, take the
296 * hrawclk value and divide by 2 and use that
6176b8f9
JB
297 *
298 * Note that PCH attached eDP panels should use a 125MHz input
299 * clock divider.
a4fc5ed6 300 */
cfcb0fc9 301 if (is_edp(intel_dp) && !is_pch_edp(intel_dp)) {
e3421a18
ZW
302 if (IS_GEN6(dev))
303 aux_clock_divider = 200; /* SNB eDP input clock at 400Mhz */
304 else
305 aux_clock_divider = 225; /* eDP input clock at 450Mhz */
306 } else if (HAS_PCH_SPLIT(dev))
f2b115e6 307 aux_clock_divider = 62; /* IRL input clock fixed at 125Mhz */
5eb08b69
ZW
308 else
309 aux_clock_divider = intel_hrawclk(dev) / 2;
310
e3421a18
ZW
311 if (IS_GEN6(dev))
312 precharge = 3;
313 else
314 precharge = 5;
315
4f7f7b7e
CW
316 if (I915_READ(ch_ctl) & DP_AUX_CH_CTL_SEND_BUSY) {
317 DRM_ERROR("dp_aux_ch not started status 0x%08x\n",
318 I915_READ(ch_ctl));
319 return -EBUSY;
320 }
321
fb0f8fbf
KP
322 /* Must try at least 3 times according to DP spec */
323 for (try = 0; try < 5; try++) {
324 /* Load the send data into the aux channel data registers */
4f7f7b7e
CW
325 for (i = 0; i < send_bytes; i += 4)
326 I915_WRITE(ch_data + i,
327 pack_aux(send + i, send_bytes - i));
fb0f8fbf
KP
328
329 /* Send the command and wait for it to complete */
4f7f7b7e
CW
330 I915_WRITE(ch_ctl,
331 DP_AUX_CH_CTL_SEND_BUSY |
332 DP_AUX_CH_CTL_TIME_OUT_400us |
333 (send_bytes << DP_AUX_CH_CTL_MESSAGE_SIZE_SHIFT) |
334 (precharge << DP_AUX_CH_CTL_PRECHARGE_2US_SHIFT) |
335 (aux_clock_divider << DP_AUX_CH_CTL_BIT_CLOCK_2X_SHIFT) |
336 DP_AUX_CH_CTL_DONE |
337 DP_AUX_CH_CTL_TIME_OUT_ERROR |
338 DP_AUX_CH_CTL_RECEIVE_ERROR);
fb0f8fbf 339 for (;;) {
fb0f8fbf
KP
340 status = I915_READ(ch_ctl);
341 if ((status & DP_AUX_CH_CTL_SEND_BUSY) == 0)
342 break;
4f7f7b7e 343 udelay(100);
fb0f8fbf
KP
344 }
345
346 /* Clear done status and any errors */
4f7f7b7e
CW
347 I915_WRITE(ch_ctl,
348 status |
349 DP_AUX_CH_CTL_DONE |
350 DP_AUX_CH_CTL_TIME_OUT_ERROR |
351 DP_AUX_CH_CTL_RECEIVE_ERROR);
352 if (status & DP_AUX_CH_CTL_DONE)
a4fc5ed6
KP
353 break;
354 }
355
a4fc5ed6 356 if ((status & DP_AUX_CH_CTL_DONE) == 0) {
1ae8c0a5 357 DRM_ERROR("dp_aux_ch not done status 0x%08x\n", status);
a5b3da54 358 return -EBUSY;
a4fc5ed6
KP
359 }
360
361 /* Check for timeout or receive error.
362 * Timeouts occur when the sink is not connected
363 */
a5b3da54 364 if (status & DP_AUX_CH_CTL_RECEIVE_ERROR) {
1ae8c0a5 365 DRM_ERROR("dp_aux_ch receive error status 0x%08x\n", status);
a5b3da54
KP
366 return -EIO;
367 }
1ae8c0a5
KP
368
369 /* Timeouts occur when the device isn't connected, so they're
370 * "normal" -- don't fill the kernel log with these */
a5b3da54 371 if (status & DP_AUX_CH_CTL_TIME_OUT_ERROR) {
28c97730 372 DRM_DEBUG_KMS("dp_aux_ch timeout status 0x%08x\n", status);
a5b3da54 373 return -ETIMEDOUT;
a4fc5ed6
KP
374 }
375
376 /* Unload any bytes sent back from the other side */
377 recv_bytes = ((status & DP_AUX_CH_CTL_MESSAGE_SIZE_MASK) >>
378 DP_AUX_CH_CTL_MESSAGE_SIZE_SHIFT);
a4fc5ed6
KP
379 if (recv_bytes > recv_size)
380 recv_bytes = recv_size;
381
4f7f7b7e
CW
382 for (i = 0; i < recv_bytes; i += 4)
383 unpack_aux(I915_READ(ch_data + i),
384 recv + i, recv_bytes - i);
a4fc5ed6
KP
385
386 return recv_bytes;
387}
388
389/* Write data to the aux channel in native mode */
390static int
ea5b213a 391intel_dp_aux_native_write(struct intel_dp *intel_dp,
a4fc5ed6
KP
392 uint16_t address, uint8_t *send, int send_bytes)
393{
394 int ret;
395 uint8_t msg[20];
396 int msg_bytes;
397 uint8_t ack;
398
399 if (send_bytes > 16)
400 return -1;
401 msg[0] = AUX_NATIVE_WRITE << 4;
402 msg[1] = address >> 8;
eebc863e 403 msg[2] = address & 0xff;
a4fc5ed6
KP
404 msg[3] = send_bytes - 1;
405 memcpy(&msg[4], send, send_bytes);
406 msg_bytes = send_bytes + 4;
407 for (;;) {
ea5b213a 408 ret = intel_dp_aux_ch(intel_dp, msg, msg_bytes, &ack, 1);
a4fc5ed6
KP
409 if (ret < 0)
410 return ret;
411 if ((ack & AUX_NATIVE_REPLY_MASK) == AUX_NATIVE_REPLY_ACK)
412 break;
413 else if ((ack & AUX_NATIVE_REPLY_MASK) == AUX_NATIVE_REPLY_DEFER)
414 udelay(100);
415 else
a5b3da54 416 return -EIO;
a4fc5ed6
KP
417 }
418 return send_bytes;
419}
420
421/* Write a single byte to the aux channel in native mode */
422static int
ea5b213a 423intel_dp_aux_native_write_1(struct intel_dp *intel_dp,
a4fc5ed6
KP
424 uint16_t address, uint8_t byte)
425{
ea5b213a 426 return intel_dp_aux_native_write(intel_dp, address, &byte, 1);
a4fc5ed6
KP
427}
428
429/* read bytes from a native aux channel */
430static int
ea5b213a 431intel_dp_aux_native_read(struct intel_dp *intel_dp,
a4fc5ed6
KP
432 uint16_t address, uint8_t *recv, int recv_bytes)
433{
434 uint8_t msg[4];
435 int msg_bytes;
436 uint8_t reply[20];
437 int reply_bytes;
438 uint8_t ack;
439 int ret;
440
441 msg[0] = AUX_NATIVE_READ << 4;
442 msg[1] = address >> 8;
443 msg[2] = address & 0xff;
444 msg[3] = recv_bytes - 1;
445
446 msg_bytes = 4;
447 reply_bytes = recv_bytes + 1;
448
449 for (;;) {
ea5b213a 450 ret = intel_dp_aux_ch(intel_dp, msg, msg_bytes,
a4fc5ed6 451 reply, reply_bytes);
a5b3da54
KP
452 if (ret == 0)
453 return -EPROTO;
454 if (ret < 0)
a4fc5ed6
KP
455 return ret;
456 ack = reply[0];
457 if ((ack & AUX_NATIVE_REPLY_MASK) == AUX_NATIVE_REPLY_ACK) {
458 memcpy(recv, reply + 1, ret - 1);
459 return ret - 1;
460 }
461 else if ((ack & AUX_NATIVE_REPLY_MASK) == AUX_NATIVE_REPLY_DEFER)
462 udelay(100);
463 else
a5b3da54 464 return -EIO;
a4fc5ed6
KP
465 }
466}
467
468static int
ab2c0672
DA
469intel_dp_i2c_aux_ch(struct i2c_adapter *adapter, int mode,
470 uint8_t write_byte, uint8_t *read_byte)
a4fc5ed6 471{
ab2c0672 472 struct i2c_algo_dp_aux_data *algo_data = adapter->algo_data;
ea5b213a
CW
473 struct intel_dp *intel_dp = container_of(adapter,
474 struct intel_dp,
475 adapter);
ab2c0672
DA
476 uint16_t address = algo_data->address;
477 uint8_t msg[5];
478 uint8_t reply[2];
479 int msg_bytes;
480 int reply_bytes;
481 int ret;
482
483 /* Set up the command byte */
484 if (mode & MODE_I2C_READ)
485 msg[0] = AUX_I2C_READ << 4;
486 else
487 msg[0] = AUX_I2C_WRITE << 4;
488
489 if (!(mode & MODE_I2C_STOP))
490 msg[0] |= AUX_I2C_MOT << 4;
a4fc5ed6 491
ab2c0672
DA
492 msg[1] = address >> 8;
493 msg[2] = address;
494
495 switch (mode) {
496 case MODE_I2C_WRITE:
497 msg[3] = 0;
498 msg[4] = write_byte;
499 msg_bytes = 5;
500 reply_bytes = 1;
501 break;
502 case MODE_I2C_READ:
503 msg[3] = 0;
504 msg_bytes = 4;
505 reply_bytes = 2;
506 break;
507 default:
508 msg_bytes = 3;
509 reply_bytes = 1;
510 break;
511 }
512
513 for (;;) {
ea5b213a 514 ret = intel_dp_aux_ch(intel_dp,
ab2c0672
DA
515 msg, msg_bytes,
516 reply, reply_bytes);
517 if (ret < 0) {
3ff99164 518 DRM_DEBUG_KMS("aux_ch failed %d\n", ret);
ab2c0672
DA
519 return ret;
520 }
521 switch (reply[0] & AUX_I2C_REPLY_MASK) {
522 case AUX_I2C_REPLY_ACK:
523 if (mode == MODE_I2C_READ) {
524 *read_byte = reply[1];
525 }
526 return reply_bytes - 1;
527 case AUX_I2C_REPLY_NACK:
3ff99164 528 DRM_DEBUG_KMS("aux_ch nack\n");
ab2c0672
DA
529 return -EREMOTEIO;
530 case AUX_I2C_REPLY_DEFER:
3ff99164 531 DRM_DEBUG_KMS("aux_ch defer\n");
ab2c0672
DA
532 udelay(100);
533 break;
534 default:
535 DRM_ERROR("aux_ch invalid reply 0x%02x\n", reply[0]);
536 return -EREMOTEIO;
537 }
538 }
a4fc5ed6
KP
539}
540
541static int
ea5b213a 542intel_dp_i2c_init(struct intel_dp *intel_dp,
55f78c43 543 struct intel_connector *intel_connector, const char *name)
a4fc5ed6 544{
d54e9d28 545 DRM_DEBUG_KMS("i2c_init %s\n", name);
ea5b213a
CW
546 intel_dp->algo.running = false;
547 intel_dp->algo.address = 0;
548 intel_dp->algo.aux_ch = intel_dp_i2c_aux_ch;
549
550 memset(&intel_dp->adapter, '\0', sizeof (intel_dp->adapter));
551 intel_dp->adapter.owner = THIS_MODULE;
552 intel_dp->adapter.class = I2C_CLASS_DDC;
553 strncpy (intel_dp->adapter.name, name, sizeof(intel_dp->adapter.name) - 1);
554 intel_dp->adapter.name[sizeof(intel_dp->adapter.name) - 1] = '\0';
555 intel_dp->adapter.algo_data = &intel_dp->algo;
556 intel_dp->adapter.dev.parent = &intel_connector->base.kdev;
557
558 return i2c_dp_aux_add_bus(&intel_dp->adapter);
a4fc5ed6
KP
559}
560
561static bool
562intel_dp_mode_fixup(struct drm_encoder *encoder, struct drm_display_mode *mode,
563 struct drm_display_mode *adjusted_mode)
564{
0d3a1bee
ZY
565 struct drm_device *dev = encoder->dev;
566 struct drm_i915_private *dev_priv = dev->dev_private;
ea5b213a 567 struct intel_dp *intel_dp = enc_to_intel_dp(encoder);
a4fc5ed6 568 int lane_count, clock;
ea5b213a
CW
569 int max_lane_count = intel_dp_max_lane_count(intel_dp);
570 int max_clock = intel_dp_max_link_bw(intel_dp) == DP_LINK_BW_2_7 ? 1 : 0;
a4fc5ed6
KP
571 static int bws[2] = { DP_LINK_BW_1_62, DP_LINK_BW_2_7 };
572
4d926461 573 if (is_edp(intel_dp) && dev_priv->panel_fixed_mode) {
1d8e1c75
CW
574 intel_fixed_panel_mode(dev_priv->panel_fixed_mode, adjusted_mode);
575 intel_pch_panel_fitting(dev, DRM_MODE_SCALE_FULLSCREEN,
576 mode, adjusted_mode);
0d3a1bee
ZY
577 /*
578 * the mode->clock is used to calculate the Data&Link M/N
579 * of the pipe. For the eDP the fixed clock should be used.
580 */
581 mode->clock = dev_priv->panel_fixed_mode->clock;
582 }
583
869184a6
JB
584 /* Just use VBT values for eDP */
585 if (is_edp(intel_dp)) {
586 intel_dp->lane_count = dev_priv->edp.lanes;
587 intel_dp->link_bw = dev_priv->edp.rate;
588 adjusted_mode->clock = intel_dp_link_clock(intel_dp->link_bw);
589 DRM_DEBUG_KMS("eDP link bw %02x lane count %d clock %d\n",
590 intel_dp->link_bw, intel_dp->lane_count,
591 adjusted_mode->clock);
592 return true;
593 }
594
a4fc5ed6
KP
595 for (lane_count = 1; lane_count <= max_lane_count; lane_count <<= 1) {
596 for (clock = 0; clock <= max_clock; clock++) {
fe27d53e 597 int link_avail = intel_dp_max_data_rate(intel_dp_link_clock(bws[clock]), lane_count);
a4fc5ed6 598
ea5b213a 599 if (intel_dp_link_required(encoder->dev, intel_dp, mode->clock)
885a5fb5 600 <= link_avail) {
ea5b213a
CW
601 intel_dp->link_bw = bws[clock];
602 intel_dp->lane_count = lane_count;
603 adjusted_mode->clock = intel_dp_link_clock(intel_dp->link_bw);
28c97730
ZY
604 DRM_DEBUG_KMS("Display port link bw %02x lane "
605 "count %d clock %d\n",
ea5b213a 606 intel_dp->link_bw, intel_dp->lane_count,
a4fc5ed6
KP
607 adjusted_mode->clock);
608 return true;
609 }
610 }
611 }
fe27d53e 612
a4fc5ed6
KP
613 return false;
614}
615
616struct intel_dp_m_n {
617 uint32_t tu;
618 uint32_t gmch_m;
619 uint32_t gmch_n;
620 uint32_t link_m;
621 uint32_t link_n;
622};
623
624static void
625intel_reduce_ratio(uint32_t *num, uint32_t *den)
626{
627 while (*num > 0xffffff || *den > 0xffffff) {
628 *num >>= 1;
629 *den >>= 1;
630 }
631}
632
633static void
36e83a18 634intel_dp_compute_m_n(int bpp,
a4fc5ed6
KP
635 int nlanes,
636 int pixel_clock,
637 int link_clock,
638 struct intel_dp_m_n *m_n)
639{
640 m_n->tu = 64;
36e83a18 641 m_n->gmch_m = (pixel_clock * bpp) >> 3;
a4fc5ed6
KP
642 m_n->gmch_n = link_clock * nlanes;
643 intel_reduce_ratio(&m_n->gmch_m, &m_n->gmch_n);
644 m_n->link_m = pixel_clock;
645 m_n->link_n = link_clock;
646 intel_reduce_ratio(&m_n->link_m, &m_n->link_n);
647}
648
649void
650intel_dp_set_m_n(struct drm_crtc *crtc, struct drm_display_mode *mode,
651 struct drm_display_mode *adjusted_mode)
652{
653 struct drm_device *dev = crtc->dev;
654 struct drm_mode_config *mode_config = &dev->mode_config;
55f78c43 655 struct drm_encoder *encoder;
a4fc5ed6
KP
656 struct drm_i915_private *dev_priv = dev->dev_private;
657 struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
36e83a18 658 int lane_count = 4, bpp = 24;
a4fc5ed6
KP
659 struct intel_dp_m_n m_n;
660
661 /*
21d40d37 662 * Find the lane count in the intel_encoder private
a4fc5ed6 663 */
55f78c43 664 list_for_each_entry(encoder, &mode_config->encoder_list, head) {
ea5b213a 665 struct intel_dp *intel_dp;
a4fc5ed6 666
d8201ab6 667 if (encoder->crtc != crtc)
a4fc5ed6
KP
668 continue;
669
ea5b213a
CW
670 intel_dp = enc_to_intel_dp(encoder);
671 if (intel_dp->base.type == INTEL_OUTPUT_DISPLAYPORT) {
672 lane_count = intel_dp->lane_count;
51190667
JB
673 break;
674 } else if (is_edp(intel_dp)) {
675 lane_count = dev_priv->edp.lanes;
676 bpp = dev_priv->edp.bpp;
a4fc5ed6
KP
677 break;
678 }
679 }
680
681 /*
682 * Compute the GMCH and Link ratios. The '3' here is
683 * the number of bytes_per_pixel post-LUT, which we always
684 * set up for 8-bits of R/G/B, or 3 bytes total.
685 */
36e83a18 686 intel_dp_compute_m_n(bpp, lane_count,
a4fc5ed6
KP
687 mode->clock, adjusted_mode->clock, &m_n);
688
c619eed4 689 if (HAS_PCH_SPLIT(dev)) {
5eb08b69
ZW
690 if (intel_crtc->pipe == 0) {
691 I915_WRITE(TRANSA_DATA_M1,
692 ((m_n.tu - 1) << PIPE_GMCH_DATA_M_TU_SIZE_SHIFT) |
693 m_n.gmch_m);
694 I915_WRITE(TRANSA_DATA_N1, m_n.gmch_n);
695 I915_WRITE(TRANSA_DP_LINK_M1, m_n.link_m);
696 I915_WRITE(TRANSA_DP_LINK_N1, m_n.link_n);
697 } else {
698 I915_WRITE(TRANSB_DATA_M1,
699 ((m_n.tu - 1) << PIPE_GMCH_DATA_M_TU_SIZE_SHIFT) |
700 m_n.gmch_m);
701 I915_WRITE(TRANSB_DATA_N1, m_n.gmch_n);
702 I915_WRITE(TRANSB_DP_LINK_M1, m_n.link_m);
703 I915_WRITE(TRANSB_DP_LINK_N1, m_n.link_n);
704 }
a4fc5ed6 705 } else {
5eb08b69
ZW
706 if (intel_crtc->pipe == 0) {
707 I915_WRITE(PIPEA_GMCH_DATA_M,
708 ((m_n.tu - 1) << PIPE_GMCH_DATA_M_TU_SIZE_SHIFT) |
709 m_n.gmch_m);
710 I915_WRITE(PIPEA_GMCH_DATA_N,
711 m_n.gmch_n);
712 I915_WRITE(PIPEA_DP_LINK_M, m_n.link_m);
713 I915_WRITE(PIPEA_DP_LINK_N, m_n.link_n);
714 } else {
715 I915_WRITE(PIPEB_GMCH_DATA_M,
716 ((m_n.tu - 1) << PIPE_GMCH_DATA_M_TU_SIZE_SHIFT) |
717 m_n.gmch_m);
718 I915_WRITE(PIPEB_GMCH_DATA_N,
719 m_n.gmch_n);
720 I915_WRITE(PIPEB_DP_LINK_M, m_n.link_m);
721 I915_WRITE(PIPEB_DP_LINK_N, m_n.link_n);
722 }
a4fc5ed6
KP
723 }
724}
725
726static void
727intel_dp_mode_set(struct drm_encoder *encoder, struct drm_display_mode *mode,
728 struct drm_display_mode *adjusted_mode)
729{
e3421a18 730 struct drm_device *dev = encoder->dev;
ea5b213a 731 struct intel_dp *intel_dp = enc_to_intel_dp(encoder);
4ef69c7a 732 struct drm_crtc *crtc = intel_dp->base.base.crtc;
a4fc5ed6
KP
733 struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
734
ea5b213a 735 intel_dp->DP = (DP_VOLTAGE_0_4 |
9c9e7927
AJ
736 DP_PRE_EMPHASIS_0);
737
738 if (adjusted_mode->flags & DRM_MODE_FLAG_PHSYNC)
ea5b213a 739 intel_dp->DP |= DP_SYNC_HS_HIGH;
9c9e7927 740 if (adjusted_mode->flags & DRM_MODE_FLAG_PVSYNC)
ea5b213a 741 intel_dp->DP |= DP_SYNC_VS_HIGH;
a4fc5ed6 742
cfcb0fc9 743 if (HAS_PCH_CPT(dev) && !is_edp(intel_dp))
ea5b213a 744 intel_dp->DP |= DP_LINK_TRAIN_OFF_CPT;
e3421a18 745 else
ea5b213a 746 intel_dp->DP |= DP_LINK_TRAIN_OFF;
a4fc5ed6 747
ea5b213a 748 switch (intel_dp->lane_count) {
a4fc5ed6 749 case 1:
ea5b213a 750 intel_dp->DP |= DP_PORT_WIDTH_1;
a4fc5ed6
KP
751 break;
752 case 2:
ea5b213a 753 intel_dp->DP |= DP_PORT_WIDTH_2;
a4fc5ed6
KP
754 break;
755 case 4:
ea5b213a 756 intel_dp->DP |= DP_PORT_WIDTH_4;
a4fc5ed6
KP
757 break;
758 }
ea5b213a
CW
759 if (intel_dp->has_audio)
760 intel_dp->DP |= DP_AUDIO_OUTPUT_ENABLE;
a4fc5ed6 761
ea5b213a
CW
762 memset(intel_dp->link_configuration, 0, DP_LINK_CONFIGURATION_SIZE);
763 intel_dp->link_configuration[0] = intel_dp->link_bw;
764 intel_dp->link_configuration[1] = intel_dp->lane_count;
a4fc5ed6
KP
765
766 /*
9962c925 767 * Check for DPCD version > 1.1 and enhanced framing support
a4fc5ed6 768 */
ea5b213a
CW
769 if (intel_dp->dpcd[0] >= 0x11 && (intel_dp->dpcd[2] & DP_ENHANCED_FRAME_CAP)) {
770 intel_dp->link_configuration[1] |= DP_LANE_COUNT_ENHANCED_FRAME_EN;
771 intel_dp->DP |= DP_ENHANCED_FRAMING;
a4fc5ed6
KP
772 }
773
e3421a18
ZW
774 /* CPT DP's pipe select is decided in TRANS_DP_CTL */
775 if (intel_crtc->pipe == 1 && !HAS_PCH_CPT(dev))
ea5b213a 776 intel_dp->DP |= DP_PIPEB_SELECT;
32f9d658 777
895692be 778 if (is_edp(intel_dp) && !is_pch_edp(intel_dp)) {
32f9d658 779 /* don't miss out required setting for eDP */
ea5b213a 780 intel_dp->DP |= DP_PLL_ENABLE;
32f9d658 781 if (adjusted_mode->clock < 200000)
ea5b213a 782 intel_dp->DP |= DP_PLL_FREQ_160MHZ;
32f9d658 783 else
ea5b213a 784 intel_dp->DP |= DP_PLL_FREQ_270MHZ;
32f9d658 785 }
a4fc5ed6
KP
786}
787
7eaf5547 788/* Returns true if the panel was already on when called */
01cb9ea6 789static bool ironlake_edp_panel_on (struct intel_dp *intel_dp)
9934c132 790{
01cb9ea6 791 struct drm_device *dev = intel_dp->base.base.dev;
9934c132 792 struct drm_i915_private *dev_priv = dev->dev_private;
01cb9ea6 793 u32 pp, idle_on_mask = PP_ON | PP_SEQUENCE_STATE_ON_IDLE;
9934c132 794
913d8d11 795 if (I915_READ(PCH_PP_STATUS) & PP_ON)
7eaf5547 796 return true;
9934c132
JB
797
798 pp = I915_READ(PCH_PP_CONTROL);
37c6c9b0
JB
799
800 /* ILK workaround: disable reset around power sequence */
801 pp &= ~PANEL_POWER_RESET;
802 I915_WRITE(PCH_PP_CONTROL, pp);
803 POSTING_READ(PCH_PP_CONTROL);
804
01cb9ea6 805 pp |= PANEL_UNLOCK_REGS | POWER_TARGET_ON;
9934c132 806 I915_WRITE(PCH_PP_CONTROL, pp);
01cb9ea6 807 POSTING_READ(PCH_PP_CONTROL);
9934c132 808
27d64339
HV
809 /* Ouch. We need to wait here for some panels, like Dell e6510
810 * https://bugs.freedesktop.org/show_bug.cgi?id=29278i
811 */
812 msleep(300);
813
01cb9ea6
JB
814 if (wait_for((I915_READ(PCH_PP_STATUS) & idle_on_mask) == idle_on_mask,
815 5000))
913d8d11
CW
816 DRM_ERROR("panel on wait timed out: 0x%08x\n",
817 I915_READ(PCH_PP_STATUS));
9934c132 818
37c6c9b0 819 pp |= PANEL_POWER_RESET; /* restore panel reset bit */
9934c132 820 I915_WRITE(PCH_PP_CONTROL, pp);
37c6c9b0 821 POSTING_READ(PCH_PP_CONTROL);
7eaf5547
JB
822
823 return false;
9934c132
JB
824}
825
826static void ironlake_edp_panel_off (struct drm_device *dev)
827{
828 struct drm_i915_private *dev_priv = dev->dev_private;
01cb9ea6
JB
829 u32 pp, idle_off_mask = PP_ON | PP_SEQUENCE_MASK |
830 PP_CYCLE_DELAY_ACTIVE | PP_SEQUENCE_STATE_MASK;
9934c132
JB
831
832 pp = I915_READ(PCH_PP_CONTROL);
37c6c9b0
JB
833
834 /* ILK workaround: disable reset around power sequence */
835 pp &= ~PANEL_POWER_RESET;
836 I915_WRITE(PCH_PP_CONTROL, pp);
837 POSTING_READ(PCH_PP_CONTROL);
838
9934c132
JB
839 pp &= ~POWER_TARGET_ON;
840 I915_WRITE(PCH_PP_CONTROL, pp);
01cb9ea6 841 POSTING_READ(PCH_PP_CONTROL);
9934c132 842
01cb9ea6 843 if (wait_for((I915_READ(PCH_PP_STATUS) & idle_off_mask) == 0, 5000))
913d8d11
CW
844 DRM_ERROR("panel off wait timed out: 0x%08x\n",
845 I915_READ(PCH_PP_STATUS));
9934c132 846
3969c9c9 847 pp |= PANEL_POWER_RESET; /* restore panel reset bit */
9934c132 848 I915_WRITE(PCH_PP_CONTROL, pp);
37c6c9b0 849 POSTING_READ(PCH_PP_CONTROL);
27d64339
HV
850
851 /* Ouch. We need to wait here for some panels, like Dell e6510
852 * https://bugs.freedesktop.org/show_bug.cgi?id=29278i
853 */
854 msleep(300);
9934c132
JB
855}
856
f2b115e6 857static void ironlake_edp_backlight_on (struct drm_device *dev)
32f9d658
ZW
858{
859 struct drm_i915_private *dev_priv = dev->dev_private;
860 u32 pp;
861
28c97730 862 DRM_DEBUG_KMS("\n");
01cb9ea6
JB
863 /*
864 * If we enable the backlight right away following a panel power
865 * on, we may see slight flicker as the panel syncs with the eDP
866 * link. So delay a bit to make sure the image is solid before
867 * allowing it to appear.
868 */
869 msleep(300);
32f9d658
ZW
870 pp = I915_READ(PCH_PP_CONTROL);
871 pp |= EDP_BLC_ENABLE;
872 I915_WRITE(PCH_PP_CONTROL, pp);
873}
874
f2b115e6 875static void ironlake_edp_backlight_off (struct drm_device *dev)
32f9d658
ZW
876{
877 struct drm_i915_private *dev_priv = dev->dev_private;
878 u32 pp;
879
28c97730 880 DRM_DEBUG_KMS("\n");
32f9d658
ZW
881 pp = I915_READ(PCH_PP_CONTROL);
882 pp &= ~EDP_BLC_ENABLE;
883 I915_WRITE(PCH_PP_CONTROL, pp);
884}
a4fc5ed6 885
d240f20f
JB
886static void ironlake_edp_pll_on(struct drm_encoder *encoder)
887{
888 struct drm_device *dev = encoder->dev;
889 struct drm_i915_private *dev_priv = dev->dev_private;
890 u32 dpa_ctl;
891
892 DRM_DEBUG_KMS("\n");
893 dpa_ctl = I915_READ(DP_A);
298b0b39 894 dpa_ctl |= DP_PLL_ENABLE;
d240f20f 895 I915_WRITE(DP_A, dpa_ctl);
298b0b39
JB
896 POSTING_READ(DP_A);
897 udelay(200);
d240f20f
JB
898}
899
900static void ironlake_edp_pll_off(struct drm_encoder *encoder)
901{
902 struct drm_device *dev = encoder->dev;
903 struct drm_i915_private *dev_priv = dev->dev_private;
904 u32 dpa_ctl;
905
906 dpa_ctl = I915_READ(DP_A);
298b0b39 907 dpa_ctl &= ~DP_PLL_ENABLE;
d240f20f 908 I915_WRITE(DP_A, dpa_ctl);
1af5fa1b 909 POSTING_READ(DP_A);
d240f20f
JB
910 udelay(200);
911}
912
913static void intel_dp_prepare(struct drm_encoder *encoder)
914{
915 struct intel_dp *intel_dp = enc_to_intel_dp(encoder);
916 struct drm_device *dev = encoder->dev;
d240f20f 917
4d926461 918 if (is_edp(intel_dp)) {
d240f20f 919 ironlake_edp_backlight_off(dev);
01cb9ea6
JB
920 ironlake_edp_panel_on(intel_dp);
921 if (!is_pch_edp(intel_dp))
922 ironlake_edp_pll_on(encoder);
923 else
924 ironlake_edp_pll_off(encoder);
d240f20f 925 }
736085bc 926 intel_dp_link_down(intel_dp);
d240f20f
JB
927}
928
929static void intel_dp_commit(struct drm_encoder *encoder)
930{
931 struct intel_dp *intel_dp = enc_to_intel_dp(encoder);
932 struct drm_device *dev = encoder->dev;
d240f20f 933
33a34e4e
JB
934 intel_dp_start_link_train(intel_dp);
935
4d926461 936 if (is_edp(intel_dp))
01cb9ea6 937 ironlake_edp_panel_on(intel_dp);
33a34e4e
JB
938
939 intel_dp_complete_link_train(intel_dp);
940
4d926461 941 if (is_edp(intel_dp))
d240f20f
JB
942 ironlake_edp_backlight_on(dev);
943}
944
a4fc5ed6
KP
945static void
946intel_dp_dpms(struct drm_encoder *encoder, int mode)
947{
ea5b213a 948 struct intel_dp *intel_dp = enc_to_intel_dp(encoder);
55f78c43 949 struct drm_device *dev = encoder->dev;
a4fc5ed6 950 struct drm_i915_private *dev_priv = dev->dev_private;
ea5b213a 951 uint32_t dp_reg = I915_READ(intel_dp->output_reg);
a4fc5ed6
KP
952
953 if (mode != DRM_MODE_DPMS_ON) {
01cb9ea6 954 if (is_edp(intel_dp))
7643a7fa 955 ironlake_edp_backlight_off(dev);
736085bc 956 intel_dp_link_down(intel_dp);
4d926461 957 if (is_edp(intel_dp))
01cb9ea6
JB
958 ironlake_edp_panel_off(dev);
959 if (is_edp(intel_dp) && !is_pch_edp(intel_dp))
d240f20f 960 ironlake_edp_pll_off(encoder);
a4fc5ed6 961 } else {
736085bc
JB
962 if (is_edp(intel_dp))
963 ironlake_edp_panel_on(intel_dp);
32f9d658 964 if (!(dp_reg & DP_PORT_EN)) {
01cb9ea6 965 intel_dp_start_link_train(intel_dp);
33a34e4e 966 intel_dp_complete_link_train(intel_dp);
32f9d658 967 }
736085bc
JB
968 if (is_edp(intel_dp))
969 ironlake_edp_backlight_on(dev);
a4fc5ed6 970 }
ea5b213a 971 intel_dp->dpms_mode = mode;
a4fc5ed6
KP
972}
973
974/*
975 * Fetch AUX CH registers 0x202 - 0x207 which contain
976 * link status information
977 */
978static bool
33a34e4e 979intel_dp_get_link_status(struct intel_dp *intel_dp)
a4fc5ed6
KP
980{
981 int ret;
982
ea5b213a 983 ret = intel_dp_aux_native_read(intel_dp,
a4fc5ed6 984 DP_LANE0_1_STATUS,
33a34e4e 985 intel_dp->link_status, DP_LINK_STATUS_SIZE);
a4fc5ed6
KP
986 if (ret != DP_LINK_STATUS_SIZE)
987 return false;
988 return true;
989}
990
991static uint8_t
992intel_dp_link_status(uint8_t link_status[DP_LINK_STATUS_SIZE],
993 int r)
994{
995 return link_status[r - DP_LANE0_1_STATUS];
996}
997
a4fc5ed6
KP
998static uint8_t
999intel_get_adjust_request_voltage(uint8_t link_status[DP_LINK_STATUS_SIZE],
1000 int lane)
1001{
1002 int i = DP_ADJUST_REQUEST_LANE0_1 + (lane >> 1);
1003 int s = ((lane & 1) ?
1004 DP_ADJUST_VOLTAGE_SWING_LANE1_SHIFT :
1005 DP_ADJUST_VOLTAGE_SWING_LANE0_SHIFT);
1006 uint8_t l = intel_dp_link_status(link_status, i);
1007
1008 return ((l >> s) & 3) << DP_TRAIN_VOLTAGE_SWING_SHIFT;
1009}
1010
1011static uint8_t
1012intel_get_adjust_request_pre_emphasis(uint8_t link_status[DP_LINK_STATUS_SIZE],
1013 int lane)
1014{
1015 int i = DP_ADJUST_REQUEST_LANE0_1 + (lane >> 1);
1016 int s = ((lane & 1) ?
1017 DP_ADJUST_PRE_EMPHASIS_LANE1_SHIFT :
1018 DP_ADJUST_PRE_EMPHASIS_LANE0_SHIFT);
1019 uint8_t l = intel_dp_link_status(link_status, i);
1020
1021 return ((l >> s) & 3) << DP_TRAIN_PRE_EMPHASIS_SHIFT;
1022}
1023
1024
1025#if 0
1026static char *voltage_names[] = {
1027 "0.4V", "0.6V", "0.8V", "1.2V"
1028};
1029static char *pre_emph_names[] = {
1030 "0dB", "3.5dB", "6dB", "9.5dB"
1031};
1032static char *link_train_names[] = {
1033 "pattern 1", "pattern 2", "idle", "off"
1034};
1035#endif
1036
1037/*
1038 * These are source-specific values; current Intel hardware supports
1039 * a maximum voltage of 800mV and a maximum pre-emphasis of 6dB
1040 */
1041#define I830_DP_VOLTAGE_MAX DP_TRAIN_VOLTAGE_SWING_800
1042
1043static uint8_t
1044intel_dp_pre_emphasis_max(uint8_t voltage_swing)
1045{
1046 switch (voltage_swing & DP_TRAIN_VOLTAGE_SWING_MASK) {
1047 case DP_TRAIN_VOLTAGE_SWING_400:
1048 return DP_TRAIN_PRE_EMPHASIS_6;
1049 case DP_TRAIN_VOLTAGE_SWING_600:
1050 return DP_TRAIN_PRE_EMPHASIS_6;
1051 case DP_TRAIN_VOLTAGE_SWING_800:
1052 return DP_TRAIN_PRE_EMPHASIS_3_5;
1053 case DP_TRAIN_VOLTAGE_SWING_1200:
1054 default:
1055 return DP_TRAIN_PRE_EMPHASIS_0;
1056 }
1057}
1058
1059static void
33a34e4e 1060intel_get_adjust_train(struct intel_dp *intel_dp)
a4fc5ed6
KP
1061{
1062 uint8_t v = 0;
1063 uint8_t p = 0;
1064 int lane;
1065
33a34e4e
JB
1066 for (lane = 0; lane < intel_dp->lane_count; lane++) {
1067 uint8_t this_v = intel_get_adjust_request_voltage(intel_dp->link_status, lane);
1068 uint8_t this_p = intel_get_adjust_request_pre_emphasis(intel_dp->link_status, lane);
a4fc5ed6
KP
1069
1070 if (this_v > v)
1071 v = this_v;
1072 if (this_p > p)
1073 p = this_p;
1074 }
1075
1076 if (v >= I830_DP_VOLTAGE_MAX)
1077 v = I830_DP_VOLTAGE_MAX | DP_TRAIN_MAX_SWING_REACHED;
1078
1079 if (p >= intel_dp_pre_emphasis_max(v))
1080 p = intel_dp_pre_emphasis_max(v) | DP_TRAIN_MAX_PRE_EMPHASIS_REACHED;
1081
1082 for (lane = 0; lane < 4; lane++)
33a34e4e 1083 intel_dp->train_set[lane] = v | p;
a4fc5ed6
KP
1084}
1085
1086static uint32_t
869184a6 1087intel_dp_signal_levels(struct intel_dp *intel_dp)
a4fc5ed6 1088{
869184a6
JB
1089 struct drm_device *dev = intel_dp->base.base.dev;
1090 struct drm_i915_private *dev_priv = dev->dev_private;
1091 uint32_t signal_levels = 0;
1092 u8 train_set = intel_dp->train_set[0];
1093 u32 vswing = train_set & DP_TRAIN_VOLTAGE_SWING_MASK;
1094 u32 preemphasis = train_set & DP_TRAIN_PRE_EMPHASIS_MASK;
a4fc5ed6 1095
869184a6
JB
1096 if (is_edp(intel_dp)) {
1097 vswing = dev_priv->edp.vswing;
1098 preemphasis = dev_priv->edp.preemphasis;
1099 }
1100
1101 switch (vswing) {
a4fc5ed6
KP
1102 case DP_TRAIN_VOLTAGE_SWING_400:
1103 default:
1104 signal_levels |= DP_VOLTAGE_0_4;
1105 break;
1106 case DP_TRAIN_VOLTAGE_SWING_600:
1107 signal_levels |= DP_VOLTAGE_0_6;
1108 break;
1109 case DP_TRAIN_VOLTAGE_SWING_800:
1110 signal_levels |= DP_VOLTAGE_0_8;
1111 break;
1112 case DP_TRAIN_VOLTAGE_SWING_1200:
1113 signal_levels |= DP_VOLTAGE_1_2;
1114 break;
1115 }
869184a6 1116 switch (preemphasis) {
a4fc5ed6
KP
1117 case DP_TRAIN_PRE_EMPHASIS_0:
1118 default:
1119 signal_levels |= DP_PRE_EMPHASIS_0;
1120 break;
1121 case DP_TRAIN_PRE_EMPHASIS_3_5:
1122 signal_levels |= DP_PRE_EMPHASIS_3_5;
1123 break;
1124 case DP_TRAIN_PRE_EMPHASIS_6:
1125 signal_levels |= DP_PRE_EMPHASIS_6;
1126 break;
1127 case DP_TRAIN_PRE_EMPHASIS_9_5:
1128 signal_levels |= DP_PRE_EMPHASIS_9_5;
1129 break;
1130 }
1131 return signal_levels;
1132}
1133
e3421a18
ZW
1134/* Gen6's DP voltage swing and pre-emphasis control */
1135static uint32_t
1136intel_gen6_edp_signal_levels(uint8_t train_set)
1137{
1138 switch (train_set & (DP_TRAIN_VOLTAGE_SWING_MASK|DP_TRAIN_PRE_EMPHASIS_MASK)) {
1139 case DP_TRAIN_VOLTAGE_SWING_400 | DP_TRAIN_PRE_EMPHASIS_0:
1140 return EDP_LINK_TRAIN_400MV_0DB_SNB_B;
1141 case DP_TRAIN_VOLTAGE_SWING_400 | DP_TRAIN_PRE_EMPHASIS_6:
1142 return EDP_LINK_TRAIN_400MV_6DB_SNB_B;
1143 case DP_TRAIN_VOLTAGE_SWING_600 | DP_TRAIN_PRE_EMPHASIS_3_5:
1144 return EDP_LINK_TRAIN_600MV_3_5DB_SNB_B;
1145 case DP_TRAIN_VOLTAGE_SWING_800 | DP_TRAIN_PRE_EMPHASIS_0:
1146 return EDP_LINK_TRAIN_800MV_0DB_SNB_B;
1147 default:
1148 DRM_DEBUG_KMS("Unsupported voltage swing/pre-emphasis level\n");
1149 return EDP_LINK_TRAIN_400MV_0DB_SNB_B;
1150 }
1151}
1152
a4fc5ed6
KP
1153static uint8_t
1154intel_get_lane_status(uint8_t link_status[DP_LINK_STATUS_SIZE],
1155 int lane)
1156{
1157 int i = DP_LANE0_1_STATUS + (lane >> 1);
1158 int s = (lane & 1) * 4;
1159 uint8_t l = intel_dp_link_status(link_status, i);
1160
1161 return (l >> s) & 0xf;
1162}
1163
1164/* Check for clock recovery is done on all channels */
1165static bool
1166intel_clock_recovery_ok(uint8_t link_status[DP_LINK_STATUS_SIZE], int lane_count)
1167{
1168 int lane;
1169 uint8_t lane_status;
1170
1171 for (lane = 0; lane < lane_count; lane++) {
1172 lane_status = intel_get_lane_status(link_status, lane);
1173 if ((lane_status & DP_LANE_CR_DONE) == 0)
1174 return false;
1175 }
1176 return true;
1177}
1178
1179/* Check to see if channel eq is done on all channels */
1180#define CHANNEL_EQ_BITS (DP_LANE_CR_DONE|\
1181 DP_LANE_CHANNEL_EQ_DONE|\
1182 DP_LANE_SYMBOL_LOCKED)
1183static bool
33a34e4e 1184intel_channel_eq_ok(struct intel_dp *intel_dp)
a4fc5ed6
KP
1185{
1186 uint8_t lane_align;
1187 uint8_t lane_status;
1188 int lane;
1189
33a34e4e 1190 lane_align = intel_dp_link_status(intel_dp->link_status,
a4fc5ed6
KP
1191 DP_LANE_ALIGN_STATUS_UPDATED);
1192 if ((lane_align & DP_INTERLANE_ALIGN_DONE) == 0)
1193 return false;
33a34e4e
JB
1194 for (lane = 0; lane < intel_dp->lane_count; lane++) {
1195 lane_status = intel_get_lane_status(intel_dp->link_status, lane);
a4fc5ed6
KP
1196 if ((lane_status & CHANNEL_EQ_BITS) != CHANNEL_EQ_BITS)
1197 return false;
1198 }
1199 return true;
1200}
1201
869184a6
JB
1202static bool
1203intel_dp_aux_handshake_required(struct intel_dp *intel_dp)
1204{
1205 struct drm_device *dev = intel_dp->base.base.dev;
1206 struct drm_i915_private *dev_priv = dev->dev_private;
1207
1208 if (is_edp(intel_dp) && dev_priv->no_aux_handshake)
1209 return false;
1210
1211 return true;
1212}
1213
a4fc5ed6 1214static bool
ea5b213a 1215intel_dp_set_link_train(struct intel_dp *intel_dp,
a4fc5ed6 1216 uint32_t dp_reg_value,
58e10eb9 1217 uint8_t dp_train_pat)
a4fc5ed6 1218{
4ef69c7a 1219 struct drm_device *dev = intel_dp->base.base.dev;
a4fc5ed6 1220 struct drm_i915_private *dev_priv = dev->dev_private;
a4fc5ed6
KP
1221 int ret;
1222
ea5b213a
CW
1223 I915_WRITE(intel_dp->output_reg, dp_reg_value);
1224 POSTING_READ(intel_dp->output_reg);
a4fc5ed6 1225
869184a6
JB
1226 if (!intel_dp_aux_handshake_required(intel_dp))
1227 return true;
1228
ea5b213a 1229 intel_dp_aux_native_write_1(intel_dp,
a4fc5ed6
KP
1230 DP_TRAINING_PATTERN_SET,
1231 dp_train_pat);
1232
ea5b213a 1233 ret = intel_dp_aux_native_write(intel_dp,
58e10eb9
CW
1234 DP_TRAINING_LANE0_SET,
1235 intel_dp->train_set, 4);
a4fc5ed6
KP
1236 if (ret != 4)
1237 return false;
1238
1239 return true;
1240}
1241
33a34e4e 1242/* Enable corresponding port and start training pattern 1 */
a4fc5ed6 1243static void
33a34e4e 1244intel_dp_start_link_train(struct intel_dp *intel_dp)
a4fc5ed6 1245{
4ef69c7a 1246 struct drm_device *dev = intel_dp->base.base.dev;
a4fc5ed6 1247 struct drm_i915_private *dev_priv = dev->dev_private;
58e10eb9 1248 struct intel_crtc *intel_crtc = to_intel_crtc(intel_dp->base.base.crtc);
a4fc5ed6
KP
1249 int i;
1250 uint8_t voltage;
1251 bool clock_recovery = false;
a4fc5ed6 1252 int tries;
e3421a18 1253 u32 reg;
ea5b213a 1254 uint32_t DP = intel_dp->DP;
a4fc5ed6 1255
b99a9d9b
KP
1256 /* Enable output, wait for it to become active */
1257 I915_WRITE(intel_dp->output_reg, intel_dp->DP);
1258 POSTING_READ(intel_dp->output_reg);
1259 intel_wait_for_vblank(dev, intel_crtc->pipe);
a4fc5ed6 1260
869184a6
JB
1261 if (intel_dp_aux_handshake_required(intel_dp))
1262 /* Write the link configuration data */
1263 intel_dp_aux_native_write(intel_dp, DP_LINK_BW_SET,
1264 intel_dp->link_configuration,
1265 DP_LINK_CONFIGURATION_SIZE);
a4fc5ed6
KP
1266
1267 DP |= DP_PORT_EN;
cfcb0fc9 1268 if (HAS_PCH_CPT(dev) && !is_edp(intel_dp))
e3421a18
ZW
1269 DP &= ~DP_LINK_TRAIN_MASK_CPT;
1270 else
1271 DP &= ~DP_LINK_TRAIN_MASK;
33a34e4e 1272 memset(intel_dp->train_set, 0, 4);
a4fc5ed6
KP
1273 voltage = 0xff;
1274 tries = 0;
1275 clock_recovery = false;
1276 for (;;) {
33a34e4e 1277 /* Use intel_dp->train_set[0] to set the voltage and pre emphasis values */
e3421a18 1278 uint32_t signal_levels;
cfcb0fc9 1279 if (IS_GEN6(dev) && is_edp(intel_dp)) {
33a34e4e 1280 signal_levels = intel_gen6_edp_signal_levels(intel_dp->train_set[0]);
e3421a18
ZW
1281 DP = (DP & ~EDP_LINK_TRAIN_VOL_EMP_MASK_SNB) | signal_levels;
1282 } else {
869184a6 1283 signal_levels = intel_dp_signal_levels(intel_dp);
e3421a18
ZW
1284 DP = (DP & ~(DP_VOLTAGE_MASK|DP_PRE_EMPHASIS_MASK)) | signal_levels;
1285 }
a4fc5ed6 1286
cfcb0fc9 1287 if (HAS_PCH_CPT(dev) && !is_edp(intel_dp))
e3421a18
ZW
1288 reg = DP | DP_LINK_TRAIN_PAT_1_CPT;
1289 else
1290 reg = DP | DP_LINK_TRAIN_PAT_1;
1291
ea5b213a 1292 if (!intel_dp_set_link_train(intel_dp, reg,
58e10eb9 1293 DP_TRAINING_PATTERN_1))
a4fc5ed6 1294 break;
a4fc5ed6
KP
1295 /* Set training pattern 1 */
1296
869184a6
JB
1297 udelay(500);
1298 if (intel_dp_aux_handshake_required(intel_dp)) {
a4fc5ed6 1299 break;
869184a6
JB
1300 } else {
1301 if (!intel_dp_get_link_status(intel_dp))
1302 break;
a4fc5ed6 1303
869184a6
JB
1304 if (intel_clock_recovery_ok(intel_dp->link_status, intel_dp->lane_count)) {
1305 clock_recovery = true;
a4fc5ed6 1306 break;
869184a6 1307 }
a4fc5ed6 1308
869184a6
JB
1309 /* Check to see if we've tried the max voltage */
1310 for (i = 0; i < intel_dp->lane_count; i++)
1311 if ((intel_dp->train_set[i] & DP_TRAIN_MAX_SWING_REACHED) == 0)
1312 break;
1313 if (i == intel_dp->lane_count)
a4fc5ed6 1314 break;
a4fc5ed6 1315
869184a6
JB
1316 /* Check to see if we've tried the same voltage 5 times */
1317 if ((intel_dp->train_set[0] & DP_TRAIN_VOLTAGE_SWING_MASK) == voltage) {
1318 ++tries;
1319 if (tries == 5)
1320 break;
1321 } else
1322 tries = 0;
1323 voltage = intel_dp->train_set[0] & DP_TRAIN_VOLTAGE_SWING_MASK;
1324
1325 /* Compute new intel_dp->train_set as requested by target */
1326 intel_get_adjust_train(intel_dp);
1327 }
a4fc5ed6
KP
1328 }
1329
33a34e4e
JB
1330 intel_dp->DP = DP;
1331}
1332
1333static void
1334intel_dp_complete_link_train(struct intel_dp *intel_dp)
1335{
4ef69c7a 1336 struct drm_device *dev = intel_dp->base.base.dev;
33a34e4e
JB
1337 struct drm_i915_private *dev_priv = dev->dev_private;
1338 bool channel_eq = false;
1339 int tries;
1340 u32 reg;
1341 uint32_t DP = intel_dp->DP;
1342
a4fc5ed6
KP
1343 /* channel equalization */
1344 tries = 0;
1345 channel_eq = false;
1346 for (;;) {
33a34e4e 1347 /* Use intel_dp->train_set[0] to set the voltage and pre emphasis values */
e3421a18
ZW
1348 uint32_t signal_levels;
1349
cfcb0fc9 1350 if (IS_GEN6(dev) && is_edp(intel_dp)) {
33a34e4e 1351 signal_levels = intel_gen6_edp_signal_levels(intel_dp->train_set[0]);
e3421a18
ZW
1352 DP = (DP & ~EDP_LINK_TRAIN_VOL_EMP_MASK_SNB) | signal_levels;
1353 } else {
869184a6 1354 signal_levels = intel_dp_signal_levels(intel_dp);
e3421a18
ZW
1355 DP = (DP & ~(DP_VOLTAGE_MASK|DP_PRE_EMPHASIS_MASK)) | signal_levels;
1356 }
1357
cfcb0fc9 1358 if (HAS_PCH_CPT(dev) && !is_edp(intel_dp))
e3421a18
ZW
1359 reg = DP | DP_LINK_TRAIN_PAT_2_CPT;
1360 else
1361 reg = DP | DP_LINK_TRAIN_PAT_2;
a4fc5ed6
KP
1362
1363 /* channel eq pattern */
ea5b213a 1364 if (!intel_dp_set_link_train(intel_dp, reg,
58e10eb9 1365 DP_TRAINING_PATTERN_2))
a4fc5ed6
KP
1366 break;
1367
869184a6 1368 udelay(500);
a4fc5ed6 1369
869184a6 1370 if (!intel_dp_aux_handshake_required(intel_dp)) {
a4fc5ed6 1371 break;
869184a6
JB
1372 } else {
1373 if (!intel_dp_get_link_status(intel_dp))
1374 break;
a4fc5ed6 1375
869184a6
JB
1376 if (intel_channel_eq_ok(intel_dp)) {
1377 channel_eq = true;
1378 break;
1379 }
a4fc5ed6 1380
869184a6
JB
1381 /* Try 5 times */
1382 if (tries > 5)
1383 break;
a4fc5ed6 1384
869184a6
JB
1385 /* Compute new intel_dp->train_set as requested by target */
1386 intel_get_adjust_train(intel_dp);
1387 ++tries;
1388 }
1389 }
cfcb0fc9 1390 if (HAS_PCH_CPT(dev) && !is_edp(intel_dp))
e3421a18
ZW
1391 reg = DP | DP_LINK_TRAIN_OFF_CPT;
1392 else
1393 reg = DP | DP_LINK_TRAIN_OFF;
1394
ea5b213a
CW
1395 I915_WRITE(intel_dp->output_reg, reg);
1396 POSTING_READ(intel_dp->output_reg);
1397 intel_dp_aux_native_write_1(intel_dp,
a4fc5ed6
KP
1398 DP_TRAINING_PATTERN_SET, DP_TRAINING_PATTERN_DISABLE);
1399}
1400
1401static void
ea5b213a 1402intel_dp_link_down(struct intel_dp *intel_dp)
a4fc5ed6 1403{
4ef69c7a 1404 struct drm_device *dev = intel_dp->base.base.dev;
a4fc5ed6 1405 struct drm_i915_private *dev_priv = dev->dev_private;
ea5b213a 1406 uint32_t DP = intel_dp->DP;
a4fc5ed6 1407
28c97730 1408 DRM_DEBUG_KMS("\n");
32f9d658 1409
cfcb0fc9 1410 if (is_edp(intel_dp)) {
32f9d658 1411 DP &= ~DP_PLL_ENABLE;
ea5b213a
CW
1412 I915_WRITE(intel_dp->output_reg, DP);
1413 POSTING_READ(intel_dp->output_reg);
32f9d658
ZW
1414 udelay(100);
1415 }
1416
cfcb0fc9 1417 if (HAS_PCH_CPT(dev) && !is_edp(intel_dp)) {
e3421a18 1418 DP &= ~DP_LINK_TRAIN_MASK_CPT;
ea5b213a 1419 I915_WRITE(intel_dp->output_reg, DP | DP_LINK_TRAIN_PAT_IDLE_CPT);
e3421a18
ZW
1420 } else {
1421 DP &= ~DP_LINK_TRAIN_MASK;
ea5b213a 1422 I915_WRITE(intel_dp->output_reg, DP | DP_LINK_TRAIN_PAT_IDLE);
e3421a18 1423 }
fe255d00 1424 POSTING_READ(intel_dp->output_reg);
5eb08b69 1425
fe255d00 1426 msleep(17);
5eb08b69 1427
cfcb0fc9 1428 if (is_edp(intel_dp))
32f9d658 1429 DP |= DP_LINK_TRAIN_OFF;
ea5b213a
CW
1430 I915_WRITE(intel_dp->output_reg, DP & ~DP_PORT_EN);
1431 POSTING_READ(intel_dp->output_reg);
a4fc5ed6
KP
1432}
1433
a4fc5ed6
KP
1434/*
1435 * According to DP spec
1436 * 5.1.2:
1437 * 1. Read DPCD
1438 * 2. Configure link according to Receiver Capabilities
1439 * 3. Use Link Training from 2.5.3.3 and 3.5.1.3
1440 * 4. Check link status on receipt of hot-plug interrupt
1441 */
1442
1443static void
ea5b213a 1444intel_dp_check_link_status(struct intel_dp *intel_dp)
a4fc5ed6 1445{
4ef69c7a 1446 if (!intel_dp->base.base.crtc)
a4fc5ed6
KP
1447 return;
1448
33a34e4e 1449 if (!intel_dp_get_link_status(intel_dp)) {
ea5b213a 1450 intel_dp_link_down(intel_dp);
a4fc5ed6
KP
1451 return;
1452 }
1453
33a34e4e
JB
1454 if (!intel_channel_eq_ok(intel_dp)) {
1455 intel_dp_start_link_train(intel_dp);
1456 intel_dp_complete_link_train(intel_dp);
1457 }
a4fc5ed6 1458}
a4fc5ed6 1459
5eb08b69 1460static enum drm_connector_status
a9756bb5 1461ironlake_dp_detect(struct intel_dp *intel_dp)
5eb08b69 1462{
5eb08b69
ZW
1463 enum drm_connector_status status;
1464
01cb9ea6 1465 /* Can't disconnect eDP */
4d926461 1466 if (is_edp(intel_dp))
01cb9ea6
JB
1467 return connector_status_connected;
1468
5eb08b69 1469 status = connector_status_disconnected;
ea5b213a
CW
1470 if (intel_dp_aux_native_read(intel_dp,
1471 0x000, intel_dp->dpcd,
a9756bb5
ZW
1472 sizeof (intel_dp->dpcd))
1473 == sizeof(intel_dp->dpcd)) {
ea5b213a 1474 if (intel_dp->dpcd[0] != 0)
5eb08b69
ZW
1475 status = connector_status_connected;
1476 }
ea5b213a
CW
1477 DRM_DEBUG_KMS("DPCD: %hx%hx%hx%hx\n", intel_dp->dpcd[0],
1478 intel_dp->dpcd[1], intel_dp->dpcd[2], intel_dp->dpcd[3]);
5eb08b69
ZW
1479 return status;
1480}
1481
a4fc5ed6 1482static enum drm_connector_status
a9756bb5 1483g4x_dp_detect(struct intel_dp *intel_dp)
a4fc5ed6 1484{
4ef69c7a 1485 struct drm_device *dev = intel_dp->base.base.dev;
a4fc5ed6 1486 struct drm_i915_private *dev_priv = dev->dev_private;
a4fc5ed6 1487 enum drm_connector_status status;
a9756bb5 1488 uint32_t temp, bit;
5eb08b69 1489
ea5b213a 1490 switch (intel_dp->output_reg) {
a4fc5ed6
KP
1491 case DP_B:
1492 bit = DPB_HOTPLUG_INT_STATUS;
1493 break;
1494 case DP_C:
1495 bit = DPC_HOTPLUG_INT_STATUS;
1496 break;
1497 case DP_D:
1498 bit = DPD_HOTPLUG_INT_STATUS;
1499 break;
1500 default:
1501 return connector_status_unknown;
1502 }
1503
1504 temp = I915_READ(PORT_HOTPLUG_STAT);
1505
1506 if ((temp & bit) == 0)
1507 return connector_status_disconnected;
1508
1509 status = connector_status_disconnected;
a9756bb5 1510 if (intel_dp_aux_native_read(intel_dp, 0x000, intel_dp->dpcd,
ea5b213a 1511 sizeof (intel_dp->dpcd)) == sizeof (intel_dp->dpcd))
a4fc5ed6 1512 {
ea5b213a 1513 if (intel_dp->dpcd[0] != 0)
a4fc5ed6
KP
1514 status = connector_status_connected;
1515 }
a9756bb5
ZW
1516
1517 return bit;
1518}
1519
1520/**
1521 * Uses CRT_HOTPLUG_EN and CRT_HOTPLUG_STAT to detect DP connection.
1522 *
1523 * \return true if DP port is connected.
1524 * \return false if DP port is disconnected.
1525 */
1526static enum drm_connector_status
1527intel_dp_detect(struct drm_connector *connector, bool force)
1528{
1529 struct intel_dp *intel_dp = intel_attached_dp(connector);
1530 struct drm_device *dev = intel_dp->base.base.dev;
1531 enum drm_connector_status status;
1532 struct edid *edid = NULL;
1533
1534 intel_dp->has_audio = false;
1535
1536 if (HAS_PCH_SPLIT(dev))
1537 status = ironlake_dp_detect(intel_dp);
1538 else
1539 status = g4x_dp_detect(intel_dp);
1540 if (status != connector_status_connected)
1541 return status;
1542
1543 edid = drm_get_edid(connector, &intel_dp->adapter);
1544 if (edid) {
1545 intel_dp->has_audio = drm_detect_monitor_audio(edid);
1546 connector->display_info.raw_edid = NULL;
1547 kfree(edid);
1548 }
1549
1550 return connector_status_connected;
a4fc5ed6
KP
1551}
1552
1553static int intel_dp_get_modes(struct drm_connector *connector)
1554{
df0e9248 1555 struct intel_dp *intel_dp = intel_attached_dp(connector);
4ef69c7a 1556 struct drm_device *dev = intel_dp->base.base.dev;
32f9d658
ZW
1557 struct drm_i915_private *dev_priv = dev->dev_private;
1558 int ret;
a4fc5ed6
KP
1559
1560 /* We should parse the EDID data and find out if it has an audio sink
1561 */
1562
f899fc64 1563 ret = intel_ddc_get_modes(connector, &intel_dp->adapter);
b9efc480 1564 if (ret) {
4d926461 1565 if (is_edp(intel_dp) && !dev_priv->panel_fixed_mode) {
b9efc480
ZY
1566 struct drm_display_mode *newmode;
1567 list_for_each_entry(newmode, &connector->probed_modes,
1568 head) {
1569 if (newmode->type & DRM_MODE_TYPE_PREFERRED) {
1570 dev_priv->panel_fixed_mode =
1571 drm_mode_duplicate(dev, newmode);
1572 break;
1573 }
1574 }
1575 }
1576
32f9d658 1577 return ret;
b9efc480 1578 }
32f9d658
ZW
1579
1580 /* if eDP has no EDID, try to use fixed panel mode from VBT */
4d926461 1581 if (is_edp(intel_dp)) {
32f9d658
ZW
1582 if (dev_priv->panel_fixed_mode != NULL) {
1583 struct drm_display_mode *mode;
1584 mode = drm_mode_duplicate(dev, dev_priv->panel_fixed_mode);
1585 drm_mode_probed_add(connector, mode);
1586 return 1;
1587 }
1588 }
1589 return 0;
a4fc5ed6
KP
1590}
1591
1592static void
1593intel_dp_destroy (struct drm_connector *connector)
1594{
a4fc5ed6
KP
1595 drm_sysfs_connector_remove(connector);
1596 drm_connector_cleanup(connector);
55f78c43 1597 kfree(connector);
a4fc5ed6
KP
1598}
1599
24d05927
DV
1600static void intel_dp_encoder_destroy(struct drm_encoder *encoder)
1601{
1602 struct intel_dp *intel_dp = enc_to_intel_dp(encoder);
1603
1604 i2c_del_adapter(&intel_dp->adapter);
1605 drm_encoder_cleanup(encoder);
1606 kfree(intel_dp);
1607}
1608
a4fc5ed6
KP
1609static const struct drm_encoder_helper_funcs intel_dp_helper_funcs = {
1610 .dpms = intel_dp_dpms,
1611 .mode_fixup = intel_dp_mode_fixup,
d240f20f 1612 .prepare = intel_dp_prepare,
a4fc5ed6 1613 .mode_set = intel_dp_mode_set,
d240f20f 1614 .commit = intel_dp_commit,
a4fc5ed6
KP
1615};
1616
1617static const struct drm_connector_funcs intel_dp_connector_funcs = {
1618 .dpms = drm_helper_connector_dpms,
a4fc5ed6
KP
1619 .detect = intel_dp_detect,
1620 .fill_modes = drm_helper_probe_single_connector_modes,
1621 .destroy = intel_dp_destroy,
1622};
1623
1624static const struct drm_connector_helper_funcs intel_dp_connector_helper_funcs = {
1625 .get_modes = intel_dp_get_modes,
1626 .mode_valid = intel_dp_mode_valid,
df0e9248 1627 .best_encoder = intel_best_encoder,
a4fc5ed6
KP
1628};
1629
a4fc5ed6 1630static const struct drm_encoder_funcs intel_dp_enc_funcs = {
24d05927 1631 .destroy = intel_dp_encoder_destroy,
a4fc5ed6
KP
1632};
1633
995b6762 1634static void
21d40d37 1635intel_dp_hot_plug(struct intel_encoder *intel_encoder)
c8110e52 1636{
ea5b213a 1637 struct intel_dp *intel_dp = container_of(intel_encoder, struct intel_dp, base);
c8110e52 1638
ea5b213a
CW
1639 if (intel_dp->dpms_mode == DRM_MODE_DPMS_ON)
1640 intel_dp_check_link_status(intel_dp);
c8110e52 1641}
6207937d 1642
e3421a18
ZW
1643/* Return which DP Port should be selected for Transcoder DP control */
1644int
1645intel_trans_dp_port_sel (struct drm_crtc *crtc)
1646{
1647 struct drm_device *dev = crtc->dev;
1648 struct drm_mode_config *mode_config = &dev->mode_config;
1649 struct drm_encoder *encoder;
e3421a18
ZW
1650
1651 list_for_each_entry(encoder, &mode_config->encoder_list, head) {
ea5b213a
CW
1652 struct intel_dp *intel_dp;
1653
d8201ab6 1654 if (encoder->crtc != crtc)
e3421a18
ZW
1655 continue;
1656
ea5b213a
CW
1657 intel_dp = enc_to_intel_dp(encoder);
1658 if (intel_dp->base.type == INTEL_OUTPUT_DISPLAYPORT)
1659 return intel_dp->output_reg;
e3421a18 1660 }
ea5b213a 1661
e3421a18
ZW
1662 return -1;
1663}
1664
36e83a18 1665/* check the VBT to see whether the eDP is on DP-D port */
cb0953d7 1666bool intel_dpd_is_edp(struct drm_device *dev)
36e83a18
ZY
1667{
1668 struct drm_i915_private *dev_priv = dev->dev_private;
1669 struct child_device_config *p_child;
1670 int i;
1671
1672 if (!dev_priv->child_dev_num)
1673 return false;
1674
1675 for (i = 0; i < dev_priv->child_dev_num; i++) {
1676 p_child = dev_priv->child_dev + i;
1677
1678 if (p_child->dvo_port == PORT_IDPD &&
1679 p_child->device_type == DEVICE_TYPE_eDP)
1680 return true;
1681 }
1682 return false;
1683}
1684
a4fc5ed6
KP
1685void
1686intel_dp_init(struct drm_device *dev, int output_reg)
1687{
1688 struct drm_i915_private *dev_priv = dev->dev_private;
1689 struct drm_connector *connector;
ea5b213a 1690 struct intel_dp *intel_dp;
21d40d37 1691 struct intel_encoder *intel_encoder;
55f78c43 1692 struct intel_connector *intel_connector;
5eb08b69 1693 const char *name = NULL;
b329530c 1694 int type;
a4fc5ed6 1695
ea5b213a
CW
1696 intel_dp = kzalloc(sizeof(struct intel_dp), GFP_KERNEL);
1697 if (!intel_dp)
a4fc5ed6
KP
1698 return;
1699
55f78c43
ZW
1700 intel_connector = kzalloc(sizeof(struct intel_connector), GFP_KERNEL);
1701 if (!intel_connector) {
ea5b213a 1702 kfree(intel_dp);
55f78c43
ZW
1703 return;
1704 }
ea5b213a 1705 intel_encoder = &intel_dp->base;
55f78c43 1706
ea5b213a 1707 if (HAS_PCH_SPLIT(dev) && output_reg == PCH_DP_D)
b329530c 1708 if (intel_dpd_is_edp(dev))
ea5b213a 1709 intel_dp->is_pch_edp = true;
b329530c 1710
cfcb0fc9 1711 if (output_reg == DP_A || is_pch_edp(intel_dp)) {
b329530c
AJ
1712 type = DRM_MODE_CONNECTOR_eDP;
1713 intel_encoder->type = INTEL_OUTPUT_EDP;
1714 } else {
1715 type = DRM_MODE_CONNECTOR_DisplayPort;
1716 intel_encoder->type = INTEL_OUTPUT_DISPLAYPORT;
1717 }
1718
55f78c43 1719 connector = &intel_connector->base;
b329530c 1720 drm_connector_init(dev, connector, &intel_dp_connector_funcs, type);
a4fc5ed6
KP
1721 drm_connector_helper_add(connector, &intel_dp_connector_helper_funcs);
1722
eb1f8e4f
DA
1723 connector->polled = DRM_CONNECTOR_POLL_HPD;
1724
652af9d7 1725 if (output_reg == DP_B || output_reg == PCH_DP_B)
21d40d37 1726 intel_encoder->clone_mask = (1 << INTEL_DP_B_CLONE_BIT);
652af9d7 1727 else if (output_reg == DP_C || output_reg == PCH_DP_C)
21d40d37 1728 intel_encoder->clone_mask = (1 << INTEL_DP_C_CLONE_BIT);
652af9d7 1729 else if (output_reg == DP_D || output_reg == PCH_DP_D)
21d40d37 1730 intel_encoder->clone_mask = (1 << INTEL_DP_D_CLONE_BIT);
f8aed700 1731
cfcb0fc9 1732 if (is_edp(intel_dp))
21d40d37 1733 intel_encoder->clone_mask = (1 << INTEL_EDP_CLONE_BIT);
6251ec0a 1734
21d40d37 1735 intel_encoder->crtc_mask = (1 << 0) | (1 << 1);
a4fc5ed6
KP
1736 connector->interlace_allowed = true;
1737 connector->doublescan_allowed = 0;
1738
ea5b213a
CW
1739 intel_dp->output_reg = output_reg;
1740 intel_dp->has_audio = false;
1741 intel_dp->dpms_mode = DRM_MODE_DPMS_ON;
a4fc5ed6 1742
4ef69c7a 1743 drm_encoder_init(dev, &intel_encoder->base, &intel_dp_enc_funcs,
a4fc5ed6 1744 DRM_MODE_ENCODER_TMDS);
4ef69c7a 1745 drm_encoder_helper_add(&intel_encoder->base, &intel_dp_helper_funcs);
a4fc5ed6 1746
df0e9248 1747 intel_connector_attach_encoder(intel_connector, intel_encoder);
a4fc5ed6
KP
1748 drm_sysfs_connector_add(connector);
1749
1750 /* Set up the DDC bus. */
5eb08b69 1751 switch (output_reg) {
32f9d658
ZW
1752 case DP_A:
1753 name = "DPDDC-A";
1754 break;
5eb08b69
ZW
1755 case DP_B:
1756 case PCH_DP_B:
b01f2c3a
JB
1757 dev_priv->hotplug_supported_mask |=
1758 HDMIB_HOTPLUG_INT_STATUS;
5eb08b69
ZW
1759 name = "DPDDC-B";
1760 break;
1761 case DP_C:
1762 case PCH_DP_C:
b01f2c3a
JB
1763 dev_priv->hotplug_supported_mask |=
1764 HDMIC_HOTPLUG_INT_STATUS;
5eb08b69
ZW
1765 name = "DPDDC-C";
1766 break;
1767 case DP_D:
1768 case PCH_DP_D:
b01f2c3a
JB
1769 dev_priv->hotplug_supported_mask |=
1770 HDMID_HOTPLUG_INT_STATUS;
5eb08b69
ZW
1771 name = "DPDDC-D";
1772 break;
1773 }
1774
ea5b213a 1775 intel_dp_i2c_init(intel_dp, intel_connector, name);
32f9d658 1776
89667383
JB
1777 /* Cache some DPCD data in the eDP case */
1778 if (is_edp(intel_dp)) {
1779 int ret;
1780 bool was_on;
1781
1782 was_on = ironlake_edp_panel_on(intel_dp);
1783 ret = intel_dp_aux_native_read(intel_dp, DP_DPCD_REV,
1784 intel_dp->dpcd,
1785 sizeof(intel_dp->dpcd));
1786 if (ret == sizeof(intel_dp->dpcd)) {
1787 if (intel_dp->dpcd[0] >= 0x11)
1788 dev_priv->no_aux_handshake = intel_dp->dpcd[3] &
1789 DP_NO_AUX_HANDSHAKE_LINK_TRAINING;
1790 } else {
1791 DRM_ERROR("failed to retrieve link info\n");
1792 }
1793 if (!was_on)
1794 ironlake_edp_panel_off(dev);
1795 }
1796
21d40d37 1797 intel_encoder->hot_plug = intel_dp_hot_plug;
a4fc5ed6 1798
4d926461 1799 if (is_edp(intel_dp)) {
32f9d658
ZW
1800 /* initialize panel mode from VBT if available for eDP */
1801 if (dev_priv->lfp_lvds_vbt_mode) {
1802 dev_priv->panel_fixed_mode =
1803 drm_mode_duplicate(dev, dev_priv->lfp_lvds_vbt_mode);
1804 if (dev_priv->panel_fixed_mode) {
1805 dev_priv->panel_fixed_mode->type |=
1806 DRM_MODE_TYPE_PREFERRED;
1807 }
1808 }
1809 }
1810
a4fc5ed6
KP
1811 /* For G4X desktop chip, PEG_BAND_GAP_DATA 3:0 must first be written
1812 * 0xd. Failure to do so will result in spurious interrupts being
1813 * generated on the port when a cable is not attached.
1814 */
1815 if (IS_G4X(dev) && !IS_GM45(dev)) {
1816 u32 temp = I915_READ(PEG_BAND_GAP_DATA);
1817 I915_WRITE(PEG_BAND_GAP_DATA, (temp & ~0xf) | 0xd);
1818 }
1819}