intel_display.c 244 KB

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  1. /*
  2. * Copyright © 2006-2007 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
  21. * DEALINGS IN THE SOFTWARE.
  22. *
  23. * Authors:
  24. * Eric Anholt <eric@anholt.net>
  25. */
  26. #include <linux/dmi.h>
  27. #include <linux/module.h>
  28. #include <linux/input.h>
  29. #include <linux/i2c.h>
  30. #include <linux/kernel.h>
  31. #include <linux/slab.h>
  32. #include <linux/vgaarb.h>
  33. #include <drm/drm_edid.h>
  34. #include <drm/drmP.h>
  35. #include "intel_drv.h"
  36. #include <drm/i915_drm.h>
  37. #include "i915_drv.h"
  38. #include "i915_trace.h"
  39. #include <drm/drm_dp_helper.h>
  40. #include <drm/drm_crtc_helper.h>
  41. #include <linux/dma_remapping.h>
  42. #define HAS_eDP (intel_pipe_has_type(crtc, INTEL_OUTPUT_EDP))
  43. bool intel_pipe_has_type(struct drm_crtc *crtc, int type);
  44. static void intel_increase_pllclock(struct drm_crtc *crtc);
  45. static void intel_crtc_update_cursor(struct drm_crtc *crtc, bool on);
  46. typedef struct {
  47. /* given values */
  48. int n;
  49. int m1, m2;
  50. int p1, p2;
  51. /* derived values */
  52. int dot;
  53. int vco;
  54. int m;
  55. int p;
  56. } intel_clock_t;
  57. typedef struct {
  58. int min, max;
  59. } intel_range_t;
  60. typedef struct {
  61. int dot_limit;
  62. int p2_slow, p2_fast;
  63. } intel_p2_t;
  64. #define INTEL_P2_NUM 2
  65. typedef struct intel_limit intel_limit_t;
  66. struct intel_limit {
  67. intel_range_t dot, vco, n, m, m1, m2, p, p1;
  68. intel_p2_t p2;
  69. bool (* find_pll)(const intel_limit_t *, struct drm_crtc *,
  70. int, int, intel_clock_t *, intel_clock_t *);
  71. };
  72. /* FDI */
  73. #define IRONLAKE_FDI_FREQ 2700000 /* in kHz for mode->clock */
  74. int
  75. intel_pch_rawclk(struct drm_device *dev)
  76. {
  77. struct drm_i915_private *dev_priv = dev->dev_private;
  78. WARN_ON(!HAS_PCH_SPLIT(dev));
  79. return I915_READ(PCH_RAWCLK_FREQ) & RAWCLK_FREQ_MASK;
  80. }
  81. static bool
  82. intel_find_best_PLL(const intel_limit_t *limit, struct drm_crtc *crtc,
  83. int target, int refclk, intel_clock_t *match_clock,
  84. intel_clock_t *best_clock);
  85. static bool
  86. intel_g4x_find_best_PLL(const intel_limit_t *limit, struct drm_crtc *crtc,
  87. int target, int refclk, intel_clock_t *match_clock,
  88. intel_clock_t *best_clock);
  89. static bool
  90. intel_find_pll_g4x_dp(const intel_limit_t *, struct drm_crtc *crtc,
  91. int target, int refclk, intel_clock_t *match_clock,
  92. intel_clock_t *best_clock);
  93. static bool
  94. intel_find_pll_ironlake_dp(const intel_limit_t *, struct drm_crtc *crtc,
  95. int target, int refclk, intel_clock_t *match_clock,
  96. intel_clock_t *best_clock);
  97. static bool
  98. intel_vlv_find_best_pll(const intel_limit_t *limit, struct drm_crtc *crtc,
  99. int target, int refclk, intel_clock_t *match_clock,
  100. intel_clock_t *best_clock);
  101. static inline u32 /* units of 100MHz */
  102. intel_fdi_link_freq(struct drm_device *dev)
  103. {
  104. if (IS_GEN5(dev)) {
  105. struct drm_i915_private *dev_priv = dev->dev_private;
  106. return (I915_READ(FDI_PLL_BIOS_0) & FDI_PLL_FB_CLOCK_MASK) + 2;
  107. } else
  108. return 27;
  109. }
  110. static const intel_limit_t intel_limits_i8xx_dvo = {
  111. .dot = { .min = 25000, .max = 350000 },
  112. .vco = { .min = 930000, .max = 1400000 },
  113. .n = { .min = 3, .max = 16 },
  114. .m = { .min = 96, .max = 140 },
  115. .m1 = { .min = 18, .max = 26 },
  116. .m2 = { .min = 6, .max = 16 },
  117. .p = { .min = 4, .max = 128 },
  118. .p1 = { .min = 2, .max = 33 },
  119. .p2 = { .dot_limit = 165000,
  120. .p2_slow = 4, .p2_fast = 2 },
  121. .find_pll = intel_find_best_PLL,
  122. };
  123. static const intel_limit_t intel_limits_i8xx_lvds = {
  124. .dot = { .min = 25000, .max = 350000 },
  125. .vco = { .min = 930000, .max = 1400000 },
  126. .n = { .min = 3, .max = 16 },
  127. .m = { .min = 96, .max = 140 },
  128. .m1 = { .min = 18, .max = 26 },
  129. .m2 = { .min = 6, .max = 16 },
  130. .p = { .min = 4, .max = 128 },
  131. .p1 = { .min = 1, .max = 6 },
  132. .p2 = { .dot_limit = 165000,
  133. .p2_slow = 14, .p2_fast = 7 },
  134. .find_pll = intel_find_best_PLL,
  135. };
  136. static const intel_limit_t intel_limits_i9xx_sdvo = {
  137. .dot = { .min = 20000, .max = 400000 },
  138. .vco = { .min = 1400000, .max = 2800000 },
  139. .n = { .min = 1, .max = 6 },
  140. .m = { .min = 70, .max = 120 },
  141. .m1 = { .min = 10, .max = 22 },
  142. .m2 = { .min = 5, .max = 9 },
  143. .p = { .min = 5, .max = 80 },
  144. .p1 = { .min = 1, .max = 8 },
  145. .p2 = { .dot_limit = 200000,
  146. .p2_slow = 10, .p2_fast = 5 },
  147. .find_pll = intel_find_best_PLL,
  148. };
  149. static const intel_limit_t intel_limits_i9xx_lvds = {
  150. .dot = { .min = 20000, .max = 400000 },
  151. .vco = { .min = 1400000, .max = 2800000 },
  152. .n = { .min = 1, .max = 6 },
  153. .m = { .min = 70, .max = 120 },
  154. .m1 = { .min = 10, .max = 22 },
  155. .m2 = { .min = 5, .max = 9 },
  156. .p = { .min = 7, .max = 98 },
  157. .p1 = { .min = 1, .max = 8 },
  158. .p2 = { .dot_limit = 112000,
  159. .p2_slow = 14, .p2_fast = 7 },
  160. .find_pll = intel_find_best_PLL,
  161. };
  162. static const intel_limit_t intel_limits_g4x_sdvo = {
  163. .dot = { .min = 25000, .max = 270000 },
  164. .vco = { .min = 1750000, .max = 3500000},
  165. .n = { .min = 1, .max = 4 },
  166. .m = { .min = 104, .max = 138 },
  167. .m1 = { .min = 17, .max = 23 },
  168. .m2 = { .min = 5, .max = 11 },
  169. .p = { .min = 10, .max = 30 },
  170. .p1 = { .min = 1, .max = 3},
  171. .p2 = { .dot_limit = 270000,
  172. .p2_slow = 10,
  173. .p2_fast = 10
  174. },
  175. .find_pll = intel_g4x_find_best_PLL,
  176. };
  177. static const intel_limit_t intel_limits_g4x_hdmi = {
  178. .dot = { .min = 22000, .max = 400000 },
  179. .vco = { .min = 1750000, .max = 3500000},
  180. .n = { .min = 1, .max = 4 },
  181. .m = { .min = 104, .max = 138 },
  182. .m1 = { .min = 16, .max = 23 },
  183. .m2 = { .min = 5, .max = 11 },
  184. .p = { .min = 5, .max = 80 },
  185. .p1 = { .min = 1, .max = 8},
  186. .p2 = { .dot_limit = 165000,
  187. .p2_slow = 10, .p2_fast = 5 },
  188. .find_pll = intel_g4x_find_best_PLL,
  189. };
  190. static const intel_limit_t intel_limits_g4x_single_channel_lvds = {
  191. .dot = { .min = 20000, .max = 115000 },
  192. .vco = { .min = 1750000, .max = 3500000 },
  193. .n = { .min = 1, .max = 3 },
  194. .m = { .min = 104, .max = 138 },
  195. .m1 = { .min = 17, .max = 23 },
  196. .m2 = { .min = 5, .max = 11 },
  197. .p = { .min = 28, .max = 112 },
  198. .p1 = { .min = 2, .max = 8 },
  199. .p2 = { .dot_limit = 0,
  200. .p2_slow = 14, .p2_fast = 14
  201. },
  202. .find_pll = intel_g4x_find_best_PLL,
  203. };
  204. static const intel_limit_t intel_limits_g4x_dual_channel_lvds = {
  205. .dot = { .min = 80000, .max = 224000 },
  206. .vco = { .min = 1750000, .max = 3500000 },
  207. .n = { .min = 1, .max = 3 },
  208. .m = { .min = 104, .max = 138 },
  209. .m1 = { .min = 17, .max = 23 },
  210. .m2 = { .min = 5, .max = 11 },
  211. .p = { .min = 14, .max = 42 },
  212. .p1 = { .min = 2, .max = 6 },
  213. .p2 = { .dot_limit = 0,
  214. .p2_slow = 7, .p2_fast = 7
  215. },
  216. .find_pll = intel_g4x_find_best_PLL,
  217. };
  218. static const intel_limit_t intel_limits_g4x_display_port = {
  219. .dot = { .min = 161670, .max = 227000 },
  220. .vco = { .min = 1750000, .max = 3500000},
  221. .n = { .min = 1, .max = 2 },
  222. .m = { .min = 97, .max = 108 },
  223. .m1 = { .min = 0x10, .max = 0x12 },
  224. .m2 = { .min = 0x05, .max = 0x06 },
  225. .p = { .min = 10, .max = 20 },
  226. .p1 = { .min = 1, .max = 2},
  227. .p2 = { .dot_limit = 0,
  228. .p2_slow = 10, .p2_fast = 10 },
  229. .find_pll = intel_find_pll_g4x_dp,
  230. };
  231. static const intel_limit_t intel_limits_pineview_sdvo = {
  232. .dot = { .min = 20000, .max = 400000},
  233. .vco = { .min = 1700000, .max = 3500000 },
  234. /* Pineview's Ncounter is a ring counter */
  235. .n = { .min = 3, .max = 6 },
  236. .m = { .min = 2, .max = 256 },
  237. /* Pineview only has one combined m divider, which we treat as m2. */
  238. .m1 = { .min = 0, .max = 0 },
  239. .m2 = { .min = 0, .max = 254 },
  240. .p = { .min = 5, .max = 80 },
  241. .p1 = { .min = 1, .max = 8 },
  242. .p2 = { .dot_limit = 200000,
  243. .p2_slow = 10, .p2_fast = 5 },
  244. .find_pll = intel_find_best_PLL,
  245. };
  246. static const intel_limit_t intel_limits_pineview_lvds = {
  247. .dot = { .min = 20000, .max = 400000 },
  248. .vco = { .min = 1700000, .max = 3500000 },
  249. .n = { .min = 3, .max = 6 },
  250. .m = { .min = 2, .max = 256 },
  251. .m1 = { .min = 0, .max = 0 },
  252. .m2 = { .min = 0, .max = 254 },
  253. .p = { .min = 7, .max = 112 },
  254. .p1 = { .min = 1, .max = 8 },
  255. .p2 = { .dot_limit = 112000,
  256. .p2_slow = 14, .p2_fast = 14 },
  257. .find_pll = intel_find_best_PLL,
  258. };
  259. /* Ironlake / Sandybridge
  260. *
  261. * We calculate clock using (register_value + 2) for N/M1/M2, so here
  262. * the range value for them is (actual_value - 2).
  263. */
  264. static const intel_limit_t intel_limits_ironlake_dac = {
  265. .dot = { .min = 25000, .max = 350000 },
  266. .vco = { .min = 1760000, .max = 3510000 },
  267. .n = { .min = 1, .max = 5 },
  268. .m = { .min = 79, .max = 127 },
  269. .m1 = { .min = 12, .max = 22 },
  270. .m2 = { .min = 5, .max = 9 },
  271. .p = { .min = 5, .max = 80 },
  272. .p1 = { .min = 1, .max = 8 },
  273. .p2 = { .dot_limit = 225000,
  274. .p2_slow = 10, .p2_fast = 5 },
  275. .find_pll = intel_g4x_find_best_PLL,
  276. };
  277. static const intel_limit_t intel_limits_ironlake_single_lvds = {
  278. .dot = { .min = 25000, .max = 350000 },
  279. .vco = { .min = 1760000, .max = 3510000 },
  280. .n = { .min = 1, .max = 3 },
  281. .m = { .min = 79, .max = 118 },
  282. .m1 = { .min = 12, .max = 22 },
  283. .m2 = { .min = 5, .max = 9 },
  284. .p = { .min = 28, .max = 112 },
  285. .p1 = { .min = 2, .max = 8 },
  286. .p2 = { .dot_limit = 225000,
  287. .p2_slow = 14, .p2_fast = 14 },
  288. .find_pll = intel_g4x_find_best_PLL,
  289. };
  290. static const intel_limit_t intel_limits_ironlake_dual_lvds = {
  291. .dot = { .min = 25000, .max = 350000 },
  292. .vco = { .min = 1760000, .max = 3510000 },
  293. .n = { .min = 1, .max = 3 },
  294. .m = { .min = 79, .max = 127 },
  295. .m1 = { .min = 12, .max = 22 },
  296. .m2 = { .min = 5, .max = 9 },
  297. .p = { .min = 14, .max = 56 },
  298. .p1 = { .min = 2, .max = 8 },
  299. .p2 = { .dot_limit = 225000,
  300. .p2_slow = 7, .p2_fast = 7 },
  301. .find_pll = intel_g4x_find_best_PLL,
  302. };
  303. /* LVDS 100mhz refclk limits. */
  304. static const intel_limit_t intel_limits_ironlake_single_lvds_100m = {
  305. .dot = { .min = 25000, .max = 350000 },
  306. .vco = { .min = 1760000, .max = 3510000 },
  307. .n = { .min = 1, .max = 2 },
  308. .m = { .min = 79, .max = 126 },
  309. .m1 = { .min = 12, .max = 22 },
  310. .m2 = { .min = 5, .max = 9 },
  311. .p = { .min = 28, .max = 112 },
  312. .p1 = { .min = 2, .max = 8 },
  313. .p2 = { .dot_limit = 225000,
  314. .p2_slow = 14, .p2_fast = 14 },
  315. .find_pll = intel_g4x_find_best_PLL,
  316. };
  317. static const intel_limit_t intel_limits_ironlake_dual_lvds_100m = {
  318. .dot = { .min = 25000, .max = 350000 },
  319. .vco = { .min = 1760000, .max = 3510000 },
  320. .n = { .min = 1, .max = 3 },
  321. .m = { .min = 79, .max = 126 },
  322. .m1 = { .min = 12, .max = 22 },
  323. .m2 = { .min = 5, .max = 9 },
  324. .p = { .min = 14, .max = 42 },
  325. .p1 = { .min = 2, .max = 6 },
  326. .p2 = { .dot_limit = 225000,
  327. .p2_slow = 7, .p2_fast = 7 },
  328. .find_pll = intel_g4x_find_best_PLL,
  329. };
  330. static const intel_limit_t intel_limits_ironlake_display_port = {
  331. .dot = { .min = 25000, .max = 350000 },
  332. .vco = { .min = 1760000, .max = 3510000},
  333. .n = { .min = 1, .max = 2 },
  334. .m = { .min = 81, .max = 90 },
  335. .m1 = { .min = 12, .max = 22 },
  336. .m2 = { .min = 5, .max = 9 },
  337. .p = { .min = 10, .max = 20 },
  338. .p1 = { .min = 1, .max = 2},
  339. .p2 = { .dot_limit = 0,
  340. .p2_slow = 10, .p2_fast = 10 },
  341. .find_pll = intel_find_pll_ironlake_dp,
  342. };
  343. static const intel_limit_t intel_limits_vlv_dac = {
  344. .dot = { .min = 25000, .max = 270000 },
  345. .vco = { .min = 4000000, .max = 6000000 },
  346. .n = { .min = 1, .max = 7 },
  347. .m = { .min = 22, .max = 450 }, /* guess */
  348. .m1 = { .min = 2, .max = 3 },
  349. .m2 = { .min = 11, .max = 156 },
  350. .p = { .min = 10, .max = 30 },
  351. .p1 = { .min = 2, .max = 3 },
  352. .p2 = { .dot_limit = 270000,
  353. .p2_slow = 2, .p2_fast = 20 },
  354. .find_pll = intel_vlv_find_best_pll,
  355. };
  356. static const intel_limit_t intel_limits_vlv_hdmi = {
  357. .dot = { .min = 20000, .max = 165000 },
  358. .vco = { .min = 4000000, .max = 5994000},
  359. .n = { .min = 1, .max = 7 },
  360. .m = { .min = 60, .max = 300 }, /* guess */
  361. .m1 = { .min = 2, .max = 3 },
  362. .m2 = { .min = 11, .max = 156 },
  363. .p = { .min = 10, .max = 30 },
  364. .p1 = { .min = 2, .max = 3 },
  365. .p2 = { .dot_limit = 270000,
  366. .p2_slow = 2, .p2_fast = 20 },
  367. .find_pll = intel_vlv_find_best_pll,
  368. };
  369. static const intel_limit_t intel_limits_vlv_dp = {
  370. .dot = { .min = 25000, .max = 270000 },
  371. .vco = { .min = 4000000, .max = 6000000 },
  372. .n = { .min = 1, .max = 7 },
  373. .m = { .min = 22, .max = 450 },
  374. .m1 = { .min = 2, .max = 3 },
  375. .m2 = { .min = 11, .max = 156 },
  376. .p = { .min = 10, .max = 30 },
  377. .p1 = { .min = 2, .max = 3 },
  378. .p2 = { .dot_limit = 270000,
  379. .p2_slow = 2, .p2_fast = 20 },
  380. .find_pll = intel_vlv_find_best_pll,
  381. };
  382. u32 intel_dpio_read(struct drm_i915_private *dev_priv, int reg)
  383. {
  384. unsigned long flags;
  385. u32 val = 0;
  386. spin_lock_irqsave(&dev_priv->dpio_lock, flags);
  387. if (wait_for_atomic_us((I915_READ(DPIO_PKT) & DPIO_BUSY) == 0, 100)) {
  388. DRM_ERROR("DPIO idle wait timed out\n");
  389. goto out_unlock;
  390. }
  391. I915_WRITE(DPIO_REG, reg);
  392. I915_WRITE(DPIO_PKT, DPIO_RID | DPIO_OP_READ | DPIO_PORTID |
  393. DPIO_BYTE);
  394. if (wait_for_atomic_us((I915_READ(DPIO_PKT) & DPIO_BUSY) == 0, 100)) {
  395. DRM_ERROR("DPIO read wait timed out\n");
  396. goto out_unlock;
  397. }
  398. val = I915_READ(DPIO_DATA);
  399. out_unlock:
  400. spin_unlock_irqrestore(&dev_priv->dpio_lock, flags);
  401. return val;
  402. }
  403. static void intel_dpio_write(struct drm_i915_private *dev_priv, int reg,
  404. u32 val)
  405. {
  406. unsigned long flags;
  407. spin_lock_irqsave(&dev_priv->dpio_lock, flags);
  408. if (wait_for_atomic_us((I915_READ(DPIO_PKT) & DPIO_BUSY) == 0, 100)) {
  409. DRM_ERROR("DPIO idle wait timed out\n");
  410. goto out_unlock;
  411. }
  412. I915_WRITE(DPIO_DATA, val);
  413. I915_WRITE(DPIO_REG, reg);
  414. I915_WRITE(DPIO_PKT, DPIO_RID | DPIO_OP_WRITE | DPIO_PORTID |
  415. DPIO_BYTE);
  416. if (wait_for_atomic_us((I915_READ(DPIO_PKT) & DPIO_BUSY) == 0, 100))
  417. DRM_ERROR("DPIO write wait timed out\n");
  418. out_unlock:
  419. spin_unlock_irqrestore(&dev_priv->dpio_lock, flags);
  420. }
  421. static void vlv_init_dpio(struct drm_device *dev)
  422. {
  423. struct drm_i915_private *dev_priv = dev->dev_private;
  424. /* Reset the DPIO config */
  425. I915_WRITE(DPIO_CTL, 0);
  426. POSTING_READ(DPIO_CTL);
  427. I915_WRITE(DPIO_CTL, 1);
  428. POSTING_READ(DPIO_CTL);
  429. }
  430. static int intel_dual_link_lvds_callback(const struct dmi_system_id *id)
  431. {
  432. DRM_INFO("Forcing lvds to dual link mode on %s\n", id->ident);
  433. return 1;
  434. }
  435. static const struct dmi_system_id intel_dual_link_lvds[] = {
  436. {
  437. .callback = intel_dual_link_lvds_callback,
  438. .ident = "Apple MacBook Pro (Core i5/i7 Series)",
  439. .matches = {
  440. DMI_MATCH(DMI_SYS_VENDOR, "Apple Inc."),
  441. DMI_MATCH(DMI_PRODUCT_NAME, "MacBookPro8,2"),
  442. },
  443. },
  444. { } /* terminating entry */
  445. };
  446. static bool is_dual_link_lvds(struct drm_i915_private *dev_priv,
  447. unsigned int reg)
  448. {
  449. unsigned int val;
  450. /* use the module option value if specified */
  451. if (i915_lvds_channel_mode > 0)
  452. return i915_lvds_channel_mode == 2;
  453. if (dmi_check_system(intel_dual_link_lvds))
  454. return true;
  455. if (dev_priv->lvds_val)
  456. val = dev_priv->lvds_val;
  457. else {
  458. /* BIOS should set the proper LVDS register value at boot, but
  459. * in reality, it doesn't set the value when the lid is closed;
  460. * we need to check "the value to be set" in VBT when LVDS
  461. * register is uninitialized.
  462. */
  463. val = I915_READ(reg);
  464. if (!(val & ~(LVDS_PIPE_MASK | LVDS_DETECTED)))
  465. val = dev_priv->bios_lvds_val;
  466. dev_priv->lvds_val = val;
  467. }
  468. return (val & LVDS_CLKB_POWER_MASK) == LVDS_CLKB_POWER_UP;
  469. }
  470. static const intel_limit_t *intel_ironlake_limit(struct drm_crtc *crtc,
  471. int refclk)
  472. {
  473. struct drm_device *dev = crtc->dev;
  474. struct drm_i915_private *dev_priv = dev->dev_private;
  475. const intel_limit_t *limit;
  476. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_LVDS)) {
  477. if (is_dual_link_lvds(dev_priv, PCH_LVDS)) {
  478. /* LVDS dual channel */
  479. if (refclk == 100000)
  480. limit = &intel_limits_ironlake_dual_lvds_100m;
  481. else
  482. limit = &intel_limits_ironlake_dual_lvds;
  483. } else {
  484. if (refclk == 100000)
  485. limit = &intel_limits_ironlake_single_lvds_100m;
  486. else
  487. limit = &intel_limits_ironlake_single_lvds;
  488. }
  489. } else if (intel_pipe_has_type(crtc, INTEL_OUTPUT_DISPLAYPORT) ||
  490. HAS_eDP)
  491. limit = &intel_limits_ironlake_display_port;
  492. else
  493. limit = &intel_limits_ironlake_dac;
  494. return limit;
  495. }
  496. static const intel_limit_t *intel_g4x_limit(struct drm_crtc *crtc)
  497. {
  498. struct drm_device *dev = crtc->dev;
  499. struct drm_i915_private *dev_priv = dev->dev_private;
  500. const intel_limit_t *limit;
  501. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_LVDS)) {
  502. if (is_dual_link_lvds(dev_priv, LVDS))
  503. /* LVDS with dual channel */
  504. limit = &intel_limits_g4x_dual_channel_lvds;
  505. else
  506. /* LVDS with dual channel */
  507. limit = &intel_limits_g4x_single_channel_lvds;
  508. } else if (intel_pipe_has_type(crtc, INTEL_OUTPUT_HDMI) ||
  509. intel_pipe_has_type(crtc, INTEL_OUTPUT_ANALOG)) {
  510. limit = &intel_limits_g4x_hdmi;
  511. } else if (intel_pipe_has_type(crtc, INTEL_OUTPUT_SDVO)) {
  512. limit = &intel_limits_g4x_sdvo;
  513. } else if (intel_pipe_has_type(crtc, INTEL_OUTPUT_DISPLAYPORT)) {
  514. limit = &intel_limits_g4x_display_port;
  515. } else /* The option is for other outputs */
  516. limit = &intel_limits_i9xx_sdvo;
  517. return limit;
  518. }
  519. static const intel_limit_t *intel_limit(struct drm_crtc *crtc, int refclk)
  520. {
  521. struct drm_device *dev = crtc->dev;
  522. const intel_limit_t *limit;
  523. if (HAS_PCH_SPLIT(dev))
  524. limit = intel_ironlake_limit(crtc, refclk);
  525. else if (IS_G4X(dev)) {
  526. limit = intel_g4x_limit(crtc);
  527. } else if (IS_PINEVIEW(dev)) {
  528. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_LVDS))
  529. limit = &intel_limits_pineview_lvds;
  530. else
  531. limit = &intel_limits_pineview_sdvo;
  532. } else if (IS_VALLEYVIEW(dev)) {
  533. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_ANALOG))
  534. limit = &intel_limits_vlv_dac;
  535. else if (intel_pipe_has_type(crtc, INTEL_OUTPUT_HDMI))
  536. limit = &intel_limits_vlv_hdmi;
  537. else
  538. limit = &intel_limits_vlv_dp;
  539. } else if (!IS_GEN2(dev)) {
  540. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_LVDS))
  541. limit = &intel_limits_i9xx_lvds;
  542. else
  543. limit = &intel_limits_i9xx_sdvo;
  544. } else {
  545. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_LVDS))
  546. limit = &intel_limits_i8xx_lvds;
  547. else
  548. limit = &intel_limits_i8xx_dvo;
  549. }
  550. return limit;
  551. }
  552. /* m1 is reserved as 0 in Pineview, n is a ring counter */
  553. static void pineview_clock(int refclk, intel_clock_t *clock)
  554. {
  555. clock->m = clock->m2 + 2;
  556. clock->p = clock->p1 * clock->p2;
  557. clock->vco = refclk * clock->m / clock->n;
  558. clock->dot = clock->vco / clock->p;
  559. }
  560. static void intel_clock(struct drm_device *dev, int refclk, intel_clock_t *clock)
  561. {
  562. if (IS_PINEVIEW(dev)) {
  563. pineview_clock(refclk, clock);
  564. return;
  565. }
  566. clock->m = 5 * (clock->m1 + 2) + (clock->m2 + 2);
  567. clock->p = clock->p1 * clock->p2;
  568. clock->vco = refclk * clock->m / (clock->n + 2);
  569. clock->dot = clock->vco / clock->p;
  570. }
  571. /**
  572. * Returns whether any output on the specified pipe is of the specified type
  573. */
  574. bool intel_pipe_has_type(struct drm_crtc *crtc, int type)
  575. {
  576. struct drm_device *dev = crtc->dev;
  577. struct intel_encoder *encoder;
  578. for_each_encoder_on_crtc(dev, crtc, encoder)
  579. if (encoder->type == type)
  580. return true;
  581. return false;
  582. }
  583. #define INTELPllInvalid(s) do { /* DRM_DEBUG(s); */ return false; } while (0)
  584. /**
  585. * Returns whether the given set of divisors are valid for a given refclk with
  586. * the given connectors.
  587. */
  588. static bool intel_PLL_is_valid(struct drm_device *dev,
  589. const intel_limit_t *limit,
  590. const intel_clock_t *clock)
  591. {
  592. if (clock->p1 < limit->p1.min || limit->p1.max < clock->p1)
  593. INTELPllInvalid("p1 out of range\n");
  594. if (clock->p < limit->p.min || limit->p.max < clock->p)
  595. INTELPllInvalid("p out of range\n");
  596. if (clock->m2 < limit->m2.min || limit->m2.max < clock->m2)
  597. INTELPllInvalid("m2 out of range\n");
  598. if (clock->m1 < limit->m1.min || limit->m1.max < clock->m1)
  599. INTELPllInvalid("m1 out of range\n");
  600. if (clock->m1 <= clock->m2 && !IS_PINEVIEW(dev))
  601. INTELPllInvalid("m1 <= m2\n");
  602. if (clock->m < limit->m.min || limit->m.max < clock->m)
  603. INTELPllInvalid("m out of range\n");
  604. if (clock->n < limit->n.min || limit->n.max < clock->n)
  605. INTELPllInvalid("n out of range\n");
  606. if (clock->vco < limit->vco.min || limit->vco.max < clock->vco)
  607. INTELPllInvalid("vco out of range\n");
  608. /* XXX: We may need to be checking "Dot clock" depending on the multiplier,
  609. * connector, etc., rather than just a single range.
  610. */
  611. if (clock->dot < limit->dot.min || limit->dot.max < clock->dot)
  612. INTELPllInvalid("dot out of range\n");
  613. return true;
  614. }
  615. static bool
  616. intel_find_best_PLL(const intel_limit_t *limit, struct drm_crtc *crtc,
  617. int target, int refclk, intel_clock_t *match_clock,
  618. intel_clock_t *best_clock)
  619. {
  620. struct drm_device *dev = crtc->dev;
  621. struct drm_i915_private *dev_priv = dev->dev_private;
  622. intel_clock_t clock;
  623. int err = target;
  624. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_LVDS) &&
  625. (I915_READ(LVDS)) != 0) {
  626. /*
  627. * For LVDS, if the panel is on, just rely on its current
  628. * settings for dual-channel. We haven't figured out how to
  629. * reliably set up different single/dual channel state, if we
  630. * even can.
  631. */
  632. if (is_dual_link_lvds(dev_priv, LVDS))
  633. clock.p2 = limit->p2.p2_fast;
  634. else
  635. clock.p2 = limit->p2.p2_slow;
  636. } else {
  637. if (target < limit->p2.dot_limit)
  638. clock.p2 = limit->p2.p2_slow;
  639. else
  640. clock.p2 = limit->p2.p2_fast;
  641. }
  642. memset(best_clock, 0, sizeof(*best_clock));
  643. for (clock.m1 = limit->m1.min; clock.m1 <= limit->m1.max;
  644. clock.m1++) {
  645. for (clock.m2 = limit->m2.min;
  646. clock.m2 <= limit->m2.max; clock.m2++) {
  647. /* m1 is always 0 in Pineview */
  648. if (clock.m2 >= clock.m1 && !IS_PINEVIEW(dev))
  649. break;
  650. for (clock.n = limit->n.min;
  651. clock.n <= limit->n.max; clock.n++) {
  652. for (clock.p1 = limit->p1.min;
  653. clock.p1 <= limit->p1.max; clock.p1++) {
  654. int this_err;
  655. intel_clock(dev, refclk, &clock);
  656. if (!intel_PLL_is_valid(dev, limit,
  657. &clock))
  658. continue;
  659. if (match_clock &&
  660. clock.p != match_clock->p)
  661. continue;
  662. this_err = abs(clock.dot - target);
  663. if (this_err < err) {
  664. *best_clock = clock;
  665. err = this_err;
  666. }
  667. }
  668. }
  669. }
  670. }
  671. return (err != target);
  672. }
  673. static bool
  674. intel_g4x_find_best_PLL(const intel_limit_t *limit, struct drm_crtc *crtc,
  675. int target, int refclk, intel_clock_t *match_clock,
  676. intel_clock_t *best_clock)
  677. {
  678. struct drm_device *dev = crtc->dev;
  679. struct drm_i915_private *dev_priv = dev->dev_private;
  680. intel_clock_t clock;
  681. int max_n;
  682. bool found;
  683. /* approximately equals target * 0.00585 */
  684. int err_most = (target >> 8) + (target >> 9);
  685. found = false;
  686. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_LVDS)) {
  687. int lvds_reg;
  688. if (HAS_PCH_SPLIT(dev))
  689. lvds_reg = PCH_LVDS;
  690. else
  691. lvds_reg = LVDS;
  692. if ((I915_READ(lvds_reg) & LVDS_CLKB_POWER_MASK) ==
  693. LVDS_CLKB_POWER_UP)
  694. clock.p2 = limit->p2.p2_fast;
  695. else
  696. clock.p2 = limit->p2.p2_slow;
  697. } else {
  698. if (target < limit->p2.dot_limit)
  699. clock.p2 = limit->p2.p2_slow;
  700. else
  701. clock.p2 = limit->p2.p2_fast;
  702. }
  703. memset(best_clock, 0, sizeof(*best_clock));
  704. max_n = limit->n.max;
  705. /* based on hardware requirement, prefer smaller n to precision */
  706. for (clock.n = limit->n.min; clock.n <= max_n; clock.n++) {
  707. /* based on hardware requirement, prefere larger m1,m2 */
  708. for (clock.m1 = limit->m1.max;
  709. clock.m1 >= limit->m1.min; clock.m1--) {
  710. for (clock.m2 = limit->m2.max;
  711. clock.m2 >= limit->m2.min; clock.m2--) {
  712. for (clock.p1 = limit->p1.max;
  713. clock.p1 >= limit->p1.min; clock.p1--) {
  714. int this_err;
  715. intel_clock(dev, refclk, &clock);
  716. if (!intel_PLL_is_valid(dev, limit,
  717. &clock))
  718. continue;
  719. if (match_clock &&
  720. clock.p != match_clock->p)
  721. continue;
  722. this_err = abs(clock.dot - target);
  723. if (this_err < err_most) {
  724. *best_clock = clock;
  725. err_most = this_err;
  726. max_n = clock.n;
  727. found = true;
  728. }
  729. }
  730. }
  731. }
  732. }
  733. return found;
  734. }
  735. static bool
  736. intel_find_pll_ironlake_dp(const intel_limit_t *limit, struct drm_crtc *crtc,
  737. int target, int refclk, intel_clock_t *match_clock,
  738. intel_clock_t *best_clock)
  739. {
  740. struct drm_device *dev = crtc->dev;
  741. intel_clock_t clock;
  742. if (target < 200000) {
  743. clock.n = 1;
  744. clock.p1 = 2;
  745. clock.p2 = 10;
  746. clock.m1 = 12;
  747. clock.m2 = 9;
  748. } else {
  749. clock.n = 2;
  750. clock.p1 = 1;
  751. clock.p2 = 10;
  752. clock.m1 = 14;
  753. clock.m2 = 8;
  754. }
  755. intel_clock(dev, refclk, &clock);
  756. memcpy(best_clock, &clock, sizeof(intel_clock_t));
  757. return true;
  758. }
  759. /* DisplayPort has only two frequencies, 162MHz and 270MHz */
  760. static bool
  761. intel_find_pll_g4x_dp(const intel_limit_t *limit, struct drm_crtc *crtc,
  762. int target, int refclk, intel_clock_t *match_clock,
  763. intel_clock_t *best_clock)
  764. {
  765. intel_clock_t clock;
  766. if (target < 200000) {
  767. clock.p1 = 2;
  768. clock.p2 = 10;
  769. clock.n = 2;
  770. clock.m1 = 23;
  771. clock.m2 = 8;
  772. } else {
  773. clock.p1 = 1;
  774. clock.p2 = 10;
  775. clock.n = 1;
  776. clock.m1 = 14;
  777. clock.m2 = 2;
  778. }
  779. clock.m = 5 * (clock.m1 + 2) + (clock.m2 + 2);
  780. clock.p = (clock.p1 * clock.p2);
  781. clock.dot = 96000 * clock.m / (clock.n + 2) / clock.p;
  782. clock.vco = 0;
  783. memcpy(best_clock, &clock, sizeof(intel_clock_t));
  784. return true;
  785. }
  786. static bool
  787. intel_vlv_find_best_pll(const intel_limit_t *limit, struct drm_crtc *crtc,
  788. int target, int refclk, intel_clock_t *match_clock,
  789. intel_clock_t *best_clock)
  790. {
  791. u32 p1, p2, m1, m2, vco, bestn, bestm1, bestm2, bestp1, bestp2;
  792. u32 m, n, fastclk;
  793. u32 updrate, minupdate, fracbits, p;
  794. unsigned long bestppm, ppm, absppm;
  795. int dotclk, flag;
  796. flag = 0;
  797. dotclk = target * 1000;
  798. bestppm = 1000000;
  799. ppm = absppm = 0;
  800. fastclk = dotclk / (2*100);
  801. updrate = 0;
  802. minupdate = 19200;
  803. fracbits = 1;
  804. n = p = p1 = p2 = m = m1 = m2 = vco = bestn = 0;
  805. bestm1 = bestm2 = bestp1 = bestp2 = 0;
  806. /* based on hardware requirement, prefer smaller n to precision */
  807. for (n = limit->n.min; n <= ((refclk) / minupdate); n++) {
  808. updrate = refclk / n;
  809. for (p1 = limit->p1.max; p1 > limit->p1.min; p1--) {
  810. for (p2 = limit->p2.p2_fast+1; p2 > 0; p2--) {
  811. if (p2 > 10)
  812. p2 = p2 - 1;
  813. p = p1 * p2;
  814. /* based on hardware requirement, prefer bigger m1,m2 values */
  815. for (m1 = limit->m1.min; m1 <= limit->m1.max; m1++) {
  816. m2 = (((2*(fastclk * p * n / m1 )) +
  817. refclk) / (2*refclk));
  818. m = m1 * m2;
  819. vco = updrate * m;
  820. if (vco >= limit->vco.min && vco < limit->vco.max) {
  821. ppm = 1000000 * ((vco / p) - fastclk) / fastclk;
  822. absppm = (ppm > 0) ? ppm : (-ppm);
  823. if (absppm < 100 && ((p1 * p2) > (bestp1 * bestp2))) {
  824. bestppm = 0;
  825. flag = 1;
  826. }
  827. if (absppm < bestppm - 10) {
  828. bestppm = absppm;
  829. flag = 1;
  830. }
  831. if (flag) {
  832. bestn = n;
  833. bestm1 = m1;
  834. bestm2 = m2;
  835. bestp1 = p1;
  836. bestp2 = p2;
  837. flag = 0;
  838. }
  839. }
  840. }
  841. }
  842. }
  843. }
  844. best_clock->n = bestn;
  845. best_clock->m1 = bestm1;
  846. best_clock->m2 = bestm2;
  847. best_clock->p1 = bestp1;
  848. best_clock->p2 = bestp2;
  849. return true;
  850. }
  851. enum transcoder intel_pipe_to_cpu_transcoder(struct drm_i915_private *dev_priv,
  852. enum pipe pipe)
  853. {
  854. struct drm_crtc *crtc = dev_priv->pipe_to_crtc_mapping[pipe];
  855. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  856. return intel_crtc->cpu_transcoder;
  857. }
  858. static void ironlake_wait_for_vblank(struct drm_device *dev, int pipe)
  859. {
  860. struct drm_i915_private *dev_priv = dev->dev_private;
  861. u32 frame, frame_reg = PIPEFRAME(pipe);
  862. frame = I915_READ(frame_reg);
  863. if (wait_for(I915_READ_NOTRACE(frame_reg) != frame, 50))
  864. DRM_DEBUG_KMS("vblank wait timed out\n");
  865. }
  866. /**
  867. * intel_wait_for_vblank - wait for vblank on a given pipe
  868. * @dev: drm device
  869. * @pipe: pipe to wait for
  870. *
  871. * Wait for vblank to occur on a given pipe. Needed for various bits of
  872. * mode setting code.
  873. */
  874. void intel_wait_for_vblank(struct drm_device *dev, int pipe)
  875. {
  876. struct drm_i915_private *dev_priv = dev->dev_private;
  877. int pipestat_reg = PIPESTAT(pipe);
  878. if (INTEL_INFO(dev)->gen >= 5) {
  879. ironlake_wait_for_vblank(dev, pipe);
  880. return;
  881. }
  882. /* Clear existing vblank status. Note this will clear any other
  883. * sticky status fields as well.
  884. *
  885. * This races with i915_driver_irq_handler() with the result
  886. * that either function could miss a vblank event. Here it is not
  887. * fatal, as we will either wait upon the next vblank interrupt or
  888. * timeout. Generally speaking intel_wait_for_vblank() is only
  889. * called during modeset at which time the GPU should be idle and
  890. * should *not* be performing page flips and thus not waiting on
  891. * vblanks...
  892. * Currently, the result of us stealing a vblank from the irq
  893. * handler is that a single frame will be skipped during swapbuffers.
  894. */
  895. I915_WRITE(pipestat_reg,
  896. I915_READ(pipestat_reg) | PIPE_VBLANK_INTERRUPT_STATUS);
  897. /* Wait for vblank interrupt bit to set */
  898. if (wait_for(I915_READ(pipestat_reg) &
  899. PIPE_VBLANK_INTERRUPT_STATUS,
  900. 50))
  901. DRM_DEBUG_KMS("vblank wait timed out\n");
  902. }
  903. /*
  904. * intel_wait_for_pipe_off - wait for pipe to turn off
  905. * @dev: drm device
  906. * @pipe: pipe to wait for
  907. *
  908. * After disabling a pipe, we can't wait for vblank in the usual way,
  909. * spinning on the vblank interrupt status bit, since we won't actually
  910. * see an interrupt when the pipe is disabled.
  911. *
  912. * On Gen4 and above:
  913. * wait for the pipe register state bit to turn off
  914. *
  915. * Otherwise:
  916. * wait for the display line value to settle (it usually
  917. * ends up stopping at the start of the next frame).
  918. *
  919. */
  920. void intel_wait_for_pipe_off(struct drm_device *dev, int pipe)
  921. {
  922. struct drm_i915_private *dev_priv = dev->dev_private;
  923. enum transcoder cpu_transcoder = intel_pipe_to_cpu_transcoder(dev_priv,
  924. pipe);
  925. if (INTEL_INFO(dev)->gen >= 4) {
  926. int reg = PIPECONF(cpu_transcoder);
  927. /* Wait for the Pipe State to go off */
  928. if (wait_for((I915_READ(reg) & I965_PIPECONF_ACTIVE) == 0,
  929. 100))
  930. WARN(1, "pipe_off wait timed out\n");
  931. } else {
  932. u32 last_line, line_mask;
  933. int reg = PIPEDSL(pipe);
  934. unsigned long timeout = jiffies + msecs_to_jiffies(100);
  935. if (IS_GEN2(dev))
  936. line_mask = DSL_LINEMASK_GEN2;
  937. else
  938. line_mask = DSL_LINEMASK_GEN3;
  939. /* Wait for the display line to settle */
  940. do {
  941. last_line = I915_READ(reg) & line_mask;
  942. mdelay(5);
  943. } while (((I915_READ(reg) & line_mask) != last_line) &&
  944. time_after(timeout, jiffies));
  945. if (time_after(jiffies, timeout))
  946. WARN(1, "pipe_off wait timed out\n");
  947. }
  948. }
  949. static const char *state_string(bool enabled)
  950. {
  951. return enabled ? "on" : "off";
  952. }
  953. /* Only for pre-ILK configs */
  954. static void assert_pll(struct drm_i915_private *dev_priv,
  955. enum pipe pipe, bool state)
  956. {
  957. int reg;
  958. u32 val;
  959. bool cur_state;
  960. reg = DPLL(pipe);
  961. val = I915_READ(reg);
  962. cur_state = !!(val & DPLL_VCO_ENABLE);
  963. WARN(cur_state != state,
  964. "PLL state assertion failure (expected %s, current %s)\n",
  965. state_string(state), state_string(cur_state));
  966. }
  967. #define assert_pll_enabled(d, p) assert_pll(d, p, true)
  968. #define assert_pll_disabled(d, p) assert_pll(d, p, false)
  969. /* For ILK+ */
  970. static void assert_pch_pll(struct drm_i915_private *dev_priv,
  971. struct intel_pch_pll *pll,
  972. struct intel_crtc *crtc,
  973. bool state)
  974. {
  975. u32 val;
  976. bool cur_state;
  977. if (HAS_PCH_LPT(dev_priv->dev)) {
  978. DRM_DEBUG_DRIVER("LPT detected: skipping PCH PLL test\n");
  979. return;
  980. }
  981. if (WARN (!pll,
  982. "asserting PCH PLL %s with no PLL\n", state_string(state)))
  983. return;
  984. val = I915_READ(pll->pll_reg);
  985. cur_state = !!(val & DPLL_VCO_ENABLE);
  986. WARN(cur_state != state,
  987. "PCH PLL state for reg %x assertion failure (expected %s, current %s), val=%08x\n",
  988. pll->pll_reg, state_string(state), state_string(cur_state), val);
  989. /* Make sure the selected PLL is correctly attached to the transcoder */
  990. if (crtc && HAS_PCH_CPT(dev_priv->dev)) {
  991. u32 pch_dpll;
  992. pch_dpll = I915_READ(PCH_DPLL_SEL);
  993. cur_state = pll->pll_reg == _PCH_DPLL_B;
  994. if (!WARN(((pch_dpll >> (4 * crtc->pipe)) & 1) != cur_state,
  995. "PLL[%d] not attached to this transcoder %d: %08x\n",
  996. cur_state, crtc->pipe, pch_dpll)) {
  997. cur_state = !!(val >> (4*crtc->pipe + 3));
  998. WARN(cur_state != state,
  999. "PLL[%d] not %s on this transcoder %d: %08x\n",
  1000. pll->pll_reg == _PCH_DPLL_B,
  1001. state_string(state),
  1002. crtc->pipe,
  1003. val);
  1004. }
  1005. }
  1006. }
  1007. #define assert_pch_pll_enabled(d, p, c) assert_pch_pll(d, p, c, true)
  1008. #define assert_pch_pll_disabled(d, p, c) assert_pch_pll(d, p, c, false)
  1009. static void assert_fdi_tx(struct drm_i915_private *dev_priv,
  1010. enum pipe pipe, bool state)
  1011. {
  1012. int reg;
  1013. u32 val;
  1014. bool cur_state;
  1015. enum transcoder cpu_transcoder = intel_pipe_to_cpu_transcoder(dev_priv,
  1016. pipe);
  1017. if (IS_HASWELL(dev_priv->dev)) {
  1018. /* On Haswell, DDI is used instead of FDI_TX_CTL */
  1019. reg = TRANS_DDI_FUNC_CTL(cpu_transcoder);
  1020. val = I915_READ(reg);
  1021. cur_state = !!(val & TRANS_DDI_FUNC_ENABLE);
  1022. } else {
  1023. reg = FDI_TX_CTL(pipe);
  1024. val = I915_READ(reg);
  1025. cur_state = !!(val & FDI_TX_ENABLE);
  1026. }
  1027. WARN(cur_state != state,
  1028. "FDI TX state assertion failure (expected %s, current %s)\n",
  1029. state_string(state), state_string(cur_state));
  1030. }
  1031. #define assert_fdi_tx_enabled(d, p) assert_fdi_tx(d, p, true)
  1032. #define assert_fdi_tx_disabled(d, p) assert_fdi_tx(d, p, false)
  1033. static void assert_fdi_rx(struct drm_i915_private *dev_priv,
  1034. enum pipe pipe, bool state)
  1035. {
  1036. int reg;
  1037. u32 val;
  1038. bool cur_state;
  1039. if (IS_HASWELL(dev_priv->dev) && pipe > 0) {
  1040. DRM_ERROR("Attempting to enable FDI_RX on Haswell pipe > 0\n");
  1041. return;
  1042. } else {
  1043. reg = FDI_RX_CTL(pipe);
  1044. val = I915_READ(reg);
  1045. cur_state = !!(val & FDI_RX_ENABLE);
  1046. }
  1047. WARN(cur_state != state,
  1048. "FDI RX state assertion failure (expected %s, current %s)\n",
  1049. state_string(state), state_string(cur_state));
  1050. }
  1051. #define assert_fdi_rx_enabled(d, p) assert_fdi_rx(d, p, true)
  1052. #define assert_fdi_rx_disabled(d, p) assert_fdi_rx(d, p, false)
  1053. static void assert_fdi_tx_pll_enabled(struct drm_i915_private *dev_priv,
  1054. enum pipe pipe)
  1055. {
  1056. int reg;
  1057. u32 val;
  1058. /* ILK FDI PLL is always enabled */
  1059. if (dev_priv->info->gen == 5)
  1060. return;
  1061. /* On Haswell, DDI ports are responsible for the FDI PLL setup */
  1062. if (IS_HASWELL(dev_priv->dev))
  1063. return;
  1064. reg = FDI_TX_CTL(pipe);
  1065. val = I915_READ(reg);
  1066. WARN(!(val & FDI_TX_PLL_ENABLE), "FDI TX PLL assertion failure, should be active but is disabled\n");
  1067. }
  1068. static void assert_fdi_rx_pll_enabled(struct drm_i915_private *dev_priv,
  1069. enum pipe pipe)
  1070. {
  1071. int reg;
  1072. u32 val;
  1073. if (IS_HASWELL(dev_priv->dev) && pipe > 0) {
  1074. DRM_ERROR("Attempting to enable FDI on Haswell with pipe > 0\n");
  1075. return;
  1076. }
  1077. reg = FDI_RX_CTL(pipe);
  1078. val = I915_READ(reg);
  1079. WARN(!(val & FDI_RX_PLL_ENABLE), "FDI RX PLL assertion failure, should be active but is disabled\n");
  1080. }
  1081. static void assert_panel_unlocked(struct drm_i915_private *dev_priv,
  1082. enum pipe pipe)
  1083. {
  1084. int pp_reg, lvds_reg;
  1085. u32 val;
  1086. enum pipe panel_pipe = PIPE_A;
  1087. bool locked = true;
  1088. if (HAS_PCH_SPLIT(dev_priv->dev)) {
  1089. pp_reg = PCH_PP_CONTROL;
  1090. lvds_reg = PCH_LVDS;
  1091. } else {
  1092. pp_reg = PP_CONTROL;
  1093. lvds_reg = LVDS;
  1094. }
  1095. val = I915_READ(pp_reg);
  1096. if (!(val & PANEL_POWER_ON) ||
  1097. ((val & PANEL_UNLOCK_REGS) == PANEL_UNLOCK_REGS))
  1098. locked = false;
  1099. if (I915_READ(lvds_reg) & LVDS_PIPEB_SELECT)
  1100. panel_pipe = PIPE_B;
  1101. WARN(panel_pipe == pipe && locked,
  1102. "panel assertion failure, pipe %c regs locked\n",
  1103. pipe_name(pipe));
  1104. }
  1105. void assert_pipe(struct drm_i915_private *dev_priv,
  1106. enum pipe pipe, bool state)
  1107. {
  1108. int reg;
  1109. u32 val;
  1110. bool cur_state;
  1111. enum transcoder cpu_transcoder = intel_pipe_to_cpu_transcoder(dev_priv,
  1112. pipe);
  1113. /* if we need the pipe A quirk it must be always on */
  1114. if (pipe == PIPE_A && dev_priv->quirks & QUIRK_PIPEA_FORCE)
  1115. state = true;
  1116. reg = PIPECONF(cpu_transcoder);
  1117. val = I915_READ(reg);
  1118. cur_state = !!(val & PIPECONF_ENABLE);
  1119. WARN(cur_state != state,
  1120. "pipe %c assertion failure (expected %s, current %s)\n",
  1121. pipe_name(pipe), state_string(state), state_string(cur_state));
  1122. }
  1123. static void assert_plane(struct drm_i915_private *dev_priv,
  1124. enum plane plane, bool state)
  1125. {
  1126. int reg;
  1127. u32 val;
  1128. bool cur_state;
  1129. reg = DSPCNTR(plane);
  1130. val = I915_READ(reg);
  1131. cur_state = !!(val & DISPLAY_PLANE_ENABLE);
  1132. WARN(cur_state != state,
  1133. "plane %c assertion failure (expected %s, current %s)\n",
  1134. plane_name(plane), state_string(state), state_string(cur_state));
  1135. }
  1136. #define assert_plane_enabled(d, p) assert_plane(d, p, true)
  1137. #define assert_plane_disabled(d, p) assert_plane(d, p, false)
  1138. static void assert_planes_disabled(struct drm_i915_private *dev_priv,
  1139. enum pipe pipe)
  1140. {
  1141. int reg, i;
  1142. u32 val;
  1143. int cur_pipe;
  1144. /* Planes are fixed to pipes on ILK+ */
  1145. if (HAS_PCH_SPLIT(dev_priv->dev)) {
  1146. reg = DSPCNTR(pipe);
  1147. val = I915_READ(reg);
  1148. WARN((val & DISPLAY_PLANE_ENABLE),
  1149. "plane %c assertion failure, should be disabled but not\n",
  1150. plane_name(pipe));
  1151. return;
  1152. }
  1153. /* Need to check both planes against the pipe */
  1154. for (i = 0; i < 2; i++) {
  1155. reg = DSPCNTR(i);
  1156. val = I915_READ(reg);
  1157. cur_pipe = (val & DISPPLANE_SEL_PIPE_MASK) >>
  1158. DISPPLANE_SEL_PIPE_SHIFT;
  1159. WARN((val & DISPLAY_PLANE_ENABLE) && pipe == cur_pipe,
  1160. "plane %c assertion failure, should be off on pipe %c but is still active\n",
  1161. plane_name(i), pipe_name(pipe));
  1162. }
  1163. }
  1164. static void assert_pch_refclk_enabled(struct drm_i915_private *dev_priv)
  1165. {
  1166. u32 val;
  1167. bool enabled;
  1168. if (HAS_PCH_LPT(dev_priv->dev)) {
  1169. DRM_DEBUG_DRIVER("LPT does not has PCH refclk, skipping check\n");
  1170. return;
  1171. }
  1172. val = I915_READ(PCH_DREF_CONTROL);
  1173. enabled = !!(val & (DREF_SSC_SOURCE_MASK | DREF_NONSPREAD_SOURCE_MASK |
  1174. DREF_SUPERSPREAD_SOURCE_MASK));
  1175. WARN(!enabled, "PCH refclk assertion failure, should be active but is disabled\n");
  1176. }
  1177. static void assert_transcoder_disabled(struct drm_i915_private *dev_priv,
  1178. enum pipe pipe)
  1179. {
  1180. int reg;
  1181. u32 val;
  1182. bool enabled;
  1183. reg = TRANSCONF(pipe);
  1184. val = I915_READ(reg);
  1185. enabled = !!(val & TRANS_ENABLE);
  1186. WARN(enabled,
  1187. "transcoder assertion failed, should be off on pipe %c but is still active\n",
  1188. pipe_name(pipe));
  1189. }
  1190. static bool dp_pipe_enabled(struct drm_i915_private *dev_priv,
  1191. enum pipe pipe, u32 port_sel, u32 val)
  1192. {
  1193. if ((val & DP_PORT_EN) == 0)
  1194. return false;
  1195. if (HAS_PCH_CPT(dev_priv->dev)) {
  1196. u32 trans_dp_ctl_reg = TRANS_DP_CTL(pipe);
  1197. u32 trans_dp_ctl = I915_READ(trans_dp_ctl_reg);
  1198. if ((trans_dp_ctl & TRANS_DP_PORT_SEL_MASK) != port_sel)
  1199. return false;
  1200. } else {
  1201. if ((val & DP_PIPE_MASK) != (pipe << 30))
  1202. return false;
  1203. }
  1204. return true;
  1205. }
  1206. static bool hdmi_pipe_enabled(struct drm_i915_private *dev_priv,
  1207. enum pipe pipe, u32 val)
  1208. {
  1209. if ((val & PORT_ENABLE) == 0)
  1210. return false;
  1211. if (HAS_PCH_CPT(dev_priv->dev)) {
  1212. if ((val & PORT_TRANS_SEL_MASK) != PORT_TRANS_SEL_CPT(pipe))
  1213. return false;
  1214. } else {
  1215. if ((val & TRANSCODER_MASK) != TRANSCODER(pipe))
  1216. return false;
  1217. }
  1218. return true;
  1219. }
  1220. static bool lvds_pipe_enabled(struct drm_i915_private *dev_priv,
  1221. enum pipe pipe, u32 val)
  1222. {
  1223. if ((val & LVDS_PORT_EN) == 0)
  1224. return false;
  1225. if (HAS_PCH_CPT(dev_priv->dev)) {
  1226. if ((val & PORT_TRANS_SEL_MASK) != PORT_TRANS_SEL_CPT(pipe))
  1227. return false;
  1228. } else {
  1229. if ((val & LVDS_PIPE_MASK) != LVDS_PIPE(pipe))
  1230. return false;
  1231. }
  1232. return true;
  1233. }
  1234. static bool adpa_pipe_enabled(struct drm_i915_private *dev_priv,
  1235. enum pipe pipe, u32 val)
  1236. {
  1237. if ((val & ADPA_DAC_ENABLE) == 0)
  1238. return false;
  1239. if (HAS_PCH_CPT(dev_priv->dev)) {
  1240. if ((val & PORT_TRANS_SEL_MASK) != PORT_TRANS_SEL_CPT(pipe))
  1241. return false;
  1242. } else {
  1243. if ((val & ADPA_PIPE_SELECT_MASK) != ADPA_PIPE_SELECT(pipe))
  1244. return false;
  1245. }
  1246. return true;
  1247. }
  1248. static void assert_pch_dp_disabled(struct drm_i915_private *dev_priv,
  1249. enum pipe pipe, int reg, u32 port_sel)
  1250. {
  1251. u32 val = I915_READ(reg);
  1252. WARN(dp_pipe_enabled(dev_priv, pipe, port_sel, val),
  1253. "PCH DP (0x%08x) enabled on transcoder %c, should be disabled\n",
  1254. reg, pipe_name(pipe));
  1255. WARN(HAS_PCH_IBX(dev_priv->dev) && (val & DP_PORT_EN) == 0
  1256. && (val & DP_PIPEB_SELECT),
  1257. "IBX PCH dp port still using transcoder B\n");
  1258. }
  1259. static void assert_pch_hdmi_disabled(struct drm_i915_private *dev_priv,
  1260. enum pipe pipe, int reg)
  1261. {
  1262. u32 val = I915_READ(reg);
  1263. WARN(hdmi_pipe_enabled(dev_priv, pipe, val),
  1264. "PCH HDMI (0x%08x) enabled on transcoder %c, should be disabled\n",
  1265. reg, pipe_name(pipe));
  1266. WARN(HAS_PCH_IBX(dev_priv->dev) && (val & PORT_ENABLE) == 0
  1267. && (val & SDVO_PIPE_B_SELECT),
  1268. "IBX PCH hdmi port still using transcoder B\n");
  1269. }
  1270. static void assert_pch_ports_disabled(struct drm_i915_private *dev_priv,
  1271. enum pipe pipe)
  1272. {
  1273. int reg;
  1274. u32 val;
  1275. assert_pch_dp_disabled(dev_priv, pipe, PCH_DP_B, TRANS_DP_PORT_SEL_B);
  1276. assert_pch_dp_disabled(dev_priv, pipe, PCH_DP_C, TRANS_DP_PORT_SEL_C);
  1277. assert_pch_dp_disabled(dev_priv, pipe, PCH_DP_D, TRANS_DP_PORT_SEL_D);
  1278. reg = PCH_ADPA;
  1279. val = I915_READ(reg);
  1280. WARN(adpa_pipe_enabled(dev_priv, pipe, val),
  1281. "PCH VGA enabled on transcoder %c, should be disabled\n",
  1282. pipe_name(pipe));
  1283. reg = PCH_LVDS;
  1284. val = I915_READ(reg);
  1285. WARN(lvds_pipe_enabled(dev_priv, pipe, val),
  1286. "PCH LVDS enabled on transcoder %c, should be disabled\n",
  1287. pipe_name(pipe));
  1288. assert_pch_hdmi_disabled(dev_priv, pipe, HDMIB);
  1289. assert_pch_hdmi_disabled(dev_priv, pipe, HDMIC);
  1290. assert_pch_hdmi_disabled(dev_priv, pipe, HDMID);
  1291. }
  1292. /**
  1293. * intel_enable_pll - enable a PLL
  1294. * @dev_priv: i915 private structure
  1295. * @pipe: pipe PLL to enable
  1296. *
  1297. * Enable @pipe's PLL so we can start pumping pixels from a plane. Check to
  1298. * make sure the PLL reg is writable first though, since the panel write
  1299. * protect mechanism may be enabled.
  1300. *
  1301. * Note! This is for pre-ILK only.
  1302. *
  1303. * Unfortunately needed by dvo_ns2501 since the dvo depends on it running.
  1304. */
  1305. static void intel_enable_pll(struct drm_i915_private *dev_priv, enum pipe pipe)
  1306. {
  1307. int reg;
  1308. u32 val;
  1309. /* No really, not for ILK+ */
  1310. BUG_ON(!IS_VALLEYVIEW(dev_priv->dev) && dev_priv->info->gen >= 5);
  1311. /* PLL is protected by panel, make sure we can write it */
  1312. if (IS_MOBILE(dev_priv->dev) && !IS_I830(dev_priv->dev))
  1313. assert_panel_unlocked(dev_priv, pipe);
  1314. reg = DPLL(pipe);
  1315. val = I915_READ(reg);
  1316. val |= DPLL_VCO_ENABLE;
  1317. /* We do this three times for luck */
  1318. I915_WRITE(reg, val);
  1319. POSTING_READ(reg);
  1320. udelay(150); /* wait for warmup */
  1321. I915_WRITE(reg, val);
  1322. POSTING_READ(reg);
  1323. udelay(150); /* wait for warmup */
  1324. I915_WRITE(reg, val);
  1325. POSTING_READ(reg);
  1326. udelay(150); /* wait for warmup */
  1327. }
  1328. /**
  1329. * intel_disable_pll - disable a PLL
  1330. * @dev_priv: i915 private structure
  1331. * @pipe: pipe PLL to disable
  1332. *
  1333. * Disable the PLL for @pipe, making sure the pipe is off first.
  1334. *
  1335. * Note! This is for pre-ILK only.
  1336. */
  1337. static void intel_disable_pll(struct drm_i915_private *dev_priv, enum pipe pipe)
  1338. {
  1339. int reg;
  1340. u32 val;
  1341. /* Don't disable pipe A or pipe A PLLs if needed */
  1342. if (pipe == PIPE_A && (dev_priv->quirks & QUIRK_PIPEA_FORCE))
  1343. return;
  1344. /* Make sure the pipe isn't still relying on us */
  1345. assert_pipe_disabled(dev_priv, pipe);
  1346. reg = DPLL(pipe);
  1347. val = I915_READ(reg);
  1348. val &= ~DPLL_VCO_ENABLE;
  1349. I915_WRITE(reg, val);
  1350. POSTING_READ(reg);
  1351. }
  1352. /* SBI access */
  1353. static void
  1354. intel_sbi_write(struct drm_i915_private *dev_priv, u16 reg, u32 value)
  1355. {
  1356. unsigned long flags;
  1357. spin_lock_irqsave(&dev_priv->dpio_lock, flags);
  1358. if (wait_for((I915_READ(SBI_CTL_STAT) & SBI_BUSY) == 0,
  1359. 100)) {
  1360. DRM_ERROR("timeout waiting for SBI to become ready\n");
  1361. goto out_unlock;
  1362. }
  1363. I915_WRITE(SBI_ADDR,
  1364. (reg << 16));
  1365. I915_WRITE(SBI_DATA,
  1366. value);
  1367. I915_WRITE(SBI_CTL_STAT,
  1368. SBI_BUSY |
  1369. SBI_CTL_OP_CRWR);
  1370. if (wait_for((I915_READ(SBI_CTL_STAT) & (SBI_BUSY | SBI_RESPONSE_FAIL)) == 0,
  1371. 100)) {
  1372. DRM_ERROR("timeout waiting for SBI to complete write transaction\n");
  1373. goto out_unlock;
  1374. }
  1375. out_unlock:
  1376. spin_unlock_irqrestore(&dev_priv->dpio_lock, flags);
  1377. }
  1378. static u32
  1379. intel_sbi_read(struct drm_i915_private *dev_priv, u16 reg)
  1380. {
  1381. unsigned long flags;
  1382. u32 value = 0;
  1383. spin_lock_irqsave(&dev_priv->dpio_lock, flags);
  1384. if (wait_for((I915_READ(SBI_CTL_STAT) & SBI_BUSY) == 0,
  1385. 100)) {
  1386. DRM_ERROR("timeout waiting for SBI to become ready\n");
  1387. goto out_unlock;
  1388. }
  1389. I915_WRITE(SBI_ADDR,
  1390. (reg << 16));
  1391. I915_WRITE(SBI_CTL_STAT,
  1392. SBI_BUSY |
  1393. SBI_CTL_OP_CRRD);
  1394. if (wait_for((I915_READ(SBI_CTL_STAT) & (SBI_BUSY | SBI_RESPONSE_FAIL)) == 0,
  1395. 100)) {
  1396. DRM_ERROR("timeout waiting for SBI to complete read transaction\n");
  1397. goto out_unlock;
  1398. }
  1399. value = I915_READ(SBI_DATA);
  1400. out_unlock:
  1401. spin_unlock_irqrestore(&dev_priv->dpio_lock, flags);
  1402. return value;
  1403. }
  1404. /**
  1405. * intel_enable_pch_pll - enable PCH PLL
  1406. * @dev_priv: i915 private structure
  1407. * @pipe: pipe PLL to enable
  1408. *
  1409. * The PCH PLL needs to be enabled before the PCH transcoder, since it
  1410. * drives the transcoder clock.
  1411. */
  1412. static void intel_enable_pch_pll(struct intel_crtc *intel_crtc)
  1413. {
  1414. struct drm_i915_private *dev_priv = intel_crtc->base.dev->dev_private;
  1415. struct intel_pch_pll *pll;
  1416. int reg;
  1417. u32 val;
  1418. /* PCH PLLs only available on ILK, SNB and IVB */
  1419. BUG_ON(dev_priv->info->gen < 5);
  1420. pll = intel_crtc->pch_pll;
  1421. if (pll == NULL)
  1422. return;
  1423. if (WARN_ON(pll->refcount == 0))
  1424. return;
  1425. DRM_DEBUG_KMS("enable PCH PLL %x (active %d, on? %d)for crtc %d\n",
  1426. pll->pll_reg, pll->active, pll->on,
  1427. intel_crtc->base.base.id);
  1428. /* PCH refclock must be enabled first */
  1429. assert_pch_refclk_enabled(dev_priv);
  1430. if (pll->active++ && pll->on) {
  1431. assert_pch_pll_enabled(dev_priv, pll, NULL);
  1432. return;
  1433. }
  1434. DRM_DEBUG_KMS("enabling PCH PLL %x\n", pll->pll_reg);
  1435. reg = pll->pll_reg;
  1436. val = I915_READ(reg);
  1437. val |= DPLL_VCO_ENABLE;
  1438. I915_WRITE(reg, val);
  1439. POSTING_READ(reg);
  1440. udelay(200);
  1441. pll->on = true;
  1442. }
  1443. static void intel_disable_pch_pll(struct intel_crtc *intel_crtc)
  1444. {
  1445. struct drm_i915_private *dev_priv = intel_crtc->base.dev->dev_private;
  1446. struct intel_pch_pll *pll = intel_crtc->pch_pll;
  1447. int reg;
  1448. u32 val;
  1449. /* PCH only available on ILK+ */
  1450. BUG_ON(dev_priv->info->gen < 5);
  1451. if (pll == NULL)
  1452. return;
  1453. if (WARN_ON(pll->refcount == 0))
  1454. return;
  1455. DRM_DEBUG_KMS("disable PCH PLL %x (active %d, on? %d) for crtc %d\n",
  1456. pll->pll_reg, pll->active, pll->on,
  1457. intel_crtc->base.base.id);
  1458. if (WARN_ON(pll->active == 0)) {
  1459. assert_pch_pll_disabled(dev_priv, pll, NULL);
  1460. return;
  1461. }
  1462. if (--pll->active) {
  1463. assert_pch_pll_enabled(dev_priv, pll, NULL);
  1464. return;
  1465. }
  1466. DRM_DEBUG_KMS("disabling PCH PLL %x\n", pll->pll_reg);
  1467. /* Make sure transcoder isn't still depending on us */
  1468. assert_transcoder_disabled(dev_priv, intel_crtc->pipe);
  1469. reg = pll->pll_reg;
  1470. val = I915_READ(reg);
  1471. val &= ~DPLL_VCO_ENABLE;
  1472. I915_WRITE(reg, val);
  1473. POSTING_READ(reg);
  1474. udelay(200);
  1475. pll->on = false;
  1476. }
  1477. static void intel_enable_transcoder(struct drm_i915_private *dev_priv,
  1478. enum pipe pipe)
  1479. {
  1480. int reg;
  1481. u32 val, pipeconf_val;
  1482. struct drm_crtc *crtc = dev_priv->pipe_to_crtc_mapping[pipe];
  1483. /* PCH only available on ILK+ */
  1484. BUG_ON(dev_priv->info->gen < 5);
  1485. /* Make sure PCH DPLL is enabled */
  1486. assert_pch_pll_enabled(dev_priv,
  1487. to_intel_crtc(crtc)->pch_pll,
  1488. to_intel_crtc(crtc));
  1489. /* FDI must be feeding us bits for PCH ports */
  1490. assert_fdi_tx_enabled(dev_priv, pipe);
  1491. assert_fdi_rx_enabled(dev_priv, pipe);
  1492. if (IS_HASWELL(dev_priv->dev) && pipe > 0) {
  1493. DRM_ERROR("Attempting to enable transcoder on Haswell with pipe > 0\n");
  1494. return;
  1495. }
  1496. reg = TRANSCONF(pipe);
  1497. val = I915_READ(reg);
  1498. pipeconf_val = I915_READ(PIPECONF(pipe));
  1499. if (HAS_PCH_IBX(dev_priv->dev)) {
  1500. /*
  1501. * make the BPC in transcoder be consistent with
  1502. * that in pipeconf reg.
  1503. */
  1504. val &= ~PIPE_BPC_MASK;
  1505. val |= pipeconf_val & PIPE_BPC_MASK;
  1506. }
  1507. val &= ~TRANS_INTERLACE_MASK;
  1508. if ((pipeconf_val & PIPECONF_INTERLACE_MASK) == PIPECONF_INTERLACED_ILK)
  1509. if (HAS_PCH_IBX(dev_priv->dev) &&
  1510. intel_pipe_has_type(crtc, INTEL_OUTPUT_SDVO))
  1511. val |= TRANS_LEGACY_INTERLACED_ILK;
  1512. else
  1513. val |= TRANS_INTERLACED;
  1514. else
  1515. val |= TRANS_PROGRESSIVE;
  1516. I915_WRITE(reg, val | TRANS_ENABLE);
  1517. if (wait_for(I915_READ(reg) & TRANS_STATE_ENABLE, 100))
  1518. DRM_ERROR("failed to enable transcoder %d\n", pipe);
  1519. }
  1520. static void intel_disable_transcoder(struct drm_i915_private *dev_priv,
  1521. enum pipe pipe)
  1522. {
  1523. int reg;
  1524. u32 val;
  1525. /* FDI relies on the transcoder */
  1526. assert_fdi_tx_disabled(dev_priv, pipe);
  1527. assert_fdi_rx_disabled(dev_priv, pipe);
  1528. /* Ports must be off as well */
  1529. assert_pch_ports_disabled(dev_priv, pipe);
  1530. reg = TRANSCONF(pipe);
  1531. val = I915_READ(reg);
  1532. val &= ~TRANS_ENABLE;
  1533. I915_WRITE(reg, val);
  1534. /* wait for PCH transcoder off, transcoder state */
  1535. if (wait_for((I915_READ(reg) & TRANS_STATE_ENABLE) == 0, 50))
  1536. DRM_ERROR("failed to disable transcoder %d\n", pipe);
  1537. }
  1538. /**
  1539. * intel_enable_pipe - enable a pipe, asserting requirements
  1540. * @dev_priv: i915 private structure
  1541. * @pipe: pipe to enable
  1542. * @pch_port: on ILK+, is this pipe driving a PCH port or not
  1543. *
  1544. * Enable @pipe, making sure that various hardware specific requirements
  1545. * are met, if applicable, e.g. PLL enabled, LVDS pairs enabled, etc.
  1546. *
  1547. * @pipe should be %PIPE_A or %PIPE_B.
  1548. *
  1549. * Will wait until the pipe is actually running (i.e. first vblank) before
  1550. * returning.
  1551. */
  1552. static void intel_enable_pipe(struct drm_i915_private *dev_priv, enum pipe pipe,
  1553. bool pch_port)
  1554. {
  1555. enum transcoder cpu_transcoder = intel_pipe_to_cpu_transcoder(dev_priv,
  1556. pipe);
  1557. int reg;
  1558. u32 val;
  1559. /*
  1560. * A pipe without a PLL won't actually be able to drive bits from
  1561. * a plane. On ILK+ the pipe PLLs are integrated, so we don't
  1562. * need the check.
  1563. */
  1564. if (!HAS_PCH_SPLIT(dev_priv->dev))
  1565. assert_pll_enabled(dev_priv, pipe);
  1566. else {
  1567. if (pch_port) {
  1568. /* if driving the PCH, we need FDI enabled */
  1569. assert_fdi_rx_pll_enabled(dev_priv, pipe);
  1570. assert_fdi_tx_pll_enabled(dev_priv, pipe);
  1571. }
  1572. /* FIXME: assert CPU port conditions for SNB+ */
  1573. }
  1574. reg = PIPECONF(cpu_transcoder);
  1575. val = I915_READ(reg);
  1576. if (val & PIPECONF_ENABLE)
  1577. return;
  1578. I915_WRITE(reg, val | PIPECONF_ENABLE);
  1579. intel_wait_for_vblank(dev_priv->dev, pipe);
  1580. }
  1581. /**
  1582. * intel_disable_pipe - disable a pipe, asserting requirements
  1583. * @dev_priv: i915 private structure
  1584. * @pipe: pipe to disable
  1585. *
  1586. * Disable @pipe, making sure that various hardware specific requirements
  1587. * are met, if applicable, e.g. plane disabled, panel fitter off, etc.
  1588. *
  1589. * @pipe should be %PIPE_A or %PIPE_B.
  1590. *
  1591. * Will wait until the pipe has shut down before returning.
  1592. */
  1593. static void intel_disable_pipe(struct drm_i915_private *dev_priv,
  1594. enum pipe pipe)
  1595. {
  1596. enum transcoder cpu_transcoder = intel_pipe_to_cpu_transcoder(dev_priv,
  1597. pipe);
  1598. int reg;
  1599. u32 val;
  1600. /*
  1601. * Make sure planes won't keep trying to pump pixels to us,
  1602. * or we might hang the display.
  1603. */
  1604. assert_planes_disabled(dev_priv, pipe);
  1605. /* Don't disable pipe A or pipe A PLLs if needed */
  1606. if (pipe == PIPE_A && (dev_priv->quirks & QUIRK_PIPEA_FORCE))
  1607. return;
  1608. reg = PIPECONF(cpu_transcoder);
  1609. val = I915_READ(reg);
  1610. if ((val & PIPECONF_ENABLE) == 0)
  1611. return;
  1612. I915_WRITE(reg, val & ~PIPECONF_ENABLE);
  1613. intel_wait_for_pipe_off(dev_priv->dev, pipe);
  1614. }
  1615. /*
  1616. * Plane regs are double buffered, going from enabled->disabled needs a
  1617. * trigger in order to latch. The display address reg provides this.
  1618. */
  1619. void intel_flush_display_plane(struct drm_i915_private *dev_priv,
  1620. enum plane plane)
  1621. {
  1622. if (dev_priv->info->gen >= 4)
  1623. I915_WRITE(DSPSURF(plane), I915_READ(DSPSURF(plane)));
  1624. else
  1625. I915_WRITE(DSPADDR(plane), I915_READ(DSPADDR(plane)));
  1626. }
  1627. /**
  1628. * intel_enable_plane - enable a display plane on a given pipe
  1629. * @dev_priv: i915 private structure
  1630. * @plane: plane to enable
  1631. * @pipe: pipe being fed
  1632. *
  1633. * Enable @plane on @pipe, making sure that @pipe is running first.
  1634. */
  1635. static void intel_enable_plane(struct drm_i915_private *dev_priv,
  1636. enum plane plane, enum pipe pipe)
  1637. {
  1638. int reg;
  1639. u32 val;
  1640. /* If the pipe isn't enabled, we can't pump pixels and may hang */
  1641. assert_pipe_enabled(dev_priv, pipe);
  1642. reg = DSPCNTR(plane);
  1643. val = I915_READ(reg);
  1644. if (val & DISPLAY_PLANE_ENABLE)
  1645. return;
  1646. I915_WRITE(reg, val | DISPLAY_PLANE_ENABLE);
  1647. intel_flush_display_plane(dev_priv, plane);
  1648. intel_wait_for_vblank(dev_priv->dev, pipe);
  1649. }
  1650. /**
  1651. * intel_disable_plane - disable a display plane
  1652. * @dev_priv: i915 private structure
  1653. * @plane: plane to disable
  1654. * @pipe: pipe consuming the data
  1655. *
  1656. * Disable @plane; should be an independent operation.
  1657. */
  1658. static void intel_disable_plane(struct drm_i915_private *dev_priv,
  1659. enum plane plane, enum pipe pipe)
  1660. {
  1661. int reg;
  1662. u32 val;
  1663. reg = DSPCNTR(plane);
  1664. val = I915_READ(reg);
  1665. if ((val & DISPLAY_PLANE_ENABLE) == 0)
  1666. return;
  1667. I915_WRITE(reg, val & ~DISPLAY_PLANE_ENABLE);
  1668. intel_flush_display_plane(dev_priv, plane);
  1669. intel_wait_for_vblank(dev_priv->dev, pipe);
  1670. }
  1671. int
  1672. intel_pin_and_fence_fb_obj(struct drm_device *dev,
  1673. struct drm_i915_gem_object *obj,
  1674. struct intel_ring_buffer *pipelined)
  1675. {
  1676. struct drm_i915_private *dev_priv = dev->dev_private;
  1677. u32 alignment;
  1678. int ret;
  1679. switch (obj->tiling_mode) {
  1680. case I915_TILING_NONE:
  1681. if (IS_BROADWATER(dev) || IS_CRESTLINE(dev))
  1682. alignment = 128 * 1024;
  1683. else if (INTEL_INFO(dev)->gen >= 4)
  1684. alignment = 4 * 1024;
  1685. else
  1686. alignment = 64 * 1024;
  1687. break;
  1688. case I915_TILING_X:
  1689. /* pin() will align the object as required by fence */
  1690. alignment = 0;
  1691. break;
  1692. case I915_TILING_Y:
  1693. /* FIXME: Is this true? */
  1694. DRM_ERROR("Y tiled not allowed for scan out buffers\n");
  1695. return -EINVAL;
  1696. default:
  1697. BUG();
  1698. }
  1699. dev_priv->mm.interruptible = false;
  1700. ret = i915_gem_object_pin_to_display_plane(obj, alignment, pipelined);
  1701. if (ret)
  1702. goto err_interruptible;
  1703. /* Install a fence for tiled scan-out. Pre-i965 always needs a
  1704. * fence, whereas 965+ only requires a fence if using
  1705. * framebuffer compression. For simplicity, we always install
  1706. * a fence as the cost is not that onerous.
  1707. */
  1708. ret = i915_gem_object_get_fence(obj);
  1709. if (ret)
  1710. goto err_unpin;
  1711. i915_gem_object_pin_fence(obj);
  1712. dev_priv->mm.interruptible = true;
  1713. return 0;
  1714. err_unpin:
  1715. i915_gem_object_unpin(obj);
  1716. err_interruptible:
  1717. dev_priv->mm.interruptible = true;
  1718. return ret;
  1719. }
  1720. void intel_unpin_fb_obj(struct drm_i915_gem_object *obj)
  1721. {
  1722. i915_gem_object_unpin_fence(obj);
  1723. i915_gem_object_unpin(obj);
  1724. }
  1725. /* Computes the linear offset to the base tile and adjusts x, y. bytes per pixel
  1726. * is assumed to be a power-of-two. */
  1727. unsigned long intel_gen4_compute_offset_xtiled(int *x, int *y,
  1728. unsigned int bpp,
  1729. unsigned int pitch)
  1730. {
  1731. int tile_rows, tiles;
  1732. tile_rows = *y / 8;
  1733. *y %= 8;
  1734. tiles = *x / (512/bpp);
  1735. *x %= 512/bpp;
  1736. return tile_rows * pitch * 8 + tiles * 4096;
  1737. }
  1738. static int i9xx_update_plane(struct drm_crtc *crtc, struct drm_framebuffer *fb,
  1739. int x, int y)
  1740. {
  1741. struct drm_device *dev = crtc->dev;
  1742. struct drm_i915_private *dev_priv = dev->dev_private;
  1743. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  1744. struct intel_framebuffer *intel_fb;
  1745. struct drm_i915_gem_object *obj;
  1746. int plane = intel_crtc->plane;
  1747. unsigned long linear_offset;
  1748. u32 dspcntr;
  1749. u32 reg;
  1750. switch (plane) {
  1751. case 0:
  1752. case 1:
  1753. break;
  1754. default:
  1755. DRM_ERROR("Can't update plane %d in SAREA\n", plane);
  1756. return -EINVAL;
  1757. }
  1758. intel_fb = to_intel_framebuffer(fb);
  1759. obj = intel_fb->obj;
  1760. reg = DSPCNTR(plane);
  1761. dspcntr = I915_READ(reg);
  1762. /* Mask out pixel format bits in case we change it */
  1763. dspcntr &= ~DISPPLANE_PIXFORMAT_MASK;
  1764. switch (fb->bits_per_pixel) {
  1765. case 8:
  1766. dspcntr |= DISPPLANE_8BPP;
  1767. break;
  1768. case 16:
  1769. if (fb->depth == 15)
  1770. dspcntr |= DISPPLANE_15_16BPP;
  1771. else
  1772. dspcntr |= DISPPLANE_16BPP;
  1773. break;
  1774. case 24:
  1775. case 32:
  1776. dspcntr |= DISPPLANE_32BPP_NO_ALPHA;
  1777. break;
  1778. default:
  1779. DRM_ERROR("Unknown color depth %d\n", fb->bits_per_pixel);
  1780. return -EINVAL;
  1781. }
  1782. if (INTEL_INFO(dev)->gen >= 4) {
  1783. if (obj->tiling_mode != I915_TILING_NONE)
  1784. dspcntr |= DISPPLANE_TILED;
  1785. else
  1786. dspcntr &= ~DISPPLANE_TILED;
  1787. }
  1788. I915_WRITE(reg, dspcntr);
  1789. linear_offset = y * fb->pitches[0] + x * (fb->bits_per_pixel / 8);
  1790. if (INTEL_INFO(dev)->gen >= 4) {
  1791. intel_crtc->dspaddr_offset =
  1792. intel_gen4_compute_offset_xtiled(&x, &y,
  1793. fb->bits_per_pixel / 8,
  1794. fb->pitches[0]);
  1795. linear_offset -= intel_crtc->dspaddr_offset;
  1796. } else {
  1797. intel_crtc->dspaddr_offset = linear_offset;
  1798. }
  1799. DRM_DEBUG_KMS("Writing base %08X %08lX %d %d %d\n",
  1800. obj->gtt_offset, linear_offset, x, y, fb->pitches[0]);
  1801. I915_WRITE(DSPSTRIDE(plane), fb->pitches[0]);
  1802. if (INTEL_INFO(dev)->gen >= 4) {
  1803. I915_MODIFY_DISPBASE(DSPSURF(plane),
  1804. obj->gtt_offset + intel_crtc->dspaddr_offset);
  1805. I915_WRITE(DSPTILEOFF(plane), (y << 16) | x);
  1806. I915_WRITE(DSPLINOFF(plane), linear_offset);
  1807. } else
  1808. I915_WRITE(DSPADDR(plane), obj->gtt_offset + linear_offset);
  1809. POSTING_READ(reg);
  1810. return 0;
  1811. }
  1812. static int ironlake_update_plane(struct drm_crtc *crtc,
  1813. struct drm_framebuffer *fb, int x, int y)
  1814. {
  1815. struct drm_device *dev = crtc->dev;
  1816. struct drm_i915_private *dev_priv = dev->dev_private;
  1817. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  1818. struct intel_framebuffer *intel_fb;
  1819. struct drm_i915_gem_object *obj;
  1820. int plane = intel_crtc->plane;
  1821. unsigned long linear_offset;
  1822. u32 dspcntr;
  1823. u32 reg;
  1824. switch (plane) {
  1825. case 0:
  1826. case 1:
  1827. case 2:
  1828. break;
  1829. default:
  1830. DRM_ERROR("Can't update plane %d in SAREA\n", plane);
  1831. return -EINVAL;
  1832. }
  1833. intel_fb = to_intel_framebuffer(fb);
  1834. obj = intel_fb->obj;
  1835. reg = DSPCNTR(plane);
  1836. dspcntr = I915_READ(reg);
  1837. /* Mask out pixel format bits in case we change it */
  1838. dspcntr &= ~DISPPLANE_PIXFORMAT_MASK;
  1839. switch (fb->bits_per_pixel) {
  1840. case 8:
  1841. dspcntr |= DISPPLANE_8BPP;
  1842. break;
  1843. case 16:
  1844. if (fb->depth != 16)
  1845. return -EINVAL;
  1846. dspcntr |= DISPPLANE_16BPP;
  1847. break;
  1848. case 24:
  1849. case 32:
  1850. if (fb->depth == 24)
  1851. dspcntr |= DISPPLANE_32BPP_NO_ALPHA;
  1852. else if (fb->depth == 30)
  1853. dspcntr |= DISPPLANE_32BPP_30BIT_NO_ALPHA;
  1854. else
  1855. return -EINVAL;
  1856. break;
  1857. default:
  1858. DRM_ERROR("Unknown color depth %d\n", fb->bits_per_pixel);
  1859. return -EINVAL;
  1860. }
  1861. if (obj->tiling_mode != I915_TILING_NONE)
  1862. dspcntr |= DISPPLANE_TILED;
  1863. else
  1864. dspcntr &= ~DISPPLANE_TILED;
  1865. /* must disable */
  1866. dspcntr |= DISPPLANE_TRICKLE_FEED_DISABLE;
  1867. I915_WRITE(reg, dspcntr);
  1868. linear_offset = y * fb->pitches[0] + x * (fb->bits_per_pixel / 8);
  1869. intel_crtc->dspaddr_offset =
  1870. intel_gen4_compute_offset_xtiled(&x, &y,
  1871. fb->bits_per_pixel / 8,
  1872. fb->pitches[0]);
  1873. linear_offset -= intel_crtc->dspaddr_offset;
  1874. DRM_DEBUG_KMS("Writing base %08X %08lX %d %d %d\n",
  1875. obj->gtt_offset, linear_offset, x, y, fb->pitches[0]);
  1876. I915_WRITE(DSPSTRIDE(plane), fb->pitches[0]);
  1877. I915_MODIFY_DISPBASE(DSPSURF(plane),
  1878. obj->gtt_offset + intel_crtc->dspaddr_offset);
  1879. if (IS_HASWELL(dev)) {
  1880. I915_WRITE(DSPOFFSET(plane), (y << 16) | x);
  1881. } else {
  1882. I915_WRITE(DSPTILEOFF(plane), (y << 16) | x);
  1883. I915_WRITE(DSPLINOFF(plane), linear_offset);
  1884. }
  1885. POSTING_READ(reg);
  1886. return 0;
  1887. }
  1888. /* Assume fb object is pinned & idle & fenced and just update base pointers */
  1889. static int
  1890. intel_pipe_set_base_atomic(struct drm_crtc *crtc, struct drm_framebuffer *fb,
  1891. int x, int y, enum mode_set_atomic state)
  1892. {
  1893. struct drm_device *dev = crtc->dev;
  1894. struct drm_i915_private *dev_priv = dev->dev_private;
  1895. if (dev_priv->display.disable_fbc)
  1896. dev_priv->display.disable_fbc(dev);
  1897. intel_increase_pllclock(crtc);
  1898. return dev_priv->display.update_plane(crtc, fb, x, y);
  1899. }
  1900. static int
  1901. intel_finish_fb(struct drm_framebuffer *old_fb)
  1902. {
  1903. struct drm_i915_gem_object *obj = to_intel_framebuffer(old_fb)->obj;
  1904. struct drm_i915_private *dev_priv = obj->base.dev->dev_private;
  1905. bool was_interruptible = dev_priv->mm.interruptible;
  1906. int ret;
  1907. wait_event(dev_priv->pending_flip_queue,
  1908. atomic_read(&dev_priv->mm.wedged) ||
  1909. atomic_read(&obj->pending_flip) == 0);
  1910. /* Big Hammer, we also need to ensure that any pending
  1911. * MI_WAIT_FOR_EVENT inside a user batch buffer on the
  1912. * current scanout is retired before unpinning the old
  1913. * framebuffer.
  1914. *
  1915. * This should only fail upon a hung GPU, in which case we
  1916. * can safely continue.
  1917. */
  1918. dev_priv->mm.interruptible = false;
  1919. ret = i915_gem_object_finish_gpu(obj);
  1920. dev_priv->mm.interruptible = was_interruptible;
  1921. return ret;
  1922. }
  1923. static int
  1924. intel_pipe_set_base(struct drm_crtc *crtc, int x, int y,
  1925. struct drm_framebuffer *fb)
  1926. {
  1927. struct drm_device *dev = crtc->dev;
  1928. struct drm_i915_private *dev_priv = dev->dev_private;
  1929. struct drm_i915_master_private *master_priv;
  1930. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  1931. struct drm_framebuffer *old_fb;
  1932. int ret;
  1933. /* no fb bound */
  1934. if (!fb) {
  1935. DRM_ERROR("No FB bound\n");
  1936. return 0;
  1937. }
  1938. if(intel_crtc->plane > dev_priv->num_pipe) {
  1939. DRM_ERROR("no plane for crtc: plane %d, num_pipes %d\n",
  1940. intel_crtc->plane,
  1941. dev_priv->num_pipe);
  1942. return -EINVAL;
  1943. }
  1944. mutex_lock(&dev->struct_mutex);
  1945. ret = intel_pin_and_fence_fb_obj(dev,
  1946. to_intel_framebuffer(fb)->obj,
  1947. NULL);
  1948. if (ret != 0) {
  1949. mutex_unlock(&dev->struct_mutex);
  1950. DRM_ERROR("pin & fence failed\n");
  1951. return ret;
  1952. }
  1953. if (crtc->fb)
  1954. intel_finish_fb(crtc->fb);
  1955. ret = dev_priv->display.update_plane(crtc, fb, x, y);
  1956. if (ret) {
  1957. intel_unpin_fb_obj(to_intel_framebuffer(fb)->obj);
  1958. mutex_unlock(&dev->struct_mutex);
  1959. DRM_ERROR("failed to update base address\n");
  1960. return ret;
  1961. }
  1962. old_fb = crtc->fb;
  1963. crtc->fb = fb;
  1964. crtc->x = x;
  1965. crtc->y = y;
  1966. if (old_fb) {
  1967. intel_wait_for_vblank(dev, intel_crtc->pipe);
  1968. intel_unpin_fb_obj(to_intel_framebuffer(old_fb)->obj);
  1969. }
  1970. intel_update_fbc(dev);
  1971. mutex_unlock(&dev->struct_mutex);
  1972. if (!dev->primary->master)
  1973. return 0;
  1974. master_priv = dev->primary->master->driver_priv;
  1975. if (!master_priv->sarea_priv)
  1976. return 0;
  1977. if (intel_crtc->pipe) {
  1978. master_priv->sarea_priv->pipeB_x = x;
  1979. master_priv->sarea_priv->pipeB_y = y;
  1980. } else {
  1981. master_priv->sarea_priv->pipeA_x = x;
  1982. master_priv->sarea_priv->pipeA_y = y;
  1983. }
  1984. return 0;
  1985. }
  1986. static void ironlake_set_pll_edp(struct drm_crtc *crtc, int clock)
  1987. {
  1988. struct drm_device *dev = crtc->dev;
  1989. struct drm_i915_private *dev_priv = dev->dev_private;
  1990. u32 dpa_ctl;
  1991. DRM_DEBUG_KMS("eDP PLL enable for clock %d\n", clock);
  1992. dpa_ctl = I915_READ(DP_A);
  1993. dpa_ctl &= ~DP_PLL_FREQ_MASK;
  1994. if (clock < 200000) {
  1995. u32 temp;
  1996. dpa_ctl |= DP_PLL_FREQ_160MHZ;
  1997. /* workaround for 160Mhz:
  1998. 1) program 0x4600c bits 15:0 = 0x8124
  1999. 2) program 0x46010 bit 0 = 1
  2000. 3) program 0x46034 bit 24 = 1
  2001. 4) program 0x64000 bit 14 = 1
  2002. */
  2003. temp = I915_READ(0x4600c);
  2004. temp &= 0xffff0000;
  2005. I915_WRITE(0x4600c, temp | 0x8124);
  2006. temp = I915_READ(0x46010);
  2007. I915_WRITE(0x46010, temp | 1);
  2008. temp = I915_READ(0x46034);
  2009. I915_WRITE(0x46034, temp | (1 << 24));
  2010. } else {
  2011. dpa_ctl |= DP_PLL_FREQ_270MHZ;
  2012. }
  2013. I915_WRITE(DP_A, dpa_ctl);
  2014. POSTING_READ(DP_A);
  2015. udelay(500);
  2016. }
  2017. static void intel_fdi_normal_train(struct drm_crtc *crtc)
  2018. {
  2019. struct drm_device *dev = crtc->dev;
  2020. struct drm_i915_private *dev_priv = dev->dev_private;
  2021. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  2022. int pipe = intel_crtc->pipe;
  2023. u32 reg, temp;
  2024. /* enable normal train */
  2025. reg = FDI_TX_CTL(pipe);
  2026. temp = I915_READ(reg);
  2027. if (IS_IVYBRIDGE(dev)) {
  2028. temp &= ~FDI_LINK_TRAIN_NONE_IVB;
  2029. temp |= FDI_LINK_TRAIN_NONE_IVB | FDI_TX_ENHANCE_FRAME_ENABLE;
  2030. } else {
  2031. temp &= ~FDI_LINK_TRAIN_NONE;
  2032. temp |= FDI_LINK_TRAIN_NONE | FDI_TX_ENHANCE_FRAME_ENABLE;
  2033. }
  2034. I915_WRITE(reg, temp);
  2035. reg = FDI_RX_CTL(pipe);
  2036. temp = I915_READ(reg);
  2037. if (HAS_PCH_CPT(dev)) {
  2038. temp &= ~FDI_LINK_TRAIN_PATTERN_MASK_CPT;
  2039. temp |= FDI_LINK_TRAIN_NORMAL_CPT;
  2040. } else {
  2041. temp &= ~FDI_LINK_TRAIN_NONE;
  2042. temp |= FDI_LINK_TRAIN_NONE;
  2043. }
  2044. I915_WRITE(reg, temp | FDI_RX_ENHANCE_FRAME_ENABLE);
  2045. /* wait one idle pattern time */
  2046. POSTING_READ(reg);
  2047. udelay(1000);
  2048. /* IVB wants error correction enabled */
  2049. if (IS_IVYBRIDGE(dev))
  2050. I915_WRITE(reg, I915_READ(reg) | FDI_FS_ERRC_ENABLE |
  2051. FDI_FE_ERRC_ENABLE);
  2052. }
  2053. static void cpt_phase_pointer_enable(struct drm_device *dev, int pipe)
  2054. {
  2055. struct drm_i915_private *dev_priv = dev->dev_private;
  2056. u32 flags = I915_READ(SOUTH_CHICKEN1);
  2057. flags |= FDI_PHASE_SYNC_OVR(pipe);
  2058. I915_WRITE(SOUTH_CHICKEN1, flags); /* once to unlock... */
  2059. flags |= FDI_PHASE_SYNC_EN(pipe);
  2060. I915_WRITE(SOUTH_CHICKEN1, flags); /* then again to enable */
  2061. POSTING_READ(SOUTH_CHICKEN1);
  2062. }
  2063. static void ivb_modeset_global_resources(struct drm_device *dev)
  2064. {
  2065. struct drm_i915_private *dev_priv = dev->dev_private;
  2066. struct intel_crtc *pipe_B_crtc =
  2067. to_intel_crtc(dev_priv->pipe_to_crtc_mapping[PIPE_B]);
  2068. struct intel_crtc *pipe_C_crtc =
  2069. to_intel_crtc(dev_priv->pipe_to_crtc_mapping[PIPE_C]);
  2070. uint32_t temp;
  2071. /* When everything is off disable fdi C so that we could enable fdi B
  2072. * with all lanes. XXX: This misses the case where a pipe is not using
  2073. * any pch resources and so doesn't need any fdi lanes. */
  2074. if (!pipe_B_crtc->base.enabled && !pipe_C_crtc->base.enabled) {
  2075. WARN_ON(I915_READ(FDI_RX_CTL(PIPE_B)) & FDI_RX_ENABLE);
  2076. WARN_ON(I915_READ(FDI_RX_CTL(PIPE_C)) & FDI_RX_ENABLE);
  2077. temp = I915_READ(SOUTH_CHICKEN1);
  2078. temp &= ~FDI_BC_BIFURCATION_SELECT;
  2079. DRM_DEBUG_KMS("disabling fdi C rx\n");
  2080. I915_WRITE(SOUTH_CHICKEN1, temp);
  2081. }
  2082. }
  2083. /* The FDI link training functions for ILK/Ibexpeak. */
  2084. static void ironlake_fdi_link_train(struct drm_crtc *crtc)
  2085. {
  2086. struct drm_device *dev = crtc->dev;
  2087. struct drm_i915_private *dev_priv = dev->dev_private;
  2088. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  2089. int pipe = intel_crtc->pipe;
  2090. int plane = intel_crtc->plane;
  2091. u32 reg, temp, tries;
  2092. /* FDI needs bits from pipe & plane first */
  2093. assert_pipe_enabled(dev_priv, pipe);
  2094. assert_plane_enabled(dev_priv, plane);
  2095. /* Train 1: umask FDI RX Interrupt symbol_lock and bit_lock bit
  2096. for train result */
  2097. reg = FDI_RX_IMR(pipe);
  2098. temp = I915_READ(reg);
  2099. temp &= ~FDI_RX_SYMBOL_LOCK;
  2100. temp &= ~FDI_RX_BIT_LOCK;
  2101. I915_WRITE(reg, temp);
  2102. I915_READ(reg);
  2103. udelay(150);
  2104. /* enable CPU FDI TX and PCH FDI RX */
  2105. reg = FDI_TX_CTL(pipe);
  2106. temp = I915_READ(reg);
  2107. temp &= ~(7 << 19);
  2108. temp |= (intel_crtc->fdi_lanes - 1) << 19;
  2109. temp &= ~FDI_LINK_TRAIN_NONE;
  2110. temp |= FDI_LINK_TRAIN_PATTERN_1;
  2111. I915_WRITE(reg, temp | FDI_TX_ENABLE);
  2112. reg = FDI_RX_CTL(pipe);
  2113. temp = I915_READ(reg);
  2114. temp &= ~FDI_LINK_TRAIN_NONE;
  2115. temp |= FDI_LINK_TRAIN_PATTERN_1;
  2116. I915_WRITE(reg, temp | FDI_RX_ENABLE);
  2117. POSTING_READ(reg);
  2118. udelay(150);
  2119. /* Ironlake workaround, enable clock pointer after FDI enable*/
  2120. if (HAS_PCH_IBX(dev)) {
  2121. I915_WRITE(FDI_RX_CHICKEN(pipe), FDI_RX_PHASE_SYNC_POINTER_OVR);
  2122. I915_WRITE(FDI_RX_CHICKEN(pipe), FDI_RX_PHASE_SYNC_POINTER_OVR |
  2123. FDI_RX_PHASE_SYNC_POINTER_EN);
  2124. }
  2125. reg = FDI_RX_IIR(pipe);
  2126. for (tries = 0; tries < 5; tries++) {
  2127. temp = I915_READ(reg);
  2128. DRM_DEBUG_KMS("FDI_RX_IIR 0x%x\n", temp);
  2129. if ((temp & FDI_RX_BIT_LOCK)) {
  2130. DRM_DEBUG_KMS("FDI train 1 done.\n");
  2131. I915_WRITE(reg, temp | FDI_RX_BIT_LOCK);
  2132. break;
  2133. }
  2134. }
  2135. if (tries == 5)
  2136. DRM_ERROR("FDI train 1 fail!\n");
  2137. /* Train 2 */
  2138. reg = FDI_TX_CTL(pipe);
  2139. temp = I915_READ(reg);
  2140. temp &= ~FDI_LINK_TRAIN_NONE;
  2141. temp |= FDI_LINK_TRAIN_PATTERN_2;
  2142. I915_WRITE(reg, temp);
  2143. reg = FDI_RX_CTL(pipe);
  2144. temp = I915_READ(reg);
  2145. temp &= ~FDI_LINK_TRAIN_NONE;
  2146. temp |= FDI_LINK_TRAIN_PATTERN_2;
  2147. I915_WRITE(reg, temp);
  2148. POSTING_READ(reg);
  2149. udelay(150);
  2150. reg = FDI_RX_IIR(pipe);
  2151. for (tries = 0; tries < 5; tries++) {
  2152. temp = I915_READ(reg);
  2153. DRM_DEBUG_KMS("FDI_RX_IIR 0x%x\n", temp);
  2154. if (temp & FDI_RX_SYMBOL_LOCK) {
  2155. I915_WRITE(reg, temp | FDI_RX_SYMBOL_LOCK);
  2156. DRM_DEBUG_KMS("FDI train 2 done.\n");
  2157. break;
  2158. }
  2159. }
  2160. if (tries == 5)
  2161. DRM_ERROR("FDI train 2 fail!\n");
  2162. DRM_DEBUG_KMS("FDI train done\n");
  2163. }
  2164. static const int snb_b_fdi_train_param[] = {
  2165. FDI_LINK_TRAIN_400MV_0DB_SNB_B,
  2166. FDI_LINK_TRAIN_400MV_6DB_SNB_B,
  2167. FDI_LINK_TRAIN_600MV_3_5DB_SNB_B,
  2168. FDI_LINK_TRAIN_800MV_0DB_SNB_B,
  2169. };
  2170. /* The FDI link training functions for SNB/Cougarpoint. */
  2171. static void gen6_fdi_link_train(struct drm_crtc *crtc)
  2172. {
  2173. struct drm_device *dev = crtc->dev;
  2174. struct drm_i915_private *dev_priv = dev->dev_private;
  2175. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  2176. int pipe = intel_crtc->pipe;
  2177. u32 reg, temp, i, retry;
  2178. /* Train 1: umask FDI RX Interrupt symbol_lock and bit_lock bit
  2179. for train result */
  2180. reg = FDI_RX_IMR(pipe);
  2181. temp = I915_READ(reg);
  2182. temp &= ~FDI_RX_SYMBOL_LOCK;
  2183. temp &= ~FDI_RX_BIT_LOCK;
  2184. I915_WRITE(reg, temp);
  2185. POSTING_READ(reg);
  2186. udelay(150);
  2187. /* enable CPU FDI TX and PCH FDI RX */
  2188. reg = FDI_TX_CTL(pipe);
  2189. temp = I915_READ(reg);
  2190. temp &= ~(7 << 19);
  2191. temp |= (intel_crtc->fdi_lanes - 1) << 19;
  2192. temp &= ~FDI_LINK_TRAIN_NONE;
  2193. temp |= FDI_LINK_TRAIN_PATTERN_1;
  2194. temp &= ~FDI_LINK_TRAIN_VOL_EMP_MASK;
  2195. /* SNB-B */
  2196. temp |= FDI_LINK_TRAIN_400MV_0DB_SNB_B;
  2197. I915_WRITE(reg, temp | FDI_TX_ENABLE);
  2198. I915_WRITE(FDI_RX_MISC(pipe),
  2199. FDI_RX_TP1_TO_TP2_48 | FDI_RX_FDI_DELAY_90);
  2200. reg = FDI_RX_CTL(pipe);
  2201. temp = I915_READ(reg);
  2202. if (HAS_PCH_CPT(dev)) {
  2203. temp &= ~FDI_LINK_TRAIN_PATTERN_MASK_CPT;
  2204. temp |= FDI_LINK_TRAIN_PATTERN_1_CPT;
  2205. } else {
  2206. temp &= ~FDI_LINK_TRAIN_NONE;
  2207. temp |= FDI_LINK_TRAIN_PATTERN_1;
  2208. }
  2209. I915_WRITE(reg, temp | FDI_RX_ENABLE);
  2210. POSTING_READ(reg);
  2211. udelay(150);
  2212. if (HAS_PCH_CPT(dev))
  2213. cpt_phase_pointer_enable(dev, pipe);
  2214. for (i = 0; i < 4; i++) {
  2215. reg = FDI_TX_CTL(pipe);
  2216. temp = I915_READ(reg);
  2217. temp &= ~FDI_LINK_TRAIN_VOL_EMP_MASK;
  2218. temp |= snb_b_fdi_train_param[i];
  2219. I915_WRITE(reg, temp);
  2220. POSTING_READ(reg);
  2221. udelay(500);
  2222. for (retry = 0; retry < 5; retry++) {
  2223. reg = FDI_RX_IIR(pipe);
  2224. temp = I915_READ(reg);
  2225. DRM_DEBUG_KMS("FDI_RX_IIR 0x%x\n", temp);
  2226. if (temp & FDI_RX_BIT_LOCK) {
  2227. I915_WRITE(reg, temp | FDI_RX_BIT_LOCK);
  2228. DRM_DEBUG_KMS("FDI train 1 done.\n");
  2229. break;
  2230. }
  2231. udelay(50);
  2232. }
  2233. if (retry < 5)
  2234. break;
  2235. }
  2236. if (i == 4)
  2237. DRM_ERROR("FDI train 1 fail!\n");
  2238. /* Train 2 */
  2239. reg = FDI_TX_CTL(pipe);
  2240. temp = I915_READ(reg);
  2241. temp &= ~FDI_LINK_TRAIN_NONE;
  2242. temp |= FDI_LINK_TRAIN_PATTERN_2;
  2243. if (IS_GEN6(dev)) {
  2244. temp &= ~FDI_LINK_TRAIN_VOL_EMP_MASK;
  2245. /* SNB-B */
  2246. temp |= FDI_LINK_TRAIN_400MV_0DB_SNB_B;
  2247. }
  2248. I915_WRITE(reg, temp);
  2249. reg = FDI_RX_CTL(pipe);
  2250. temp = I915_READ(reg);
  2251. if (HAS_PCH_CPT(dev)) {
  2252. temp &= ~FDI_LINK_TRAIN_PATTERN_MASK_CPT;
  2253. temp |= FDI_LINK_TRAIN_PATTERN_2_CPT;
  2254. } else {
  2255. temp &= ~FDI_LINK_TRAIN_NONE;
  2256. temp |= FDI_LINK_TRAIN_PATTERN_2;
  2257. }
  2258. I915_WRITE(reg, temp);
  2259. POSTING_READ(reg);
  2260. udelay(150);
  2261. for (i = 0; i < 4; i++) {
  2262. reg = FDI_TX_CTL(pipe);
  2263. temp = I915_READ(reg);
  2264. temp &= ~FDI_LINK_TRAIN_VOL_EMP_MASK;
  2265. temp |= snb_b_fdi_train_param[i];
  2266. I915_WRITE(reg, temp);
  2267. POSTING_READ(reg);
  2268. udelay(500);
  2269. for (retry = 0; retry < 5; retry++) {
  2270. reg = FDI_RX_IIR(pipe);
  2271. temp = I915_READ(reg);
  2272. DRM_DEBUG_KMS("FDI_RX_IIR 0x%x\n", temp);
  2273. if (temp & FDI_RX_SYMBOL_LOCK) {
  2274. I915_WRITE(reg, temp | FDI_RX_SYMBOL_LOCK);
  2275. DRM_DEBUG_KMS("FDI train 2 done.\n");
  2276. break;
  2277. }
  2278. udelay(50);
  2279. }
  2280. if (retry < 5)
  2281. break;
  2282. }
  2283. if (i == 4)
  2284. DRM_ERROR("FDI train 2 fail!\n");
  2285. DRM_DEBUG_KMS("FDI train done.\n");
  2286. }
  2287. /* Manual link training for Ivy Bridge A0 parts */
  2288. static void ivb_manual_fdi_link_train(struct drm_crtc *crtc)
  2289. {
  2290. struct drm_device *dev = crtc->dev;
  2291. struct drm_i915_private *dev_priv = dev->dev_private;
  2292. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  2293. int pipe = intel_crtc->pipe;
  2294. u32 reg, temp, i;
  2295. /* Train 1: umask FDI RX Interrupt symbol_lock and bit_lock bit
  2296. for train result */
  2297. reg = FDI_RX_IMR(pipe);
  2298. temp = I915_READ(reg);
  2299. temp &= ~FDI_RX_SYMBOL_LOCK;
  2300. temp &= ~FDI_RX_BIT_LOCK;
  2301. I915_WRITE(reg, temp);
  2302. POSTING_READ(reg);
  2303. udelay(150);
  2304. DRM_DEBUG_KMS("FDI_RX_IIR before link train 0x%x\n",
  2305. I915_READ(FDI_RX_IIR(pipe)));
  2306. /* enable CPU FDI TX and PCH FDI RX */
  2307. reg = FDI_TX_CTL(pipe);
  2308. temp = I915_READ(reg);
  2309. temp &= ~(7 << 19);
  2310. temp |= (intel_crtc->fdi_lanes - 1) << 19;
  2311. temp &= ~(FDI_LINK_TRAIN_AUTO | FDI_LINK_TRAIN_NONE_IVB);
  2312. temp |= FDI_LINK_TRAIN_PATTERN_1_IVB;
  2313. temp &= ~FDI_LINK_TRAIN_VOL_EMP_MASK;
  2314. temp |= FDI_LINK_TRAIN_400MV_0DB_SNB_B;
  2315. temp |= FDI_COMPOSITE_SYNC;
  2316. I915_WRITE(reg, temp | FDI_TX_ENABLE);
  2317. I915_WRITE(FDI_RX_MISC(pipe),
  2318. FDI_RX_TP1_TO_TP2_48 | FDI_RX_FDI_DELAY_90);
  2319. reg = FDI_RX_CTL(pipe);
  2320. temp = I915_READ(reg);
  2321. temp &= ~FDI_LINK_TRAIN_AUTO;
  2322. temp &= ~FDI_LINK_TRAIN_PATTERN_MASK_CPT;
  2323. temp |= FDI_LINK_TRAIN_PATTERN_1_CPT;
  2324. temp |= FDI_COMPOSITE_SYNC;
  2325. I915_WRITE(reg, temp | FDI_RX_ENABLE);
  2326. POSTING_READ(reg);
  2327. udelay(150);
  2328. if (HAS_PCH_CPT(dev))
  2329. cpt_phase_pointer_enable(dev, pipe);
  2330. for (i = 0; i < 4; i++) {
  2331. reg = FDI_TX_CTL(pipe);
  2332. temp = I915_READ(reg);
  2333. temp &= ~FDI_LINK_TRAIN_VOL_EMP_MASK;
  2334. temp |= snb_b_fdi_train_param[i];
  2335. I915_WRITE(reg, temp);
  2336. POSTING_READ(reg);
  2337. udelay(500);
  2338. reg = FDI_RX_IIR(pipe);
  2339. temp = I915_READ(reg);
  2340. DRM_DEBUG_KMS("FDI_RX_IIR 0x%x\n", temp);
  2341. if (temp & FDI_RX_BIT_LOCK ||
  2342. (I915_READ(reg) & FDI_RX_BIT_LOCK)) {
  2343. I915_WRITE(reg, temp | FDI_RX_BIT_LOCK);
  2344. DRM_DEBUG_KMS("FDI train 1 done, level %i.\n", i);
  2345. break;
  2346. }
  2347. }
  2348. if (i == 4)
  2349. DRM_ERROR("FDI train 1 fail!\n");
  2350. /* Train 2 */
  2351. reg = FDI_TX_CTL(pipe);
  2352. temp = I915_READ(reg);
  2353. temp &= ~FDI_LINK_TRAIN_NONE_IVB;
  2354. temp |= FDI_LINK_TRAIN_PATTERN_2_IVB;
  2355. temp &= ~FDI_LINK_TRAIN_VOL_EMP_MASK;
  2356. temp |= FDI_LINK_TRAIN_400MV_0DB_SNB_B;
  2357. I915_WRITE(reg, temp);
  2358. reg = FDI_RX_CTL(pipe);
  2359. temp = I915_READ(reg);
  2360. temp &= ~FDI_LINK_TRAIN_PATTERN_MASK_CPT;
  2361. temp |= FDI_LINK_TRAIN_PATTERN_2_CPT;
  2362. I915_WRITE(reg, temp);
  2363. POSTING_READ(reg);
  2364. udelay(150);
  2365. for (i = 0; i < 4; i++) {
  2366. reg = FDI_TX_CTL(pipe);
  2367. temp = I915_READ(reg);
  2368. temp &= ~FDI_LINK_TRAIN_VOL_EMP_MASK;
  2369. temp |= snb_b_fdi_train_param[i];
  2370. I915_WRITE(reg, temp);
  2371. POSTING_READ(reg);
  2372. udelay(500);
  2373. reg = FDI_RX_IIR(pipe);
  2374. temp = I915_READ(reg);
  2375. DRM_DEBUG_KMS("FDI_RX_IIR 0x%x\n", temp);
  2376. if (temp & FDI_RX_SYMBOL_LOCK) {
  2377. I915_WRITE(reg, temp | FDI_RX_SYMBOL_LOCK);
  2378. DRM_DEBUG_KMS("FDI train 2 done, level %i.\n", i);
  2379. break;
  2380. }
  2381. }
  2382. if (i == 4)
  2383. DRM_ERROR("FDI train 2 fail!\n");
  2384. DRM_DEBUG_KMS("FDI train done.\n");
  2385. }
  2386. static void ironlake_fdi_pll_enable(struct intel_crtc *intel_crtc)
  2387. {
  2388. struct drm_device *dev = intel_crtc->base.dev;
  2389. struct drm_i915_private *dev_priv = dev->dev_private;
  2390. int pipe = intel_crtc->pipe;
  2391. u32 reg, temp;
  2392. /* enable PCH FDI RX PLL, wait warmup plus DMI latency */
  2393. reg = FDI_RX_CTL(pipe);
  2394. temp = I915_READ(reg);
  2395. temp &= ~((0x7 << 19) | (0x7 << 16));
  2396. temp |= (intel_crtc->fdi_lanes - 1) << 19;
  2397. temp |= (I915_READ(PIPECONF(pipe)) & PIPE_BPC_MASK) << 11;
  2398. I915_WRITE(reg, temp | FDI_RX_PLL_ENABLE);
  2399. POSTING_READ(reg);
  2400. udelay(200);
  2401. /* Switch from Rawclk to PCDclk */
  2402. temp = I915_READ(reg);
  2403. I915_WRITE(reg, temp | FDI_PCDCLK);
  2404. POSTING_READ(reg);
  2405. udelay(200);
  2406. /* On Haswell, the PLL configuration for ports and pipes is handled
  2407. * separately, as part of DDI setup */
  2408. if (!IS_HASWELL(dev)) {
  2409. /* Enable CPU FDI TX PLL, always on for Ironlake */
  2410. reg = FDI_TX_CTL(pipe);
  2411. temp = I915_READ(reg);
  2412. if ((temp & FDI_TX_PLL_ENABLE) == 0) {
  2413. I915_WRITE(reg, temp | FDI_TX_PLL_ENABLE);
  2414. POSTING_READ(reg);
  2415. udelay(100);
  2416. }
  2417. }
  2418. }
  2419. static void ironlake_fdi_pll_disable(struct intel_crtc *intel_crtc)
  2420. {
  2421. struct drm_device *dev = intel_crtc->base.dev;
  2422. struct drm_i915_private *dev_priv = dev->dev_private;
  2423. int pipe = intel_crtc->pipe;
  2424. u32 reg, temp;
  2425. /* Switch from PCDclk to Rawclk */
  2426. reg = FDI_RX_CTL(pipe);
  2427. temp = I915_READ(reg);
  2428. I915_WRITE(reg, temp & ~FDI_PCDCLK);
  2429. /* Disable CPU FDI TX PLL */
  2430. reg = FDI_TX_CTL(pipe);
  2431. temp = I915_READ(reg);
  2432. I915_WRITE(reg, temp & ~FDI_TX_PLL_ENABLE);
  2433. POSTING_READ(reg);
  2434. udelay(100);
  2435. reg = FDI_RX_CTL(pipe);
  2436. temp = I915_READ(reg);
  2437. I915_WRITE(reg, temp & ~FDI_RX_PLL_ENABLE);
  2438. /* Wait for the clocks to turn off. */
  2439. POSTING_READ(reg);
  2440. udelay(100);
  2441. }
  2442. static void cpt_phase_pointer_disable(struct drm_device *dev, int pipe)
  2443. {
  2444. struct drm_i915_private *dev_priv = dev->dev_private;
  2445. u32 flags = I915_READ(SOUTH_CHICKEN1);
  2446. flags &= ~(FDI_PHASE_SYNC_EN(pipe));
  2447. I915_WRITE(SOUTH_CHICKEN1, flags); /* once to disable... */
  2448. flags &= ~(FDI_PHASE_SYNC_OVR(pipe));
  2449. I915_WRITE(SOUTH_CHICKEN1, flags); /* then again to lock */
  2450. POSTING_READ(SOUTH_CHICKEN1);
  2451. }
  2452. static void ironlake_fdi_disable(struct drm_crtc *crtc)
  2453. {
  2454. struct drm_device *dev = crtc->dev;
  2455. struct drm_i915_private *dev_priv = dev->dev_private;
  2456. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  2457. int pipe = intel_crtc->pipe;
  2458. u32 reg, temp;
  2459. /* disable CPU FDI tx and PCH FDI rx */
  2460. reg = FDI_TX_CTL(pipe);
  2461. temp = I915_READ(reg);
  2462. I915_WRITE(reg, temp & ~FDI_TX_ENABLE);
  2463. POSTING_READ(reg);
  2464. reg = FDI_RX_CTL(pipe);
  2465. temp = I915_READ(reg);
  2466. temp &= ~(0x7 << 16);
  2467. temp |= (I915_READ(PIPECONF(pipe)) & PIPE_BPC_MASK) << 11;
  2468. I915_WRITE(reg, temp & ~FDI_RX_ENABLE);
  2469. POSTING_READ(reg);
  2470. udelay(100);
  2471. /* Ironlake workaround, disable clock pointer after downing FDI */
  2472. if (HAS_PCH_IBX(dev)) {
  2473. I915_WRITE(FDI_RX_CHICKEN(pipe), FDI_RX_PHASE_SYNC_POINTER_OVR);
  2474. I915_WRITE(FDI_RX_CHICKEN(pipe),
  2475. I915_READ(FDI_RX_CHICKEN(pipe) &
  2476. ~FDI_RX_PHASE_SYNC_POINTER_EN));
  2477. } else if (HAS_PCH_CPT(dev)) {
  2478. cpt_phase_pointer_disable(dev, pipe);
  2479. }
  2480. /* still set train pattern 1 */
  2481. reg = FDI_TX_CTL(pipe);
  2482. temp = I915_READ(reg);
  2483. temp &= ~FDI_LINK_TRAIN_NONE;
  2484. temp |= FDI_LINK_TRAIN_PATTERN_1;
  2485. I915_WRITE(reg, temp);
  2486. reg = FDI_RX_CTL(pipe);
  2487. temp = I915_READ(reg);
  2488. if (HAS_PCH_CPT(dev)) {
  2489. temp &= ~FDI_LINK_TRAIN_PATTERN_MASK_CPT;
  2490. temp |= FDI_LINK_TRAIN_PATTERN_1_CPT;
  2491. } else {
  2492. temp &= ~FDI_LINK_TRAIN_NONE;
  2493. temp |= FDI_LINK_TRAIN_PATTERN_1;
  2494. }
  2495. /* BPC in FDI rx is consistent with that in PIPECONF */
  2496. temp &= ~(0x07 << 16);
  2497. temp |= (I915_READ(PIPECONF(pipe)) & PIPE_BPC_MASK) << 11;
  2498. I915_WRITE(reg, temp);
  2499. POSTING_READ(reg);
  2500. udelay(100);
  2501. }
  2502. static bool intel_crtc_has_pending_flip(struct drm_crtc *crtc)
  2503. {
  2504. struct drm_device *dev = crtc->dev;
  2505. struct drm_i915_private *dev_priv = dev->dev_private;
  2506. unsigned long flags;
  2507. bool pending;
  2508. if (atomic_read(&dev_priv->mm.wedged))
  2509. return false;
  2510. spin_lock_irqsave(&dev->event_lock, flags);
  2511. pending = to_intel_crtc(crtc)->unpin_work != NULL;
  2512. spin_unlock_irqrestore(&dev->event_lock, flags);
  2513. return pending;
  2514. }
  2515. static void intel_crtc_wait_for_pending_flips(struct drm_crtc *crtc)
  2516. {
  2517. struct drm_device *dev = crtc->dev;
  2518. struct drm_i915_private *dev_priv = dev->dev_private;
  2519. if (crtc->fb == NULL)
  2520. return;
  2521. wait_event(dev_priv->pending_flip_queue,
  2522. !intel_crtc_has_pending_flip(crtc));
  2523. mutex_lock(&dev->struct_mutex);
  2524. intel_finish_fb(crtc->fb);
  2525. mutex_unlock(&dev->struct_mutex);
  2526. }
  2527. static bool ironlake_crtc_driving_pch(struct drm_crtc *crtc)
  2528. {
  2529. struct drm_device *dev = crtc->dev;
  2530. struct intel_encoder *intel_encoder;
  2531. /*
  2532. * If there's a non-PCH eDP on this crtc, it must be DP_A, and that
  2533. * must be driven by its own crtc; no sharing is possible.
  2534. */
  2535. for_each_encoder_on_crtc(dev, crtc, intel_encoder) {
  2536. switch (intel_encoder->type) {
  2537. case INTEL_OUTPUT_EDP:
  2538. if (!intel_encoder_is_pch_edp(&intel_encoder->base))
  2539. return false;
  2540. continue;
  2541. }
  2542. }
  2543. return true;
  2544. }
  2545. static bool haswell_crtc_driving_pch(struct drm_crtc *crtc)
  2546. {
  2547. return intel_pipe_has_type(crtc, INTEL_OUTPUT_ANALOG);
  2548. }
  2549. /* Program iCLKIP clock to the desired frequency */
  2550. static void lpt_program_iclkip(struct drm_crtc *crtc)
  2551. {
  2552. struct drm_device *dev = crtc->dev;
  2553. struct drm_i915_private *dev_priv = dev->dev_private;
  2554. u32 divsel, phaseinc, auxdiv, phasedir = 0;
  2555. u32 temp;
  2556. /* It is necessary to ungate the pixclk gate prior to programming
  2557. * the divisors, and gate it back when it is done.
  2558. */
  2559. I915_WRITE(PIXCLK_GATE, PIXCLK_GATE_GATE);
  2560. /* Disable SSCCTL */
  2561. intel_sbi_write(dev_priv, SBI_SSCCTL6,
  2562. intel_sbi_read(dev_priv, SBI_SSCCTL6) |
  2563. SBI_SSCCTL_DISABLE);
  2564. /* 20MHz is a corner case which is out of range for the 7-bit divisor */
  2565. if (crtc->mode.clock == 20000) {
  2566. auxdiv = 1;
  2567. divsel = 0x41;
  2568. phaseinc = 0x20;
  2569. } else {
  2570. /* The iCLK virtual clock root frequency is in MHz,
  2571. * but the crtc->mode.clock in in KHz. To get the divisors,
  2572. * it is necessary to divide one by another, so we
  2573. * convert the virtual clock precision to KHz here for higher
  2574. * precision.
  2575. */
  2576. u32 iclk_virtual_root_freq = 172800 * 1000;
  2577. u32 iclk_pi_range = 64;
  2578. u32 desired_divisor, msb_divisor_value, pi_value;
  2579. desired_divisor = (iclk_virtual_root_freq / crtc->mode.clock);
  2580. msb_divisor_value = desired_divisor / iclk_pi_range;
  2581. pi_value = desired_divisor % iclk_pi_range;
  2582. auxdiv = 0;
  2583. divsel = msb_divisor_value - 2;
  2584. phaseinc = pi_value;
  2585. }
  2586. /* This should not happen with any sane values */
  2587. WARN_ON(SBI_SSCDIVINTPHASE_DIVSEL(divsel) &
  2588. ~SBI_SSCDIVINTPHASE_DIVSEL_MASK);
  2589. WARN_ON(SBI_SSCDIVINTPHASE_DIR(phasedir) &
  2590. ~SBI_SSCDIVINTPHASE_INCVAL_MASK);
  2591. DRM_DEBUG_KMS("iCLKIP clock: found settings for %dKHz refresh rate: auxdiv=%x, divsel=%x, phasedir=%x, phaseinc=%x\n",
  2592. crtc->mode.clock,
  2593. auxdiv,
  2594. divsel,
  2595. phasedir,
  2596. phaseinc);
  2597. /* Program SSCDIVINTPHASE6 */
  2598. temp = intel_sbi_read(dev_priv, SBI_SSCDIVINTPHASE6);
  2599. temp &= ~SBI_SSCDIVINTPHASE_DIVSEL_MASK;
  2600. temp |= SBI_SSCDIVINTPHASE_DIVSEL(divsel);
  2601. temp &= ~SBI_SSCDIVINTPHASE_INCVAL_MASK;
  2602. temp |= SBI_SSCDIVINTPHASE_INCVAL(phaseinc);
  2603. temp |= SBI_SSCDIVINTPHASE_DIR(phasedir);
  2604. temp |= SBI_SSCDIVINTPHASE_PROPAGATE;
  2605. intel_sbi_write(dev_priv,
  2606. SBI_SSCDIVINTPHASE6,
  2607. temp);
  2608. /* Program SSCAUXDIV */
  2609. temp = intel_sbi_read(dev_priv, SBI_SSCAUXDIV6);
  2610. temp &= ~SBI_SSCAUXDIV_FINALDIV2SEL(1);
  2611. temp |= SBI_SSCAUXDIV_FINALDIV2SEL(auxdiv);
  2612. intel_sbi_write(dev_priv,
  2613. SBI_SSCAUXDIV6,
  2614. temp);
  2615. /* Enable modulator and associated divider */
  2616. temp = intel_sbi_read(dev_priv, SBI_SSCCTL6);
  2617. temp &= ~SBI_SSCCTL_DISABLE;
  2618. intel_sbi_write(dev_priv,
  2619. SBI_SSCCTL6,
  2620. temp);
  2621. /* Wait for initialization time */
  2622. udelay(24);
  2623. I915_WRITE(PIXCLK_GATE, PIXCLK_GATE_UNGATE);
  2624. }
  2625. /*
  2626. * Enable PCH resources required for PCH ports:
  2627. * - PCH PLLs
  2628. * - FDI training & RX/TX
  2629. * - update transcoder timings
  2630. * - DP transcoding bits
  2631. * - transcoder
  2632. */
  2633. static void ironlake_pch_enable(struct drm_crtc *crtc)
  2634. {
  2635. struct drm_device *dev = crtc->dev;
  2636. struct drm_i915_private *dev_priv = dev->dev_private;
  2637. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  2638. int pipe = intel_crtc->pipe;
  2639. u32 reg, temp;
  2640. assert_transcoder_disabled(dev_priv, pipe);
  2641. /* Write the TU size bits before fdi link training, so that error
  2642. * detection works. */
  2643. I915_WRITE(FDI_RX_TUSIZE1(pipe),
  2644. I915_READ(PIPE_DATA_M1(pipe)) & TU_SIZE_MASK);
  2645. /* For PCH output, training FDI link */
  2646. dev_priv->display.fdi_link_train(crtc);
  2647. /* XXX: pch pll's can be enabled any time before we enable the PCH
  2648. * transcoder, and we actually should do this to not upset any PCH
  2649. * transcoder that already use the clock when we share it.
  2650. *
  2651. * Note that enable_pch_pll tries to do the right thing, but get_pch_pll
  2652. * unconditionally resets the pll - we need that to have the right LVDS
  2653. * enable sequence. */
  2654. intel_enable_pch_pll(intel_crtc);
  2655. if (HAS_PCH_LPT(dev)) {
  2656. DRM_DEBUG_KMS("LPT detected: programming iCLKIP\n");
  2657. lpt_program_iclkip(crtc);
  2658. } else if (HAS_PCH_CPT(dev)) {
  2659. u32 sel;
  2660. temp = I915_READ(PCH_DPLL_SEL);
  2661. switch (pipe) {
  2662. default:
  2663. case 0:
  2664. temp |= TRANSA_DPLL_ENABLE;
  2665. sel = TRANSA_DPLLB_SEL;
  2666. break;
  2667. case 1:
  2668. temp |= TRANSB_DPLL_ENABLE;
  2669. sel = TRANSB_DPLLB_SEL;
  2670. break;
  2671. case 2:
  2672. temp |= TRANSC_DPLL_ENABLE;
  2673. sel = TRANSC_DPLLB_SEL;
  2674. break;
  2675. }
  2676. if (intel_crtc->pch_pll->pll_reg == _PCH_DPLL_B)
  2677. temp |= sel;
  2678. else
  2679. temp &= ~sel;
  2680. I915_WRITE(PCH_DPLL_SEL, temp);
  2681. }
  2682. /* set transcoder timing, panel must allow it */
  2683. assert_panel_unlocked(dev_priv, pipe);
  2684. I915_WRITE(TRANS_HTOTAL(pipe), I915_READ(HTOTAL(pipe)));
  2685. I915_WRITE(TRANS_HBLANK(pipe), I915_READ(HBLANK(pipe)));
  2686. I915_WRITE(TRANS_HSYNC(pipe), I915_READ(HSYNC(pipe)));
  2687. I915_WRITE(TRANS_VTOTAL(pipe), I915_READ(VTOTAL(pipe)));
  2688. I915_WRITE(TRANS_VBLANK(pipe), I915_READ(VBLANK(pipe)));
  2689. I915_WRITE(TRANS_VSYNC(pipe), I915_READ(VSYNC(pipe)));
  2690. I915_WRITE(TRANS_VSYNCSHIFT(pipe), I915_READ(VSYNCSHIFT(pipe)));
  2691. if (!IS_HASWELL(dev))
  2692. intel_fdi_normal_train(crtc);
  2693. /* For PCH DP, enable TRANS_DP_CTL */
  2694. if (HAS_PCH_CPT(dev) &&
  2695. (intel_pipe_has_type(crtc, INTEL_OUTPUT_DISPLAYPORT) ||
  2696. intel_pipe_has_type(crtc, INTEL_OUTPUT_EDP))) {
  2697. u32 bpc = (I915_READ(PIPECONF(pipe)) & PIPE_BPC_MASK) >> 5;
  2698. reg = TRANS_DP_CTL(pipe);
  2699. temp = I915_READ(reg);
  2700. temp &= ~(TRANS_DP_PORT_SEL_MASK |
  2701. TRANS_DP_SYNC_MASK |
  2702. TRANS_DP_BPC_MASK);
  2703. temp |= (TRANS_DP_OUTPUT_ENABLE |
  2704. TRANS_DP_ENH_FRAMING);
  2705. temp |= bpc << 9; /* same format but at 11:9 */
  2706. if (crtc->mode.flags & DRM_MODE_FLAG_PHSYNC)
  2707. temp |= TRANS_DP_HSYNC_ACTIVE_HIGH;
  2708. if (crtc->mode.flags & DRM_MODE_FLAG_PVSYNC)
  2709. temp |= TRANS_DP_VSYNC_ACTIVE_HIGH;
  2710. switch (intel_trans_dp_port_sel(crtc)) {
  2711. case PCH_DP_B:
  2712. temp |= TRANS_DP_PORT_SEL_B;
  2713. break;
  2714. case PCH_DP_C:
  2715. temp |= TRANS_DP_PORT_SEL_C;
  2716. break;
  2717. case PCH_DP_D:
  2718. temp |= TRANS_DP_PORT_SEL_D;
  2719. break;
  2720. default:
  2721. BUG();
  2722. }
  2723. I915_WRITE(reg, temp);
  2724. }
  2725. intel_enable_transcoder(dev_priv, pipe);
  2726. }
  2727. static void intel_put_pch_pll(struct intel_crtc *intel_crtc)
  2728. {
  2729. struct intel_pch_pll *pll = intel_crtc->pch_pll;
  2730. if (pll == NULL)
  2731. return;
  2732. if (pll->refcount == 0) {
  2733. WARN(1, "bad PCH PLL refcount\n");
  2734. return;
  2735. }
  2736. --pll->refcount;
  2737. intel_crtc->pch_pll = NULL;
  2738. }
  2739. static struct intel_pch_pll *intel_get_pch_pll(struct intel_crtc *intel_crtc, u32 dpll, u32 fp)
  2740. {
  2741. struct drm_i915_private *dev_priv = intel_crtc->base.dev->dev_private;
  2742. struct intel_pch_pll *pll;
  2743. int i;
  2744. pll = intel_crtc->pch_pll;
  2745. if (pll) {
  2746. DRM_DEBUG_KMS("CRTC:%d reusing existing PCH PLL %x\n",
  2747. intel_crtc->base.base.id, pll->pll_reg);
  2748. goto prepare;
  2749. }
  2750. if (HAS_PCH_IBX(dev_priv->dev)) {
  2751. /* Ironlake PCH has a fixed PLL->PCH pipe mapping. */
  2752. i = intel_crtc->pipe;
  2753. pll = &dev_priv->pch_plls[i];
  2754. DRM_DEBUG_KMS("CRTC:%d using pre-allocated PCH PLL %x\n",
  2755. intel_crtc->base.base.id, pll->pll_reg);
  2756. goto found;
  2757. }
  2758. for (i = 0; i < dev_priv->num_pch_pll; i++) {
  2759. pll = &dev_priv->pch_plls[i];
  2760. /* Only want to check enabled timings first */
  2761. if (pll->refcount == 0)
  2762. continue;
  2763. if (dpll == (I915_READ(pll->pll_reg) & 0x7fffffff) &&
  2764. fp == I915_READ(pll->fp0_reg)) {
  2765. DRM_DEBUG_KMS("CRTC:%d sharing existing PCH PLL %x (refcount %d, ative %d)\n",
  2766. intel_crtc->base.base.id,
  2767. pll->pll_reg, pll->refcount, pll->active);
  2768. goto found;
  2769. }
  2770. }
  2771. /* Ok no matching timings, maybe there's a free one? */
  2772. for (i = 0; i < dev_priv->num_pch_pll; i++) {
  2773. pll = &dev_priv->pch_plls[i];
  2774. if (pll->refcount == 0) {
  2775. DRM_DEBUG_KMS("CRTC:%d allocated PCH PLL %x\n",
  2776. intel_crtc->base.base.id, pll->pll_reg);
  2777. goto found;
  2778. }
  2779. }
  2780. return NULL;
  2781. found:
  2782. intel_crtc->pch_pll = pll;
  2783. pll->refcount++;
  2784. DRM_DEBUG_DRIVER("using pll %d for pipe %d\n", i, intel_crtc->pipe);
  2785. prepare: /* separate function? */
  2786. DRM_DEBUG_DRIVER("switching PLL %x off\n", pll->pll_reg);
  2787. /* Wait for the clocks to stabilize before rewriting the regs */
  2788. I915_WRITE(pll->pll_reg, dpll & ~DPLL_VCO_ENABLE);
  2789. POSTING_READ(pll->pll_reg);
  2790. udelay(150);
  2791. I915_WRITE(pll->fp0_reg, fp);
  2792. I915_WRITE(pll->pll_reg, dpll & ~DPLL_VCO_ENABLE);
  2793. pll->on = false;
  2794. return pll;
  2795. }
  2796. void intel_cpt_verify_modeset(struct drm_device *dev, int pipe)
  2797. {
  2798. struct drm_i915_private *dev_priv = dev->dev_private;
  2799. int dslreg = PIPEDSL(pipe), tc2reg = TRANS_CHICKEN2(pipe);
  2800. u32 temp;
  2801. temp = I915_READ(dslreg);
  2802. udelay(500);
  2803. if (wait_for(I915_READ(dslreg) != temp, 5)) {
  2804. /* Without this, mode sets may fail silently on FDI */
  2805. I915_WRITE(tc2reg, TRANS_AUTOTRAIN_GEN_STALL_DIS);
  2806. udelay(250);
  2807. I915_WRITE(tc2reg, 0);
  2808. if (wait_for(I915_READ(dslreg) != temp, 5))
  2809. DRM_ERROR("mode set failed: pipe %d stuck\n", pipe);
  2810. }
  2811. }
  2812. static void ironlake_crtc_enable(struct drm_crtc *crtc)
  2813. {
  2814. struct drm_device *dev = crtc->dev;
  2815. struct drm_i915_private *dev_priv = dev->dev_private;
  2816. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  2817. struct intel_encoder *encoder;
  2818. int pipe = intel_crtc->pipe;
  2819. int plane = intel_crtc->plane;
  2820. u32 temp;
  2821. bool is_pch_port;
  2822. WARN_ON(!crtc->enabled);
  2823. if (intel_crtc->active)
  2824. return;
  2825. intel_crtc->active = true;
  2826. intel_update_watermarks(dev);
  2827. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_LVDS)) {
  2828. temp = I915_READ(PCH_LVDS);
  2829. if ((temp & LVDS_PORT_EN) == 0)
  2830. I915_WRITE(PCH_LVDS, temp | LVDS_PORT_EN);
  2831. }
  2832. is_pch_port = ironlake_crtc_driving_pch(crtc);
  2833. if (is_pch_port) {
  2834. /* Note: FDI PLL enabling _must_ be done before we enable the
  2835. * cpu pipes, hence this is separate from all the other fdi/pch
  2836. * enabling. */
  2837. ironlake_fdi_pll_enable(intel_crtc);
  2838. } else {
  2839. assert_fdi_tx_disabled(dev_priv, pipe);
  2840. assert_fdi_rx_disabled(dev_priv, pipe);
  2841. }
  2842. for_each_encoder_on_crtc(dev, crtc, encoder)
  2843. if (encoder->pre_enable)
  2844. encoder->pre_enable(encoder);
  2845. /* Enable panel fitting for LVDS */
  2846. if (dev_priv->pch_pf_size &&
  2847. (intel_pipe_has_type(crtc, INTEL_OUTPUT_LVDS) || HAS_eDP)) {
  2848. /* Force use of hard-coded filter coefficients
  2849. * as some pre-programmed values are broken,
  2850. * e.g. x201.
  2851. */
  2852. I915_WRITE(PF_CTL(pipe), PF_ENABLE | PF_FILTER_MED_3x3);
  2853. I915_WRITE(PF_WIN_POS(pipe), dev_priv->pch_pf_pos);
  2854. I915_WRITE(PF_WIN_SZ(pipe), dev_priv->pch_pf_size);
  2855. }
  2856. /*
  2857. * On ILK+ LUT must be loaded before the pipe is running but with
  2858. * clocks enabled
  2859. */
  2860. intel_crtc_load_lut(crtc);
  2861. intel_enable_pipe(dev_priv, pipe, is_pch_port);
  2862. intel_enable_plane(dev_priv, plane, pipe);
  2863. if (is_pch_port)
  2864. ironlake_pch_enable(crtc);
  2865. mutex_lock(&dev->struct_mutex);
  2866. intel_update_fbc(dev);
  2867. mutex_unlock(&dev->struct_mutex);
  2868. intel_crtc_update_cursor(crtc, true);
  2869. for_each_encoder_on_crtc(dev, crtc, encoder)
  2870. encoder->enable(encoder);
  2871. if (HAS_PCH_CPT(dev))
  2872. intel_cpt_verify_modeset(dev, intel_crtc->pipe);
  2873. /*
  2874. * There seems to be a race in PCH platform hw (at least on some
  2875. * outputs) where an enabled pipe still completes any pageflip right
  2876. * away (as if the pipe is off) instead of waiting for vblank. As soon
  2877. * as the first vblank happend, everything works as expected. Hence just
  2878. * wait for one vblank before returning to avoid strange things
  2879. * happening.
  2880. */
  2881. intel_wait_for_vblank(dev, intel_crtc->pipe);
  2882. }
  2883. static void haswell_crtc_enable(struct drm_crtc *crtc)
  2884. {
  2885. struct drm_device *dev = crtc->dev;
  2886. struct drm_i915_private *dev_priv = dev->dev_private;
  2887. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  2888. struct intel_encoder *encoder;
  2889. int pipe = intel_crtc->pipe;
  2890. int plane = intel_crtc->plane;
  2891. bool is_pch_port;
  2892. WARN_ON(!crtc->enabled);
  2893. if (intel_crtc->active)
  2894. return;
  2895. intel_crtc->active = true;
  2896. intel_update_watermarks(dev);
  2897. is_pch_port = haswell_crtc_driving_pch(crtc);
  2898. if (is_pch_port)
  2899. ironlake_fdi_pll_enable(intel_crtc);
  2900. for_each_encoder_on_crtc(dev, crtc, encoder)
  2901. if (encoder->pre_enable)
  2902. encoder->pre_enable(encoder);
  2903. intel_ddi_enable_pipe_clock(intel_crtc);
  2904. /* Enable panel fitting for eDP */
  2905. if (dev_priv->pch_pf_size && HAS_eDP) {
  2906. /* Force use of hard-coded filter coefficients
  2907. * as some pre-programmed values are broken,
  2908. * e.g. x201.
  2909. */
  2910. I915_WRITE(PF_CTL(pipe), PF_ENABLE | PF_FILTER_MED_3x3);
  2911. I915_WRITE(PF_WIN_POS(pipe), dev_priv->pch_pf_pos);
  2912. I915_WRITE(PF_WIN_SZ(pipe), dev_priv->pch_pf_size);
  2913. }
  2914. /*
  2915. * On ILK+ LUT must be loaded before the pipe is running but with
  2916. * clocks enabled
  2917. */
  2918. intel_crtc_load_lut(crtc);
  2919. intel_ddi_set_pipe_settings(crtc);
  2920. intel_ddi_enable_pipe_func(crtc);
  2921. intel_enable_pipe(dev_priv, pipe, is_pch_port);
  2922. intel_enable_plane(dev_priv, plane, pipe);
  2923. if (is_pch_port)
  2924. ironlake_pch_enable(crtc);
  2925. mutex_lock(&dev->struct_mutex);
  2926. intel_update_fbc(dev);
  2927. mutex_unlock(&dev->struct_mutex);
  2928. intel_crtc_update_cursor(crtc, true);
  2929. for_each_encoder_on_crtc(dev, crtc, encoder)
  2930. encoder->enable(encoder);
  2931. /*
  2932. * There seems to be a race in PCH platform hw (at least on some
  2933. * outputs) where an enabled pipe still completes any pageflip right
  2934. * away (as if the pipe is off) instead of waiting for vblank. As soon
  2935. * as the first vblank happend, everything works as expected. Hence just
  2936. * wait for one vblank before returning to avoid strange things
  2937. * happening.
  2938. */
  2939. intel_wait_for_vblank(dev, intel_crtc->pipe);
  2940. }
  2941. static void ironlake_crtc_disable(struct drm_crtc *crtc)
  2942. {
  2943. struct drm_device *dev = crtc->dev;
  2944. struct drm_i915_private *dev_priv = dev->dev_private;
  2945. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  2946. struct intel_encoder *encoder;
  2947. int pipe = intel_crtc->pipe;
  2948. int plane = intel_crtc->plane;
  2949. u32 reg, temp;
  2950. if (!intel_crtc->active)
  2951. return;
  2952. for_each_encoder_on_crtc(dev, crtc, encoder)
  2953. encoder->disable(encoder);
  2954. intel_crtc_wait_for_pending_flips(crtc);
  2955. drm_vblank_off(dev, pipe);
  2956. intel_crtc_update_cursor(crtc, false);
  2957. intel_disable_plane(dev_priv, plane, pipe);
  2958. if (dev_priv->cfb_plane == plane)
  2959. intel_disable_fbc(dev);
  2960. intel_disable_pipe(dev_priv, pipe);
  2961. /* Disable PF */
  2962. I915_WRITE(PF_CTL(pipe), 0);
  2963. I915_WRITE(PF_WIN_SZ(pipe), 0);
  2964. for_each_encoder_on_crtc(dev, crtc, encoder)
  2965. if (encoder->post_disable)
  2966. encoder->post_disable(encoder);
  2967. ironlake_fdi_disable(crtc);
  2968. intel_disable_transcoder(dev_priv, pipe);
  2969. if (HAS_PCH_CPT(dev)) {
  2970. /* disable TRANS_DP_CTL */
  2971. reg = TRANS_DP_CTL(pipe);
  2972. temp = I915_READ(reg);
  2973. temp &= ~(TRANS_DP_OUTPUT_ENABLE | TRANS_DP_PORT_SEL_MASK);
  2974. temp |= TRANS_DP_PORT_SEL_NONE;
  2975. I915_WRITE(reg, temp);
  2976. /* disable DPLL_SEL */
  2977. temp = I915_READ(PCH_DPLL_SEL);
  2978. switch (pipe) {
  2979. case 0:
  2980. temp &= ~(TRANSA_DPLL_ENABLE | TRANSA_DPLLB_SEL);
  2981. break;
  2982. case 1:
  2983. temp &= ~(TRANSB_DPLL_ENABLE | TRANSB_DPLLB_SEL);
  2984. break;
  2985. case 2:
  2986. /* C shares PLL A or B */
  2987. temp &= ~(TRANSC_DPLL_ENABLE | TRANSC_DPLLB_SEL);
  2988. break;
  2989. default:
  2990. BUG(); /* wtf */
  2991. }
  2992. I915_WRITE(PCH_DPLL_SEL, temp);
  2993. }
  2994. /* disable PCH DPLL */
  2995. intel_disable_pch_pll(intel_crtc);
  2996. ironlake_fdi_pll_disable(intel_crtc);
  2997. intel_crtc->active = false;
  2998. intel_update_watermarks(dev);
  2999. mutex_lock(&dev->struct_mutex);
  3000. intel_update_fbc(dev);
  3001. mutex_unlock(&dev->struct_mutex);
  3002. }
  3003. static void haswell_crtc_disable(struct drm_crtc *crtc)
  3004. {
  3005. struct drm_device *dev = crtc->dev;
  3006. struct drm_i915_private *dev_priv = dev->dev_private;
  3007. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  3008. struct intel_encoder *encoder;
  3009. int pipe = intel_crtc->pipe;
  3010. int plane = intel_crtc->plane;
  3011. enum transcoder cpu_transcoder = intel_crtc->cpu_transcoder;
  3012. bool is_pch_port;
  3013. if (!intel_crtc->active)
  3014. return;
  3015. is_pch_port = haswell_crtc_driving_pch(crtc);
  3016. for_each_encoder_on_crtc(dev, crtc, encoder)
  3017. encoder->disable(encoder);
  3018. intel_crtc_wait_for_pending_flips(crtc);
  3019. drm_vblank_off(dev, pipe);
  3020. intel_crtc_update_cursor(crtc, false);
  3021. intel_disable_plane(dev_priv, plane, pipe);
  3022. if (dev_priv->cfb_plane == plane)
  3023. intel_disable_fbc(dev);
  3024. intel_disable_pipe(dev_priv, pipe);
  3025. intel_ddi_disable_transcoder_func(dev_priv, cpu_transcoder);
  3026. /* Disable PF */
  3027. I915_WRITE(PF_CTL(pipe), 0);
  3028. I915_WRITE(PF_WIN_SZ(pipe), 0);
  3029. intel_ddi_disable_pipe_clock(intel_crtc);
  3030. for_each_encoder_on_crtc(dev, crtc, encoder)
  3031. if (encoder->post_disable)
  3032. encoder->post_disable(encoder);
  3033. if (is_pch_port) {
  3034. ironlake_fdi_disable(crtc);
  3035. intel_disable_transcoder(dev_priv, pipe);
  3036. intel_disable_pch_pll(intel_crtc);
  3037. ironlake_fdi_pll_disable(intel_crtc);
  3038. }
  3039. intel_crtc->active = false;
  3040. intel_update_watermarks(dev);
  3041. mutex_lock(&dev->struct_mutex);
  3042. intel_update_fbc(dev);
  3043. mutex_unlock(&dev->struct_mutex);
  3044. }
  3045. static void ironlake_crtc_off(struct drm_crtc *crtc)
  3046. {
  3047. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  3048. intel_put_pch_pll(intel_crtc);
  3049. }
  3050. static void haswell_crtc_off(struct drm_crtc *crtc)
  3051. {
  3052. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  3053. /* Stop saying we're using TRANSCODER_EDP because some other CRTC might
  3054. * start using it. */
  3055. intel_crtc->cpu_transcoder = intel_crtc->pipe;
  3056. intel_ddi_put_crtc_pll(crtc);
  3057. }
  3058. static void intel_crtc_dpms_overlay(struct intel_crtc *intel_crtc, bool enable)
  3059. {
  3060. if (!enable && intel_crtc->overlay) {
  3061. struct drm_device *dev = intel_crtc->base.dev;
  3062. struct drm_i915_private *dev_priv = dev->dev_private;
  3063. mutex_lock(&dev->struct_mutex);
  3064. dev_priv->mm.interruptible = false;
  3065. (void) intel_overlay_switch_off(intel_crtc->overlay);
  3066. dev_priv->mm.interruptible = true;
  3067. mutex_unlock(&dev->struct_mutex);
  3068. }
  3069. /* Let userspace switch the overlay on again. In most cases userspace
  3070. * has to recompute where to put it anyway.
  3071. */
  3072. }
  3073. static void i9xx_crtc_enable(struct drm_crtc *crtc)
  3074. {
  3075. struct drm_device *dev = crtc->dev;
  3076. struct drm_i915_private *dev_priv = dev->dev_private;
  3077. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  3078. struct intel_encoder *encoder;
  3079. int pipe = intel_crtc->pipe;
  3080. int plane = intel_crtc->plane;
  3081. WARN_ON(!crtc->enabled);
  3082. if (intel_crtc->active)
  3083. return;
  3084. intel_crtc->active = true;
  3085. intel_update_watermarks(dev);
  3086. intel_enable_pll(dev_priv, pipe);
  3087. intel_enable_pipe(dev_priv, pipe, false);
  3088. intel_enable_plane(dev_priv, plane, pipe);
  3089. intel_crtc_load_lut(crtc);
  3090. intel_update_fbc(dev);
  3091. /* Give the overlay scaler a chance to enable if it's on this pipe */
  3092. intel_crtc_dpms_overlay(intel_crtc, true);
  3093. intel_crtc_update_cursor(crtc, true);
  3094. for_each_encoder_on_crtc(dev, crtc, encoder)
  3095. encoder->enable(encoder);
  3096. }
  3097. static void i9xx_crtc_disable(struct drm_crtc *crtc)
  3098. {
  3099. struct drm_device *dev = crtc->dev;
  3100. struct drm_i915_private *dev_priv = dev->dev_private;
  3101. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  3102. struct intel_encoder *encoder;
  3103. int pipe = intel_crtc->pipe;
  3104. int plane = intel_crtc->plane;
  3105. if (!intel_crtc->active)
  3106. return;
  3107. for_each_encoder_on_crtc(dev, crtc, encoder)
  3108. encoder->disable(encoder);
  3109. /* Give the overlay scaler a chance to disable if it's on this pipe */
  3110. intel_crtc_wait_for_pending_flips(crtc);
  3111. drm_vblank_off(dev, pipe);
  3112. intel_crtc_dpms_overlay(intel_crtc, false);
  3113. intel_crtc_update_cursor(crtc, false);
  3114. if (dev_priv->cfb_plane == plane)
  3115. intel_disable_fbc(dev);
  3116. intel_disable_plane(dev_priv, plane, pipe);
  3117. intel_disable_pipe(dev_priv, pipe);
  3118. intel_disable_pll(dev_priv, pipe);
  3119. intel_crtc->active = false;
  3120. intel_update_fbc(dev);
  3121. intel_update_watermarks(dev);
  3122. }
  3123. static void i9xx_crtc_off(struct drm_crtc *crtc)
  3124. {
  3125. }
  3126. static void intel_crtc_update_sarea(struct drm_crtc *crtc,
  3127. bool enabled)
  3128. {
  3129. struct drm_device *dev = crtc->dev;
  3130. struct drm_i915_master_private *master_priv;
  3131. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  3132. int pipe = intel_crtc->pipe;
  3133. if (!dev->primary->master)
  3134. return;
  3135. master_priv = dev->primary->master->driver_priv;
  3136. if (!master_priv->sarea_priv)
  3137. return;
  3138. switch (pipe) {
  3139. case 0:
  3140. master_priv->sarea_priv->pipeA_w = enabled ? crtc->mode.hdisplay : 0;
  3141. master_priv->sarea_priv->pipeA_h = enabled ? crtc->mode.vdisplay : 0;
  3142. break;
  3143. case 1:
  3144. master_priv->sarea_priv->pipeB_w = enabled ? crtc->mode.hdisplay : 0;
  3145. master_priv->sarea_priv->pipeB_h = enabled ? crtc->mode.vdisplay : 0;
  3146. break;
  3147. default:
  3148. DRM_ERROR("Can't update pipe %c in SAREA\n", pipe_name(pipe));
  3149. break;
  3150. }
  3151. }
  3152. /**
  3153. * Sets the power management mode of the pipe and plane.
  3154. */
  3155. void intel_crtc_update_dpms(struct drm_crtc *crtc)
  3156. {
  3157. struct drm_device *dev = crtc->dev;
  3158. struct drm_i915_private *dev_priv = dev->dev_private;
  3159. struct intel_encoder *intel_encoder;
  3160. bool enable = false;
  3161. for_each_encoder_on_crtc(dev, crtc, intel_encoder)
  3162. enable |= intel_encoder->connectors_active;
  3163. if (enable)
  3164. dev_priv->display.crtc_enable(crtc);
  3165. else
  3166. dev_priv->display.crtc_disable(crtc);
  3167. intel_crtc_update_sarea(crtc, enable);
  3168. }
  3169. static void intel_crtc_noop(struct drm_crtc *crtc)
  3170. {
  3171. }
  3172. static void intel_crtc_disable(struct drm_crtc *crtc)
  3173. {
  3174. struct drm_device *dev = crtc->dev;
  3175. struct drm_connector *connector;
  3176. struct drm_i915_private *dev_priv = dev->dev_private;
  3177. /* crtc should still be enabled when we disable it. */
  3178. WARN_ON(!crtc->enabled);
  3179. dev_priv->display.crtc_disable(crtc);
  3180. intel_crtc_update_sarea(crtc, false);
  3181. dev_priv->display.off(crtc);
  3182. assert_plane_disabled(dev->dev_private, to_intel_crtc(crtc)->plane);
  3183. assert_pipe_disabled(dev->dev_private, to_intel_crtc(crtc)->pipe);
  3184. if (crtc->fb) {
  3185. mutex_lock(&dev->struct_mutex);
  3186. intel_unpin_fb_obj(to_intel_framebuffer(crtc->fb)->obj);
  3187. mutex_unlock(&dev->struct_mutex);
  3188. crtc->fb = NULL;
  3189. }
  3190. /* Update computed state. */
  3191. list_for_each_entry(connector, &dev->mode_config.connector_list, head) {
  3192. if (!connector->encoder || !connector->encoder->crtc)
  3193. continue;
  3194. if (connector->encoder->crtc != crtc)
  3195. continue;
  3196. connector->dpms = DRM_MODE_DPMS_OFF;
  3197. to_intel_encoder(connector->encoder)->connectors_active = false;
  3198. }
  3199. }
  3200. void intel_modeset_disable(struct drm_device *dev)
  3201. {
  3202. struct drm_crtc *crtc;
  3203. list_for_each_entry(crtc, &dev->mode_config.crtc_list, head) {
  3204. if (crtc->enabled)
  3205. intel_crtc_disable(crtc);
  3206. }
  3207. }
  3208. void intel_encoder_noop(struct drm_encoder *encoder)
  3209. {
  3210. }
  3211. void intel_encoder_destroy(struct drm_encoder *encoder)
  3212. {
  3213. struct intel_encoder *intel_encoder = to_intel_encoder(encoder);
  3214. drm_encoder_cleanup(encoder);
  3215. kfree(intel_encoder);
  3216. }
  3217. /* Simple dpms helper for encodres with just one connector, no cloning and only
  3218. * one kind of off state. It clamps all !ON modes to fully OFF and changes the
  3219. * state of the entire output pipe. */
  3220. void intel_encoder_dpms(struct intel_encoder *encoder, int mode)
  3221. {
  3222. if (mode == DRM_MODE_DPMS_ON) {
  3223. encoder->connectors_active = true;
  3224. intel_crtc_update_dpms(encoder->base.crtc);
  3225. } else {
  3226. encoder->connectors_active = false;
  3227. intel_crtc_update_dpms(encoder->base.crtc);
  3228. }
  3229. }
  3230. /* Cross check the actual hw state with our own modeset state tracking (and it's
  3231. * internal consistency). */
  3232. static void intel_connector_check_state(struct intel_connector *connector)
  3233. {
  3234. if (connector->get_hw_state(connector)) {
  3235. struct intel_encoder *encoder = connector->encoder;
  3236. struct drm_crtc *crtc;
  3237. bool encoder_enabled;
  3238. enum pipe pipe;
  3239. DRM_DEBUG_KMS("[CONNECTOR:%d:%s]\n",
  3240. connector->base.base.id,
  3241. drm_get_connector_name(&connector->base));
  3242. WARN(connector->base.dpms == DRM_MODE_DPMS_OFF,
  3243. "wrong connector dpms state\n");
  3244. WARN(connector->base.encoder != &encoder->base,
  3245. "active connector not linked to encoder\n");
  3246. WARN(!encoder->connectors_active,
  3247. "encoder->connectors_active not set\n");
  3248. encoder_enabled = encoder->get_hw_state(encoder, &pipe);
  3249. WARN(!encoder_enabled, "encoder not enabled\n");
  3250. if (WARN_ON(!encoder->base.crtc))
  3251. return;
  3252. crtc = encoder->base.crtc;
  3253. WARN(!crtc->enabled, "crtc not enabled\n");
  3254. WARN(!to_intel_crtc(crtc)->active, "crtc not active\n");
  3255. WARN(pipe != to_intel_crtc(crtc)->pipe,
  3256. "encoder active on the wrong pipe\n");
  3257. }
  3258. }
  3259. /* Even simpler default implementation, if there's really no special case to
  3260. * consider. */
  3261. void intel_connector_dpms(struct drm_connector *connector, int mode)
  3262. {
  3263. struct intel_encoder *encoder = intel_attached_encoder(connector);
  3264. /* All the simple cases only support two dpms states. */
  3265. if (mode != DRM_MODE_DPMS_ON)
  3266. mode = DRM_MODE_DPMS_OFF;
  3267. if (mode == connector->dpms)
  3268. return;
  3269. connector->dpms = mode;
  3270. /* Only need to change hw state when actually enabled */
  3271. if (encoder->base.crtc)
  3272. intel_encoder_dpms(encoder, mode);
  3273. else
  3274. WARN_ON(encoder->connectors_active != false);
  3275. intel_modeset_check_state(connector->dev);
  3276. }
  3277. /* Simple connector->get_hw_state implementation for encoders that support only
  3278. * one connector and no cloning and hence the encoder state determines the state
  3279. * of the connector. */
  3280. bool intel_connector_get_hw_state(struct intel_connector *connector)
  3281. {
  3282. enum pipe pipe = 0;
  3283. struct intel_encoder *encoder = connector->encoder;
  3284. return encoder->get_hw_state(encoder, &pipe);
  3285. }
  3286. static bool intel_crtc_mode_fixup(struct drm_crtc *crtc,
  3287. const struct drm_display_mode *mode,
  3288. struct drm_display_mode *adjusted_mode)
  3289. {
  3290. struct drm_device *dev = crtc->dev;
  3291. if (HAS_PCH_SPLIT(dev)) {
  3292. /* FDI link clock is fixed at 2.7G */
  3293. if (mode->clock * 3 > IRONLAKE_FDI_FREQ * 4)
  3294. return false;
  3295. }
  3296. /* All interlaced capable intel hw wants timings in frames. Note though
  3297. * that intel_lvds_mode_fixup does some funny tricks with the crtc
  3298. * timings, so we need to be careful not to clobber these.*/
  3299. if (!(adjusted_mode->private_flags & INTEL_MODE_CRTC_TIMINGS_SET))
  3300. drm_mode_set_crtcinfo(adjusted_mode, 0);
  3301. /* WaPruneModeWithIncorrectHsyncOffset: Cantiga+ cannot handle modes
  3302. * with a hsync front porch of 0.
  3303. */
  3304. if ((INTEL_INFO(dev)->gen > 4 || IS_G4X(dev)) &&
  3305. adjusted_mode->hsync_start == adjusted_mode->hdisplay)
  3306. return false;
  3307. return true;
  3308. }
  3309. static int valleyview_get_display_clock_speed(struct drm_device *dev)
  3310. {
  3311. return 400000; /* FIXME */
  3312. }
  3313. static int i945_get_display_clock_speed(struct drm_device *dev)
  3314. {
  3315. return 400000;
  3316. }
  3317. static int i915_get_display_clock_speed(struct drm_device *dev)
  3318. {
  3319. return 333000;
  3320. }
  3321. static int i9xx_misc_get_display_clock_speed(struct drm_device *dev)
  3322. {
  3323. return 200000;
  3324. }
  3325. static int i915gm_get_display_clock_speed(struct drm_device *dev)
  3326. {
  3327. u16 gcfgc = 0;
  3328. pci_read_config_word(dev->pdev, GCFGC, &gcfgc);
  3329. if (gcfgc & GC_LOW_FREQUENCY_ENABLE)
  3330. return 133000;
  3331. else {
  3332. switch (gcfgc & GC_DISPLAY_CLOCK_MASK) {
  3333. case GC_DISPLAY_CLOCK_333_MHZ:
  3334. return 333000;
  3335. default:
  3336. case GC_DISPLAY_CLOCK_190_200_MHZ:
  3337. return 190000;
  3338. }
  3339. }
  3340. }
  3341. static int i865_get_display_clock_speed(struct drm_device *dev)
  3342. {
  3343. return 266000;
  3344. }
  3345. static int i855_get_display_clock_speed(struct drm_device *dev)
  3346. {
  3347. u16 hpllcc = 0;
  3348. /* Assume that the hardware is in the high speed state. This
  3349. * should be the default.
  3350. */
  3351. switch (hpllcc & GC_CLOCK_CONTROL_MASK) {
  3352. case GC_CLOCK_133_200:
  3353. case GC_CLOCK_100_200:
  3354. return 200000;
  3355. case GC_CLOCK_166_250:
  3356. return 250000;
  3357. case GC_CLOCK_100_133:
  3358. return 133000;
  3359. }
  3360. /* Shouldn't happen */
  3361. return 0;
  3362. }
  3363. static int i830_get_display_clock_speed(struct drm_device *dev)
  3364. {
  3365. return 133000;
  3366. }
  3367. struct fdi_m_n {
  3368. u32 tu;
  3369. u32 gmch_m;
  3370. u32 gmch_n;
  3371. u32 link_m;
  3372. u32 link_n;
  3373. };
  3374. static void
  3375. fdi_reduce_ratio(u32 *num, u32 *den)
  3376. {
  3377. while (*num > 0xffffff || *den > 0xffffff) {
  3378. *num >>= 1;
  3379. *den >>= 1;
  3380. }
  3381. }
  3382. static void
  3383. ironlake_compute_m_n(int bits_per_pixel, int nlanes, int pixel_clock,
  3384. int link_clock, struct fdi_m_n *m_n)
  3385. {
  3386. m_n->tu = 64; /* default size */
  3387. /* BUG_ON(pixel_clock > INT_MAX / 36); */
  3388. m_n->gmch_m = bits_per_pixel * pixel_clock;
  3389. m_n->gmch_n = link_clock * nlanes * 8;
  3390. fdi_reduce_ratio(&m_n->gmch_m, &m_n->gmch_n);
  3391. m_n->link_m = pixel_clock;
  3392. m_n->link_n = link_clock;
  3393. fdi_reduce_ratio(&m_n->link_m, &m_n->link_n);
  3394. }
  3395. static inline bool intel_panel_use_ssc(struct drm_i915_private *dev_priv)
  3396. {
  3397. if (i915_panel_use_ssc >= 0)
  3398. return i915_panel_use_ssc != 0;
  3399. return dev_priv->lvds_use_ssc
  3400. && !(dev_priv->quirks & QUIRK_LVDS_SSC_DISABLE);
  3401. }
  3402. /**
  3403. * intel_choose_pipe_bpp_dither - figure out what color depth the pipe should send
  3404. * @crtc: CRTC structure
  3405. * @mode: requested mode
  3406. *
  3407. * A pipe may be connected to one or more outputs. Based on the depth of the
  3408. * attached framebuffer, choose a good color depth to use on the pipe.
  3409. *
  3410. * If possible, match the pipe depth to the fb depth. In some cases, this
  3411. * isn't ideal, because the connected output supports a lesser or restricted
  3412. * set of depths. Resolve that here:
  3413. * LVDS typically supports only 6bpc, so clamp down in that case
  3414. * HDMI supports only 8bpc or 12bpc, so clamp to 8bpc with dither for 10bpc
  3415. * Displays may support a restricted set as well, check EDID and clamp as
  3416. * appropriate.
  3417. * DP may want to dither down to 6bpc to fit larger modes
  3418. *
  3419. * RETURNS:
  3420. * Dithering requirement (i.e. false if display bpc and pipe bpc match,
  3421. * true if they don't match).
  3422. */
  3423. static bool intel_choose_pipe_bpp_dither(struct drm_crtc *crtc,
  3424. struct drm_framebuffer *fb,
  3425. unsigned int *pipe_bpp,
  3426. struct drm_display_mode *mode)
  3427. {
  3428. struct drm_device *dev = crtc->dev;
  3429. struct drm_i915_private *dev_priv = dev->dev_private;
  3430. struct drm_connector *connector;
  3431. struct intel_encoder *intel_encoder;
  3432. unsigned int display_bpc = UINT_MAX, bpc;
  3433. /* Walk the encoders & connectors on this crtc, get min bpc */
  3434. for_each_encoder_on_crtc(dev, crtc, intel_encoder) {
  3435. if (intel_encoder->type == INTEL_OUTPUT_LVDS) {
  3436. unsigned int lvds_bpc;
  3437. if ((I915_READ(PCH_LVDS) & LVDS_A3_POWER_MASK) ==
  3438. LVDS_A3_POWER_UP)
  3439. lvds_bpc = 8;
  3440. else
  3441. lvds_bpc = 6;
  3442. if (lvds_bpc < display_bpc) {
  3443. DRM_DEBUG_KMS("clamping display bpc (was %d) to LVDS (%d)\n", display_bpc, lvds_bpc);
  3444. display_bpc = lvds_bpc;
  3445. }
  3446. continue;
  3447. }
  3448. /* Not one of the known troublemakers, check the EDID */
  3449. list_for_each_entry(connector, &dev->mode_config.connector_list,
  3450. head) {
  3451. if (connector->encoder != &intel_encoder->base)
  3452. continue;
  3453. /* Don't use an invalid EDID bpc value */
  3454. if (connector->display_info.bpc &&
  3455. connector->display_info.bpc < display_bpc) {
  3456. DRM_DEBUG_KMS("clamping display bpc (was %d) to EDID reported max of %d\n", display_bpc, connector->display_info.bpc);
  3457. display_bpc = connector->display_info.bpc;
  3458. }
  3459. }
  3460. /*
  3461. * HDMI is either 12 or 8, so if the display lets 10bpc sneak
  3462. * through, clamp it down. (Note: >12bpc will be caught below.)
  3463. */
  3464. if (intel_encoder->type == INTEL_OUTPUT_HDMI) {
  3465. if (display_bpc > 8 && display_bpc < 12) {
  3466. DRM_DEBUG_KMS("forcing bpc to 12 for HDMI\n");
  3467. display_bpc = 12;
  3468. } else {
  3469. DRM_DEBUG_KMS("forcing bpc to 8 for HDMI\n");
  3470. display_bpc = 8;
  3471. }
  3472. }
  3473. }
  3474. if (mode->private_flags & INTEL_MODE_DP_FORCE_6BPC) {
  3475. DRM_DEBUG_KMS("Dithering DP to 6bpc\n");
  3476. display_bpc = 6;
  3477. }
  3478. /*
  3479. * We could just drive the pipe at the highest bpc all the time and
  3480. * enable dithering as needed, but that costs bandwidth. So choose
  3481. * the minimum value that expresses the full color range of the fb but
  3482. * also stays within the max display bpc discovered above.
  3483. */
  3484. switch (fb->depth) {
  3485. case 8:
  3486. bpc = 8; /* since we go through a colormap */
  3487. break;
  3488. case 15:
  3489. case 16:
  3490. bpc = 6; /* min is 18bpp */
  3491. break;
  3492. case 24:
  3493. bpc = 8;
  3494. break;
  3495. case 30:
  3496. bpc = 10;
  3497. break;
  3498. case 48:
  3499. bpc = 12;
  3500. break;
  3501. default:
  3502. DRM_DEBUG("unsupported depth, assuming 24 bits\n");
  3503. bpc = min((unsigned int)8, display_bpc);
  3504. break;
  3505. }
  3506. display_bpc = min(display_bpc, bpc);
  3507. DRM_DEBUG_KMS("setting pipe bpc to %d (max display bpc %d)\n",
  3508. bpc, display_bpc);
  3509. *pipe_bpp = display_bpc * 3;
  3510. return display_bpc != bpc;
  3511. }
  3512. static int vlv_get_refclk(struct drm_crtc *crtc)
  3513. {
  3514. struct drm_device *dev = crtc->dev;
  3515. struct drm_i915_private *dev_priv = dev->dev_private;
  3516. int refclk = 27000; /* for DP & HDMI */
  3517. return 100000; /* only one validated so far */
  3518. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_ANALOG)) {
  3519. refclk = 96000;
  3520. } else if (intel_pipe_has_type(crtc, INTEL_OUTPUT_LVDS)) {
  3521. if (intel_panel_use_ssc(dev_priv))
  3522. refclk = 100000;
  3523. else
  3524. refclk = 96000;
  3525. } else if (intel_pipe_has_type(crtc, INTEL_OUTPUT_EDP)) {
  3526. refclk = 100000;
  3527. }
  3528. return refclk;
  3529. }
  3530. static int i9xx_get_refclk(struct drm_crtc *crtc, int num_connectors)
  3531. {
  3532. struct drm_device *dev = crtc->dev;
  3533. struct drm_i915_private *dev_priv = dev->dev_private;
  3534. int refclk;
  3535. if (IS_VALLEYVIEW(dev)) {
  3536. refclk = vlv_get_refclk(crtc);
  3537. } else if (intel_pipe_has_type(crtc, INTEL_OUTPUT_LVDS) &&
  3538. intel_panel_use_ssc(dev_priv) && num_connectors < 2) {
  3539. refclk = dev_priv->lvds_ssc_freq * 1000;
  3540. DRM_DEBUG_KMS("using SSC reference clock of %d MHz\n",
  3541. refclk / 1000);
  3542. } else if (!IS_GEN2(dev)) {
  3543. refclk = 96000;
  3544. } else {
  3545. refclk = 48000;
  3546. }
  3547. return refclk;
  3548. }
  3549. static void i9xx_adjust_sdvo_tv_clock(struct drm_display_mode *adjusted_mode,
  3550. intel_clock_t *clock)
  3551. {
  3552. /* SDVO TV has fixed PLL values depend on its clock range,
  3553. this mirrors vbios setting. */
  3554. if (adjusted_mode->clock >= 100000
  3555. && adjusted_mode->clock < 140500) {
  3556. clock->p1 = 2;
  3557. clock->p2 = 10;
  3558. clock->n = 3;
  3559. clock->m1 = 16;
  3560. clock->m2 = 8;
  3561. } else if (adjusted_mode->clock >= 140500
  3562. && adjusted_mode->clock <= 200000) {
  3563. clock->p1 = 1;
  3564. clock->p2 = 10;
  3565. clock->n = 6;
  3566. clock->m1 = 12;
  3567. clock->m2 = 8;
  3568. }
  3569. }
  3570. static void i9xx_update_pll_dividers(struct drm_crtc *crtc,
  3571. intel_clock_t *clock,
  3572. intel_clock_t *reduced_clock)
  3573. {
  3574. struct drm_device *dev = crtc->dev;
  3575. struct drm_i915_private *dev_priv = dev->dev_private;
  3576. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  3577. int pipe = intel_crtc->pipe;
  3578. u32 fp, fp2 = 0;
  3579. if (IS_PINEVIEW(dev)) {
  3580. fp = (1 << clock->n) << 16 | clock->m1 << 8 | clock->m2;
  3581. if (reduced_clock)
  3582. fp2 = (1 << reduced_clock->n) << 16 |
  3583. reduced_clock->m1 << 8 | reduced_clock->m2;
  3584. } else {
  3585. fp = clock->n << 16 | clock->m1 << 8 | clock->m2;
  3586. if (reduced_clock)
  3587. fp2 = reduced_clock->n << 16 | reduced_clock->m1 << 8 |
  3588. reduced_clock->m2;
  3589. }
  3590. I915_WRITE(FP0(pipe), fp);
  3591. intel_crtc->lowfreq_avail = false;
  3592. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_LVDS) &&
  3593. reduced_clock && i915_powersave) {
  3594. I915_WRITE(FP1(pipe), fp2);
  3595. intel_crtc->lowfreq_avail = true;
  3596. } else {
  3597. I915_WRITE(FP1(pipe), fp);
  3598. }
  3599. }
  3600. static void intel_update_lvds(struct drm_crtc *crtc, intel_clock_t *clock,
  3601. struct drm_display_mode *adjusted_mode)
  3602. {
  3603. struct drm_device *dev = crtc->dev;
  3604. struct drm_i915_private *dev_priv = dev->dev_private;
  3605. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  3606. int pipe = intel_crtc->pipe;
  3607. u32 temp;
  3608. temp = I915_READ(LVDS);
  3609. temp |= LVDS_PORT_EN | LVDS_A0A2_CLKA_POWER_UP;
  3610. if (pipe == 1) {
  3611. temp |= LVDS_PIPEB_SELECT;
  3612. } else {
  3613. temp &= ~LVDS_PIPEB_SELECT;
  3614. }
  3615. /* set the corresponsding LVDS_BORDER bit */
  3616. temp |= dev_priv->lvds_border_bits;
  3617. /* Set the B0-B3 data pairs corresponding to whether we're going to
  3618. * set the DPLLs for dual-channel mode or not.
  3619. */
  3620. if (clock->p2 == 7)
  3621. temp |= LVDS_B0B3_POWER_UP | LVDS_CLKB_POWER_UP;
  3622. else
  3623. temp &= ~(LVDS_B0B3_POWER_UP | LVDS_CLKB_POWER_UP);
  3624. /* It would be nice to set 24 vs 18-bit mode (LVDS_A3_POWER_UP)
  3625. * appropriately here, but we need to look more thoroughly into how
  3626. * panels behave in the two modes.
  3627. */
  3628. /* set the dithering flag on LVDS as needed */
  3629. if (INTEL_INFO(dev)->gen >= 4) {
  3630. if (dev_priv->lvds_dither)
  3631. temp |= LVDS_ENABLE_DITHER;
  3632. else
  3633. temp &= ~LVDS_ENABLE_DITHER;
  3634. }
  3635. temp &= ~(LVDS_HSYNC_POLARITY | LVDS_VSYNC_POLARITY);
  3636. if (adjusted_mode->flags & DRM_MODE_FLAG_NHSYNC)
  3637. temp |= LVDS_HSYNC_POLARITY;
  3638. if (adjusted_mode->flags & DRM_MODE_FLAG_NVSYNC)
  3639. temp |= LVDS_VSYNC_POLARITY;
  3640. I915_WRITE(LVDS, temp);
  3641. }
  3642. static void vlv_update_pll(struct drm_crtc *crtc,
  3643. struct drm_display_mode *mode,
  3644. struct drm_display_mode *adjusted_mode,
  3645. intel_clock_t *clock, intel_clock_t *reduced_clock,
  3646. int num_connectors)
  3647. {
  3648. struct drm_device *dev = crtc->dev;
  3649. struct drm_i915_private *dev_priv = dev->dev_private;
  3650. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  3651. int pipe = intel_crtc->pipe;
  3652. u32 dpll, mdiv, pdiv;
  3653. u32 bestn, bestm1, bestm2, bestp1, bestp2;
  3654. bool is_sdvo;
  3655. u32 temp;
  3656. is_sdvo = intel_pipe_has_type(crtc, INTEL_OUTPUT_SDVO) ||
  3657. intel_pipe_has_type(crtc, INTEL_OUTPUT_HDMI);
  3658. dpll = DPLL_VGA_MODE_DIS;
  3659. dpll |= DPLL_EXT_BUFFER_ENABLE_VLV;
  3660. dpll |= DPLL_REFA_CLK_ENABLE_VLV;
  3661. dpll |= DPLL_INTEGRATED_CLOCK_VLV;
  3662. I915_WRITE(DPLL(pipe), dpll);
  3663. POSTING_READ(DPLL(pipe));
  3664. bestn = clock->n;
  3665. bestm1 = clock->m1;
  3666. bestm2 = clock->m2;
  3667. bestp1 = clock->p1;
  3668. bestp2 = clock->p2;
  3669. /*
  3670. * In Valleyview PLL and program lane counter registers are exposed
  3671. * through DPIO interface
  3672. */
  3673. mdiv = ((bestm1 << DPIO_M1DIV_SHIFT) | (bestm2 & DPIO_M2DIV_MASK));
  3674. mdiv |= ((bestp1 << DPIO_P1_SHIFT) | (bestp2 << DPIO_P2_SHIFT));
  3675. mdiv |= ((bestn << DPIO_N_SHIFT));
  3676. mdiv |= (1 << DPIO_POST_DIV_SHIFT);
  3677. mdiv |= (1 << DPIO_K_SHIFT);
  3678. mdiv |= DPIO_ENABLE_CALIBRATION;
  3679. intel_dpio_write(dev_priv, DPIO_DIV(pipe), mdiv);
  3680. intel_dpio_write(dev_priv, DPIO_CORE_CLK(pipe), 0x01000000);
  3681. pdiv = (1 << DPIO_REFSEL_OVERRIDE) | (5 << DPIO_PLL_MODESEL_SHIFT) |
  3682. (3 << DPIO_BIAS_CURRENT_CTL_SHIFT) | (1<<20) |
  3683. (7 << DPIO_PLL_REFCLK_SEL_SHIFT) | (8 << DPIO_DRIVER_CTL_SHIFT) |
  3684. (5 << DPIO_CLK_BIAS_CTL_SHIFT);
  3685. intel_dpio_write(dev_priv, DPIO_REFSFR(pipe), pdiv);
  3686. intel_dpio_write(dev_priv, DPIO_LFP_COEFF(pipe), 0x005f003b);
  3687. dpll |= DPLL_VCO_ENABLE;
  3688. I915_WRITE(DPLL(pipe), dpll);
  3689. POSTING_READ(DPLL(pipe));
  3690. if (wait_for(((I915_READ(DPLL(pipe)) & DPLL_LOCK_VLV) == DPLL_LOCK_VLV), 1))
  3691. DRM_ERROR("DPLL %d failed to lock\n", pipe);
  3692. intel_dpio_write(dev_priv, DPIO_FASTCLK_DISABLE, 0x620);
  3693. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_DISPLAYPORT))
  3694. intel_dp_set_m_n(crtc, mode, adjusted_mode);
  3695. I915_WRITE(DPLL(pipe), dpll);
  3696. /* Wait for the clocks to stabilize. */
  3697. POSTING_READ(DPLL(pipe));
  3698. udelay(150);
  3699. temp = 0;
  3700. if (is_sdvo) {
  3701. temp = intel_mode_get_pixel_multiplier(adjusted_mode);
  3702. if (temp > 1)
  3703. temp = (temp - 1) << DPLL_MD_UDI_MULTIPLIER_SHIFT;
  3704. else
  3705. temp = 0;
  3706. }
  3707. I915_WRITE(DPLL_MD(pipe), temp);
  3708. POSTING_READ(DPLL_MD(pipe));
  3709. /* Now program lane control registers */
  3710. if(intel_pipe_has_type(crtc, INTEL_OUTPUT_DISPLAYPORT)
  3711. || intel_pipe_has_type(crtc, INTEL_OUTPUT_HDMI))
  3712. {
  3713. temp = 0x1000C4;
  3714. if(pipe == 1)
  3715. temp |= (1 << 21);
  3716. intel_dpio_write(dev_priv, DPIO_DATA_CHANNEL1, temp);
  3717. }
  3718. if(intel_pipe_has_type(crtc,INTEL_OUTPUT_EDP))
  3719. {
  3720. temp = 0x1000C4;
  3721. if(pipe == 1)
  3722. temp |= (1 << 21);
  3723. intel_dpio_write(dev_priv, DPIO_DATA_CHANNEL2, temp);
  3724. }
  3725. }
  3726. static void i9xx_update_pll(struct drm_crtc *crtc,
  3727. struct drm_display_mode *mode,
  3728. struct drm_display_mode *adjusted_mode,
  3729. intel_clock_t *clock, intel_clock_t *reduced_clock,
  3730. int num_connectors)
  3731. {
  3732. struct drm_device *dev = crtc->dev;
  3733. struct drm_i915_private *dev_priv = dev->dev_private;
  3734. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  3735. int pipe = intel_crtc->pipe;
  3736. u32 dpll;
  3737. bool is_sdvo;
  3738. i9xx_update_pll_dividers(crtc, clock, reduced_clock);
  3739. is_sdvo = intel_pipe_has_type(crtc, INTEL_OUTPUT_SDVO) ||
  3740. intel_pipe_has_type(crtc, INTEL_OUTPUT_HDMI);
  3741. dpll = DPLL_VGA_MODE_DIS;
  3742. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_LVDS))
  3743. dpll |= DPLLB_MODE_LVDS;
  3744. else
  3745. dpll |= DPLLB_MODE_DAC_SERIAL;
  3746. if (is_sdvo) {
  3747. int pixel_multiplier = intel_mode_get_pixel_multiplier(adjusted_mode);
  3748. if (pixel_multiplier > 1) {
  3749. if (IS_I945G(dev) || IS_I945GM(dev) || IS_G33(dev))
  3750. dpll |= (pixel_multiplier - 1) << SDVO_MULTIPLIER_SHIFT_HIRES;
  3751. }
  3752. dpll |= DPLL_DVO_HIGH_SPEED;
  3753. }
  3754. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_DISPLAYPORT))
  3755. dpll |= DPLL_DVO_HIGH_SPEED;
  3756. /* compute bitmask from p1 value */
  3757. if (IS_PINEVIEW(dev))
  3758. dpll |= (1 << (clock->p1 - 1)) << DPLL_FPA01_P1_POST_DIV_SHIFT_PINEVIEW;
  3759. else {
  3760. dpll |= (1 << (clock->p1 - 1)) << DPLL_FPA01_P1_POST_DIV_SHIFT;
  3761. if (IS_G4X(dev) && reduced_clock)
  3762. dpll |= (1 << (reduced_clock->p1 - 1)) << DPLL_FPA1_P1_POST_DIV_SHIFT;
  3763. }
  3764. switch (clock->p2) {
  3765. case 5:
  3766. dpll |= DPLL_DAC_SERIAL_P2_CLOCK_DIV_5;
  3767. break;
  3768. case 7:
  3769. dpll |= DPLLB_LVDS_P2_CLOCK_DIV_7;
  3770. break;
  3771. case 10:
  3772. dpll |= DPLL_DAC_SERIAL_P2_CLOCK_DIV_10;
  3773. break;
  3774. case 14:
  3775. dpll |= DPLLB_LVDS_P2_CLOCK_DIV_14;
  3776. break;
  3777. }
  3778. if (INTEL_INFO(dev)->gen >= 4)
  3779. dpll |= (6 << PLL_LOAD_PULSE_PHASE_SHIFT);
  3780. if (is_sdvo && intel_pipe_has_type(crtc, INTEL_OUTPUT_TVOUT))
  3781. dpll |= PLL_REF_INPUT_TVCLKINBC;
  3782. else if (intel_pipe_has_type(crtc, INTEL_OUTPUT_TVOUT))
  3783. /* XXX: just matching BIOS for now */
  3784. /* dpll |= PLL_REF_INPUT_TVCLKINBC; */
  3785. dpll |= 3;
  3786. else if (intel_pipe_has_type(crtc, INTEL_OUTPUT_LVDS) &&
  3787. intel_panel_use_ssc(dev_priv) && num_connectors < 2)
  3788. dpll |= PLLB_REF_INPUT_SPREADSPECTRUMIN;
  3789. else
  3790. dpll |= PLL_REF_INPUT_DREFCLK;
  3791. dpll |= DPLL_VCO_ENABLE;
  3792. I915_WRITE(DPLL(pipe), dpll & ~DPLL_VCO_ENABLE);
  3793. POSTING_READ(DPLL(pipe));
  3794. udelay(150);
  3795. /* The LVDS pin pair needs to be on before the DPLLs are enabled.
  3796. * This is an exception to the general rule that mode_set doesn't turn
  3797. * things on.
  3798. */
  3799. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_LVDS))
  3800. intel_update_lvds(crtc, clock, adjusted_mode);
  3801. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_DISPLAYPORT))
  3802. intel_dp_set_m_n(crtc, mode, adjusted_mode);
  3803. I915_WRITE(DPLL(pipe), dpll);
  3804. /* Wait for the clocks to stabilize. */
  3805. POSTING_READ(DPLL(pipe));
  3806. udelay(150);
  3807. if (INTEL_INFO(dev)->gen >= 4) {
  3808. u32 temp = 0;
  3809. if (is_sdvo) {
  3810. temp = intel_mode_get_pixel_multiplier(adjusted_mode);
  3811. if (temp > 1)
  3812. temp = (temp - 1) << DPLL_MD_UDI_MULTIPLIER_SHIFT;
  3813. else
  3814. temp = 0;
  3815. }
  3816. I915_WRITE(DPLL_MD(pipe), temp);
  3817. } else {
  3818. /* The pixel multiplier can only be updated once the
  3819. * DPLL is enabled and the clocks are stable.
  3820. *
  3821. * So write it again.
  3822. */
  3823. I915_WRITE(DPLL(pipe), dpll);
  3824. }
  3825. }
  3826. static void i8xx_update_pll(struct drm_crtc *crtc,
  3827. struct drm_display_mode *adjusted_mode,
  3828. intel_clock_t *clock, intel_clock_t *reduced_clock,
  3829. int num_connectors)
  3830. {
  3831. struct drm_device *dev = crtc->dev;
  3832. struct drm_i915_private *dev_priv = dev->dev_private;
  3833. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  3834. int pipe = intel_crtc->pipe;
  3835. u32 dpll;
  3836. i9xx_update_pll_dividers(crtc, clock, reduced_clock);
  3837. dpll = DPLL_VGA_MODE_DIS;
  3838. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_LVDS)) {
  3839. dpll |= (1 << (clock->p1 - 1)) << DPLL_FPA01_P1_POST_DIV_SHIFT;
  3840. } else {
  3841. if (clock->p1 == 2)
  3842. dpll |= PLL_P1_DIVIDE_BY_TWO;
  3843. else
  3844. dpll |= (clock->p1 - 2) << DPLL_FPA01_P1_POST_DIV_SHIFT;
  3845. if (clock->p2 == 4)
  3846. dpll |= PLL_P2_DIVIDE_BY_4;
  3847. }
  3848. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_TVOUT))
  3849. /* XXX: just matching BIOS for now */
  3850. /* dpll |= PLL_REF_INPUT_TVCLKINBC; */
  3851. dpll |= 3;
  3852. else if (intel_pipe_has_type(crtc, INTEL_OUTPUT_LVDS) &&
  3853. intel_panel_use_ssc(dev_priv) && num_connectors < 2)
  3854. dpll |= PLLB_REF_INPUT_SPREADSPECTRUMIN;
  3855. else
  3856. dpll |= PLL_REF_INPUT_DREFCLK;
  3857. dpll |= DPLL_VCO_ENABLE;
  3858. I915_WRITE(DPLL(pipe), dpll & ~DPLL_VCO_ENABLE);
  3859. POSTING_READ(DPLL(pipe));
  3860. udelay(150);
  3861. /* The LVDS pin pair needs to be on before the DPLLs are enabled.
  3862. * This is an exception to the general rule that mode_set doesn't turn
  3863. * things on.
  3864. */
  3865. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_LVDS))
  3866. intel_update_lvds(crtc, clock, adjusted_mode);
  3867. I915_WRITE(DPLL(pipe), dpll);
  3868. /* Wait for the clocks to stabilize. */
  3869. POSTING_READ(DPLL(pipe));
  3870. udelay(150);
  3871. /* The pixel multiplier can only be updated once the
  3872. * DPLL is enabled and the clocks are stable.
  3873. *
  3874. * So write it again.
  3875. */
  3876. I915_WRITE(DPLL(pipe), dpll);
  3877. }
  3878. static void intel_set_pipe_timings(struct intel_crtc *intel_crtc,
  3879. struct drm_display_mode *mode,
  3880. struct drm_display_mode *adjusted_mode)
  3881. {
  3882. struct drm_device *dev = intel_crtc->base.dev;
  3883. struct drm_i915_private *dev_priv = dev->dev_private;
  3884. enum pipe pipe = intel_crtc->pipe;
  3885. enum transcoder cpu_transcoder = intel_crtc->cpu_transcoder;
  3886. uint32_t vsyncshift;
  3887. if (!IS_GEN2(dev) && adjusted_mode->flags & DRM_MODE_FLAG_INTERLACE) {
  3888. /* the chip adds 2 halflines automatically */
  3889. adjusted_mode->crtc_vtotal -= 1;
  3890. adjusted_mode->crtc_vblank_end -= 1;
  3891. vsyncshift = adjusted_mode->crtc_hsync_start
  3892. - adjusted_mode->crtc_htotal / 2;
  3893. } else {
  3894. vsyncshift = 0;
  3895. }
  3896. if (INTEL_INFO(dev)->gen > 3)
  3897. I915_WRITE(VSYNCSHIFT(cpu_transcoder), vsyncshift);
  3898. I915_WRITE(HTOTAL(cpu_transcoder),
  3899. (adjusted_mode->crtc_hdisplay - 1) |
  3900. ((adjusted_mode->crtc_htotal - 1) << 16));
  3901. I915_WRITE(HBLANK(cpu_transcoder),
  3902. (adjusted_mode->crtc_hblank_start - 1) |
  3903. ((adjusted_mode->crtc_hblank_end - 1) << 16));
  3904. I915_WRITE(HSYNC(cpu_transcoder),
  3905. (adjusted_mode->crtc_hsync_start - 1) |
  3906. ((adjusted_mode->crtc_hsync_end - 1) << 16));
  3907. I915_WRITE(VTOTAL(cpu_transcoder),
  3908. (adjusted_mode->crtc_vdisplay - 1) |
  3909. ((adjusted_mode->crtc_vtotal - 1) << 16));
  3910. I915_WRITE(VBLANK(cpu_transcoder),
  3911. (adjusted_mode->crtc_vblank_start - 1) |
  3912. ((adjusted_mode->crtc_vblank_end - 1) << 16));
  3913. I915_WRITE(VSYNC(cpu_transcoder),
  3914. (adjusted_mode->crtc_vsync_start - 1) |
  3915. ((adjusted_mode->crtc_vsync_end - 1) << 16));
  3916. /* Workaround: when the EDP input selection is B, the VTOTAL_B must be
  3917. * programmed with the VTOTAL_EDP value. Same for VTOTAL_C. This is
  3918. * documented on the DDI_FUNC_CTL register description, EDP Input Select
  3919. * bits. */
  3920. if (IS_HASWELL(dev) && cpu_transcoder == TRANSCODER_EDP &&
  3921. (pipe == PIPE_B || pipe == PIPE_C))
  3922. I915_WRITE(VTOTAL(pipe), I915_READ(VTOTAL(cpu_transcoder)));
  3923. /* pipesrc controls the size that is scaled from, which should
  3924. * always be the user's requested size.
  3925. */
  3926. I915_WRITE(PIPESRC(pipe),
  3927. ((mode->hdisplay - 1) << 16) | (mode->vdisplay - 1));
  3928. }
  3929. static int i9xx_crtc_mode_set(struct drm_crtc *crtc,
  3930. struct drm_display_mode *mode,
  3931. struct drm_display_mode *adjusted_mode,
  3932. int x, int y,
  3933. struct drm_framebuffer *fb)
  3934. {
  3935. struct drm_device *dev = crtc->dev;
  3936. struct drm_i915_private *dev_priv = dev->dev_private;
  3937. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  3938. int pipe = intel_crtc->pipe;
  3939. int plane = intel_crtc->plane;
  3940. int refclk, num_connectors = 0;
  3941. intel_clock_t clock, reduced_clock;
  3942. u32 dspcntr, pipeconf;
  3943. bool ok, has_reduced_clock = false, is_sdvo = false;
  3944. bool is_lvds = false, is_tv = false, is_dp = false;
  3945. struct intel_encoder *encoder;
  3946. const intel_limit_t *limit;
  3947. int ret;
  3948. for_each_encoder_on_crtc(dev, crtc, encoder) {
  3949. switch (encoder->type) {
  3950. case INTEL_OUTPUT_LVDS:
  3951. is_lvds = true;
  3952. break;
  3953. case INTEL_OUTPUT_SDVO:
  3954. case INTEL_OUTPUT_HDMI:
  3955. is_sdvo = true;
  3956. if (encoder->needs_tv_clock)
  3957. is_tv = true;
  3958. break;
  3959. case INTEL_OUTPUT_TVOUT:
  3960. is_tv = true;
  3961. break;
  3962. case INTEL_OUTPUT_DISPLAYPORT:
  3963. is_dp = true;
  3964. break;
  3965. }
  3966. num_connectors++;
  3967. }
  3968. refclk = i9xx_get_refclk(crtc, num_connectors);
  3969. /*
  3970. * Returns a set of divisors for the desired target clock with the given
  3971. * refclk, or FALSE. The returned values represent the clock equation:
  3972. * reflck * (5 * (m1 + 2) + (m2 + 2)) / (n + 2) / p1 / p2.
  3973. */
  3974. limit = intel_limit(crtc, refclk);
  3975. ok = limit->find_pll(limit, crtc, adjusted_mode->clock, refclk, NULL,
  3976. &clock);
  3977. if (!ok) {
  3978. DRM_ERROR("Couldn't find PLL settings for mode!\n");
  3979. return -EINVAL;
  3980. }
  3981. /* Ensure that the cursor is valid for the new mode before changing... */
  3982. intel_crtc_update_cursor(crtc, true);
  3983. if (is_lvds && dev_priv->lvds_downclock_avail) {
  3984. /*
  3985. * Ensure we match the reduced clock's P to the target clock.
  3986. * If the clocks don't match, we can't switch the display clock
  3987. * by using the FP0/FP1. In such case we will disable the LVDS
  3988. * downclock feature.
  3989. */
  3990. has_reduced_clock = limit->find_pll(limit, crtc,
  3991. dev_priv->lvds_downclock,
  3992. refclk,
  3993. &clock,
  3994. &reduced_clock);
  3995. }
  3996. if (is_sdvo && is_tv)
  3997. i9xx_adjust_sdvo_tv_clock(adjusted_mode, &clock);
  3998. if (IS_GEN2(dev))
  3999. i8xx_update_pll(crtc, adjusted_mode, &clock,
  4000. has_reduced_clock ? &reduced_clock : NULL,
  4001. num_connectors);
  4002. else if (IS_VALLEYVIEW(dev))
  4003. vlv_update_pll(crtc, mode, adjusted_mode, &clock,
  4004. has_reduced_clock ? &reduced_clock : NULL,
  4005. num_connectors);
  4006. else
  4007. i9xx_update_pll(crtc, mode, adjusted_mode, &clock,
  4008. has_reduced_clock ? &reduced_clock : NULL,
  4009. num_connectors);
  4010. /* setup pipeconf */
  4011. pipeconf = I915_READ(PIPECONF(pipe));
  4012. /* Set up the display plane register */
  4013. dspcntr = DISPPLANE_GAMMA_ENABLE;
  4014. if (pipe == 0)
  4015. dspcntr &= ~DISPPLANE_SEL_PIPE_MASK;
  4016. else
  4017. dspcntr |= DISPPLANE_SEL_PIPE_B;
  4018. if (pipe == 0 && INTEL_INFO(dev)->gen < 4) {
  4019. /* Enable pixel doubling when the dot clock is > 90% of the (display)
  4020. * core speed.
  4021. *
  4022. * XXX: No double-wide on 915GM pipe B. Is that the only reason for the
  4023. * pipe == 0 check?
  4024. */
  4025. if (mode->clock >
  4026. dev_priv->display.get_display_clock_speed(dev) * 9 / 10)
  4027. pipeconf |= PIPECONF_DOUBLE_WIDE;
  4028. else
  4029. pipeconf &= ~PIPECONF_DOUBLE_WIDE;
  4030. }
  4031. /* default to 8bpc */
  4032. pipeconf &= ~(PIPECONF_BPP_MASK | PIPECONF_DITHER_EN);
  4033. if (is_dp) {
  4034. if (adjusted_mode->private_flags & INTEL_MODE_DP_FORCE_6BPC) {
  4035. pipeconf |= PIPECONF_BPP_6 |
  4036. PIPECONF_DITHER_EN |
  4037. PIPECONF_DITHER_TYPE_SP;
  4038. }
  4039. }
  4040. if (IS_VALLEYVIEW(dev) && intel_pipe_has_type(crtc, INTEL_OUTPUT_EDP)) {
  4041. if (adjusted_mode->private_flags & INTEL_MODE_DP_FORCE_6BPC) {
  4042. pipeconf |= PIPECONF_BPP_6 |
  4043. PIPECONF_ENABLE |
  4044. I965_PIPECONF_ACTIVE;
  4045. }
  4046. }
  4047. DRM_DEBUG_KMS("Mode for pipe %c:\n", pipe == 0 ? 'A' : 'B');
  4048. drm_mode_debug_printmodeline(mode);
  4049. if (HAS_PIPE_CXSR(dev)) {
  4050. if (intel_crtc->lowfreq_avail) {
  4051. DRM_DEBUG_KMS("enabling CxSR downclocking\n");
  4052. pipeconf |= PIPECONF_CXSR_DOWNCLOCK;
  4053. } else {
  4054. DRM_DEBUG_KMS("disabling CxSR downclocking\n");
  4055. pipeconf &= ~PIPECONF_CXSR_DOWNCLOCK;
  4056. }
  4057. }
  4058. pipeconf &= ~PIPECONF_INTERLACE_MASK;
  4059. if (!IS_GEN2(dev) &&
  4060. adjusted_mode->flags & DRM_MODE_FLAG_INTERLACE)
  4061. pipeconf |= PIPECONF_INTERLACE_W_FIELD_INDICATION;
  4062. else
  4063. pipeconf |= PIPECONF_PROGRESSIVE;
  4064. intel_set_pipe_timings(intel_crtc, mode, adjusted_mode);
  4065. /* pipesrc and dspsize control the size that is scaled from,
  4066. * which should always be the user's requested size.
  4067. */
  4068. I915_WRITE(DSPSIZE(plane),
  4069. ((mode->vdisplay - 1) << 16) |
  4070. (mode->hdisplay - 1));
  4071. I915_WRITE(DSPPOS(plane), 0);
  4072. I915_WRITE(PIPECONF(pipe), pipeconf);
  4073. POSTING_READ(PIPECONF(pipe));
  4074. intel_enable_pipe(dev_priv, pipe, false);
  4075. intel_wait_for_vblank(dev, pipe);
  4076. I915_WRITE(DSPCNTR(plane), dspcntr);
  4077. POSTING_READ(DSPCNTR(plane));
  4078. ret = intel_pipe_set_base(crtc, x, y, fb);
  4079. intel_update_watermarks(dev);
  4080. return ret;
  4081. }
  4082. /*
  4083. * Initialize reference clocks when the driver loads
  4084. */
  4085. void ironlake_init_pch_refclk(struct drm_device *dev)
  4086. {
  4087. struct drm_i915_private *dev_priv = dev->dev_private;
  4088. struct drm_mode_config *mode_config = &dev->mode_config;
  4089. struct intel_encoder *encoder;
  4090. u32 temp;
  4091. bool has_lvds = false;
  4092. bool has_cpu_edp = false;
  4093. bool has_pch_edp = false;
  4094. bool has_panel = false;
  4095. bool has_ck505 = false;
  4096. bool can_ssc = false;
  4097. /* We need to take the global config into account */
  4098. list_for_each_entry(encoder, &mode_config->encoder_list,
  4099. base.head) {
  4100. switch (encoder->type) {
  4101. case INTEL_OUTPUT_LVDS:
  4102. has_panel = true;
  4103. has_lvds = true;
  4104. break;
  4105. case INTEL_OUTPUT_EDP:
  4106. has_panel = true;
  4107. if (intel_encoder_is_pch_edp(&encoder->base))
  4108. has_pch_edp = true;
  4109. else
  4110. has_cpu_edp = true;
  4111. break;
  4112. }
  4113. }
  4114. if (HAS_PCH_IBX(dev)) {
  4115. has_ck505 = dev_priv->display_clock_mode;
  4116. can_ssc = has_ck505;
  4117. } else {
  4118. has_ck505 = false;
  4119. can_ssc = true;
  4120. }
  4121. DRM_DEBUG_KMS("has_panel %d has_lvds %d has_pch_edp %d has_cpu_edp %d has_ck505 %d\n",
  4122. has_panel, has_lvds, has_pch_edp, has_cpu_edp,
  4123. has_ck505);
  4124. /* Ironlake: try to setup display ref clock before DPLL
  4125. * enabling. This is only under driver's control after
  4126. * PCH B stepping, previous chipset stepping should be
  4127. * ignoring this setting.
  4128. */
  4129. temp = I915_READ(PCH_DREF_CONTROL);
  4130. /* Always enable nonspread source */
  4131. temp &= ~DREF_NONSPREAD_SOURCE_MASK;
  4132. if (has_ck505)
  4133. temp |= DREF_NONSPREAD_CK505_ENABLE;
  4134. else
  4135. temp |= DREF_NONSPREAD_SOURCE_ENABLE;
  4136. if (has_panel) {
  4137. temp &= ~DREF_SSC_SOURCE_MASK;
  4138. temp |= DREF_SSC_SOURCE_ENABLE;
  4139. /* SSC must be turned on before enabling the CPU output */
  4140. if (intel_panel_use_ssc(dev_priv) && can_ssc) {
  4141. DRM_DEBUG_KMS("Using SSC on panel\n");
  4142. temp |= DREF_SSC1_ENABLE;
  4143. } else
  4144. temp &= ~DREF_SSC1_ENABLE;
  4145. /* Get SSC going before enabling the outputs */
  4146. I915_WRITE(PCH_DREF_CONTROL, temp);
  4147. POSTING_READ(PCH_DREF_CONTROL);
  4148. udelay(200);
  4149. temp &= ~DREF_CPU_SOURCE_OUTPUT_MASK;
  4150. /* Enable CPU source on CPU attached eDP */
  4151. if (has_cpu_edp) {
  4152. if (intel_panel_use_ssc(dev_priv) && can_ssc) {
  4153. DRM_DEBUG_KMS("Using SSC on eDP\n");
  4154. temp |= DREF_CPU_SOURCE_OUTPUT_DOWNSPREAD;
  4155. }
  4156. else
  4157. temp |= DREF_CPU_SOURCE_OUTPUT_NONSPREAD;
  4158. } else
  4159. temp |= DREF_CPU_SOURCE_OUTPUT_DISABLE;
  4160. I915_WRITE(PCH_DREF_CONTROL, temp);
  4161. POSTING_READ(PCH_DREF_CONTROL);
  4162. udelay(200);
  4163. } else {
  4164. DRM_DEBUG_KMS("Disabling SSC entirely\n");
  4165. temp &= ~DREF_CPU_SOURCE_OUTPUT_MASK;
  4166. /* Turn off CPU output */
  4167. temp |= DREF_CPU_SOURCE_OUTPUT_DISABLE;
  4168. I915_WRITE(PCH_DREF_CONTROL, temp);
  4169. POSTING_READ(PCH_DREF_CONTROL);
  4170. udelay(200);
  4171. /* Turn off the SSC source */
  4172. temp &= ~DREF_SSC_SOURCE_MASK;
  4173. temp |= DREF_SSC_SOURCE_DISABLE;
  4174. /* Turn off SSC1 */
  4175. temp &= ~ DREF_SSC1_ENABLE;
  4176. I915_WRITE(PCH_DREF_CONTROL, temp);
  4177. POSTING_READ(PCH_DREF_CONTROL);
  4178. udelay(200);
  4179. }
  4180. }
  4181. static int ironlake_get_refclk(struct drm_crtc *crtc)
  4182. {
  4183. struct drm_device *dev = crtc->dev;
  4184. struct drm_i915_private *dev_priv = dev->dev_private;
  4185. struct intel_encoder *encoder;
  4186. struct intel_encoder *edp_encoder = NULL;
  4187. int num_connectors = 0;
  4188. bool is_lvds = false;
  4189. for_each_encoder_on_crtc(dev, crtc, encoder) {
  4190. switch (encoder->type) {
  4191. case INTEL_OUTPUT_LVDS:
  4192. is_lvds = true;
  4193. break;
  4194. case INTEL_OUTPUT_EDP:
  4195. edp_encoder = encoder;
  4196. break;
  4197. }
  4198. num_connectors++;
  4199. }
  4200. if (is_lvds && intel_panel_use_ssc(dev_priv) && num_connectors < 2) {
  4201. DRM_DEBUG_KMS("using SSC reference clock of %d MHz\n",
  4202. dev_priv->lvds_ssc_freq);
  4203. return dev_priv->lvds_ssc_freq * 1000;
  4204. }
  4205. return 120000;
  4206. }
  4207. static void ironlake_set_pipeconf(struct drm_crtc *crtc,
  4208. struct drm_display_mode *adjusted_mode,
  4209. bool dither)
  4210. {
  4211. struct drm_i915_private *dev_priv = crtc->dev->dev_private;
  4212. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  4213. int pipe = intel_crtc->pipe;
  4214. uint32_t val;
  4215. val = I915_READ(PIPECONF(pipe));
  4216. val &= ~PIPE_BPC_MASK;
  4217. switch (intel_crtc->bpp) {
  4218. case 18:
  4219. val |= PIPE_6BPC;
  4220. break;
  4221. case 24:
  4222. val |= PIPE_8BPC;
  4223. break;
  4224. case 30:
  4225. val |= PIPE_10BPC;
  4226. break;
  4227. case 36:
  4228. val |= PIPE_12BPC;
  4229. break;
  4230. default:
  4231. /* Case prevented by intel_choose_pipe_bpp_dither. */
  4232. BUG();
  4233. }
  4234. val &= ~(PIPECONF_DITHER_EN | PIPECONF_DITHER_TYPE_MASK);
  4235. if (dither)
  4236. val |= (PIPECONF_DITHER_EN | PIPECONF_DITHER_TYPE_SP);
  4237. val &= ~PIPECONF_INTERLACE_MASK;
  4238. if (adjusted_mode->flags & DRM_MODE_FLAG_INTERLACE)
  4239. val |= PIPECONF_INTERLACED_ILK;
  4240. else
  4241. val |= PIPECONF_PROGRESSIVE;
  4242. I915_WRITE(PIPECONF(pipe), val);
  4243. POSTING_READ(PIPECONF(pipe));
  4244. }
  4245. static void haswell_set_pipeconf(struct drm_crtc *crtc,
  4246. struct drm_display_mode *adjusted_mode,
  4247. bool dither)
  4248. {
  4249. struct drm_i915_private *dev_priv = crtc->dev->dev_private;
  4250. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  4251. enum transcoder cpu_transcoder = intel_crtc->cpu_transcoder;
  4252. uint32_t val;
  4253. val = I915_READ(PIPECONF(cpu_transcoder));
  4254. val &= ~(PIPECONF_DITHER_EN | PIPECONF_DITHER_TYPE_MASK);
  4255. if (dither)
  4256. val |= (PIPECONF_DITHER_EN | PIPECONF_DITHER_TYPE_SP);
  4257. val &= ~PIPECONF_INTERLACE_MASK_HSW;
  4258. if (adjusted_mode->flags & DRM_MODE_FLAG_INTERLACE)
  4259. val |= PIPECONF_INTERLACED_ILK;
  4260. else
  4261. val |= PIPECONF_PROGRESSIVE;
  4262. I915_WRITE(PIPECONF(cpu_transcoder), val);
  4263. POSTING_READ(PIPECONF(cpu_transcoder));
  4264. }
  4265. static bool ironlake_compute_clocks(struct drm_crtc *crtc,
  4266. struct drm_display_mode *adjusted_mode,
  4267. intel_clock_t *clock,
  4268. bool *has_reduced_clock,
  4269. intel_clock_t *reduced_clock)
  4270. {
  4271. struct drm_device *dev = crtc->dev;
  4272. struct drm_i915_private *dev_priv = dev->dev_private;
  4273. struct intel_encoder *intel_encoder;
  4274. int refclk;
  4275. const intel_limit_t *limit;
  4276. bool ret, is_sdvo = false, is_tv = false, is_lvds = false;
  4277. for_each_encoder_on_crtc(dev, crtc, intel_encoder) {
  4278. switch (intel_encoder->type) {
  4279. case INTEL_OUTPUT_LVDS:
  4280. is_lvds = true;
  4281. break;
  4282. case INTEL_OUTPUT_SDVO:
  4283. case INTEL_OUTPUT_HDMI:
  4284. is_sdvo = true;
  4285. if (intel_encoder->needs_tv_clock)
  4286. is_tv = true;
  4287. break;
  4288. case INTEL_OUTPUT_TVOUT:
  4289. is_tv = true;
  4290. break;
  4291. }
  4292. }
  4293. refclk = ironlake_get_refclk(crtc);
  4294. /*
  4295. * Returns a set of divisors for the desired target clock with the given
  4296. * refclk, or FALSE. The returned values represent the clock equation:
  4297. * reflck * (5 * (m1 + 2) + (m2 + 2)) / (n + 2) / p1 / p2.
  4298. */
  4299. limit = intel_limit(crtc, refclk);
  4300. ret = limit->find_pll(limit, crtc, adjusted_mode->clock, refclk, NULL,
  4301. clock);
  4302. if (!ret)
  4303. return false;
  4304. if (is_lvds && dev_priv->lvds_downclock_avail) {
  4305. /*
  4306. * Ensure we match the reduced clock's P to the target clock.
  4307. * If the clocks don't match, we can't switch the display clock
  4308. * by using the FP0/FP1. In such case we will disable the LVDS
  4309. * downclock feature.
  4310. */
  4311. *has_reduced_clock = limit->find_pll(limit, crtc,
  4312. dev_priv->lvds_downclock,
  4313. refclk,
  4314. clock,
  4315. reduced_clock);
  4316. }
  4317. if (is_sdvo && is_tv)
  4318. i9xx_adjust_sdvo_tv_clock(adjusted_mode, clock);
  4319. return true;
  4320. }
  4321. static void cpt_enable_fdi_bc_bifurcation(struct drm_device *dev)
  4322. {
  4323. struct drm_i915_private *dev_priv = dev->dev_private;
  4324. uint32_t temp;
  4325. temp = I915_READ(SOUTH_CHICKEN1);
  4326. if (temp & FDI_BC_BIFURCATION_SELECT)
  4327. return;
  4328. WARN_ON(I915_READ(FDI_RX_CTL(PIPE_B)) & FDI_RX_ENABLE);
  4329. WARN_ON(I915_READ(FDI_RX_CTL(PIPE_C)) & FDI_RX_ENABLE);
  4330. temp |= FDI_BC_BIFURCATION_SELECT;
  4331. DRM_DEBUG_KMS("enabling fdi C rx\n");
  4332. I915_WRITE(SOUTH_CHICKEN1, temp);
  4333. POSTING_READ(SOUTH_CHICKEN1);
  4334. }
  4335. static bool ironlake_check_fdi_lanes(struct intel_crtc *intel_crtc)
  4336. {
  4337. struct drm_device *dev = intel_crtc->base.dev;
  4338. struct drm_i915_private *dev_priv = dev->dev_private;
  4339. struct intel_crtc *pipe_B_crtc =
  4340. to_intel_crtc(dev_priv->pipe_to_crtc_mapping[PIPE_B]);
  4341. DRM_DEBUG_KMS("checking fdi config on pipe %i, lanes %i\n",
  4342. intel_crtc->pipe, intel_crtc->fdi_lanes);
  4343. if (intel_crtc->fdi_lanes > 4) {
  4344. DRM_DEBUG_KMS("invalid fdi lane config on pipe %i: %i lanes\n",
  4345. intel_crtc->pipe, intel_crtc->fdi_lanes);
  4346. /* Clamp lanes to avoid programming the hw with bogus values. */
  4347. intel_crtc->fdi_lanes = 4;
  4348. return false;
  4349. }
  4350. if (dev_priv->num_pipe == 2)
  4351. return true;
  4352. switch (intel_crtc->pipe) {
  4353. case PIPE_A:
  4354. return true;
  4355. case PIPE_B:
  4356. if (dev_priv->pipe_to_crtc_mapping[PIPE_C]->enabled &&
  4357. intel_crtc->fdi_lanes > 2) {
  4358. DRM_DEBUG_KMS("invalid shared fdi lane config on pipe %i: %i lanes\n",
  4359. intel_crtc->pipe, intel_crtc->fdi_lanes);
  4360. /* Clamp lanes to avoid programming the hw with bogus values. */
  4361. intel_crtc->fdi_lanes = 2;
  4362. return false;
  4363. }
  4364. if (intel_crtc->fdi_lanes > 2)
  4365. WARN_ON(I915_READ(SOUTH_CHICKEN1) & FDI_BC_BIFURCATION_SELECT);
  4366. else
  4367. cpt_enable_fdi_bc_bifurcation(dev);
  4368. return true;
  4369. case PIPE_C:
  4370. if (!pipe_B_crtc->base.enabled || pipe_B_crtc->fdi_lanes <= 2) {
  4371. if (intel_crtc->fdi_lanes > 2) {
  4372. DRM_DEBUG_KMS("invalid shared fdi lane config on pipe %i: %i lanes\n",
  4373. intel_crtc->pipe, intel_crtc->fdi_lanes);
  4374. /* Clamp lanes to avoid programming the hw with bogus values. */
  4375. intel_crtc->fdi_lanes = 2;
  4376. return false;
  4377. }
  4378. } else {
  4379. DRM_DEBUG_KMS("fdi link B uses too many lanes to enable link C\n");
  4380. return false;
  4381. }
  4382. cpt_enable_fdi_bc_bifurcation(dev);
  4383. return true;
  4384. default:
  4385. BUG();
  4386. }
  4387. }
  4388. static void ironlake_set_m_n(struct drm_crtc *crtc,
  4389. struct drm_display_mode *mode,
  4390. struct drm_display_mode *adjusted_mode)
  4391. {
  4392. struct drm_device *dev = crtc->dev;
  4393. struct drm_i915_private *dev_priv = dev->dev_private;
  4394. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  4395. enum transcoder cpu_transcoder = intel_crtc->cpu_transcoder;
  4396. struct intel_encoder *intel_encoder, *edp_encoder = NULL;
  4397. struct fdi_m_n m_n = {0};
  4398. int target_clock, pixel_multiplier, lane, link_bw;
  4399. bool is_dp = false, is_cpu_edp = false;
  4400. for_each_encoder_on_crtc(dev, crtc, intel_encoder) {
  4401. switch (intel_encoder->type) {
  4402. case INTEL_OUTPUT_DISPLAYPORT:
  4403. is_dp = true;
  4404. break;
  4405. case INTEL_OUTPUT_EDP:
  4406. is_dp = true;
  4407. if (!intel_encoder_is_pch_edp(&intel_encoder->base))
  4408. is_cpu_edp = true;
  4409. edp_encoder = intel_encoder;
  4410. break;
  4411. }
  4412. }
  4413. /* FDI link */
  4414. pixel_multiplier = intel_mode_get_pixel_multiplier(adjusted_mode);
  4415. lane = 0;
  4416. /* CPU eDP doesn't require FDI link, so just set DP M/N
  4417. according to current link config */
  4418. if (is_cpu_edp) {
  4419. intel_edp_link_config(edp_encoder, &lane, &link_bw);
  4420. } else {
  4421. /* FDI is a binary signal running at ~2.7GHz, encoding
  4422. * each output octet as 10 bits. The actual frequency
  4423. * is stored as a divider into a 100MHz clock, and the
  4424. * mode pixel clock is stored in units of 1KHz.
  4425. * Hence the bw of each lane in terms of the mode signal
  4426. * is:
  4427. */
  4428. link_bw = intel_fdi_link_freq(dev) * MHz(100)/KHz(1)/10;
  4429. }
  4430. /* [e]DP over FDI requires target mode clock instead of link clock. */
  4431. if (edp_encoder)
  4432. target_clock = intel_edp_target_clock(edp_encoder, mode);
  4433. else if (is_dp)
  4434. target_clock = mode->clock;
  4435. else
  4436. target_clock = adjusted_mode->clock;
  4437. if (!lane) {
  4438. /*
  4439. * Account for spread spectrum to avoid
  4440. * oversubscribing the link. Max center spread
  4441. * is 2.5%; use 5% for safety's sake.
  4442. */
  4443. u32 bps = target_clock * intel_crtc->bpp * 21 / 20;
  4444. lane = bps / (link_bw * 8) + 1;
  4445. }
  4446. intel_crtc->fdi_lanes = lane;
  4447. if (pixel_multiplier > 1)
  4448. link_bw *= pixel_multiplier;
  4449. ironlake_compute_m_n(intel_crtc->bpp, lane, target_clock, link_bw,
  4450. &m_n);
  4451. I915_WRITE(PIPE_DATA_M1(cpu_transcoder), TU_SIZE(m_n.tu) | m_n.gmch_m);
  4452. I915_WRITE(PIPE_DATA_N1(cpu_transcoder), m_n.gmch_n);
  4453. I915_WRITE(PIPE_LINK_M1(cpu_transcoder), m_n.link_m);
  4454. I915_WRITE(PIPE_LINK_N1(cpu_transcoder), m_n.link_n);
  4455. }
  4456. static uint32_t ironlake_compute_dpll(struct intel_crtc *intel_crtc,
  4457. struct drm_display_mode *adjusted_mode,
  4458. intel_clock_t *clock, u32 fp)
  4459. {
  4460. struct drm_crtc *crtc = &intel_crtc->base;
  4461. struct drm_device *dev = crtc->dev;
  4462. struct drm_i915_private *dev_priv = dev->dev_private;
  4463. struct intel_encoder *intel_encoder;
  4464. uint32_t dpll;
  4465. int factor, pixel_multiplier, num_connectors = 0;
  4466. bool is_lvds = false, is_sdvo = false, is_tv = false;
  4467. bool is_dp = false, is_cpu_edp = false;
  4468. for_each_encoder_on_crtc(dev, crtc, intel_encoder) {
  4469. switch (intel_encoder->type) {
  4470. case INTEL_OUTPUT_LVDS:
  4471. is_lvds = true;
  4472. break;
  4473. case INTEL_OUTPUT_SDVO:
  4474. case INTEL_OUTPUT_HDMI:
  4475. is_sdvo = true;
  4476. if (intel_encoder->needs_tv_clock)
  4477. is_tv = true;
  4478. break;
  4479. case INTEL_OUTPUT_TVOUT:
  4480. is_tv = true;
  4481. break;
  4482. case INTEL_OUTPUT_DISPLAYPORT:
  4483. is_dp = true;
  4484. break;
  4485. case INTEL_OUTPUT_EDP:
  4486. is_dp = true;
  4487. if (!intel_encoder_is_pch_edp(&intel_encoder->base))
  4488. is_cpu_edp = true;
  4489. break;
  4490. }
  4491. num_connectors++;
  4492. }
  4493. /* Enable autotuning of the PLL clock (if permissible) */
  4494. factor = 21;
  4495. if (is_lvds) {
  4496. if ((intel_panel_use_ssc(dev_priv) &&
  4497. dev_priv->lvds_ssc_freq == 100) ||
  4498. (I915_READ(PCH_LVDS) & LVDS_CLKB_POWER_MASK) == LVDS_CLKB_POWER_UP)
  4499. factor = 25;
  4500. } else if (is_sdvo && is_tv)
  4501. factor = 20;
  4502. if (clock->m < factor * clock->n)
  4503. fp |= FP_CB_TUNE;
  4504. dpll = 0;
  4505. if (is_lvds)
  4506. dpll |= DPLLB_MODE_LVDS;
  4507. else
  4508. dpll |= DPLLB_MODE_DAC_SERIAL;
  4509. if (is_sdvo) {
  4510. pixel_multiplier = intel_mode_get_pixel_multiplier(adjusted_mode);
  4511. if (pixel_multiplier > 1) {
  4512. dpll |= (pixel_multiplier - 1) << PLL_REF_SDVO_HDMI_MULTIPLIER_SHIFT;
  4513. }
  4514. dpll |= DPLL_DVO_HIGH_SPEED;
  4515. }
  4516. if (is_dp && !is_cpu_edp)
  4517. dpll |= DPLL_DVO_HIGH_SPEED;
  4518. /* compute bitmask from p1 value */
  4519. dpll |= (1 << (clock->p1 - 1)) << DPLL_FPA01_P1_POST_DIV_SHIFT;
  4520. /* also FPA1 */
  4521. dpll |= (1 << (clock->p1 - 1)) << DPLL_FPA1_P1_POST_DIV_SHIFT;
  4522. switch (clock->p2) {
  4523. case 5:
  4524. dpll |= DPLL_DAC_SERIAL_P2_CLOCK_DIV_5;
  4525. break;
  4526. case 7:
  4527. dpll |= DPLLB_LVDS_P2_CLOCK_DIV_7;
  4528. break;
  4529. case 10:
  4530. dpll |= DPLL_DAC_SERIAL_P2_CLOCK_DIV_10;
  4531. break;
  4532. case 14:
  4533. dpll |= DPLLB_LVDS_P2_CLOCK_DIV_14;
  4534. break;
  4535. }
  4536. if (is_sdvo && is_tv)
  4537. dpll |= PLL_REF_INPUT_TVCLKINBC;
  4538. else if (is_tv)
  4539. /* XXX: just matching BIOS for now */
  4540. /* dpll |= PLL_REF_INPUT_TVCLKINBC; */
  4541. dpll |= 3;
  4542. else if (is_lvds && intel_panel_use_ssc(dev_priv) && num_connectors < 2)
  4543. dpll |= PLLB_REF_INPUT_SPREADSPECTRUMIN;
  4544. else
  4545. dpll |= PLL_REF_INPUT_DREFCLK;
  4546. return dpll;
  4547. }
  4548. static int ironlake_crtc_mode_set(struct drm_crtc *crtc,
  4549. struct drm_display_mode *mode,
  4550. struct drm_display_mode *adjusted_mode,
  4551. int x, int y,
  4552. struct drm_framebuffer *fb)
  4553. {
  4554. struct drm_device *dev = crtc->dev;
  4555. struct drm_i915_private *dev_priv = dev->dev_private;
  4556. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  4557. int pipe = intel_crtc->pipe;
  4558. int plane = intel_crtc->plane;
  4559. int num_connectors = 0;
  4560. intel_clock_t clock, reduced_clock;
  4561. u32 dpll, fp = 0, fp2 = 0;
  4562. bool ok, has_reduced_clock = false;
  4563. bool is_lvds = false, is_dp = false, is_cpu_edp = false;
  4564. struct intel_encoder *encoder;
  4565. u32 temp;
  4566. int ret;
  4567. bool dither, fdi_config_ok;
  4568. for_each_encoder_on_crtc(dev, crtc, encoder) {
  4569. switch (encoder->type) {
  4570. case INTEL_OUTPUT_LVDS:
  4571. is_lvds = true;
  4572. break;
  4573. case INTEL_OUTPUT_DISPLAYPORT:
  4574. is_dp = true;
  4575. break;
  4576. case INTEL_OUTPUT_EDP:
  4577. is_dp = true;
  4578. if (!intel_encoder_is_pch_edp(&encoder->base))
  4579. is_cpu_edp = true;
  4580. break;
  4581. }
  4582. num_connectors++;
  4583. }
  4584. WARN(!(HAS_PCH_IBX(dev) || HAS_PCH_CPT(dev)),
  4585. "Unexpected PCH type %d\n", INTEL_PCH_TYPE(dev));
  4586. ok = ironlake_compute_clocks(crtc, adjusted_mode, &clock,
  4587. &has_reduced_clock, &reduced_clock);
  4588. if (!ok) {
  4589. DRM_ERROR("Couldn't find PLL settings for mode!\n");
  4590. return -EINVAL;
  4591. }
  4592. /* Ensure that the cursor is valid for the new mode before changing... */
  4593. intel_crtc_update_cursor(crtc, true);
  4594. /* determine panel color depth */
  4595. dither = intel_choose_pipe_bpp_dither(crtc, fb, &intel_crtc->bpp,
  4596. adjusted_mode);
  4597. if (is_lvds && dev_priv->lvds_dither)
  4598. dither = true;
  4599. fp = clock.n << 16 | clock.m1 << 8 | clock.m2;
  4600. if (has_reduced_clock)
  4601. fp2 = reduced_clock.n << 16 | reduced_clock.m1 << 8 |
  4602. reduced_clock.m2;
  4603. dpll = ironlake_compute_dpll(intel_crtc, adjusted_mode, &clock, fp);
  4604. DRM_DEBUG_KMS("Mode for pipe %d:\n", pipe);
  4605. drm_mode_debug_printmodeline(mode);
  4606. /* CPU eDP is the only output that doesn't need a PCH PLL of its own. */
  4607. if (!is_cpu_edp) {
  4608. struct intel_pch_pll *pll;
  4609. pll = intel_get_pch_pll(intel_crtc, dpll, fp);
  4610. if (pll == NULL) {
  4611. DRM_DEBUG_DRIVER("failed to find PLL for pipe %d\n",
  4612. pipe);
  4613. return -EINVAL;
  4614. }
  4615. } else
  4616. intel_put_pch_pll(intel_crtc);
  4617. /* The LVDS pin pair needs to be on before the DPLLs are enabled.
  4618. * This is an exception to the general rule that mode_set doesn't turn
  4619. * things on.
  4620. */
  4621. if (is_lvds) {
  4622. temp = I915_READ(PCH_LVDS);
  4623. temp |= LVDS_PORT_EN | LVDS_A0A2_CLKA_POWER_UP;
  4624. if (HAS_PCH_CPT(dev)) {
  4625. temp &= ~PORT_TRANS_SEL_MASK;
  4626. temp |= PORT_TRANS_SEL_CPT(pipe);
  4627. } else {
  4628. if (pipe == 1)
  4629. temp |= LVDS_PIPEB_SELECT;
  4630. else
  4631. temp &= ~LVDS_PIPEB_SELECT;
  4632. }
  4633. /* set the corresponsding LVDS_BORDER bit */
  4634. temp |= dev_priv->lvds_border_bits;
  4635. /* Set the B0-B3 data pairs corresponding to whether we're going to
  4636. * set the DPLLs for dual-channel mode or not.
  4637. */
  4638. if (clock.p2 == 7)
  4639. temp |= LVDS_B0B3_POWER_UP | LVDS_CLKB_POWER_UP;
  4640. else
  4641. temp &= ~(LVDS_B0B3_POWER_UP | LVDS_CLKB_POWER_UP);
  4642. /* It would be nice to set 24 vs 18-bit mode (LVDS_A3_POWER_UP)
  4643. * appropriately here, but we need to look more thoroughly into how
  4644. * panels behave in the two modes.
  4645. */
  4646. temp &= ~(LVDS_HSYNC_POLARITY | LVDS_VSYNC_POLARITY);
  4647. if (adjusted_mode->flags & DRM_MODE_FLAG_NHSYNC)
  4648. temp |= LVDS_HSYNC_POLARITY;
  4649. if (adjusted_mode->flags & DRM_MODE_FLAG_NVSYNC)
  4650. temp |= LVDS_VSYNC_POLARITY;
  4651. I915_WRITE(PCH_LVDS, temp);
  4652. }
  4653. if (is_dp && !is_cpu_edp) {
  4654. intel_dp_set_m_n(crtc, mode, adjusted_mode);
  4655. } else {
  4656. /* For non-DP output, clear any trans DP clock recovery setting.*/
  4657. I915_WRITE(TRANSDATA_M1(pipe), 0);
  4658. I915_WRITE(TRANSDATA_N1(pipe), 0);
  4659. I915_WRITE(TRANSDPLINK_M1(pipe), 0);
  4660. I915_WRITE(TRANSDPLINK_N1(pipe), 0);
  4661. }
  4662. if (intel_crtc->pch_pll) {
  4663. I915_WRITE(intel_crtc->pch_pll->pll_reg, dpll);
  4664. /* Wait for the clocks to stabilize. */
  4665. POSTING_READ(intel_crtc->pch_pll->pll_reg);
  4666. udelay(150);
  4667. /* The pixel multiplier can only be updated once the
  4668. * DPLL is enabled and the clocks are stable.
  4669. *
  4670. * So write it again.
  4671. */
  4672. I915_WRITE(intel_crtc->pch_pll->pll_reg, dpll);
  4673. }
  4674. intel_crtc->lowfreq_avail = false;
  4675. if (intel_crtc->pch_pll) {
  4676. if (is_lvds && has_reduced_clock && i915_powersave) {
  4677. I915_WRITE(intel_crtc->pch_pll->fp1_reg, fp2);
  4678. intel_crtc->lowfreq_avail = true;
  4679. } else {
  4680. I915_WRITE(intel_crtc->pch_pll->fp1_reg, fp);
  4681. }
  4682. }
  4683. intel_set_pipe_timings(intel_crtc, mode, adjusted_mode);
  4684. /* Note, this also computes intel_crtc->fdi_lanes which is used below in
  4685. * ironlake_check_fdi_lanes. */
  4686. ironlake_set_m_n(crtc, mode, adjusted_mode);
  4687. fdi_config_ok = ironlake_check_fdi_lanes(intel_crtc);
  4688. if (is_cpu_edp)
  4689. ironlake_set_pll_edp(crtc, adjusted_mode->clock);
  4690. ironlake_set_pipeconf(crtc, adjusted_mode, dither);
  4691. intel_wait_for_vblank(dev, pipe);
  4692. /* Set up the display plane register */
  4693. I915_WRITE(DSPCNTR(plane), DISPPLANE_GAMMA_ENABLE);
  4694. POSTING_READ(DSPCNTR(plane));
  4695. ret = intel_pipe_set_base(crtc, x, y, fb);
  4696. intel_update_watermarks(dev);
  4697. intel_update_linetime_watermarks(dev, pipe, adjusted_mode);
  4698. return fdi_config_ok ? ret : -EINVAL;
  4699. }
  4700. static int haswell_crtc_mode_set(struct drm_crtc *crtc,
  4701. struct drm_display_mode *mode,
  4702. struct drm_display_mode *adjusted_mode,
  4703. int x, int y,
  4704. struct drm_framebuffer *fb)
  4705. {
  4706. struct drm_device *dev = crtc->dev;
  4707. struct drm_i915_private *dev_priv = dev->dev_private;
  4708. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  4709. int pipe = intel_crtc->pipe;
  4710. int plane = intel_crtc->plane;
  4711. int num_connectors = 0;
  4712. intel_clock_t clock, reduced_clock;
  4713. u32 dpll = 0, fp = 0, fp2 = 0;
  4714. bool ok, has_reduced_clock = false;
  4715. bool is_lvds = false, is_dp = false, is_cpu_edp = false;
  4716. struct intel_encoder *encoder;
  4717. u32 temp;
  4718. int ret;
  4719. bool dither;
  4720. for_each_encoder_on_crtc(dev, crtc, encoder) {
  4721. switch (encoder->type) {
  4722. case INTEL_OUTPUT_LVDS:
  4723. is_lvds = true;
  4724. break;
  4725. case INTEL_OUTPUT_DISPLAYPORT:
  4726. is_dp = true;
  4727. break;
  4728. case INTEL_OUTPUT_EDP:
  4729. is_dp = true;
  4730. if (!intel_encoder_is_pch_edp(&encoder->base))
  4731. is_cpu_edp = true;
  4732. break;
  4733. }
  4734. num_connectors++;
  4735. }
  4736. if (is_cpu_edp)
  4737. intel_crtc->cpu_transcoder = TRANSCODER_EDP;
  4738. else
  4739. intel_crtc->cpu_transcoder = pipe;
  4740. /* We are not sure yet this won't happen. */
  4741. WARN(!HAS_PCH_LPT(dev), "Unexpected PCH type %d\n",
  4742. INTEL_PCH_TYPE(dev));
  4743. WARN(num_connectors != 1, "%d connectors attached to pipe %c\n",
  4744. num_connectors, pipe_name(pipe));
  4745. WARN_ON(I915_READ(PIPECONF(intel_crtc->cpu_transcoder)) &
  4746. (PIPECONF_ENABLE | I965_PIPECONF_ACTIVE));
  4747. WARN_ON(I915_READ(DSPCNTR(plane)) & DISPLAY_PLANE_ENABLE);
  4748. if (!intel_ddi_pll_mode_set(crtc, adjusted_mode->clock))
  4749. return -EINVAL;
  4750. if (HAS_PCH_IBX(dev) || HAS_PCH_CPT(dev)) {
  4751. ok = ironlake_compute_clocks(crtc, adjusted_mode, &clock,
  4752. &has_reduced_clock,
  4753. &reduced_clock);
  4754. if (!ok) {
  4755. DRM_ERROR("Couldn't find PLL settings for mode!\n");
  4756. return -EINVAL;
  4757. }
  4758. }
  4759. /* Ensure that the cursor is valid for the new mode before changing... */
  4760. intel_crtc_update_cursor(crtc, true);
  4761. /* determine panel color depth */
  4762. dither = intel_choose_pipe_bpp_dither(crtc, fb, &intel_crtc->bpp,
  4763. adjusted_mode);
  4764. if (is_lvds && dev_priv->lvds_dither)
  4765. dither = true;
  4766. DRM_DEBUG_KMS("Mode for pipe %d:\n", pipe);
  4767. drm_mode_debug_printmodeline(mode);
  4768. if (HAS_PCH_IBX(dev) || HAS_PCH_CPT(dev)) {
  4769. fp = clock.n << 16 | clock.m1 << 8 | clock.m2;
  4770. if (has_reduced_clock)
  4771. fp2 = reduced_clock.n << 16 | reduced_clock.m1 << 8 |
  4772. reduced_clock.m2;
  4773. dpll = ironlake_compute_dpll(intel_crtc, adjusted_mode, &clock,
  4774. fp);
  4775. /* CPU eDP is the only output that doesn't need a PCH PLL of its
  4776. * own on pre-Haswell/LPT generation */
  4777. if (!is_cpu_edp) {
  4778. struct intel_pch_pll *pll;
  4779. pll = intel_get_pch_pll(intel_crtc, dpll, fp);
  4780. if (pll == NULL) {
  4781. DRM_DEBUG_DRIVER("failed to find PLL for pipe %d\n",
  4782. pipe);
  4783. return -EINVAL;
  4784. }
  4785. } else
  4786. intel_put_pch_pll(intel_crtc);
  4787. /* The LVDS pin pair needs to be on before the DPLLs are
  4788. * enabled. This is an exception to the general rule that
  4789. * mode_set doesn't turn things on.
  4790. */
  4791. if (is_lvds) {
  4792. temp = I915_READ(PCH_LVDS);
  4793. temp |= LVDS_PORT_EN | LVDS_A0A2_CLKA_POWER_UP;
  4794. if (HAS_PCH_CPT(dev)) {
  4795. temp &= ~PORT_TRANS_SEL_MASK;
  4796. temp |= PORT_TRANS_SEL_CPT(pipe);
  4797. } else {
  4798. if (pipe == 1)
  4799. temp |= LVDS_PIPEB_SELECT;
  4800. else
  4801. temp &= ~LVDS_PIPEB_SELECT;
  4802. }
  4803. /* set the corresponsding LVDS_BORDER bit */
  4804. temp |= dev_priv->lvds_border_bits;
  4805. /* Set the B0-B3 data pairs corresponding to whether
  4806. * we're going to set the DPLLs for dual-channel mode or
  4807. * not.
  4808. */
  4809. if (clock.p2 == 7)
  4810. temp |= LVDS_B0B3_POWER_UP | LVDS_CLKB_POWER_UP;
  4811. else
  4812. temp &= ~(LVDS_B0B3_POWER_UP |
  4813. LVDS_CLKB_POWER_UP);
  4814. /* It would be nice to set 24 vs 18-bit mode
  4815. * (LVDS_A3_POWER_UP) appropriately here, but we need to
  4816. * look more thoroughly into how panels behave in the
  4817. * two modes.
  4818. */
  4819. temp &= ~(LVDS_HSYNC_POLARITY | LVDS_VSYNC_POLARITY);
  4820. if (adjusted_mode->flags & DRM_MODE_FLAG_NHSYNC)
  4821. temp |= LVDS_HSYNC_POLARITY;
  4822. if (adjusted_mode->flags & DRM_MODE_FLAG_NVSYNC)
  4823. temp |= LVDS_VSYNC_POLARITY;
  4824. I915_WRITE(PCH_LVDS, temp);
  4825. }
  4826. }
  4827. if (is_dp && !is_cpu_edp) {
  4828. intel_dp_set_m_n(crtc, mode, adjusted_mode);
  4829. } else {
  4830. if (HAS_PCH_IBX(dev) || HAS_PCH_CPT(dev)) {
  4831. /* For non-DP output, clear any trans DP clock recovery
  4832. * setting.*/
  4833. I915_WRITE(TRANSDATA_M1(pipe), 0);
  4834. I915_WRITE(TRANSDATA_N1(pipe), 0);
  4835. I915_WRITE(TRANSDPLINK_M1(pipe), 0);
  4836. I915_WRITE(TRANSDPLINK_N1(pipe), 0);
  4837. }
  4838. }
  4839. intel_crtc->lowfreq_avail = false;
  4840. if (HAS_PCH_IBX(dev) || HAS_PCH_CPT(dev)) {
  4841. if (intel_crtc->pch_pll) {
  4842. I915_WRITE(intel_crtc->pch_pll->pll_reg, dpll);
  4843. /* Wait for the clocks to stabilize. */
  4844. POSTING_READ(intel_crtc->pch_pll->pll_reg);
  4845. udelay(150);
  4846. /* The pixel multiplier can only be updated once the
  4847. * DPLL is enabled and the clocks are stable.
  4848. *
  4849. * So write it again.
  4850. */
  4851. I915_WRITE(intel_crtc->pch_pll->pll_reg, dpll);
  4852. }
  4853. if (intel_crtc->pch_pll) {
  4854. if (is_lvds && has_reduced_clock && i915_powersave) {
  4855. I915_WRITE(intel_crtc->pch_pll->fp1_reg, fp2);
  4856. intel_crtc->lowfreq_avail = true;
  4857. } else {
  4858. I915_WRITE(intel_crtc->pch_pll->fp1_reg, fp);
  4859. }
  4860. }
  4861. }
  4862. intel_set_pipe_timings(intel_crtc, mode, adjusted_mode);
  4863. if (!is_dp || is_cpu_edp)
  4864. ironlake_set_m_n(crtc, mode, adjusted_mode);
  4865. if (HAS_PCH_IBX(dev) || HAS_PCH_CPT(dev))
  4866. if (is_cpu_edp)
  4867. ironlake_set_pll_edp(crtc, adjusted_mode->clock);
  4868. haswell_set_pipeconf(crtc, adjusted_mode, dither);
  4869. /* Set up the display plane register */
  4870. I915_WRITE(DSPCNTR(plane), DISPPLANE_GAMMA_ENABLE);
  4871. POSTING_READ(DSPCNTR(plane));
  4872. ret = intel_pipe_set_base(crtc, x, y, fb);
  4873. intel_update_watermarks(dev);
  4874. intel_update_linetime_watermarks(dev, pipe, adjusted_mode);
  4875. return ret;
  4876. }
  4877. static int intel_crtc_mode_set(struct drm_crtc *crtc,
  4878. struct drm_display_mode *mode,
  4879. struct drm_display_mode *adjusted_mode,
  4880. int x, int y,
  4881. struct drm_framebuffer *fb)
  4882. {
  4883. struct drm_device *dev = crtc->dev;
  4884. struct drm_i915_private *dev_priv = dev->dev_private;
  4885. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  4886. int pipe = intel_crtc->pipe;
  4887. int ret;
  4888. drm_vblank_pre_modeset(dev, pipe);
  4889. ret = dev_priv->display.crtc_mode_set(crtc, mode, adjusted_mode,
  4890. x, y, fb);
  4891. drm_vblank_post_modeset(dev, pipe);
  4892. return ret;
  4893. }
  4894. static bool intel_eld_uptodate(struct drm_connector *connector,
  4895. int reg_eldv, uint32_t bits_eldv,
  4896. int reg_elda, uint32_t bits_elda,
  4897. int reg_edid)
  4898. {
  4899. struct drm_i915_private *dev_priv = connector->dev->dev_private;
  4900. uint8_t *eld = connector->eld;
  4901. uint32_t i;
  4902. i = I915_READ(reg_eldv);
  4903. i &= bits_eldv;
  4904. if (!eld[0])
  4905. return !i;
  4906. if (!i)
  4907. return false;
  4908. i = I915_READ(reg_elda);
  4909. i &= ~bits_elda;
  4910. I915_WRITE(reg_elda, i);
  4911. for (i = 0; i < eld[2]; i++)
  4912. if (I915_READ(reg_edid) != *((uint32_t *)eld + i))
  4913. return false;
  4914. return true;
  4915. }
  4916. static void g4x_write_eld(struct drm_connector *connector,
  4917. struct drm_crtc *crtc)
  4918. {
  4919. struct drm_i915_private *dev_priv = connector->dev->dev_private;
  4920. uint8_t *eld = connector->eld;
  4921. uint32_t eldv;
  4922. uint32_t len;
  4923. uint32_t i;
  4924. i = I915_READ(G4X_AUD_VID_DID);
  4925. if (i == INTEL_AUDIO_DEVBLC || i == INTEL_AUDIO_DEVCL)
  4926. eldv = G4X_ELDV_DEVCL_DEVBLC;
  4927. else
  4928. eldv = G4X_ELDV_DEVCTG;
  4929. if (intel_eld_uptodate(connector,
  4930. G4X_AUD_CNTL_ST, eldv,
  4931. G4X_AUD_CNTL_ST, G4X_ELD_ADDR,
  4932. G4X_HDMIW_HDMIEDID))
  4933. return;
  4934. i = I915_READ(G4X_AUD_CNTL_ST);
  4935. i &= ~(eldv | G4X_ELD_ADDR);
  4936. len = (i >> 9) & 0x1f; /* ELD buffer size */
  4937. I915_WRITE(G4X_AUD_CNTL_ST, i);
  4938. if (!eld[0])
  4939. return;
  4940. len = min_t(uint8_t, eld[2], len);
  4941. DRM_DEBUG_DRIVER("ELD size %d\n", len);
  4942. for (i = 0; i < len; i++)
  4943. I915_WRITE(G4X_HDMIW_HDMIEDID, *((uint32_t *)eld + i));
  4944. i = I915_READ(G4X_AUD_CNTL_ST);
  4945. i |= eldv;
  4946. I915_WRITE(G4X_AUD_CNTL_ST, i);
  4947. }
  4948. static void haswell_write_eld(struct drm_connector *connector,
  4949. struct drm_crtc *crtc)
  4950. {
  4951. struct drm_i915_private *dev_priv = connector->dev->dev_private;
  4952. uint8_t *eld = connector->eld;
  4953. struct drm_device *dev = crtc->dev;
  4954. uint32_t eldv;
  4955. uint32_t i;
  4956. int len;
  4957. int pipe = to_intel_crtc(crtc)->pipe;
  4958. int tmp;
  4959. int hdmiw_hdmiedid = HSW_AUD_EDID_DATA(pipe);
  4960. int aud_cntl_st = HSW_AUD_DIP_ELD_CTRL(pipe);
  4961. int aud_config = HSW_AUD_CFG(pipe);
  4962. int aud_cntrl_st2 = HSW_AUD_PIN_ELD_CP_VLD;
  4963. DRM_DEBUG_DRIVER("HDMI: Haswell Audio initialize....\n");
  4964. /* Audio output enable */
  4965. DRM_DEBUG_DRIVER("HDMI audio: enable codec\n");
  4966. tmp = I915_READ(aud_cntrl_st2);
  4967. tmp |= (AUDIO_OUTPUT_ENABLE_A << (pipe * 4));
  4968. I915_WRITE(aud_cntrl_st2, tmp);
  4969. /* Wait for 1 vertical blank */
  4970. intel_wait_for_vblank(dev, pipe);
  4971. /* Set ELD valid state */
  4972. tmp = I915_READ(aud_cntrl_st2);
  4973. DRM_DEBUG_DRIVER("HDMI audio: pin eld vld status=0x%8x\n", tmp);
  4974. tmp |= (AUDIO_ELD_VALID_A << (pipe * 4));
  4975. I915_WRITE(aud_cntrl_st2, tmp);
  4976. tmp = I915_READ(aud_cntrl_st2);
  4977. DRM_DEBUG_DRIVER("HDMI audio: eld vld status=0x%8x\n", tmp);
  4978. /* Enable HDMI mode */
  4979. tmp = I915_READ(aud_config);
  4980. DRM_DEBUG_DRIVER("HDMI audio: audio conf: 0x%8x\n", tmp);
  4981. /* clear N_programing_enable and N_value_index */
  4982. tmp &= ~(AUD_CONFIG_N_VALUE_INDEX | AUD_CONFIG_N_PROG_ENABLE);
  4983. I915_WRITE(aud_config, tmp);
  4984. DRM_DEBUG_DRIVER("ELD on pipe %c\n", pipe_name(pipe));
  4985. eldv = AUDIO_ELD_VALID_A << (pipe * 4);
  4986. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_DISPLAYPORT)) {
  4987. DRM_DEBUG_DRIVER("ELD: DisplayPort detected\n");
  4988. eld[5] |= (1 << 2); /* Conn_Type, 0x1 = DisplayPort */
  4989. I915_WRITE(aud_config, AUD_CONFIG_N_VALUE_INDEX); /* 0x1 = DP */
  4990. } else
  4991. I915_WRITE(aud_config, 0);
  4992. if (intel_eld_uptodate(connector,
  4993. aud_cntrl_st2, eldv,
  4994. aud_cntl_st, IBX_ELD_ADDRESS,
  4995. hdmiw_hdmiedid))
  4996. return;
  4997. i = I915_READ(aud_cntrl_st2);
  4998. i &= ~eldv;
  4999. I915_WRITE(aud_cntrl_st2, i);
  5000. if (!eld[0])
  5001. return;
  5002. i = I915_READ(aud_cntl_st);
  5003. i &= ~IBX_ELD_ADDRESS;
  5004. I915_WRITE(aud_cntl_st, i);
  5005. i = (i >> 29) & DIP_PORT_SEL_MASK; /* DIP_Port_Select, 0x1 = PortB */
  5006. DRM_DEBUG_DRIVER("port num:%d\n", i);
  5007. len = min_t(uint8_t, eld[2], 21); /* 84 bytes of hw ELD buffer */
  5008. DRM_DEBUG_DRIVER("ELD size %d\n", len);
  5009. for (i = 0; i < len; i++)
  5010. I915_WRITE(hdmiw_hdmiedid, *((uint32_t *)eld + i));
  5011. i = I915_READ(aud_cntrl_st2);
  5012. i |= eldv;
  5013. I915_WRITE(aud_cntrl_st2, i);
  5014. }
  5015. static void ironlake_write_eld(struct drm_connector *connector,
  5016. struct drm_crtc *crtc)
  5017. {
  5018. struct drm_i915_private *dev_priv = connector->dev->dev_private;
  5019. uint8_t *eld = connector->eld;
  5020. uint32_t eldv;
  5021. uint32_t i;
  5022. int len;
  5023. int hdmiw_hdmiedid;
  5024. int aud_config;
  5025. int aud_cntl_st;
  5026. int aud_cntrl_st2;
  5027. int pipe = to_intel_crtc(crtc)->pipe;
  5028. if (HAS_PCH_IBX(connector->dev)) {
  5029. hdmiw_hdmiedid = IBX_HDMIW_HDMIEDID(pipe);
  5030. aud_config = IBX_AUD_CFG(pipe);
  5031. aud_cntl_st = IBX_AUD_CNTL_ST(pipe);
  5032. aud_cntrl_st2 = IBX_AUD_CNTL_ST2;
  5033. } else {
  5034. hdmiw_hdmiedid = CPT_HDMIW_HDMIEDID(pipe);
  5035. aud_config = CPT_AUD_CFG(pipe);
  5036. aud_cntl_st = CPT_AUD_CNTL_ST(pipe);
  5037. aud_cntrl_st2 = CPT_AUD_CNTRL_ST2;
  5038. }
  5039. DRM_DEBUG_DRIVER("ELD on pipe %c\n", pipe_name(pipe));
  5040. i = I915_READ(aud_cntl_st);
  5041. i = (i >> 29) & DIP_PORT_SEL_MASK; /* DIP_Port_Select, 0x1 = PortB */
  5042. if (!i) {
  5043. DRM_DEBUG_DRIVER("Audio directed to unknown port\n");
  5044. /* operate blindly on all ports */
  5045. eldv = IBX_ELD_VALIDB;
  5046. eldv |= IBX_ELD_VALIDB << 4;
  5047. eldv |= IBX_ELD_VALIDB << 8;
  5048. } else {
  5049. DRM_DEBUG_DRIVER("ELD on port %c\n", 'A' + i);
  5050. eldv = IBX_ELD_VALIDB << ((i - 1) * 4);
  5051. }
  5052. if (intel_pipe_has_type(crtc, INTEL_OUTPUT_DISPLAYPORT)) {
  5053. DRM_DEBUG_DRIVER("ELD: DisplayPort detected\n");
  5054. eld[5] |= (1 << 2); /* Conn_Type, 0x1 = DisplayPort */
  5055. I915_WRITE(aud_config, AUD_CONFIG_N_VALUE_INDEX); /* 0x1 = DP */
  5056. } else
  5057. I915_WRITE(aud_config, 0);
  5058. if (intel_eld_uptodate(connector,
  5059. aud_cntrl_st2, eldv,
  5060. aud_cntl_st, IBX_ELD_ADDRESS,
  5061. hdmiw_hdmiedid))
  5062. return;
  5063. i = I915_READ(aud_cntrl_st2);
  5064. i &= ~eldv;
  5065. I915_WRITE(aud_cntrl_st2, i);
  5066. if (!eld[0])
  5067. return;
  5068. i = I915_READ(aud_cntl_st);
  5069. i &= ~IBX_ELD_ADDRESS;
  5070. I915_WRITE(aud_cntl_st, i);
  5071. len = min_t(uint8_t, eld[2], 21); /* 84 bytes of hw ELD buffer */
  5072. DRM_DEBUG_DRIVER("ELD size %d\n", len);
  5073. for (i = 0; i < len; i++)
  5074. I915_WRITE(hdmiw_hdmiedid, *((uint32_t *)eld + i));
  5075. i = I915_READ(aud_cntrl_st2);
  5076. i |= eldv;
  5077. I915_WRITE(aud_cntrl_st2, i);
  5078. }
  5079. void intel_write_eld(struct drm_encoder *encoder,
  5080. struct drm_display_mode *mode)
  5081. {
  5082. struct drm_crtc *crtc = encoder->crtc;
  5083. struct drm_connector *connector;
  5084. struct drm_device *dev = encoder->dev;
  5085. struct drm_i915_private *dev_priv = dev->dev_private;
  5086. connector = drm_select_eld(encoder, mode);
  5087. if (!connector)
  5088. return;
  5089. DRM_DEBUG_DRIVER("ELD on [CONNECTOR:%d:%s], [ENCODER:%d:%s]\n",
  5090. connector->base.id,
  5091. drm_get_connector_name(connector),
  5092. connector->encoder->base.id,
  5093. drm_get_encoder_name(connector->encoder));
  5094. connector->eld[6] = drm_av_sync_delay(connector, mode) / 2;
  5095. if (dev_priv->display.write_eld)
  5096. dev_priv->display.write_eld(connector, crtc);
  5097. }
  5098. /** Loads the palette/gamma unit for the CRTC with the prepared values */
  5099. void intel_crtc_load_lut(struct drm_crtc *crtc)
  5100. {
  5101. struct drm_device *dev = crtc->dev;
  5102. struct drm_i915_private *dev_priv = dev->dev_private;
  5103. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5104. int palreg = PALETTE(intel_crtc->pipe);
  5105. int i;
  5106. /* The clocks have to be on to load the palette. */
  5107. if (!crtc->enabled || !intel_crtc->active)
  5108. return;
  5109. /* use legacy palette for Ironlake */
  5110. if (HAS_PCH_SPLIT(dev))
  5111. palreg = LGC_PALETTE(intel_crtc->pipe);
  5112. for (i = 0; i < 256; i++) {
  5113. I915_WRITE(palreg + 4 * i,
  5114. (intel_crtc->lut_r[i] << 16) |
  5115. (intel_crtc->lut_g[i] << 8) |
  5116. intel_crtc->lut_b[i]);
  5117. }
  5118. }
  5119. static void i845_update_cursor(struct drm_crtc *crtc, u32 base)
  5120. {
  5121. struct drm_device *dev = crtc->dev;
  5122. struct drm_i915_private *dev_priv = dev->dev_private;
  5123. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5124. bool visible = base != 0;
  5125. u32 cntl;
  5126. if (intel_crtc->cursor_visible == visible)
  5127. return;
  5128. cntl = I915_READ(_CURACNTR);
  5129. if (visible) {
  5130. /* On these chipsets we can only modify the base whilst
  5131. * the cursor is disabled.
  5132. */
  5133. I915_WRITE(_CURABASE, base);
  5134. cntl &= ~(CURSOR_FORMAT_MASK);
  5135. /* XXX width must be 64, stride 256 => 0x00 << 28 */
  5136. cntl |= CURSOR_ENABLE |
  5137. CURSOR_GAMMA_ENABLE |
  5138. CURSOR_FORMAT_ARGB;
  5139. } else
  5140. cntl &= ~(CURSOR_ENABLE | CURSOR_GAMMA_ENABLE);
  5141. I915_WRITE(_CURACNTR, cntl);
  5142. intel_crtc->cursor_visible = visible;
  5143. }
  5144. static void i9xx_update_cursor(struct drm_crtc *crtc, u32 base)
  5145. {
  5146. struct drm_device *dev = crtc->dev;
  5147. struct drm_i915_private *dev_priv = dev->dev_private;
  5148. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5149. int pipe = intel_crtc->pipe;
  5150. bool visible = base != 0;
  5151. if (intel_crtc->cursor_visible != visible) {
  5152. uint32_t cntl = I915_READ(CURCNTR(pipe));
  5153. if (base) {
  5154. cntl &= ~(CURSOR_MODE | MCURSOR_PIPE_SELECT);
  5155. cntl |= CURSOR_MODE_64_ARGB_AX | MCURSOR_GAMMA_ENABLE;
  5156. cntl |= pipe << 28; /* Connect to correct pipe */
  5157. } else {
  5158. cntl &= ~(CURSOR_MODE | MCURSOR_GAMMA_ENABLE);
  5159. cntl |= CURSOR_MODE_DISABLE;
  5160. }
  5161. I915_WRITE(CURCNTR(pipe), cntl);
  5162. intel_crtc->cursor_visible = visible;
  5163. }
  5164. /* and commit changes on next vblank */
  5165. I915_WRITE(CURBASE(pipe), base);
  5166. }
  5167. static void ivb_update_cursor(struct drm_crtc *crtc, u32 base)
  5168. {
  5169. struct drm_device *dev = crtc->dev;
  5170. struct drm_i915_private *dev_priv = dev->dev_private;
  5171. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5172. int pipe = intel_crtc->pipe;
  5173. bool visible = base != 0;
  5174. if (intel_crtc->cursor_visible != visible) {
  5175. uint32_t cntl = I915_READ(CURCNTR_IVB(pipe));
  5176. if (base) {
  5177. cntl &= ~CURSOR_MODE;
  5178. cntl |= CURSOR_MODE_64_ARGB_AX | MCURSOR_GAMMA_ENABLE;
  5179. } else {
  5180. cntl &= ~(CURSOR_MODE | MCURSOR_GAMMA_ENABLE);
  5181. cntl |= CURSOR_MODE_DISABLE;
  5182. }
  5183. I915_WRITE(CURCNTR_IVB(pipe), cntl);
  5184. intel_crtc->cursor_visible = visible;
  5185. }
  5186. /* and commit changes on next vblank */
  5187. I915_WRITE(CURBASE_IVB(pipe), base);
  5188. }
  5189. /* If no-part of the cursor is visible on the framebuffer, then the GPU may hang... */
  5190. static void intel_crtc_update_cursor(struct drm_crtc *crtc,
  5191. bool on)
  5192. {
  5193. struct drm_device *dev = crtc->dev;
  5194. struct drm_i915_private *dev_priv = dev->dev_private;
  5195. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5196. int pipe = intel_crtc->pipe;
  5197. int x = intel_crtc->cursor_x;
  5198. int y = intel_crtc->cursor_y;
  5199. u32 base, pos;
  5200. bool visible;
  5201. pos = 0;
  5202. if (on && crtc->enabled && crtc->fb) {
  5203. base = intel_crtc->cursor_addr;
  5204. if (x > (int) crtc->fb->width)
  5205. base = 0;
  5206. if (y > (int) crtc->fb->height)
  5207. base = 0;
  5208. } else
  5209. base = 0;
  5210. if (x < 0) {
  5211. if (x + intel_crtc->cursor_width < 0)
  5212. base = 0;
  5213. pos |= CURSOR_POS_SIGN << CURSOR_X_SHIFT;
  5214. x = -x;
  5215. }
  5216. pos |= x << CURSOR_X_SHIFT;
  5217. if (y < 0) {
  5218. if (y + intel_crtc->cursor_height < 0)
  5219. base = 0;
  5220. pos |= CURSOR_POS_SIGN << CURSOR_Y_SHIFT;
  5221. y = -y;
  5222. }
  5223. pos |= y << CURSOR_Y_SHIFT;
  5224. visible = base != 0;
  5225. if (!visible && !intel_crtc->cursor_visible)
  5226. return;
  5227. if (IS_IVYBRIDGE(dev) || IS_HASWELL(dev)) {
  5228. I915_WRITE(CURPOS_IVB(pipe), pos);
  5229. ivb_update_cursor(crtc, base);
  5230. } else {
  5231. I915_WRITE(CURPOS(pipe), pos);
  5232. if (IS_845G(dev) || IS_I865G(dev))
  5233. i845_update_cursor(crtc, base);
  5234. else
  5235. i9xx_update_cursor(crtc, base);
  5236. }
  5237. }
  5238. static int intel_crtc_cursor_set(struct drm_crtc *crtc,
  5239. struct drm_file *file,
  5240. uint32_t handle,
  5241. uint32_t width, uint32_t height)
  5242. {
  5243. struct drm_device *dev = crtc->dev;
  5244. struct drm_i915_private *dev_priv = dev->dev_private;
  5245. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5246. struct drm_i915_gem_object *obj;
  5247. uint32_t addr;
  5248. int ret;
  5249. /* if we want to turn off the cursor ignore width and height */
  5250. if (!handle) {
  5251. DRM_DEBUG_KMS("cursor off\n");
  5252. addr = 0;
  5253. obj = NULL;
  5254. mutex_lock(&dev->struct_mutex);
  5255. goto finish;
  5256. }
  5257. /* Currently we only support 64x64 cursors */
  5258. if (width != 64 || height != 64) {
  5259. DRM_ERROR("we currently only support 64x64 cursors\n");
  5260. return -EINVAL;
  5261. }
  5262. obj = to_intel_bo(drm_gem_object_lookup(dev, file, handle));
  5263. if (&obj->base == NULL)
  5264. return -ENOENT;
  5265. if (obj->base.size < width * height * 4) {
  5266. DRM_ERROR("buffer is to small\n");
  5267. ret = -ENOMEM;
  5268. goto fail;
  5269. }
  5270. /* we only need to pin inside GTT if cursor is non-phy */
  5271. mutex_lock(&dev->struct_mutex);
  5272. if (!dev_priv->info->cursor_needs_physical) {
  5273. if (obj->tiling_mode) {
  5274. DRM_ERROR("cursor cannot be tiled\n");
  5275. ret = -EINVAL;
  5276. goto fail_locked;
  5277. }
  5278. ret = i915_gem_object_pin_to_display_plane(obj, 0, NULL);
  5279. if (ret) {
  5280. DRM_ERROR("failed to move cursor bo into the GTT\n");
  5281. goto fail_locked;
  5282. }
  5283. ret = i915_gem_object_put_fence(obj);
  5284. if (ret) {
  5285. DRM_ERROR("failed to release fence for cursor");
  5286. goto fail_unpin;
  5287. }
  5288. addr = obj->gtt_offset;
  5289. } else {
  5290. int align = IS_I830(dev) ? 16 * 1024 : 256;
  5291. ret = i915_gem_attach_phys_object(dev, obj,
  5292. (intel_crtc->pipe == 0) ? I915_GEM_PHYS_CURSOR_0 : I915_GEM_PHYS_CURSOR_1,
  5293. align);
  5294. if (ret) {
  5295. DRM_ERROR("failed to attach phys object\n");
  5296. goto fail_locked;
  5297. }
  5298. addr = obj->phys_obj->handle->busaddr;
  5299. }
  5300. if (IS_GEN2(dev))
  5301. I915_WRITE(CURSIZE, (height << 12) | width);
  5302. finish:
  5303. if (intel_crtc->cursor_bo) {
  5304. if (dev_priv->info->cursor_needs_physical) {
  5305. if (intel_crtc->cursor_bo != obj)
  5306. i915_gem_detach_phys_object(dev, intel_crtc->cursor_bo);
  5307. } else
  5308. i915_gem_object_unpin(intel_crtc->cursor_bo);
  5309. drm_gem_object_unreference(&intel_crtc->cursor_bo->base);
  5310. }
  5311. mutex_unlock(&dev->struct_mutex);
  5312. intel_crtc->cursor_addr = addr;
  5313. intel_crtc->cursor_bo = obj;
  5314. intel_crtc->cursor_width = width;
  5315. intel_crtc->cursor_height = height;
  5316. intel_crtc_update_cursor(crtc, true);
  5317. return 0;
  5318. fail_unpin:
  5319. i915_gem_object_unpin(obj);
  5320. fail_locked:
  5321. mutex_unlock(&dev->struct_mutex);
  5322. fail:
  5323. drm_gem_object_unreference_unlocked(&obj->base);
  5324. return ret;
  5325. }
  5326. static int intel_crtc_cursor_move(struct drm_crtc *crtc, int x, int y)
  5327. {
  5328. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5329. intel_crtc->cursor_x = x;
  5330. intel_crtc->cursor_y = y;
  5331. intel_crtc_update_cursor(crtc, true);
  5332. return 0;
  5333. }
  5334. /** Sets the color ramps on behalf of RandR */
  5335. void intel_crtc_fb_gamma_set(struct drm_crtc *crtc, u16 red, u16 green,
  5336. u16 blue, int regno)
  5337. {
  5338. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5339. intel_crtc->lut_r[regno] = red >> 8;
  5340. intel_crtc->lut_g[regno] = green >> 8;
  5341. intel_crtc->lut_b[regno] = blue >> 8;
  5342. }
  5343. void intel_crtc_fb_gamma_get(struct drm_crtc *crtc, u16 *red, u16 *green,
  5344. u16 *blue, int regno)
  5345. {
  5346. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5347. *red = intel_crtc->lut_r[regno] << 8;
  5348. *green = intel_crtc->lut_g[regno] << 8;
  5349. *blue = intel_crtc->lut_b[regno] << 8;
  5350. }
  5351. static void intel_crtc_gamma_set(struct drm_crtc *crtc, u16 *red, u16 *green,
  5352. u16 *blue, uint32_t start, uint32_t size)
  5353. {
  5354. int end = (start + size > 256) ? 256 : start + size, i;
  5355. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5356. for (i = start; i < end; i++) {
  5357. intel_crtc->lut_r[i] = red[i] >> 8;
  5358. intel_crtc->lut_g[i] = green[i] >> 8;
  5359. intel_crtc->lut_b[i] = blue[i] >> 8;
  5360. }
  5361. intel_crtc_load_lut(crtc);
  5362. }
  5363. /**
  5364. * Get a pipe with a simple mode set on it for doing load-based monitor
  5365. * detection.
  5366. *
  5367. * It will be up to the load-detect code to adjust the pipe as appropriate for
  5368. * its requirements. The pipe will be connected to no other encoders.
  5369. *
  5370. * Currently this code will only succeed if there is a pipe with no encoders
  5371. * configured for it. In the future, it could choose to temporarily disable
  5372. * some outputs to free up a pipe for its use.
  5373. *
  5374. * \return crtc, or NULL if no pipes are available.
  5375. */
  5376. /* VESA 640x480x72Hz mode to set on the pipe */
  5377. static struct drm_display_mode load_detect_mode = {
  5378. DRM_MODE("640x480", DRM_MODE_TYPE_DEFAULT, 31500, 640, 664,
  5379. 704, 832, 0, 480, 489, 491, 520, 0, DRM_MODE_FLAG_NHSYNC | DRM_MODE_FLAG_NVSYNC),
  5380. };
  5381. static struct drm_framebuffer *
  5382. intel_framebuffer_create(struct drm_device *dev,
  5383. struct drm_mode_fb_cmd2 *mode_cmd,
  5384. struct drm_i915_gem_object *obj)
  5385. {
  5386. struct intel_framebuffer *intel_fb;
  5387. int ret;
  5388. intel_fb = kzalloc(sizeof(*intel_fb), GFP_KERNEL);
  5389. if (!intel_fb) {
  5390. drm_gem_object_unreference_unlocked(&obj->base);
  5391. return ERR_PTR(-ENOMEM);
  5392. }
  5393. ret = intel_framebuffer_init(dev, intel_fb, mode_cmd, obj);
  5394. if (ret) {
  5395. drm_gem_object_unreference_unlocked(&obj->base);
  5396. kfree(intel_fb);
  5397. return ERR_PTR(ret);
  5398. }
  5399. return &intel_fb->base;
  5400. }
  5401. static u32
  5402. intel_framebuffer_pitch_for_width(int width, int bpp)
  5403. {
  5404. u32 pitch = DIV_ROUND_UP(width * bpp, 8);
  5405. return ALIGN(pitch, 64);
  5406. }
  5407. static u32
  5408. intel_framebuffer_size_for_mode(struct drm_display_mode *mode, int bpp)
  5409. {
  5410. u32 pitch = intel_framebuffer_pitch_for_width(mode->hdisplay, bpp);
  5411. return ALIGN(pitch * mode->vdisplay, PAGE_SIZE);
  5412. }
  5413. static struct drm_framebuffer *
  5414. intel_framebuffer_create_for_mode(struct drm_device *dev,
  5415. struct drm_display_mode *mode,
  5416. int depth, int bpp)
  5417. {
  5418. struct drm_i915_gem_object *obj;
  5419. struct drm_mode_fb_cmd2 mode_cmd;
  5420. obj = i915_gem_alloc_object(dev,
  5421. intel_framebuffer_size_for_mode(mode, bpp));
  5422. if (obj == NULL)
  5423. return ERR_PTR(-ENOMEM);
  5424. mode_cmd.width = mode->hdisplay;
  5425. mode_cmd.height = mode->vdisplay;
  5426. mode_cmd.pitches[0] = intel_framebuffer_pitch_for_width(mode_cmd.width,
  5427. bpp);
  5428. mode_cmd.pixel_format = drm_mode_legacy_fb_format(bpp, depth);
  5429. return intel_framebuffer_create(dev, &mode_cmd, obj);
  5430. }
  5431. static struct drm_framebuffer *
  5432. mode_fits_in_fbdev(struct drm_device *dev,
  5433. struct drm_display_mode *mode)
  5434. {
  5435. struct drm_i915_private *dev_priv = dev->dev_private;
  5436. struct drm_i915_gem_object *obj;
  5437. struct drm_framebuffer *fb;
  5438. if (dev_priv->fbdev == NULL)
  5439. return NULL;
  5440. obj = dev_priv->fbdev->ifb.obj;
  5441. if (obj == NULL)
  5442. return NULL;
  5443. fb = &dev_priv->fbdev->ifb.base;
  5444. if (fb->pitches[0] < intel_framebuffer_pitch_for_width(mode->hdisplay,
  5445. fb->bits_per_pixel))
  5446. return NULL;
  5447. if (obj->base.size < mode->vdisplay * fb->pitches[0])
  5448. return NULL;
  5449. return fb;
  5450. }
  5451. bool intel_get_load_detect_pipe(struct drm_connector *connector,
  5452. struct drm_display_mode *mode,
  5453. struct intel_load_detect_pipe *old)
  5454. {
  5455. struct intel_crtc *intel_crtc;
  5456. struct intel_encoder *intel_encoder =
  5457. intel_attached_encoder(connector);
  5458. struct drm_crtc *possible_crtc;
  5459. struct drm_encoder *encoder = &intel_encoder->base;
  5460. struct drm_crtc *crtc = NULL;
  5461. struct drm_device *dev = encoder->dev;
  5462. struct drm_framebuffer *fb;
  5463. int i = -1;
  5464. DRM_DEBUG_KMS("[CONNECTOR:%d:%s], [ENCODER:%d:%s]\n",
  5465. connector->base.id, drm_get_connector_name(connector),
  5466. encoder->base.id, drm_get_encoder_name(encoder));
  5467. /*
  5468. * Algorithm gets a little messy:
  5469. *
  5470. * - if the connector already has an assigned crtc, use it (but make
  5471. * sure it's on first)
  5472. *
  5473. * - try to find the first unused crtc that can drive this connector,
  5474. * and use that if we find one
  5475. */
  5476. /* See if we already have a CRTC for this connector */
  5477. if (encoder->crtc) {
  5478. crtc = encoder->crtc;
  5479. old->dpms_mode = connector->dpms;
  5480. old->load_detect_temp = false;
  5481. /* Make sure the crtc and connector are running */
  5482. if (connector->dpms != DRM_MODE_DPMS_ON)
  5483. connector->funcs->dpms(connector, DRM_MODE_DPMS_ON);
  5484. return true;
  5485. }
  5486. /* Find an unused one (if possible) */
  5487. list_for_each_entry(possible_crtc, &dev->mode_config.crtc_list, head) {
  5488. i++;
  5489. if (!(encoder->possible_crtcs & (1 << i)))
  5490. continue;
  5491. if (!possible_crtc->enabled) {
  5492. crtc = possible_crtc;
  5493. break;
  5494. }
  5495. }
  5496. /*
  5497. * If we didn't find an unused CRTC, don't use any.
  5498. */
  5499. if (!crtc) {
  5500. DRM_DEBUG_KMS("no pipe available for load-detect\n");
  5501. return false;
  5502. }
  5503. intel_encoder->new_crtc = to_intel_crtc(crtc);
  5504. to_intel_connector(connector)->new_encoder = intel_encoder;
  5505. intel_crtc = to_intel_crtc(crtc);
  5506. old->dpms_mode = connector->dpms;
  5507. old->load_detect_temp = true;
  5508. old->release_fb = NULL;
  5509. if (!mode)
  5510. mode = &load_detect_mode;
  5511. /* We need a framebuffer large enough to accommodate all accesses
  5512. * that the plane may generate whilst we perform load detection.
  5513. * We can not rely on the fbcon either being present (we get called
  5514. * during its initialisation to detect all boot displays, or it may
  5515. * not even exist) or that it is large enough to satisfy the
  5516. * requested mode.
  5517. */
  5518. fb = mode_fits_in_fbdev(dev, mode);
  5519. if (fb == NULL) {
  5520. DRM_DEBUG_KMS("creating tmp fb for load-detection\n");
  5521. fb = intel_framebuffer_create_for_mode(dev, mode, 24, 32);
  5522. old->release_fb = fb;
  5523. } else
  5524. DRM_DEBUG_KMS("reusing fbdev for load-detection framebuffer\n");
  5525. if (IS_ERR(fb)) {
  5526. DRM_DEBUG_KMS("failed to allocate framebuffer for load-detection\n");
  5527. goto fail;
  5528. }
  5529. if (!intel_set_mode(crtc, mode, 0, 0, fb)) {
  5530. DRM_DEBUG_KMS("failed to set mode on load-detect pipe\n");
  5531. if (old->release_fb)
  5532. old->release_fb->funcs->destroy(old->release_fb);
  5533. goto fail;
  5534. }
  5535. /* let the connector get through one full cycle before testing */
  5536. intel_wait_for_vblank(dev, intel_crtc->pipe);
  5537. return true;
  5538. fail:
  5539. connector->encoder = NULL;
  5540. encoder->crtc = NULL;
  5541. return false;
  5542. }
  5543. void intel_release_load_detect_pipe(struct drm_connector *connector,
  5544. struct intel_load_detect_pipe *old)
  5545. {
  5546. struct intel_encoder *intel_encoder =
  5547. intel_attached_encoder(connector);
  5548. struct drm_encoder *encoder = &intel_encoder->base;
  5549. DRM_DEBUG_KMS("[CONNECTOR:%d:%s], [ENCODER:%d:%s]\n",
  5550. connector->base.id, drm_get_connector_name(connector),
  5551. encoder->base.id, drm_get_encoder_name(encoder));
  5552. if (old->load_detect_temp) {
  5553. struct drm_crtc *crtc = encoder->crtc;
  5554. to_intel_connector(connector)->new_encoder = NULL;
  5555. intel_encoder->new_crtc = NULL;
  5556. intel_set_mode(crtc, NULL, 0, 0, NULL);
  5557. if (old->release_fb)
  5558. old->release_fb->funcs->destroy(old->release_fb);
  5559. return;
  5560. }
  5561. /* Switch crtc and encoder back off if necessary */
  5562. if (old->dpms_mode != DRM_MODE_DPMS_ON)
  5563. connector->funcs->dpms(connector, old->dpms_mode);
  5564. }
  5565. /* Returns the clock of the currently programmed mode of the given pipe. */
  5566. static int intel_crtc_clock_get(struct drm_device *dev, struct drm_crtc *crtc)
  5567. {
  5568. struct drm_i915_private *dev_priv = dev->dev_private;
  5569. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5570. int pipe = intel_crtc->pipe;
  5571. u32 dpll = I915_READ(DPLL(pipe));
  5572. u32 fp;
  5573. intel_clock_t clock;
  5574. if ((dpll & DISPLAY_RATE_SELECT_FPA1) == 0)
  5575. fp = I915_READ(FP0(pipe));
  5576. else
  5577. fp = I915_READ(FP1(pipe));
  5578. clock.m1 = (fp & FP_M1_DIV_MASK) >> FP_M1_DIV_SHIFT;
  5579. if (IS_PINEVIEW(dev)) {
  5580. clock.n = ffs((fp & FP_N_PINEVIEW_DIV_MASK) >> FP_N_DIV_SHIFT) - 1;
  5581. clock.m2 = (fp & FP_M2_PINEVIEW_DIV_MASK) >> FP_M2_DIV_SHIFT;
  5582. } else {
  5583. clock.n = (fp & FP_N_DIV_MASK) >> FP_N_DIV_SHIFT;
  5584. clock.m2 = (fp & FP_M2_DIV_MASK) >> FP_M2_DIV_SHIFT;
  5585. }
  5586. if (!IS_GEN2(dev)) {
  5587. if (IS_PINEVIEW(dev))
  5588. clock.p1 = ffs((dpll & DPLL_FPA01_P1_POST_DIV_MASK_PINEVIEW) >>
  5589. DPLL_FPA01_P1_POST_DIV_SHIFT_PINEVIEW);
  5590. else
  5591. clock.p1 = ffs((dpll & DPLL_FPA01_P1_POST_DIV_MASK) >>
  5592. DPLL_FPA01_P1_POST_DIV_SHIFT);
  5593. switch (dpll & DPLL_MODE_MASK) {
  5594. case DPLLB_MODE_DAC_SERIAL:
  5595. clock.p2 = dpll & DPLL_DAC_SERIAL_P2_CLOCK_DIV_5 ?
  5596. 5 : 10;
  5597. break;
  5598. case DPLLB_MODE_LVDS:
  5599. clock.p2 = dpll & DPLLB_LVDS_P2_CLOCK_DIV_7 ?
  5600. 7 : 14;
  5601. break;
  5602. default:
  5603. DRM_DEBUG_KMS("Unknown DPLL mode %08x in programmed "
  5604. "mode\n", (int)(dpll & DPLL_MODE_MASK));
  5605. return 0;
  5606. }
  5607. /* XXX: Handle the 100Mhz refclk */
  5608. intel_clock(dev, 96000, &clock);
  5609. } else {
  5610. bool is_lvds = (pipe == 1) && (I915_READ(LVDS) & LVDS_PORT_EN);
  5611. if (is_lvds) {
  5612. clock.p1 = ffs((dpll & DPLL_FPA01_P1_POST_DIV_MASK_I830_LVDS) >>
  5613. DPLL_FPA01_P1_POST_DIV_SHIFT);
  5614. clock.p2 = 14;
  5615. if ((dpll & PLL_REF_INPUT_MASK) ==
  5616. PLLB_REF_INPUT_SPREADSPECTRUMIN) {
  5617. /* XXX: might not be 66MHz */
  5618. intel_clock(dev, 66000, &clock);
  5619. } else
  5620. intel_clock(dev, 48000, &clock);
  5621. } else {
  5622. if (dpll & PLL_P1_DIVIDE_BY_TWO)
  5623. clock.p1 = 2;
  5624. else {
  5625. clock.p1 = ((dpll & DPLL_FPA01_P1_POST_DIV_MASK_I830) >>
  5626. DPLL_FPA01_P1_POST_DIV_SHIFT) + 2;
  5627. }
  5628. if (dpll & PLL_P2_DIVIDE_BY_4)
  5629. clock.p2 = 4;
  5630. else
  5631. clock.p2 = 2;
  5632. intel_clock(dev, 48000, &clock);
  5633. }
  5634. }
  5635. /* XXX: It would be nice to validate the clocks, but we can't reuse
  5636. * i830PllIsValid() because it relies on the xf86_config connector
  5637. * configuration being accurate, which it isn't necessarily.
  5638. */
  5639. return clock.dot;
  5640. }
  5641. /** Returns the currently programmed mode of the given pipe. */
  5642. struct drm_display_mode *intel_crtc_mode_get(struct drm_device *dev,
  5643. struct drm_crtc *crtc)
  5644. {
  5645. struct drm_i915_private *dev_priv = dev->dev_private;
  5646. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5647. enum transcoder cpu_transcoder = intel_crtc->cpu_transcoder;
  5648. struct drm_display_mode *mode;
  5649. int htot = I915_READ(HTOTAL(cpu_transcoder));
  5650. int hsync = I915_READ(HSYNC(cpu_transcoder));
  5651. int vtot = I915_READ(VTOTAL(cpu_transcoder));
  5652. int vsync = I915_READ(VSYNC(cpu_transcoder));
  5653. mode = kzalloc(sizeof(*mode), GFP_KERNEL);
  5654. if (!mode)
  5655. return NULL;
  5656. mode->clock = intel_crtc_clock_get(dev, crtc);
  5657. mode->hdisplay = (htot & 0xffff) + 1;
  5658. mode->htotal = ((htot & 0xffff0000) >> 16) + 1;
  5659. mode->hsync_start = (hsync & 0xffff) + 1;
  5660. mode->hsync_end = ((hsync & 0xffff0000) >> 16) + 1;
  5661. mode->vdisplay = (vtot & 0xffff) + 1;
  5662. mode->vtotal = ((vtot & 0xffff0000) >> 16) + 1;
  5663. mode->vsync_start = (vsync & 0xffff) + 1;
  5664. mode->vsync_end = ((vsync & 0xffff0000) >> 16) + 1;
  5665. drm_mode_set_name(mode);
  5666. return mode;
  5667. }
  5668. static void intel_increase_pllclock(struct drm_crtc *crtc)
  5669. {
  5670. struct drm_device *dev = crtc->dev;
  5671. drm_i915_private_t *dev_priv = dev->dev_private;
  5672. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5673. int pipe = intel_crtc->pipe;
  5674. int dpll_reg = DPLL(pipe);
  5675. int dpll;
  5676. if (HAS_PCH_SPLIT(dev))
  5677. return;
  5678. if (!dev_priv->lvds_downclock_avail)
  5679. return;
  5680. dpll = I915_READ(dpll_reg);
  5681. if (!HAS_PIPE_CXSR(dev) && (dpll & DISPLAY_RATE_SELECT_FPA1)) {
  5682. DRM_DEBUG_DRIVER("upclocking LVDS\n");
  5683. assert_panel_unlocked(dev_priv, pipe);
  5684. dpll &= ~DISPLAY_RATE_SELECT_FPA1;
  5685. I915_WRITE(dpll_reg, dpll);
  5686. intel_wait_for_vblank(dev, pipe);
  5687. dpll = I915_READ(dpll_reg);
  5688. if (dpll & DISPLAY_RATE_SELECT_FPA1)
  5689. DRM_DEBUG_DRIVER("failed to upclock LVDS!\n");
  5690. }
  5691. }
  5692. static void intel_decrease_pllclock(struct drm_crtc *crtc)
  5693. {
  5694. struct drm_device *dev = crtc->dev;
  5695. drm_i915_private_t *dev_priv = dev->dev_private;
  5696. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5697. if (HAS_PCH_SPLIT(dev))
  5698. return;
  5699. if (!dev_priv->lvds_downclock_avail)
  5700. return;
  5701. /*
  5702. * Since this is called by a timer, we should never get here in
  5703. * the manual case.
  5704. */
  5705. if (!HAS_PIPE_CXSR(dev) && intel_crtc->lowfreq_avail) {
  5706. int pipe = intel_crtc->pipe;
  5707. int dpll_reg = DPLL(pipe);
  5708. int dpll;
  5709. DRM_DEBUG_DRIVER("downclocking LVDS\n");
  5710. assert_panel_unlocked(dev_priv, pipe);
  5711. dpll = I915_READ(dpll_reg);
  5712. dpll |= DISPLAY_RATE_SELECT_FPA1;
  5713. I915_WRITE(dpll_reg, dpll);
  5714. intel_wait_for_vblank(dev, pipe);
  5715. dpll = I915_READ(dpll_reg);
  5716. if (!(dpll & DISPLAY_RATE_SELECT_FPA1))
  5717. DRM_DEBUG_DRIVER("failed to downclock LVDS!\n");
  5718. }
  5719. }
  5720. void intel_mark_busy(struct drm_device *dev)
  5721. {
  5722. i915_update_gfx_val(dev->dev_private);
  5723. }
  5724. void intel_mark_idle(struct drm_device *dev)
  5725. {
  5726. }
  5727. void intel_mark_fb_busy(struct drm_i915_gem_object *obj)
  5728. {
  5729. struct drm_device *dev = obj->base.dev;
  5730. struct drm_crtc *crtc;
  5731. if (!i915_powersave)
  5732. return;
  5733. list_for_each_entry(crtc, &dev->mode_config.crtc_list, head) {
  5734. if (!crtc->fb)
  5735. continue;
  5736. if (to_intel_framebuffer(crtc->fb)->obj == obj)
  5737. intel_increase_pllclock(crtc);
  5738. }
  5739. }
  5740. void intel_mark_fb_idle(struct drm_i915_gem_object *obj)
  5741. {
  5742. struct drm_device *dev = obj->base.dev;
  5743. struct drm_crtc *crtc;
  5744. if (!i915_powersave)
  5745. return;
  5746. list_for_each_entry(crtc, &dev->mode_config.crtc_list, head) {
  5747. if (!crtc->fb)
  5748. continue;
  5749. if (to_intel_framebuffer(crtc->fb)->obj == obj)
  5750. intel_decrease_pllclock(crtc);
  5751. }
  5752. }
  5753. static void intel_crtc_destroy(struct drm_crtc *crtc)
  5754. {
  5755. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5756. struct drm_device *dev = crtc->dev;
  5757. struct intel_unpin_work *work;
  5758. unsigned long flags;
  5759. spin_lock_irqsave(&dev->event_lock, flags);
  5760. work = intel_crtc->unpin_work;
  5761. intel_crtc->unpin_work = NULL;
  5762. spin_unlock_irqrestore(&dev->event_lock, flags);
  5763. if (work) {
  5764. cancel_work_sync(&work->work);
  5765. kfree(work);
  5766. }
  5767. drm_crtc_cleanup(crtc);
  5768. kfree(intel_crtc);
  5769. }
  5770. static void intel_unpin_work_fn(struct work_struct *__work)
  5771. {
  5772. struct intel_unpin_work *work =
  5773. container_of(__work, struct intel_unpin_work, work);
  5774. mutex_lock(&work->dev->struct_mutex);
  5775. intel_unpin_fb_obj(work->old_fb_obj);
  5776. drm_gem_object_unreference(&work->pending_flip_obj->base);
  5777. drm_gem_object_unreference(&work->old_fb_obj->base);
  5778. intel_update_fbc(work->dev);
  5779. mutex_unlock(&work->dev->struct_mutex);
  5780. kfree(work);
  5781. }
  5782. static void do_intel_finish_page_flip(struct drm_device *dev,
  5783. struct drm_crtc *crtc)
  5784. {
  5785. drm_i915_private_t *dev_priv = dev->dev_private;
  5786. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5787. struct intel_unpin_work *work;
  5788. struct drm_i915_gem_object *obj;
  5789. struct drm_pending_vblank_event *e;
  5790. struct timeval tvbl;
  5791. unsigned long flags;
  5792. /* Ignore early vblank irqs */
  5793. if (intel_crtc == NULL)
  5794. return;
  5795. spin_lock_irqsave(&dev->event_lock, flags);
  5796. work = intel_crtc->unpin_work;
  5797. if (work == NULL || !work->pending) {
  5798. spin_unlock_irqrestore(&dev->event_lock, flags);
  5799. return;
  5800. }
  5801. intel_crtc->unpin_work = NULL;
  5802. if (work->event) {
  5803. e = work->event;
  5804. e->event.sequence = drm_vblank_count_and_time(dev, intel_crtc->pipe, &tvbl);
  5805. e->event.tv_sec = tvbl.tv_sec;
  5806. e->event.tv_usec = tvbl.tv_usec;
  5807. list_add_tail(&e->base.link,
  5808. &e->base.file_priv->event_list);
  5809. wake_up_interruptible(&e->base.file_priv->event_wait);
  5810. }
  5811. drm_vblank_put(dev, intel_crtc->pipe);
  5812. spin_unlock_irqrestore(&dev->event_lock, flags);
  5813. obj = work->old_fb_obj;
  5814. atomic_clear_mask(1 << intel_crtc->plane,
  5815. &obj->pending_flip.counter);
  5816. wake_up(&dev_priv->pending_flip_queue);
  5817. schedule_work(&work->work);
  5818. trace_i915_flip_complete(intel_crtc->plane, work->pending_flip_obj);
  5819. }
  5820. void intel_finish_page_flip(struct drm_device *dev, int pipe)
  5821. {
  5822. drm_i915_private_t *dev_priv = dev->dev_private;
  5823. struct drm_crtc *crtc = dev_priv->pipe_to_crtc_mapping[pipe];
  5824. do_intel_finish_page_flip(dev, crtc);
  5825. }
  5826. void intel_finish_page_flip_plane(struct drm_device *dev, int plane)
  5827. {
  5828. drm_i915_private_t *dev_priv = dev->dev_private;
  5829. struct drm_crtc *crtc = dev_priv->plane_to_crtc_mapping[plane];
  5830. do_intel_finish_page_flip(dev, crtc);
  5831. }
  5832. void intel_prepare_page_flip(struct drm_device *dev, int plane)
  5833. {
  5834. drm_i915_private_t *dev_priv = dev->dev_private;
  5835. struct intel_crtc *intel_crtc =
  5836. to_intel_crtc(dev_priv->plane_to_crtc_mapping[plane]);
  5837. unsigned long flags;
  5838. spin_lock_irqsave(&dev->event_lock, flags);
  5839. if (intel_crtc->unpin_work) {
  5840. if ((++intel_crtc->unpin_work->pending) > 1)
  5841. DRM_ERROR("Prepared flip multiple times\n");
  5842. } else {
  5843. DRM_DEBUG_DRIVER("preparing flip with no unpin work?\n");
  5844. }
  5845. spin_unlock_irqrestore(&dev->event_lock, flags);
  5846. }
  5847. static int intel_gen2_queue_flip(struct drm_device *dev,
  5848. struct drm_crtc *crtc,
  5849. struct drm_framebuffer *fb,
  5850. struct drm_i915_gem_object *obj)
  5851. {
  5852. struct drm_i915_private *dev_priv = dev->dev_private;
  5853. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5854. u32 flip_mask;
  5855. struct intel_ring_buffer *ring = &dev_priv->ring[RCS];
  5856. int ret;
  5857. ret = intel_pin_and_fence_fb_obj(dev, obj, ring);
  5858. if (ret)
  5859. goto err;
  5860. ret = intel_ring_begin(ring, 6);
  5861. if (ret)
  5862. goto err_unpin;
  5863. /* Can't queue multiple flips, so wait for the previous
  5864. * one to finish before executing the next.
  5865. */
  5866. if (intel_crtc->plane)
  5867. flip_mask = MI_WAIT_FOR_PLANE_B_FLIP;
  5868. else
  5869. flip_mask = MI_WAIT_FOR_PLANE_A_FLIP;
  5870. intel_ring_emit(ring, MI_WAIT_FOR_EVENT | flip_mask);
  5871. intel_ring_emit(ring, MI_NOOP);
  5872. intel_ring_emit(ring, MI_DISPLAY_FLIP |
  5873. MI_DISPLAY_FLIP_PLANE(intel_crtc->plane));
  5874. intel_ring_emit(ring, fb->pitches[0]);
  5875. intel_ring_emit(ring, obj->gtt_offset + intel_crtc->dspaddr_offset);
  5876. intel_ring_emit(ring, 0); /* aux display base address, unused */
  5877. intel_ring_advance(ring);
  5878. return 0;
  5879. err_unpin:
  5880. intel_unpin_fb_obj(obj);
  5881. err:
  5882. return ret;
  5883. }
  5884. static int intel_gen3_queue_flip(struct drm_device *dev,
  5885. struct drm_crtc *crtc,
  5886. struct drm_framebuffer *fb,
  5887. struct drm_i915_gem_object *obj)
  5888. {
  5889. struct drm_i915_private *dev_priv = dev->dev_private;
  5890. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5891. u32 flip_mask;
  5892. struct intel_ring_buffer *ring = &dev_priv->ring[RCS];
  5893. int ret;
  5894. ret = intel_pin_and_fence_fb_obj(dev, obj, ring);
  5895. if (ret)
  5896. goto err;
  5897. ret = intel_ring_begin(ring, 6);
  5898. if (ret)
  5899. goto err_unpin;
  5900. if (intel_crtc->plane)
  5901. flip_mask = MI_WAIT_FOR_PLANE_B_FLIP;
  5902. else
  5903. flip_mask = MI_WAIT_FOR_PLANE_A_FLIP;
  5904. intel_ring_emit(ring, MI_WAIT_FOR_EVENT | flip_mask);
  5905. intel_ring_emit(ring, MI_NOOP);
  5906. intel_ring_emit(ring, MI_DISPLAY_FLIP_I915 |
  5907. MI_DISPLAY_FLIP_PLANE(intel_crtc->plane));
  5908. intel_ring_emit(ring, fb->pitches[0]);
  5909. intel_ring_emit(ring, obj->gtt_offset + intel_crtc->dspaddr_offset);
  5910. intel_ring_emit(ring, MI_NOOP);
  5911. intel_ring_advance(ring);
  5912. return 0;
  5913. err_unpin:
  5914. intel_unpin_fb_obj(obj);
  5915. err:
  5916. return ret;
  5917. }
  5918. static int intel_gen4_queue_flip(struct drm_device *dev,
  5919. struct drm_crtc *crtc,
  5920. struct drm_framebuffer *fb,
  5921. struct drm_i915_gem_object *obj)
  5922. {
  5923. struct drm_i915_private *dev_priv = dev->dev_private;
  5924. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5925. uint32_t pf, pipesrc;
  5926. struct intel_ring_buffer *ring = &dev_priv->ring[RCS];
  5927. int ret;
  5928. ret = intel_pin_and_fence_fb_obj(dev, obj, ring);
  5929. if (ret)
  5930. goto err;
  5931. ret = intel_ring_begin(ring, 4);
  5932. if (ret)
  5933. goto err_unpin;
  5934. /* i965+ uses the linear or tiled offsets from the
  5935. * Display Registers (which do not change across a page-flip)
  5936. * so we need only reprogram the base address.
  5937. */
  5938. intel_ring_emit(ring, MI_DISPLAY_FLIP |
  5939. MI_DISPLAY_FLIP_PLANE(intel_crtc->plane));
  5940. intel_ring_emit(ring, fb->pitches[0]);
  5941. intel_ring_emit(ring,
  5942. (obj->gtt_offset + intel_crtc->dspaddr_offset) |
  5943. obj->tiling_mode);
  5944. /* XXX Enabling the panel-fitter across page-flip is so far
  5945. * untested on non-native modes, so ignore it for now.
  5946. * pf = I915_READ(pipe == 0 ? PFA_CTL_1 : PFB_CTL_1) & PF_ENABLE;
  5947. */
  5948. pf = 0;
  5949. pipesrc = I915_READ(PIPESRC(intel_crtc->pipe)) & 0x0fff0fff;
  5950. intel_ring_emit(ring, pf | pipesrc);
  5951. intel_ring_advance(ring);
  5952. return 0;
  5953. err_unpin:
  5954. intel_unpin_fb_obj(obj);
  5955. err:
  5956. return ret;
  5957. }
  5958. static int intel_gen6_queue_flip(struct drm_device *dev,
  5959. struct drm_crtc *crtc,
  5960. struct drm_framebuffer *fb,
  5961. struct drm_i915_gem_object *obj)
  5962. {
  5963. struct drm_i915_private *dev_priv = dev->dev_private;
  5964. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  5965. struct intel_ring_buffer *ring = &dev_priv->ring[RCS];
  5966. uint32_t pf, pipesrc;
  5967. int ret;
  5968. ret = intel_pin_and_fence_fb_obj(dev, obj, ring);
  5969. if (ret)
  5970. goto err;
  5971. ret = intel_ring_begin(ring, 4);
  5972. if (ret)
  5973. goto err_unpin;
  5974. intel_ring_emit(ring, MI_DISPLAY_FLIP |
  5975. MI_DISPLAY_FLIP_PLANE(intel_crtc->plane));
  5976. intel_ring_emit(ring, fb->pitches[0] | obj->tiling_mode);
  5977. intel_ring_emit(ring, obj->gtt_offset + intel_crtc->dspaddr_offset);
  5978. /* Contrary to the suggestions in the documentation,
  5979. * "Enable Panel Fitter" does not seem to be required when page
  5980. * flipping with a non-native mode, and worse causes a normal
  5981. * modeset to fail.
  5982. * pf = I915_READ(PF_CTL(intel_crtc->pipe)) & PF_ENABLE;
  5983. */
  5984. pf = 0;
  5985. pipesrc = I915_READ(PIPESRC(intel_crtc->pipe)) & 0x0fff0fff;
  5986. intel_ring_emit(ring, pf | pipesrc);
  5987. intel_ring_advance(ring);
  5988. return 0;
  5989. err_unpin:
  5990. intel_unpin_fb_obj(obj);
  5991. err:
  5992. return ret;
  5993. }
  5994. /*
  5995. * On gen7 we currently use the blit ring because (in early silicon at least)
  5996. * the render ring doesn't give us interrpts for page flip completion, which
  5997. * means clients will hang after the first flip is queued. Fortunately the
  5998. * blit ring generates interrupts properly, so use it instead.
  5999. */
  6000. static int intel_gen7_queue_flip(struct drm_device *dev,
  6001. struct drm_crtc *crtc,
  6002. struct drm_framebuffer *fb,
  6003. struct drm_i915_gem_object *obj)
  6004. {
  6005. struct drm_i915_private *dev_priv = dev->dev_private;
  6006. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  6007. struct intel_ring_buffer *ring = &dev_priv->ring[BCS];
  6008. uint32_t plane_bit = 0;
  6009. int ret;
  6010. ret = intel_pin_and_fence_fb_obj(dev, obj, ring);
  6011. if (ret)
  6012. goto err;
  6013. switch(intel_crtc->plane) {
  6014. case PLANE_A:
  6015. plane_bit = MI_DISPLAY_FLIP_IVB_PLANE_A;
  6016. break;
  6017. case PLANE_B:
  6018. plane_bit = MI_DISPLAY_FLIP_IVB_PLANE_B;
  6019. break;
  6020. case PLANE_C:
  6021. plane_bit = MI_DISPLAY_FLIP_IVB_PLANE_C;
  6022. break;
  6023. default:
  6024. WARN_ONCE(1, "unknown plane in flip command\n");
  6025. ret = -ENODEV;
  6026. goto err_unpin;
  6027. }
  6028. ret = intel_ring_begin(ring, 4);
  6029. if (ret)
  6030. goto err_unpin;
  6031. intel_ring_emit(ring, MI_DISPLAY_FLIP_I915 | plane_bit);
  6032. intel_ring_emit(ring, (fb->pitches[0] | obj->tiling_mode));
  6033. intel_ring_emit(ring, obj->gtt_offset + intel_crtc->dspaddr_offset);
  6034. intel_ring_emit(ring, (MI_NOOP));
  6035. intel_ring_advance(ring);
  6036. return 0;
  6037. err_unpin:
  6038. intel_unpin_fb_obj(obj);
  6039. err:
  6040. return ret;
  6041. }
  6042. static int intel_default_queue_flip(struct drm_device *dev,
  6043. struct drm_crtc *crtc,
  6044. struct drm_framebuffer *fb,
  6045. struct drm_i915_gem_object *obj)
  6046. {
  6047. return -ENODEV;
  6048. }
  6049. static int intel_crtc_page_flip(struct drm_crtc *crtc,
  6050. struct drm_framebuffer *fb,
  6051. struct drm_pending_vblank_event *event)
  6052. {
  6053. struct drm_device *dev = crtc->dev;
  6054. struct drm_i915_private *dev_priv = dev->dev_private;
  6055. struct intel_framebuffer *intel_fb;
  6056. struct drm_i915_gem_object *obj;
  6057. struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
  6058. struct intel_unpin_work *work;
  6059. unsigned long flags;
  6060. int ret;
  6061. /* Can't change pixel format via MI display flips. */
  6062. if (fb->pixel_format != crtc->fb->pixel_format)
  6063. return -EINVAL;
  6064. /*
  6065. * TILEOFF/LINOFF registers can't be changed via MI display flips.
  6066. * Note that pitch changes could also affect these register.
  6067. */
  6068. if (INTEL_INFO(dev)->gen > 3 &&
  6069. (fb->offsets[0] != crtc->fb->offsets[0] ||
  6070. fb->pitches[0] != crtc->fb->pitches[0]))
  6071. return -EINVAL;
  6072. work = kzalloc(sizeof *work, GFP_KERNEL);
  6073. if (work == NULL)
  6074. return -ENOMEM;
  6075. work->event = event;
  6076. work->dev = crtc->dev;
  6077. intel_fb = to_intel_framebuffer(crtc->fb);
  6078. work->old_fb_obj = intel_fb->obj;
  6079. INIT_WORK(&work->work, intel_unpin_work_fn);
  6080. ret = drm_vblank_get(dev, intel_crtc->pipe);
  6081. if (ret)
  6082. goto free_work;
  6083. /* We borrow the event spin lock for protecting unpin_work */
  6084. spin_lock_irqsave(&dev->event_lock, flags);
  6085. if (intel_crtc->unpin_work) {
  6086. spin_unlock_irqrestore(&dev->event_lock, flags);
  6087. kfree(work);
  6088. drm_vblank_put(dev, intel_crtc->pipe);
  6089. DRM_DEBUG_DRIVER("flip queue: crtc already busy\n");
  6090. return -EBUSY;
  6091. }
  6092. intel_crtc->unpin_work = work;
  6093. spin_unlock_irqrestore(&dev->event_lock, flags);
  6094. intel_fb = to_intel_framebuffer(fb);
  6095. obj = intel_fb->obj;
  6096. ret = i915_mutex_lock_interruptible(dev);
  6097. if (ret)
  6098. goto cleanup;
  6099. /* Reference the objects for the scheduled work. */
  6100. drm_gem_object_reference(&work->old_fb_obj->base);
  6101. drm_gem_object_reference(&obj->base);
  6102. crtc->fb = fb;
  6103. work->pending_flip_obj = obj;
  6104. work->enable_stall_check = true;
  6105. /* Block clients from rendering to the new back buffer until
  6106. * the flip occurs and the object is no longer visible.
  6107. */
  6108. atomic_add(1 << intel_crtc->plane, &work->old_fb_obj->pending_flip);
  6109. ret = dev_priv->display.queue_flip(dev, crtc, fb, obj);
  6110. if (ret)
  6111. goto cleanup_pending;
  6112. intel_disable_fbc(dev);
  6113. intel_mark_fb_busy(obj);
  6114. mutex_unlock(&dev->struct_mutex);
  6115. trace_i915_flip_request(intel_crtc->plane, obj);
  6116. return 0;
  6117. cleanup_pending:
  6118. atomic_sub(1 << intel_crtc->plane, &work->old_fb_obj->pending_flip);
  6119. drm_gem_object_unreference(&work->old_fb_obj->base);
  6120. drm_gem_object_unreference(&obj->base);
  6121. mutex_unlock(&dev->struct_mutex);
  6122. cleanup:
  6123. spin_lock_irqsave(&dev->event_lock, flags);
  6124. intel_crtc->unpin_work = NULL;
  6125. spin_unlock_irqrestore(&dev->event_lock, flags);
  6126. drm_vblank_put(dev, intel_crtc->pipe);
  6127. free_work:
  6128. kfree(work);
  6129. return ret;
  6130. }
  6131. static struct drm_crtc_helper_funcs intel_helper_funcs = {
  6132. .mode_set_base_atomic = intel_pipe_set_base_atomic,
  6133. .load_lut = intel_crtc_load_lut,
  6134. .disable = intel_crtc_noop,
  6135. };
  6136. bool intel_encoder_check_is_cloned(struct intel_encoder *encoder)
  6137. {
  6138. struct intel_encoder *other_encoder;
  6139. struct drm_crtc *crtc = &encoder->new_crtc->base;
  6140. if (WARN_ON(!crtc))
  6141. return false;
  6142. list_for_each_entry(other_encoder,
  6143. &crtc->dev->mode_config.encoder_list,
  6144. base.head) {
  6145. if (&other_encoder->new_crtc->base != crtc ||
  6146. encoder == other_encoder)
  6147. continue;
  6148. else
  6149. return true;
  6150. }
  6151. return false;
  6152. }
  6153. static bool intel_encoder_crtc_ok(struct drm_encoder *encoder,
  6154. struct drm_crtc *crtc)
  6155. {
  6156. struct drm_device *dev;
  6157. struct drm_crtc *tmp;
  6158. int crtc_mask = 1;
  6159. WARN(!crtc, "checking null crtc?\n");
  6160. dev = crtc->dev;
  6161. list_for_each_entry(tmp, &dev->mode_config.crtc_list, head) {
  6162. if (tmp == crtc)
  6163. break;
  6164. crtc_mask <<= 1;
  6165. }
  6166. if (encoder->possible_crtcs & crtc_mask)
  6167. return true;
  6168. return false;
  6169. }
  6170. /**
  6171. * intel_modeset_update_staged_output_state
  6172. *
  6173. * Updates the staged output configuration state, e.g. after we've read out the
  6174. * current hw state.
  6175. */
  6176. static void intel_modeset_update_staged_output_state(struct drm_device *dev)
  6177. {
  6178. struct intel_encoder *encoder;
  6179. struct intel_connector *connector;
  6180. list_for_each_entry(connector, &dev->mode_config.connector_list,
  6181. base.head) {
  6182. connector->new_encoder =
  6183. to_intel_encoder(connector->base.encoder);
  6184. }
  6185. list_for_each_entry(encoder, &dev->mode_config.encoder_list,
  6186. base.head) {
  6187. encoder->new_crtc =
  6188. to_intel_crtc(encoder->base.crtc);
  6189. }
  6190. }
  6191. /**
  6192. * intel_modeset_commit_output_state
  6193. *
  6194. * This function copies the stage display pipe configuration to the real one.
  6195. */
  6196. static void intel_modeset_commit_output_state(struct drm_device *dev)
  6197. {
  6198. struct intel_encoder *encoder;
  6199. struct intel_connector *connector;
  6200. list_for_each_entry(connector, &dev->mode_config.connector_list,
  6201. base.head) {
  6202. connector->base.encoder = &connector->new_encoder->base;
  6203. }
  6204. list_for_each_entry(encoder, &dev->mode_config.encoder_list,
  6205. base.head) {
  6206. encoder->base.crtc = &encoder->new_crtc->base;
  6207. }
  6208. }
  6209. static struct drm_display_mode *
  6210. intel_modeset_adjusted_mode(struct drm_crtc *crtc,
  6211. struct drm_display_mode *mode)
  6212. {
  6213. struct drm_device *dev = crtc->dev;
  6214. struct drm_display_mode *adjusted_mode;
  6215. struct drm_encoder_helper_funcs *encoder_funcs;
  6216. struct intel_encoder *encoder;
  6217. adjusted_mode = drm_mode_duplicate(dev, mode);
  6218. if (!adjusted_mode)
  6219. return ERR_PTR(-ENOMEM);
  6220. /* Pass our mode to the connectors and the CRTC to give them a chance to
  6221. * adjust it according to limitations or connector properties, and also
  6222. * a chance to reject the mode entirely.
  6223. */
  6224. list_for_each_entry(encoder, &dev->mode_config.encoder_list,
  6225. base.head) {
  6226. if (&encoder->new_crtc->base != crtc)
  6227. continue;
  6228. encoder_funcs = encoder->base.helper_private;
  6229. if (!(encoder_funcs->mode_fixup(&encoder->base, mode,
  6230. adjusted_mode))) {
  6231. DRM_DEBUG_KMS("Encoder fixup failed\n");
  6232. goto fail;
  6233. }
  6234. }
  6235. if (!(intel_crtc_mode_fixup(crtc, mode, adjusted_mode))) {
  6236. DRM_DEBUG_KMS("CRTC fixup failed\n");
  6237. goto fail;
  6238. }
  6239. DRM_DEBUG_KMS("[CRTC:%d]\n", crtc->base.id);
  6240. return adjusted_mode;
  6241. fail:
  6242. drm_mode_destroy(dev, adjusted_mode);
  6243. return ERR_PTR(-EINVAL);
  6244. }
  6245. /* Computes which crtcs are affected and sets the relevant bits in the mask. For
  6246. * simplicity we use the crtc's pipe number (because it's easier to obtain). */
  6247. static void
  6248. intel_modeset_affected_pipes(struct drm_crtc *crtc, unsigned *modeset_pipes,
  6249. unsigned *prepare_pipes, unsigned *disable_pipes)
  6250. {
  6251. struct intel_crtc *intel_crtc;
  6252. struct drm_device *dev = crtc->dev;
  6253. struct intel_encoder *encoder;
  6254. struct intel_connector *connector;
  6255. struct drm_crtc *tmp_crtc;
  6256. *disable_pipes = *modeset_pipes = *prepare_pipes = 0;
  6257. /* Check which crtcs have changed outputs connected to them, these need
  6258. * to be part of the prepare_pipes mask. We don't (yet) support global
  6259. * modeset across multiple crtcs, so modeset_pipes will only have one
  6260. * bit set at most. */
  6261. list_for_each_entry(connector, &dev->mode_config.connector_list,
  6262. base.head) {
  6263. if (connector->base.encoder == &connector->new_encoder->base)
  6264. continue;
  6265. if (connector->base.encoder) {
  6266. tmp_crtc = connector->base.encoder->crtc;
  6267. *prepare_pipes |= 1 << to_intel_crtc(tmp_crtc)->pipe;
  6268. }
  6269. if (connector->new_encoder)
  6270. *prepare_pipes |=
  6271. 1 << connector->new_encoder->new_crtc->pipe;
  6272. }
  6273. list_for_each_entry(encoder, &dev->mode_config.encoder_list,
  6274. base.head) {
  6275. if (encoder->base.crtc == &encoder->new_crtc->base)
  6276. continue;
  6277. if (encoder->base.crtc) {
  6278. tmp_crtc = encoder->base.crtc;
  6279. *prepare_pipes |= 1 << to_intel_crtc(tmp_crtc)->pipe;
  6280. }
  6281. if (encoder->new_crtc)
  6282. *prepare_pipes |= 1 << encoder->new_crtc->pipe;
  6283. }
  6284. /* Check for any pipes that will be fully disabled ... */
  6285. list_for_each_entry(intel_crtc, &dev->mode_config.crtc_list,
  6286. base.head) {
  6287. bool used = false;
  6288. /* Don't try to disable disabled crtcs. */
  6289. if (!intel_crtc->base.enabled)
  6290. continue;
  6291. list_for_each_entry(encoder, &dev->mode_config.encoder_list,
  6292. base.head) {
  6293. if (encoder->new_crtc == intel_crtc)
  6294. used = true;
  6295. }
  6296. if (!used)
  6297. *disable_pipes |= 1 << intel_crtc->pipe;
  6298. }
  6299. /* set_mode is also used to update properties on life display pipes. */
  6300. intel_crtc = to_intel_crtc(crtc);
  6301. if (crtc->enabled)
  6302. *prepare_pipes |= 1 << intel_crtc->pipe;
  6303. /* We only support modeset on one single crtc, hence we need to do that
  6304. * only for the passed in crtc iff we change anything else than just
  6305. * disable crtcs.
  6306. *
  6307. * This is actually not true, to be fully compatible with the old crtc
  6308. * helper we automatically disable _any_ output (i.e. doesn't need to be
  6309. * connected to the crtc we're modesetting on) if it's disconnected.
  6310. * Which is a rather nutty api (since changed the output configuration
  6311. * without userspace's explicit request can lead to confusion), but
  6312. * alas. Hence we currently need to modeset on all pipes we prepare. */
  6313. if (*prepare_pipes)
  6314. *modeset_pipes = *prepare_pipes;
  6315. /* ... and mask these out. */
  6316. *modeset_pipes &= ~(*disable_pipes);
  6317. *prepare_pipes &= ~(*disable_pipes);
  6318. }
  6319. static bool intel_crtc_in_use(struct drm_crtc *crtc)
  6320. {
  6321. struct drm_encoder *encoder;
  6322. struct drm_device *dev = crtc->dev;
  6323. list_for_each_entry(encoder, &dev->mode_config.encoder_list, head)
  6324. if (encoder->crtc == crtc)
  6325. return true;
  6326. return false;
  6327. }
  6328. static void
  6329. intel_modeset_update_state(struct drm_device *dev, unsigned prepare_pipes)
  6330. {
  6331. struct intel_encoder *intel_encoder;
  6332. struct intel_crtc *intel_crtc;
  6333. struct drm_connector *connector;
  6334. list_for_each_entry(intel_encoder, &dev->mode_config.encoder_list,
  6335. base.head) {
  6336. if (!intel_encoder->base.crtc)
  6337. continue;
  6338. intel_crtc = to_intel_crtc(intel_encoder->base.crtc);
  6339. if (prepare_pipes & (1 << intel_crtc->pipe))
  6340. intel_encoder->connectors_active = false;
  6341. }
  6342. intel_modeset_commit_output_state(dev);
  6343. /* Update computed state. */
  6344. list_for_each_entry(intel_crtc, &dev->mode_config.crtc_list,
  6345. base.head) {
  6346. intel_crtc->base.enabled = intel_crtc_in_use(&intel_crtc->base);
  6347. }
  6348. list_for_each_entry(connector, &dev->mode_config.connector_list, head) {
  6349. if (!connector->encoder || !connector->encoder->crtc)
  6350. continue;
  6351. intel_crtc = to_intel_crtc(connector->encoder->crtc);
  6352. if (prepare_pipes & (1 << intel_crtc->pipe)) {
  6353. struct drm_property *dpms_property =
  6354. dev->mode_config.dpms_property;
  6355. connector->dpms = DRM_MODE_DPMS_ON;
  6356. drm_connector_property_set_value(connector,
  6357. dpms_property,
  6358. DRM_MODE_DPMS_ON);
  6359. intel_encoder = to_intel_encoder(connector->encoder);
  6360. intel_encoder->connectors_active = true;
  6361. }
  6362. }
  6363. }
  6364. #define for_each_intel_crtc_masked(dev, mask, intel_crtc) \
  6365. list_for_each_entry((intel_crtc), \
  6366. &(dev)->mode_config.crtc_list, \
  6367. base.head) \
  6368. if (mask & (1 <<(intel_crtc)->pipe)) \
  6369. void
  6370. intel_modeset_check_state(struct drm_device *dev)
  6371. {
  6372. struct intel_crtc *crtc;
  6373. struct intel_encoder *encoder;
  6374. struct intel_connector *connector;
  6375. list_for_each_entry(connector, &dev->mode_config.connector_list,
  6376. base.head) {
  6377. /* This also checks the encoder/connector hw state with the
  6378. * ->get_hw_state callbacks. */
  6379. intel_connector_check_state(connector);
  6380. WARN(&connector->new_encoder->base != connector->base.encoder,
  6381. "connector's staged encoder doesn't match current encoder\n");
  6382. }
  6383. list_for_each_entry(encoder, &dev->mode_config.encoder_list,
  6384. base.head) {
  6385. bool enabled = false;
  6386. bool active = false;
  6387. enum pipe pipe, tracked_pipe;
  6388. DRM_DEBUG_KMS("[ENCODER:%d:%s]\n",
  6389. encoder->base.base.id,
  6390. drm_get_encoder_name(&encoder->base));
  6391. WARN(&encoder->new_crtc->base != encoder->base.crtc,
  6392. "encoder's stage crtc doesn't match current crtc\n");
  6393. WARN(encoder->connectors_active && !encoder->base.crtc,
  6394. "encoder's active_connectors set, but no crtc\n");
  6395. list_for_each_entry(connector, &dev->mode_config.connector_list,
  6396. base.head) {
  6397. if (connector->base.encoder != &encoder->base)
  6398. continue;
  6399. enabled = true;
  6400. if (connector->base.dpms != DRM_MODE_DPMS_OFF)
  6401. active = true;
  6402. }
  6403. WARN(!!encoder->base.crtc != enabled,
  6404. "encoder's enabled state mismatch "
  6405. "(expected %i, found %i)\n",
  6406. !!encoder->base.crtc, enabled);
  6407. WARN(active && !encoder->base.crtc,
  6408. "active encoder with no crtc\n");
  6409. WARN(encoder->connectors_active != active,
  6410. "encoder's computed active state doesn't match tracked active state "
  6411. "(expected %i, found %i)\n", active, encoder->connectors_active);
  6412. active = encoder->get_hw_state(encoder, &pipe);
  6413. WARN(active != encoder->connectors_active,
  6414. "encoder's hw state doesn't match sw tracking "
  6415. "(expected %i, found %i)\n",
  6416. encoder->connectors_active, active);
  6417. if (!encoder->base.crtc)
  6418. continue;
  6419. tracked_pipe = to_intel_crtc(encoder->base.crtc)->pipe;
  6420. WARN(active && pipe != tracked_pipe,
  6421. "active encoder's pipe doesn't match"
  6422. "(expected %i, found %i)\n",
  6423. tracked_pipe, pipe);
  6424. }
  6425. list_for_each_entry(crtc, &dev->mode_config.crtc_list,
  6426. base.head) {
  6427. bool enabled = false;
  6428. bool active = false;
  6429. DRM_DEBUG_KMS("[CRTC:%d]\n",
  6430. crtc->base.base.id);
  6431. WARN(crtc->active && !crtc->base.enabled,
  6432. "active crtc, but not enabled in sw tracking\n");
  6433. list_for_each_entry(encoder, &dev->mode_config.encoder_list,
  6434. base.head) {
  6435. if (encoder->base.crtc != &crtc->base)
  6436. continue;
  6437. enabled = true;
  6438. if (encoder->connectors_active)
  6439. active = true;
  6440. }
  6441. WARN(active != crtc->active,
  6442. "crtc's computed active state doesn't match tracked active state "
  6443. "(expected %i, found %i)\n", active, crtc->active);
  6444. WARN(enabled != crtc->base.enabled,
  6445. "crtc's computed enabled state doesn't match tracked enabled state "
  6446. "(expected %i, found %i)\n", enabled, crtc->base.enabled);
  6447. assert_pipe(dev->dev_private, crtc->pipe, crtc->active);
  6448. }
  6449. }
  6450. bool intel_set_mode(struct drm_crtc *crtc,
  6451. struct drm_display_mode *mode,
  6452. int x, int y, struct drm_framebuffer *fb)
  6453. {
  6454. struct drm_device *dev = crtc->dev;
  6455. drm_i915_private_t *dev_priv = dev->dev_private;
  6456. struct drm_display_mode *adjusted_mode, saved_mode, saved_hwmode;
  6457. struct drm_encoder_helper_funcs *encoder_funcs;
  6458. struct drm_encoder *encoder;
  6459. struct intel_crtc *intel_crtc;
  6460. unsigned disable_pipes, prepare_pipes, modeset_pipes;
  6461. bool ret = true;
  6462. intel_modeset_affected_pipes(crtc, &modeset_pipes,
  6463. &prepare_pipes, &disable_pipes);
  6464. DRM_DEBUG_KMS("set mode pipe masks: modeset: %x, prepare: %x, disable: %x\n",
  6465. modeset_pipes, prepare_pipes, disable_pipes);
  6466. for_each_intel_crtc_masked(dev, disable_pipes, intel_crtc)
  6467. intel_crtc_disable(&intel_crtc->base);
  6468. saved_hwmode = crtc->hwmode;
  6469. saved_mode = crtc->mode;
  6470. /* Hack: Because we don't (yet) support global modeset on multiple
  6471. * crtcs, we don't keep track of the new mode for more than one crtc.
  6472. * Hence simply check whether any bit is set in modeset_pipes in all the
  6473. * pieces of code that are not yet converted to deal with mutliple crtcs
  6474. * changing their mode at the same time. */
  6475. adjusted_mode = NULL;
  6476. if (modeset_pipes) {
  6477. adjusted_mode = intel_modeset_adjusted_mode(crtc, mode);
  6478. if (IS_ERR(adjusted_mode)) {
  6479. return false;
  6480. }
  6481. }
  6482. for_each_intel_crtc_masked(dev, prepare_pipes, intel_crtc) {
  6483. if (intel_crtc->base.enabled)
  6484. dev_priv->display.crtc_disable(&intel_crtc->base);
  6485. }
  6486. /* crtc->mode is already used by the ->mode_set callbacks, hence we need
  6487. * to set it here already despite that we pass it down the callchain.
  6488. */
  6489. if (modeset_pipes)
  6490. crtc->mode = *mode;
  6491. /* Only after disabling all output pipelines that will be changed can we
  6492. * update the the output configuration. */
  6493. intel_modeset_update_state(dev, prepare_pipes);
  6494. if (dev_priv->display.modeset_global_resources)
  6495. dev_priv->display.modeset_global_resources(dev);
  6496. /* Set up the DPLL and any encoders state that needs to adjust or depend
  6497. * on the DPLL.
  6498. */
  6499. for_each_intel_crtc_masked(dev, modeset_pipes, intel_crtc) {
  6500. ret = !intel_crtc_mode_set(&intel_crtc->base,
  6501. mode, adjusted_mode,
  6502. x, y, fb);
  6503. if (!ret)
  6504. goto done;
  6505. list_for_each_entry(encoder, &dev->mode_config.encoder_list, head) {
  6506. if (encoder->crtc != &intel_crtc->base)
  6507. continue;
  6508. DRM_DEBUG_KMS("[ENCODER:%d:%s] set [MODE:%d:%s]\n",
  6509. encoder->base.id, drm_get_encoder_name(encoder),
  6510. mode->base.id, mode->name);
  6511. encoder_funcs = encoder->helper_private;
  6512. encoder_funcs->mode_set(encoder, mode, adjusted_mode);
  6513. }
  6514. }
  6515. /* Now enable the clocks, plane, pipe, and connectors that we set up. */
  6516. for_each_intel_crtc_masked(dev, prepare_pipes, intel_crtc)
  6517. dev_priv->display.crtc_enable(&intel_crtc->base);
  6518. if (modeset_pipes) {
  6519. /* Store real post-adjustment hardware mode. */
  6520. crtc->hwmode = *adjusted_mode;
  6521. /* Calculate and store various constants which
  6522. * are later needed by vblank and swap-completion
  6523. * timestamping. They are derived from true hwmode.
  6524. */
  6525. drm_calc_timestamping_constants(crtc);
  6526. }
  6527. /* FIXME: add subpixel order */
  6528. done:
  6529. drm_mode_destroy(dev, adjusted_mode);
  6530. if (!ret && crtc->enabled) {
  6531. crtc->hwmode = saved_hwmode;
  6532. crtc->mode = saved_mode;
  6533. } else {
  6534. intel_modeset_check_state(dev);
  6535. }
  6536. return ret;
  6537. }
  6538. #undef for_each_intel_crtc_masked
  6539. static void intel_set_config_free(struct intel_set_config *config)
  6540. {
  6541. if (!config)
  6542. return;
  6543. kfree(config->save_connector_encoders);
  6544. kfree(config->save_encoder_crtcs);
  6545. kfree(config);
  6546. }
  6547. static int intel_set_config_save_state(struct drm_device *dev,
  6548. struct intel_set_config *config)
  6549. {
  6550. struct drm_encoder *encoder;
  6551. struct drm_connector *connector;
  6552. int count;
  6553. config->save_encoder_crtcs =
  6554. kcalloc(dev->mode_config.num_encoder,
  6555. sizeof(struct drm_crtc *), GFP_KERNEL);
  6556. if (!config->save_encoder_crtcs)
  6557. return -ENOMEM;
  6558. config->save_connector_encoders =
  6559. kcalloc(dev->mode_config.num_connector,
  6560. sizeof(struct drm_encoder *), GFP_KERNEL);
  6561. if (!config->save_connector_encoders)
  6562. return -ENOMEM;
  6563. /* Copy data. Note that driver private data is not affected.
  6564. * Should anything bad happen only the expected state is
  6565. * restored, not the drivers personal bookkeeping.
  6566. */
  6567. count = 0;
  6568. list_for_each_entry(encoder, &dev->mode_config.encoder_list, head) {
  6569. config->save_encoder_crtcs[count++] = encoder->crtc;
  6570. }
  6571. count = 0;
  6572. list_for_each_entry(connector, &dev->mode_config.connector_list, head) {
  6573. config->save_connector_encoders[count++] = connector->encoder;
  6574. }
  6575. return 0;
  6576. }
  6577. static void intel_set_config_restore_state(struct drm_device *dev,
  6578. struct intel_set_config *config)
  6579. {
  6580. struct intel_encoder *encoder;
  6581. struct intel_connector *connector;
  6582. int count;
  6583. count = 0;
  6584. list_for_each_entry(encoder, &dev->mode_config.encoder_list, base.head) {
  6585. encoder->new_crtc =
  6586. to_intel_crtc(config->save_encoder_crtcs[count++]);
  6587. }
  6588. count = 0;
  6589. list_for_each_entry(connector, &dev->mode_config.connector_list, base.head) {
  6590. connector->new_encoder =
  6591. to_intel_encoder(config->save_connector_encoders[count++]);
  6592. }
  6593. }
  6594. static void
  6595. intel_set_config_compute_mode_changes(struct drm_mode_set *set,
  6596. struct intel_set_config *config)
  6597. {
  6598. /* We should be able to check here if the fb has the same properties
  6599. * and then just flip_or_move it */
  6600. if (set->crtc->fb != set->fb) {
  6601. /* If we have no fb then treat it as a full mode set */
  6602. if (set->crtc->fb == NULL) {
  6603. DRM_DEBUG_KMS("crtc has no fb, full mode set\n");
  6604. config->mode_changed = true;
  6605. } else if (set->fb == NULL) {
  6606. config->mode_changed = true;
  6607. } else if (set->fb->depth != set->crtc->fb->depth) {
  6608. config->mode_changed = true;
  6609. } else if (set->fb->bits_per_pixel !=
  6610. set->crtc->fb->bits_per_pixel) {
  6611. config->mode_changed = true;
  6612. } else
  6613. config->fb_changed = true;
  6614. }
  6615. if (set->fb && (set->x != set->crtc->x || set->y != set->crtc->y))
  6616. config->fb_changed = true;
  6617. if (set->mode && !drm_mode_equal(set->mode, &set->crtc->mode)) {
  6618. DRM_DEBUG_KMS("modes are different, full mode set\n");
  6619. drm_mode_debug_printmodeline(&set->crtc->mode);
  6620. drm_mode_debug_printmodeline(set->mode);
  6621. config->mode_changed = true;
  6622. }
  6623. }
  6624. static int
  6625. intel_modeset_stage_output_state(struct drm_device *dev,
  6626. struct drm_mode_set *set,
  6627. struct intel_set_config *config)
  6628. {
  6629. struct drm_crtc *new_crtc;
  6630. struct intel_connector *connector;
  6631. struct intel_encoder *encoder;
  6632. int count, ro;
  6633. /* The upper layers ensure that we either disabl a crtc or have a list
  6634. * of connectors. For paranoia, double-check this. */
  6635. WARN_ON(!set->fb && (set->num_connectors != 0));
  6636. WARN_ON(set->fb && (set->num_connectors == 0));
  6637. count = 0;
  6638. list_for_each_entry(connector, &dev->mode_config.connector_list,
  6639. base.head) {
  6640. /* Otherwise traverse passed in connector list and get encoders
  6641. * for them. */
  6642. for (ro = 0; ro < set->num_connectors; ro++) {
  6643. if (set->connectors[ro] == &connector->base) {
  6644. connector->new_encoder = connector->encoder;
  6645. break;
  6646. }
  6647. }
  6648. /* If we disable the crtc, disable all its connectors. Also, if
  6649. * the connector is on the changing crtc but not on the new
  6650. * connector list, disable it. */
  6651. if ((!set->fb || ro == set->num_connectors) &&
  6652. connector->base.encoder &&
  6653. connector->base.encoder->crtc == set->crtc) {
  6654. connector->new_encoder = NULL;
  6655. DRM_DEBUG_KMS("[CONNECTOR:%d:%s] to [NOCRTC]\n",
  6656. connector->base.base.id,
  6657. drm_get_connector_name(&connector->base));
  6658. }
  6659. if (&connector->new_encoder->base != connector->base.encoder) {
  6660. DRM_DEBUG_KMS("encoder changed, full mode switch\n");
  6661. config->mode_changed = true;
  6662. }
  6663. /* Disable all disconnected encoders. */
  6664. if (connector->base.status == connector_status_disconnected)
  6665. connector->new_encoder = NULL;
  6666. }
  6667. /* connector->new_encoder is now updated for all connectors. */
  6668. /* Update crtc of enabled connectors. */
  6669. count = 0;
  6670. list_for_each_entry(connector, &dev->mode_config.connector_list,
  6671. base.head) {
  6672. if (!connector->new_encoder)
  6673. continue;
  6674. new_crtc = connector->new_encoder->base.crtc;
  6675. for (ro = 0; ro < set->num_connectors; ro++) {
  6676. if (set->connectors[ro] == &connector->base)
  6677. new_crtc = set->crtc;
  6678. }
  6679. /* Make sure the new CRTC will work with the encoder */
  6680. if (!intel_encoder_crtc_ok(&connector->new_encoder->base,
  6681. new_crtc)) {
  6682. return -EINVAL;
  6683. }
  6684. connector->encoder->new_crtc = to_intel_crtc(new_crtc);
  6685. DRM_DEBUG_KMS("[CONNECTOR:%d:%s] to [CRTC:%d]\n",
  6686. connector->base.base.id,
  6687. drm_get_connector_name(&connector->base),
  6688. new_crtc->base.id);
  6689. }
  6690. /* Check for any encoders that needs to be disabled. */
  6691. list_for_each_entry(encoder, &dev->mode_config.encoder_list,
  6692. base.head) {
  6693. list_for_each_entry(connector,
  6694. &dev->mode_config.connector_list,
  6695. base.head) {
  6696. if (connector->new_encoder == encoder) {
  6697. WARN_ON(!connector->new_encoder->new_crtc);
  6698. goto next_encoder;
  6699. }
  6700. }
  6701. encoder->new_crtc = NULL;
  6702. next_encoder:
  6703. /* Only now check for crtc changes so we don't miss encoders
  6704. * that will be disabled. */
  6705. if (&encoder->new_crtc->base != encoder->base.crtc) {
  6706. DRM_DEBUG_KMS("crtc changed, full mode switch\n");
  6707. config->mode_changed = true;
  6708. }
  6709. }
  6710. /* Now we've also updated encoder->new_crtc for all encoders. */
  6711. return 0;
  6712. }
  6713. static int intel_crtc_set_config(struct drm_mode_set *set)
  6714. {
  6715. struct drm_device *dev;
  6716. struct drm_mode_set save_set;
  6717. struct intel_set_config *config;
  6718. int ret;
  6719. BUG_ON(!set);
  6720. BUG_ON(!set->crtc);
  6721. BUG_ON(!set->crtc->helper_private);
  6722. if (!set->mode)
  6723. set->fb = NULL;
  6724. /* The fb helper likes to play gross jokes with ->mode_set_config.
  6725. * Unfortunately the crtc helper doesn't do much at all for this case,
  6726. * so we have to cope with this madness until the fb helper is fixed up. */
  6727. if (set->fb && set->num_connectors == 0)
  6728. return 0;
  6729. if (set->fb) {
  6730. DRM_DEBUG_KMS("[CRTC:%d] [FB:%d] #connectors=%d (x y) (%i %i)\n",
  6731. set->crtc->base.id, set->fb->base.id,
  6732. (int)set->num_connectors, set->x, set->y);
  6733. } else {
  6734. DRM_DEBUG_KMS("[CRTC:%d] [NOFB]\n", set->crtc->base.id);
  6735. }
  6736. dev = set->crtc->dev;
  6737. ret = -ENOMEM;
  6738. config = kzalloc(sizeof(*config), GFP_KERNEL);
  6739. if (!config)
  6740. goto out_config;
  6741. ret = intel_set_config_save_state(dev, config);
  6742. if (ret)
  6743. goto out_config;
  6744. save_set.crtc = set->crtc;
  6745. save_set.mode = &set->crtc->mode;
  6746. save_set.x = set->crtc->x;
  6747. save_set.y = set->crtc->y;
  6748. save_set.fb = set->crtc->fb;
  6749. /* Compute whether we need a full modeset, only an fb base update or no
  6750. * change at all. In the future we might also check whether only the
  6751. * mode changed, e.g. for LVDS where we only change the panel fitter in
  6752. * such cases. */
  6753. intel_set_config_compute_mode_changes(set, config);
  6754. ret = intel_modeset_stage_output_state(dev, set, config);
  6755. if (ret)
  6756. goto fail;
  6757. if (config->mode_changed) {
  6758. if (set->mode) {
  6759. DRM_DEBUG_KMS("attempting to set mode from"
  6760. " userspace\n");
  6761. drm_mode_debug_printmodeline(set->mode);
  6762. }
  6763. if (!intel_set_mode(set->crtc, set->mode,
  6764. set->x, set->y, set->fb)) {
  6765. DRM_ERROR("failed to set mode on [CRTC:%d]\n",
  6766. set->crtc->base.id);
  6767. ret = -EINVAL;
  6768. goto fail;
  6769. }
  6770. } else if (config->fb_changed) {
  6771. ret = intel_pipe_set_base(set->crtc,
  6772. set->x, set->y, set->fb);
  6773. }
  6774. intel_set_config_free(config);
  6775. return 0;
  6776. fail:
  6777. intel_set_config_restore_state(dev, config);
  6778. /* Try to restore the config */
  6779. if (config->mode_changed &&
  6780. !intel_set_mode(save_set.crtc, save_set.mode,
  6781. save_set.x, save_set.y, save_set.fb))
  6782. DRM_ERROR("failed to restore config after modeset failure\n");
  6783. out_config:
  6784. intel_set_config_free(config);
  6785. return ret;
  6786. }
  6787. static const struct drm_crtc_funcs intel_crtc_funcs = {
  6788. .cursor_set = intel_crtc_cursor_set,
  6789. .cursor_move = intel_crtc_cursor_move,
  6790. .gamma_set = intel_crtc_gamma_set,
  6791. .set_config = intel_crtc_set_config,
  6792. .destroy = intel_crtc_destroy,
  6793. .page_flip = intel_crtc_page_flip,
  6794. };
  6795. static void intel_cpu_pll_init(struct drm_device *dev)
  6796. {
  6797. if (IS_HASWELL(dev))
  6798. intel_ddi_pll_init(dev);
  6799. }
  6800. static void intel_pch_pll_init(struct drm_device *dev)
  6801. {
  6802. drm_i915_private_t *dev_priv = dev->dev_private;
  6803. int i;
  6804. if (dev_priv->num_pch_pll == 0) {
  6805. DRM_DEBUG_KMS("No PCH PLLs on this hardware, skipping initialisation\n");
  6806. return;
  6807. }
  6808. for (i = 0; i < dev_priv->num_pch_pll; i++) {
  6809. dev_priv->pch_plls[i].pll_reg = _PCH_DPLL(i);
  6810. dev_priv->pch_plls[i].fp0_reg = _PCH_FP0(i);
  6811. dev_priv->pch_plls[i].fp1_reg = _PCH_FP1(i);
  6812. }
  6813. }
  6814. static void intel_crtc_init(struct drm_device *dev, int pipe)
  6815. {
  6816. drm_i915_private_t *dev_priv = dev->dev_private;
  6817. struct intel_crtc *intel_crtc;
  6818. int i;
  6819. intel_crtc = kzalloc(sizeof(struct intel_crtc) + (INTELFB_CONN_LIMIT * sizeof(struct drm_connector *)), GFP_KERNEL);
  6820. if (intel_crtc == NULL)
  6821. return;
  6822. drm_crtc_init(dev, &intel_crtc->base, &intel_crtc_funcs);
  6823. drm_mode_crtc_set_gamma_size(&intel_crtc->base, 256);
  6824. for (i = 0; i < 256; i++) {
  6825. intel_crtc->lut_r[i] = i;
  6826. intel_crtc->lut_g[i] = i;
  6827. intel_crtc->lut_b[i] = i;
  6828. }
  6829. /* Swap pipes & planes for FBC on pre-965 */
  6830. intel_crtc->pipe = pipe;
  6831. intel_crtc->plane = pipe;
  6832. intel_crtc->cpu_transcoder = pipe;
  6833. if (IS_MOBILE(dev) && IS_GEN3(dev)) {
  6834. DRM_DEBUG_KMS("swapping pipes & planes for FBC\n");
  6835. intel_crtc->plane = !pipe;
  6836. }
  6837. BUG_ON(pipe >= ARRAY_SIZE(dev_priv->plane_to_crtc_mapping) ||
  6838. dev_priv->plane_to_crtc_mapping[intel_crtc->plane] != NULL);
  6839. dev_priv->plane_to_crtc_mapping[intel_crtc->plane] = &intel_crtc->base;
  6840. dev_priv->pipe_to_crtc_mapping[intel_crtc->pipe] = &intel_crtc->base;
  6841. intel_crtc->bpp = 24; /* default for pre-Ironlake */
  6842. drm_crtc_helper_add(&intel_crtc->base, &intel_helper_funcs);
  6843. }
  6844. int intel_get_pipe_from_crtc_id(struct drm_device *dev, void *data,
  6845. struct drm_file *file)
  6846. {
  6847. struct drm_i915_get_pipe_from_crtc_id *pipe_from_crtc_id = data;
  6848. struct drm_mode_object *drmmode_obj;
  6849. struct intel_crtc *crtc;
  6850. if (!drm_core_check_feature(dev, DRIVER_MODESET))
  6851. return -ENODEV;
  6852. drmmode_obj = drm_mode_object_find(dev, pipe_from_crtc_id->crtc_id,
  6853. DRM_MODE_OBJECT_CRTC);
  6854. if (!drmmode_obj) {
  6855. DRM_ERROR("no such CRTC id\n");
  6856. return -EINVAL;
  6857. }
  6858. crtc = to_intel_crtc(obj_to_crtc(drmmode_obj));
  6859. pipe_from_crtc_id->pipe = crtc->pipe;
  6860. return 0;
  6861. }
  6862. static int intel_encoder_clones(struct intel_encoder *encoder)
  6863. {
  6864. struct drm_device *dev = encoder->base.dev;
  6865. struct intel_encoder *source_encoder;
  6866. int index_mask = 0;
  6867. int entry = 0;
  6868. list_for_each_entry(source_encoder,
  6869. &dev->mode_config.encoder_list, base.head) {
  6870. if (encoder == source_encoder)
  6871. index_mask |= (1 << entry);
  6872. /* Intel hw has only one MUX where enocoders could be cloned. */
  6873. if (encoder->cloneable && source_encoder->cloneable)
  6874. index_mask |= (1 << entry);
  6875. entry++;
  6876. }
  6877. return index_mask;
  6878. }
  6879. static bool has_edp_a(struct drm_device *dev)
  6880. {
  6881. struct drm_i915_private *dev_priv = dev->dev_private;
  6882. if (!IS_MOBILE(dev))
  6883. return false;
  6884. if ((I915_READ(DP_A) & DP_DETECTED) == 0)
  6885. return false;
  6886. if (IS_GEN5(dev) &&
  6887. (I915_READ(ILK_DISPLAY_CHICKEN_FUSES) & ILK_eDP_A_DISABLE))
  6888. return false;
  6889. return true;
  6890. }
  6891. static void intel_setup_outputs(struct drm_device *dev)
  6892. {
  6893. struct drm_i915_private *dev_priv = dev->dev_private;
  6894. struct intel_encoder *encoder;
  6895. bool dpd_is_edp = false;
  6896. bool has_lvds;
  6897. has_lvds = intel_lvds_init(dev);
  6898. if (!has_lvds && !HAS_PCH_SPLIT(dev)) {
  6899. /* disable the panel fitter on everything but LVDS */
  6900. I915_WRITE(PFIT_CONTROL, 0);
  6901. }
  6902. if (HAS_PCH_SPLIT(dev)) {
  6903. dpd_is_edp = intel_dpd_is_edp(dev);
  6904. if (has_edp_a(dev))
  6905. intel_dp_init(dev, DP_A, PORT_A);
  6906. if (dpd_is_edp && (I915_READ(PCH_DP_D) & DP_DETECTED))
  6907. intel_dp_init(dev, PCH_DP_D, PORT_D);
  6908. }
  6909. intel_crt_init(dev);
  6910. if (IS_HASWELL(dev)) {
  6911. int found;
  6912. /* Haswell uses DDI functions to detect digital outputs */
  6913. found = I915_READ(DDI_BUF_CTL_A) & DDI_INIT_DISPLAY_DETECTED;
  6914. /* DDI A only supports eDP */
  6915. if (found)
  6916. intel_ddi_init(dev, PORT_A);
  6917. /* DDI B, C and D detection is indicated by the SFUSE_STRAP
  6918. * register */
  6919. found = I915_READ(SFUSE_STRAP);
  6920. if (found & SFUSE_STRAP_DDIB_DETECTED)
  6921. intel_ddi_init(dev, PORT_B);
  6922. if (found & SFUSE_STRAP_DDIC_DETECTED)
  6923. intel_ddi_init(dev, PORT_C);
  6924. if (found & SFUSE_STRAP_DDID_DETECTED)
  6925. intel_ddi_init(dev, PORT_D);
  6926. } else if (HAS_PCH_SPLIT(dev)) {
  6927. int found;
  6928. if (I915_READ(HDMIB) & PORT_DETECTED) {
  6929. /* PCH SDVOB multiplex with HDMIB */
  6930. found = intel_sdvo_init(dev, PCH_SDVOB, true);
  6931. if (!found)
  6932. intel_hdmi_init(dev, HDMIB, PORT_B);
  6933. if (!found && (I915_READ(PCH_DP_B) & DP_DETECTED))
  6934. intel_dp_init(dev, PCH_DP_B, PORT_B);
  6935. }
  6936. if (I915_READ(HDMIC) & PORT_DETECTED)
  6937. intel_hdmi_init(dev, HDMIC, PORT_C);
  6938. if (!dpd_is_edp && I915_READ(HDMID) & PORT_DETECTED)
  6939. intel_hdmi_init(dev, HDMID, PORT_D);
  6940. if (I915_READ(PCH_DP_C) & DP_DETECTED)
  6941. intel_dp_init(dev, PCH_DP_C, PORT_C);
  6942. if (!dpd_is_edp && (I915_READ(PCH_DP_D) & DP_DETECTED))
  6943. intel_dp_init(dev, PCH_DP_D, PORT_D);
  6944. } else if (IS_VALLEYVIEW(dev)) {
  6945. int found;
  6946. /* Check for built-in panel first. Shares lanes with HDMI on SDVOC */
  6947. if (I915_READ(DP_C) & DP_DETECTED)
  6948. intel_dp_init(dev, DP_C, PORT_C);
  6949. if (I915_READ(SDVOB) & PORT_DETECTED) {
  6950. /* SDVOB multiplex with HDMIB */
  6951. found = intel_sdvo_init(dev, SDVOB, true);
  6952. if (!found)
  6953. intel_hdmi_init(dev, SDVOB, PORT_B);
  6954. if (!found && (I915_READ(DP_B) & DP_DETECTED))
  6955. intel_dp_init(dev, DP_B, PORT_B);
  6956. }
  6957. if (I915_READ(SDVOC) & PORT_DETECTED)
  6958. intel_hdmi_init(dev, SDVOC, PORT_C);
  6959. } else if (SUPPORTS_DIGITAL_OUTPUTS(dev)) {
  6960. bool found = false;
  6961. if (I915_READ(SDVOB) & SDVO_DETECTED) {
  6962. DRM_DEBUG_KMS("probing SDVOB\n");
  6963. found = intel_sdvo_init(dev, SDVOB, true);
  6964. if (!found && SUPPORTS_INTEGRATED_HDMI(dev)) {
  6965. DRM_DEBUG_KMS("probing HDMI on SDVOB\n");
  6966. intel_hdmi_init(dev, SDVOB, PORT_B);
  6967. }
  6968. if (!found && SUPPORTS_INTEGRATED_DP(dev)) {
  6969. DRM_DEBUG_KMS("probing DP_B\n");
  6970. intel_dp_init(dev, DP_B, PORT_B);
  6971. }
  6972. }
  6973. /* Before G4X SDVOC doesn't have its own detect register */
  6974. if (I915_READ(SDVOB) & SDVO_DETECTED) {
  6975. DRM_DEBUG_KMS("probing SDVOC\n");
  6976. found = intel_sdvo_init(dev, SDVOC, false);
  6977. }
  6978. if (!found && (I915_READ(SDVOC) & SDVO_DETECTED)) {
  6979. if (SUPPORTS_INTEGRATED_HDMI(dev)) {
  6980. DRM_DEBUG_KMS("probing HDMI on SDVOC\n");
  6981. intel_hdmi_init(dev, SDVOC, PORT_C);
  6982. }
  6983. if (SUPPORTS_INTEGRATED_DP(dev)) {
  6984. DRM_DEBUG_KMS("probing DP_C\n");
  6985. intel_dp_init(dev, DP_C, PORT_C);
  6986. }
  6987. }
  6988. if (SUPPORTS_INTEGRATED_DP(dev) &&
  6989. (I915_READ(DP_D) & DP_DETECTED)) {
  6990. DRM_DEBUG_KMS("probing DP_D\n");
  6991. intel_dp_init(dev, DP_D, PORT_D);
  6992. }
  6993. } else if (IS_GEN2(dev))
  6994. intel_dvo_init(dev);
  6995. if (SUPPORTS_TV(dev))
  6996. intel_tv_init(dev);
  6997. list_for_each_entry(encoder, &dev->mode_config.encoder_list, base.head) {
  6998. encoder->base.possible_crtcs = encoder->crtc_mask;
  6999. encoder->base.possible_clones =
  7000. intel_encoder_clones(encoder);
  7001. }
  7002. if (HAS_PCH_IBX(dev) || HAS_PCH_CPT(dev))
  7003. ironlake_init_pch_refclk(dev);
  7004. }
  7005. static void intel_user_framebuffer_destroy(struct drm_framebuffer *fb)
  7006. {
  7007. struct intel_framebuffer *intel_fb = to_intel_framebuffer(fb);
  7008. drm_framebuffer_cleanup(fb);
  7009. drm_gem_object_unreference_unlocked(&intel_fb->obj->base);
  7010. kfree(intel_fb);
  7011. }
  7012. static int intel_user_framebuffer_create_handle(struct drm_framebuffer *fb,
  7013. struct drm_file *file,
  7014. unsigned int *handle)
  7015. {
  7016. struct intel_framebuffer *intel_fb = to_intel_framebuffer(fb);
  7017. struct drm_i915_gem_object *obj = intel_fb->obj;
  7018. return drm_gem_handle_create(file, &obj->base, handle);
  7019. }
  7020. static const struct drm_framebuffer_funcs intel_fb_funcs = {
  7021. .destroy = intel_user_framebuffer_destroy,
  7022. .create_handle = intel_user_framebuffer_create_handle,
  7023. };
  7024. int intel_framebuffer_init(struct drm_device *dev,
  7025. struct intel_framebuffer *intel_fb,
  7026. struct drm_mode_fb_cmd2 *mode_cmd,
  7027. struct drm_i915_gem_object *obj)
  7028. {
  7029. int ret;
  7030. if (obj->tiling_mode == I915_TILING_Y)
  7031. return -EINVAL;
  7032. if (mode_cmd->pitches[0] & 63)
  7033. return -EINVAL;
  7034. switch (mode_cmd->pixel_format) {
  7035. case DRM_FORMAT_RGB332:
  7036. case DRM_FORMAT_RGB565:
  7037. case DRM_FORMAT_XRGB8888:
  7038. case DRM_FORMAT_XBGR8888:
  7039. case DRM_FORMAT_ARGB8888:
  7040. case DRM_FORMAT_XRGB2101010:
  7041. case DRM_FORMAT_ARGB2101010:
  7042. /* RGB formats are common across chipsets */
  7043. break;
  7044. case DRM_FORMAT_YUYV:
  7045. case DRM_FORMAT_UYVY:
  7046. case DRM_FORMAT_YVYU:
  7047. case DRM_FORMAT_VYUY:
  7048. break;
  7049. default:
  7050. DRM_DEBUG_KMS("unsupported pixel format %u\n",
  7051. mode_cmd->pixel_format);
  7052. return -EINVAL;
  7053. }
  7054. ret = drm_framebuffer_init(dev, &intel_fb->base, &intel_fb_funcs);
  7055. if (ret) {
  7056. DRM_ERROR("framebuffer init failed %d\n", ret);
  7057. return ret;
  7058. }
  7059. drm_helper_mode_fill_fb_struct(&intel_fb->base, mode_cmd);
  7060. intel_fb->obj = obj;
  7061. return 0;
  7062. }
  7063. static struct drm_framebuffer *
  7064. intel_user_framebuffer_create(struct drm_device *dev,
  7065. struct drm_file *filp,
  7066. struct drm_mode_fb_cmd2 *mode_cmd)
  7067. {
  7068. struct drm_i915_gem_object *obj;
  7069. obj = to_intel_bo(drm_gem_object_lookup(dev, filp,
  7070. mode_cmd->handles[0]));
  7071. if (&obj->base == NULL)
  7072. return ERR_PTR(-ENOENT);
  7073. return intel_framebuffer_create(dev, mode_cmd, obj);
  7074. }
  7075. static const struct drm_mode_config_funcs intel_mode_funcs = {
  7076. .fb_create = intel_user_framebuffer_create,
  7077. .output_poll_changed = intel_fb_output_poll_changed,
  7078. };
  7079. /* Set up chip specific display functions */
  7080. static void intel_init_display(struct drm_device *dev)
  7081. {
  7082. struct drm_i915_private *dev_priv = dev->dev_private;
  7083. /* We always want a DPMS function */
  7084. if (IS_HASWELL(dev)) {
  7085. dev_priv->display.crtc_mode_set = haswell_crtc_mode_set;
  7086. dev_priv->display.crtc_enable = haswell_crtc_enable;
  7087. dev_priv->display.crtc_disable = haswell_crtc_disable;
  7088. dev_priv->display.off = haswell_crtc_off;
  7089. dev_priv->display.update_plane = ironlake_update_plane;
  7090. } else if (HAS_PCH_SPLIT(dev)) {
  7091. dev_priv->display.crtc_mode_set = ironlake_crtc_mode_set;
  7092. dev_priv->display.crtc_enable = ironlake_crtc_enable;
  7093. dev_priv->display.crtc_disable = ironlake_crtc_disable;
  7094. dev_priv->display.off = ironlake_crtc_off;
  7095. dev_priv->display.update_plane = ironlake_update_plane;
  7096. } else {
  7097. dev_priv->display.crtc_mode_set = i9xx_crtc_mode_set;
  7098. dev_priv->display.crtc_enable = i9xx_crtc_enable;
  7099. dev_priv->display.crtc_disable = i9xx_crtc_disable;
  7100. dev_priv->display.off = i9xx_crtc_off;
  7101. dev_priv->display.update_plane = i9xx_update_plane;
  7102. }
  7103. /* Returns the core display clock speed */
  7104. if (IS_VALLEYVIEW(dev))
  7105. dev_priv->display.get_display_clock_speed =
  7106. valleyview_get_display_clock_speed;
  7107. else if (IS_I945G(dev) || (IS_G33(dev) && !IS_PINEVIEW_M(dev)))
  7108. dev_priv->display.get_display_clock_speed =
  7109. i945_get_display_clock_speed;
  7110. else if (IS_I915G(dev))
  7111. dev_priv->display.get_display_clock_speed =
  7112. i915_get_display_clock_speed;
  7113. else if (IS_I945GM(dev) || IS_845G(dev) || IS_PINEVIEW_M(dev))
  7114. dev_priv->display.get_display_clock_speed =
  7115. i9xx_misc_get_display_clock_speed;
  7116. else if (IS_I915GM(dev))
  7117. dev_priv->display.get_display_clock_speed =
  7118. i915gm_get_display_clock_speed;
  7119. else if (IS_I865G(dev))
  7120. dev_priv->display.get_display_clock_speed =
  7121. i865_get_display_clock_speed;
  7122. else if (IS_I85X(dev))
  7123. dev_priv->display.get_display_clock_speed =
  7124. i855_get_display_clock_speed;
  7125. else /* 852, 830 */
  7126. dev_priv->display.get_display_clock_speed =
  7127. i830_get_display_clock_speed;
  7128. if (HAS_PCH_SPLIT(dev)) {
  7129. if (IS_GEN5(dev)) {
  7130. dev_priv->display.fdi_link_train = ironlake_fdi_link_train;
  7131. dev_priv->display.write_eld = ironlake_write_eld;
  7132. } else if (IS_GEN6(dev)) {
  7133. dev_priv->display.fdi_link_train = gen6_fdi_link_train;
  7134. dev_priv->display.write_eld = ironlake_write_eld;
  7135. } else if (IS_IVYBRIDGE(dev)) {
  7136. /* FIXME: detect B0+ stepping and use auto training */
  7137. dev_priv->display.fdi_link_train = ivb_manual_fdi_link_train;
  7138. dev_priv->display.write_eld = ironlake_write_eld;
  7139. dev_priv->display.modeset_global_resources =
  7140. ivb_modeset_global_resources;
  7141. } else if (IS_HASWELL(dev)) {
  7142. dev_priv->display.fdi_link_train = hsw_fdi_link_train;
  7143. dev_priv->display.write_eld = haswell_write_eld;
  7144. } else
  7145. dev_priv->display.update_wm = NULL;
  7146. } else if (IS_G4X(dev)) {
  7147. dev_priv->display.write_eld = g4x_write_eld;
  7148. }
  7149. /* Default just returns -ENODEV to indicate unsupported */
  7150. dev_priv->display.queue_flip = intel_default_queue_flip;
  7151. switch (INTEL_INFO(dev)->gen) {
  7152. case 2:
  7153. dev_priv->display.queue_flip = intel_gen2_queue_flip;
  7154. break;
  7155. case 3:
  7156. dev_priv->display.queue_flip = intel_gen3_queue_flip;
  7157. break;
  7158. case 4:
  7159. case 5:
  7160. dev_priv->display.queue_flip = intel_gen4_queue_flip;
  7161. break;
  7162. case 6:
  7163. dev_priv->display.queue_flip = intel_gen6_queue_flip;
  7164. break;
  7165. case 7:
  7166. dev_priv->display.queue_flip = intel_gen7_queue_flip;
  7167. break;
  7168. }
  7169. }
  7170. /*
  7171. * Some BIOSes insist on assuming the GPU's pipe A is enabled at suspend,
  7172. * resume, or other times. This quirk makes sure that's the case for
  7173. * affected systems.
  7174. */
  7175. static void quirk_pipea_force(struct drm_device *dev)
  7176. {
  7177. struct drm_i915_private *dev_priv = dev->dev_private;
  7178. dev_priv->quirks |= QUIRK_PIPEA_FORCE;
  7179. DRM_INFO("applying pipe a force quirk\n");
  7180. }
  7181. /*
  7182. * Some machines (Lenovo U160) do not work with SSC on LVDS for some reason
  7183. */
  7184. static void quirk_ssc_force_disable(struct drm_device *dev)
  7185. {
  7186. struct drm_i915_private *dev_priv = dev->dev_private;
  7187. dev_priv->quirks |= QUIRK_LVDS_SSC_DISABLE;
  7188. DRM_INFO("applying lvds SSC disable quirk\n");
  7189. }
  7190. /*
  7191. * A machine (e.g. Acer Aspire 5734Z) may need to invert the panel backlight
  7192. * brightness value
  7193. */
  7194. static void quirk_invert_brightness(struct drm_device *dev)
  7195. {
  7196. struct drm_i915_private *dev_priv = dev->dev_private;
  7197. dev_priv->quirks |= QUIRK_INVERT_BRIGHTNESS;
  7198. DRM_INFO("applying inverted panel brightness quirk\n");
  7199. }
  7200. struct intel_quirk {
  7201. int device;
  7202. int subsystem_vendor;
  7203. int subsystem_device;
  7204. void (*hook)(struct drm_device *dev);
  7205. };
  7206. static struct intel_quirk intel_quirks[] = {
  7207. /* HP Mini needs pipe A force quirk (LP: #322104) */
  7208. { 0x27ae, 0x103c, 0x361a, quirk_pipea_force },
  7209. /* Toshiba Protege R-205, S-209 needs pipe A force quirk */
  7210. { 0x2592, 0x1179, 0x0001, quirk_pipea_force },
  7211. /* ThinkPad T60 needs pipe A force quirk (bug #16494) */
  7212. { 0x2782, 0x17aa, 0x201a, quirk_pipea_force },
  7213. /* 830/845 need to leave pipe A & dpll A up */
  7214. { 0x2562, PCI_ANY_ID, PCI_ANY_ID, quirk_pipea_force },
  7215. { 0x3577, PCI_ANY_ID, PCI_ANY_ID, quirk_pipea_force },
  7216. /* Lenovo U160 cannot use SSC on LVDS */
  7217. { 0x0046, 0x17aa, 0x3920, quirk_ssc_force_disable },
  7218. /* Sony Vaio Y cannot use SSC on LVDS */
  7219. { 0x0046, 0x104d, 0x9076, quirk_ssc_force_disable },
  7220. /* Acer Aspire 5734Z must invert backlight brightness */
  7221. { 0x2a42, 0x1025, 0x0459, quirk_invert_brightness },
  7222. };
  7223. static void intel_init_quirks(struct drm_device *dev)
  7224. {
  7225. struct pci_dev *d = dev->pdev;
  7226. int i;
  7227. for (i = 0; i < ARRAY_SIZE(intel_quirks); i++) {
  7228. struct intel_quirk *q = &intel_quirks[i];
  7229. if (d->device == q->device &&
  7230. (d->subsystem_vendor == q->subsystem_vendor ||
  7231. q->subsystem_vendor == PCI_ANY_ID) &&
  7232. (d->subsystem_device == q->subsystem_device ||
  7233. q->subsystem_device == PCI_ANY_ID))
  7234. q->hook(dev);
  7235. }
  7236. }
  7237. /* Disable the VGA plane that we never use */
  7238. static void i915_disable_vga(struct drm_device *dev)
  7239. {
  7240. struct drm_i915_private *dev_priv = dev->dev_private;
  7241. u8 sr1;
  7242. u32 vga_reg;
  7243. if (HAS_PCH_SPLIT(dev))
  7244. vga_reg = CPU_VGACNTRL;
  7245. else
  7246. vga_reg = VGACNTRL;
  7247. vga_get_uninterruptible(dev->pdev, VGA_RSRC_LEGACY_IO);
  7248. outb(SR01, VGA_SR_INDEX);
  7249. sr1 = inb(VGA_SR_DATA);
  7250. outb(sr1 | 1<<5, VGA_SR_DATA);
  7251. vga_put(dev->pdev, VGA_RSRC_LEGACY_IO);
  7252. udelay(300);
  7253. I915_WRITE(vga_reg, VGA_DISP_DISABLE);
  7254. POSTING_READ(vga_reg);
  7255. }
  7256. void intel_modeset_init_hw(struct drm_device *dev)
  7257. {
  7258. /* We attempt to init the necessary power wells early in the initialization
  7259. * time, so the subsystems that expect power to be enabled can work.
  7260. */
  7261. intel_init_power_wells(dev);
  7262. intel_prepare_ddi(dev);
  7263. intel_init_clock_gating(dev);
  7264. mutex_lock(&dev->struct_mutex);
  7265. intel_enable_gt_powersave(dev);
  7266. mutex_unlock(&dev->struct_mutex);
  7267. }
  7268. void intel_modeset_init(struct drm_device *dev)
  7269. {
  7270. struct drm_i915_private *dev_priv = dev->dev_private;
  7271. int i, ret;
  7272. drm_mode_config_init(dev);
  7273. dev->mode_config.min_width = 0;
  7274. dev->mode_config.min_height = 0;
  7275. dev->mode_config.preferred_depth = 24;
  7276. dev->mode_config.prefer_shadow = 1;
  7277. dev->mode_config.funcs = &intel_mode_funcs;
  7278. intel_init_quirks(dev);
  7279. intel_init_pm(dev);
  7280. intel_init_display(dev);
  7281. if (IS_GEN2(dev)) {
  7282. dev->mode_config.max_width = 2048;
  7283. dev->mode_config.max_height = 2048;
  7284. } else if (IS_GEN3(dev)) {
  7285. dev->mode_config.max_width = 4096;
  7286. dev->mode_config.max_height = 4096;
  7287. } else {
  7288. dev->mode_config.max_width = 8192;
  7289. dev->mode_config.max_height = 8192;
  7290. }
  7291. dev->mode_config.fb_base = dev_priv->mm.gtt_base_addr;
  7292. DRM_DEBUG_KMS("%d display pipe%s available.\n",
  7293. dev_priv->num_pipe, dev_priv->num_pipe > 1 ? "s" : "");
  7294. for (i = 0; i < dev_priv->num_pipe; i++) {
  7295. intel_crtc_init(dev, i);
  7296. ret = intel_plane_init(dev, i);
  7297. if (ret)
  7298. DRM_DEBUG_KMS("plane %d init failed: %d\n", i, ret);
  7299. }
  7300. intel_cpu_pll_init(dev);
  7301. intel_pch_pll_init(dev);
  7302. /* Just disable it once at startup */
  7303. i915_disable_vga(dev);
  7304. intel_setup_outputs(dev);
  7305. }
  7306. static void
  7307. intel_connector_break_all_links(struct intel_connector *connector)
  7308. {
  7309. connector->base.dpms = DRM_MODE_DPMS_OFF;
  7310. connector->base.encoder = NULL;
  7311. connector->encoder->connectors_active = false;
  7312. connector->encoder->base.crtc = NULL;
  7313. }
  7314. static void intel_enable_pipe_a(struct drm_device *dev)
  7315. {
  7316. struct intel_connector *connector;
  7317. struct drm_connector *crt = NULL;
  7318. struct intel_load_detect_pipe load_detect_temp;
  7319. /* We can't just switch on the pipe A, we need to set things up with a
  7320. * proper mode and output configuration. As a gross hack, enable pipe A
  7321. * by enabling the load detect pipe once. */
  7322. list_for_each_entry(connector,
  7323. &dev->mode_config.connector_list,
  7324. base.head) {
  7325. if (connector->encoder->type == INTEL_OUTPUT_ANALOG) {
  7326. crt = &connector->base;
  7327. break;
  7328. }
  7329. }
  7330. if (!crt)
  7331. return;
  7332. if (intel_get_load_detect_pipe(crt, NULL, &load_detect_temp))
  7333. intel_release_load_detect_pipe(crt, &load_detect_temp);
  7334. }
  7335. static bool
  7336. intel_check_plane_mapping(struct intel_crtc *crtc)
  7337. {
  7338. struct drm_i915_private *dev_priv = crtc->base.dev->dev_private;
  7339. u32 reg, val;
  7340. if (dev_priv->num_pipe == 1)
  7341. return true;
  7342. reg = DSPCNTR(!crtc->plane);
  7343. val = I915_READ(reg);
  7344. if ((val & DISPLAY_PLANE_ENABLE) &&
  7345. (!!(val & DISPPLANE_SEL_PIPE_MASK) == crtc->pipe))
  7346. return false;
  7347. return true;
  7348. }
  7349. static void intel_sanitize_crtc(struct intel_crtc *crtc)
  7350. {
  7351. struct drm_device *dev = crtc->base.dev;
  7352. struct drm_i915_private *dev_priv = dev->dev_private;
  7353. u32 reg;
  7354. /* Clear any frame start delays used for debugging left by the BIOS */
  7355. reg = PIPECONF(crtc->cpu_transcoder);
  7356. I915_WRITE(reg, I915_READ(reg) & ~PIPECONF_FRAME_START_DELAY_MASK);
  7357. /* We need to sanitize the plane -> pipe mapping first because this will
  7358. * disable the crtc (and hence change the state) if it is wrong. Note
  7359. * that gen4+ has a fixed plane -> pipe mapping. */
  7360. if (INTEL_INFO(dev)->gen < 4 && !intel_check_plane_mapping(crtc)) {
  7361. struct intel_connector *connector;
  7362. bool plane;
  7363. DRM_DEBUG_KMS("[CRTC:%d] wrong plane connection detected!\n",
  7364. crtc->base.base.id);
  7365. /* Pipe has the wrong plane attached and the plane is active.
  7366. * Temporarily change the plane mapping and disable everything
  7367. * ... */
  7368. plane = crtc->plane;
  7369. crtc->plane = !plane;
  7370. dev_priv->display.crtc_disable(&crtc->base);
  7371. crtc->plane = plane;
  7372. /* ... and break all links. */
  7373. list_for_each_entry(connector, &dev->mode_config.connector_list,
  7374. base.head) {
  7375. if (connector->encoder->base.crtc != &crtc->base)
  7376. continue;
  7377. intel_connector_break_all_links(connector);
  7378. }
  7379. WARN_ON(crtc->active);
  7380. crtc->base.enabled = false;
  7381. }
  7382. if (dev_priv->quirks & QUIRK_PIPEA_FORCE &&
  7383. crtc->pipe == PIPE_A && !crtc->active) {
  7384. /* BIOS forgot to enable pipe A, this mostly happens after
  7385. * resume. Force-enable the pipe to fix this, the update_dpms
  7386. * call below we restore the pipe to the right state, but leave
  7387. * the required bits on. */
  7388. intel_enable_pipe_a(dev);
  7389. }
  7390. /* Adjust the state of the output pipe according to whether we
  7391. * have active connectors/encoders. */
  7392. intel_crtc_update_dpms(&crtc->base);
  7393. if (crtc->active != crtc->base.enabled) {
  7394. struct intel_encoder *encoder;
  7395. /* This can happen either due to bugs in the get_hw_state
  7396. * functions or because the pipe is force-enabled due to the
  7397. * pipe A quirk. */
  7398. DRM_DEBUG_KMS("[CRTC:%d] hw state adjusted, was %s, now %s\n",
  7399. crtc->base.base.id,
  7400. crtc->base.enabled ? "enabled" : "disabled",
  7401. crtc->active ? "enabled" : "disabled");
  7402. crtc->base.enabled = crtc->active;
  7403. /* Because we only establish the connector -> encoder ->
  7404. * crtc links if something is active, this means the
  7405. * crtc is now deactivated. Break the links. connector
  7406. * -> encoder links are only establish when things are
  7407. * actually up, hence no need to break them. */
  7408. WARN_ON(crtc->active);
  7409. for_each_encoder_on_crtc(dev, &crtc->base, encoder) {
  7410. WARN_ON(encoder->connectors_active);
  7411. encoder->base.crtc = NULL;
  7412. }
  7413. }
  7414. }
  7415. static void intel_sanitize_encoder(struct intel_encoder *encoder)
  7416. {
  7417. struct intel_connector *connector;
  7418. struct drm_device *dev = encoder->base.dev;
  7419. /* We need to check both for a crtc link (meaning that the
  7420. * encoder is active and trying to read from a pipe) and the
  7421. * pipe itself being active. */
  7422. bool has_active_crtc = encoder->base.crtc &&
  7423. to_intel_crtc(encoder->base.crtc)->active;
  7424. if (encoder->connectors_active && !has_active_crtc) {
  7425. DRM_DEBUG_KMS("[ENCODER:%d:%s] has active connectors but no active pipe!\n",
  7426. encoder->base.base.id,
  7427. drm_get_encoder_name(&encoder->base));
  7428. /* Connector is active, but has no active pipe. This is
  7429. * fallout from our resume register restoring. Disable
  7430. * the encoder manually again. */
  7431. if (encoder->base.crtc) {
  7432. DRM_DEBUG_KMS("[ENCODER:%d:%s] manually disabled\n",
  7433. encoder->base.base.id,
  7434. drm_get_encoder_name(&encoder->base));
  7435. encoder->disable(encoder);
  7436. }
  7437. /* Inconsistent output/port/pipe state happens presumably due to
  7438. * a bug in one of the get_hw_state functions. Or someplace else
  7439. * in our code, like the register restore mess on resume. Clamp
  7440. * things to off as a safer default. */
  7441. list_for_each_entry(connector,
  7442. &dev->mode_config.connector_list,
  7443. base.head) {
  7444. if (connector->encoder != encoder)
  7445. continue;
  7446. intel_connector_break_all_links(connector);
  7447. }
  7448. }
  7449. /* Enabled encoders without active connectors will be fixed in
  7450. * the crtc fixup. */
  7451. }
  7452. /* Scan out the current hw modeset state, sanitizes it and maps it into the drm
  7453. * and i915 state tracking structures. */
  7454. void intel_modeset_setup_hw_state(struct drm_device *dev)
  7455. {
  7456. struct drm_i915_private *dev_priv = dev->dev_private;
  7457. enum pipe pipe;
  7458. u32 tmp;
  7459. struct intel_crtc *crtc;
  7460. struct intel_encoder *encoder;
  7461. struct intel_connector *connector;
  7462. if (IS_HASWELL(dev)) {
  7463. tmp = I915_READ(TRANS_DDI_FUNC_CTL(TRANSCODER_EDP));
  7464. if (tmp & TRANS_DDI_FUNC_ENABLE) {
  7465. switch (tmp & TRANS_DDI_EDP_INPUT_MASK) {
  7466. case TRANS_DDI_EDP_INPUT_A_ON:
  7467. case TRANS_DDI_EDP_INPUT_A_ONOFF:
  7468. pipe = PIPE_A;
  7469. break;
  7470. case TRANS_DDI_EDP_INPUT_B_ONOFF:
  7471. pipe = PIPE_B;
  7472. break;
  7473. case TRANS_DDI_EDP_INPUT_C_ONOFF:
  7474. pipe = PIPE_C;
  7475. break;
  7476. }
  7477. crtc = to_intel_crtc(dev_priv->pipe_to_crtc_mapping[pipe]);
  7478. crtc->cpu_transcoder = TRANSCODER_EDP;
  7479. DRM_DEBUG_KMS("Pipe %c using transcoder EDP\n",
  7480. pipe_name(pipe));
  7481. }
  7482. }
  7483. for_each_pipe(pipe) {
  7484. crtc = to_intel_crtc(dev_priv->pipe_to_crtc_mapping[pipe]);
  7485. tmp = I915_READ(PIPECONF(crtc->cpu_transcoder));
  7486. if (tmp & PIPECONF_ENABLE)
  7487. crtc->active = true;
  7488. else
  7489. crtc->active = false;
  7490. crtc->base.enabled = crtc->active;
  7491. DRM_DEBUG_KMS("[CRTC:%d] hw state readout: %s\n",
  7492. crtc->base.base.id,
  7493. crtc->active ? "enabled" : "disabled");
  7494. }
  7495. if (IS_HASWELL(dev))
  7496. intel_ddi_setup_hw_pll_state(dev);
  7497. list_for_each_entry(encoder, &dev->mode_config.encoder_list,
  7498. base.head) {
  7499. pipe = 0;
  7500. if (encoder->get_hw_state(encoder, &pipe)) {
  7501. encoder->base.crtc =
  7502. dev_priv->pipe_to_crtc_mapping[pipe];
  7503. } else {
  7504. encoder->base.crtc = NULL;
  7505. }
  7506. encoder->connectors_active = false;
  7507. DRM_DEBUG_KMS("[ENCODER:%d:%s] hw state readout: %s, pipe=%i\n",
  7508. encoder->base.base.id,
  7509. drm_get_encoder_name(&encoder->base),
  7510. encoder->base.crtc ? "enabled" : "disabled",
  7511. pipe);
  7512. }
  7513. list_for_each_entry(connector, &dev->mode_config.connector_list,
  7514. base.head) {
  7515. if (connector->get_hw_state(connector)) {
  7516. connector->base.dpms = DRM_MODE_DPMS_ON;
  7517. connector->encoder->connectors_active = true;
  7518. connector->base.encoder = &connector->encoder->base;
  7519. } else {
  7520. connector->base.dpms = DRM_MODE_DPMS_OFF;
  7521. connector->base.encoder = NULL;
  7522. }
  7523. DRM_DEBUG_KMS("[CONNECTOR:%d:%s] hw state readout: %s\n",
  7524. connector->base.base.id,
  7525. drm_get_connector_name(&connector->base),
  7526. connector->base.encoder ? "enabled" : "disabled");
  7527. }
  7528. /* HW state is read out, now we need to sanitize this mess. */
  7529. list_for_each_entry(encoder, &dev->mode_config.encoder_list,
  7530. base.head) {
  7531. intel_sanitize_encoder(encoder);
  7532. }
  7533. for_each_pipe(pipe) {
  7534. crtc = to_intel_crtc(dev_priv->pipe_to_crtc_mapping[pipe]);
  7535. intel_sanitize_crtc(crtc);
  7536. }
  7537. intel_modeset_update_staged_output_state(dev);
  7538. intel_modeset_check_state(dev);
  7539. drm_mode_config_reset(dev);
  7540. }
  7541. void intel_modeset_gem_init(struct drm_device *dev)
  7542. {
  7543. intel_modeset_init_hw(dev);
  7544. intel_setup_overlay(dev);
  7545. intel_modeset_setup_hw_state(dev);
  7546. }
  7547. void intel_modeset_cleanup(struct drm_device *dev)
  7548. {
  7549. struct drm_i915_private *dev_priv = dev->dev_private;
  7550. struct drm_crtc *crtc;
  7551. struct intel_crtc *intel_crtc;
  7552. drm_kms_helper_poll_fini(dev);
  7553. mutex_lock(&dev->struct_mutex);
  7554. intel_unregister_dsm_handler();
  7555. list_for_each_entry(crtc, &dev->mode_config.crtc_list, head) {
  7556. /* Skip inactive CRTCs */
  7557. if (!crtc->fb)
  7558. continue;
  7559. intel_crtc = to_intel_crtc(crtc);
  7560. intel_increase_pllclock(crtc);
  7561. }
  7562. intel_disable_fbc(dev);
  7563. intel_disable_gt_powersave(dev);
  7564. ironlake_teardown_rc6(dev);
  7565. if (IS_VALLEYVIEW(dev))
  7566. vlv_init_dpio(dev);
  7567. mutex_unlock(&dev->struct_mutex);
  7568. /* Disable the irq before mode object teardown, for the irq might
  7569. * enqueue unpin/hotplug work. */
  7570. drm_irq_uninstall(dev);
  7571. cancel_work_sync(&dev_priv->hotplug_work);
  7572. cancel_work_sync(&dev_priv->rps.work);
  7573. /* flush any delayed tasks or pending work */
  7574. flush_scheduled_work();
  7575. drm_mode_config_cleanup(dev);
  7576. }
  7577. /*
  7578. * Return which encoder is currently attached for connector.
  7579. */
  7580. struct drm_encoder *intel_best_encoder(struct drm_connector *connector)
  7581. {
  7582. return &intel_attached_encoder(connector)->base;
  7583. }
  7584. void intel_connector_attach_encoder(struct intel_connector *connector,
  7585. struct intel_encoder *encoder)
  7586. {
  7587. connector->encoder = encoder;
  7588. drm_mode_connector_attach_encoder(&connector->base,
  7589. &encoder->base);
  7590. }
  7591. /*
  7592. * set vga decode state - true == enable VGA decode
  7593. */
  7594. int intel_modeset_vga_set_state(struct drm_device *dev, bool state)
  7595. {
  7596. struct drm_i915_private *dev_priv = dev->dev_private;
  7597. u16 gmch_ctrl;
  7598. pci_read_config_word(dev_priv->bridge_dev, INTEL_GMCH_CTRL, &gmch_ctrl);
  7599. if (state)
  7600. gmch_ctrl &= ~INTEL_GMCH_VGA_DISABLE;
  7601. else
  7602. gmch_ctrl |= INTEL_GMCH_VGA_DISABLE;
  7603. pci_write_config_word(dev_priv->bridge_dev, INTEL_GMCH_CTRL, gmch_ctrl);
  7604. return 0;
  7605. }
  7606. #ifdef CONFIG_DEBUG_FS
  7607. #include <linux/seq_file.h>
  7608. struct intel_display_error_state {
  7609. struct intel_cursor_error_state {
  7610. u32 control;
  7611. u32 position;
  7612. u32 base;
  7613. u32 size;
  7614. } cursor[I915_MAX_PIPES];
  7615. struct intel_pipe_error_state {
  7616. u32 conf;
  7617. u32 source;
  7618. u32 htotal;
  7619. u32 hblank;
  7620. u32 hsync;
  7621. u32 vtotal;
  7622. u32 vblank;
  7623. u32 vsync;
  7624. } pipe[I915_MAX_PIPES];
  7625. struct intel_plane_error_state {
  7626. u32 control;
  7627. u32 stride;
  7628. u32 size;
  7629. u32 pos;
  7630. u32 addr;
  7631. u32 surface;
  7632. u32 tile_offset;
  7633. } plane[I915_MAX_PIPES];
  7634. };
  7635. struct intel_display_error_state *
  7636. intel_display_capture_error_state(struct drm_device *dev)
  7637. {
  7638. drm_i915_private_t *dev_priv = dev->dev_private;
  7639. struct intel_display_error_state *error;
  7640. enum transcoder cpu_transcoder;
  7641. int i;
  7642. error = kmalloc(sizeof(*error), GFP_ATOMIC);
  7643. if (error == NULL)
  7644. return NULL;
  7645. for_each_pipe(i) {
  7646. cpu_transcoder = intel_pipe_to_cpu_transcoder(dev_priv, i);
  7647. error->cursor[i].control = I915_READ(CURCNTR(i));
  7648. error->cursor[i].position = I915_READ(CURPOS(i));
  7649. error->cursor[i].base = I915_READ(CURBASE(i));
  7650. error->plane[i].control = I915_READ(DSPCNTR(i));
  7651. error->plane[i].stride = I915_READ(DSPSTRIDE(i));
  7652. error->plane[i].size = I915_READ(DSPSIZE(i));
  7653. error->plane[i].pos = I915_READ(DSPPOS(i));
  7654. error->plane[i].addr = I915_READ(DSPADDR(i));
  7655. if (INTEL_INFO(dev)->gen >= 4) {
  7656. error->plane[i].surface = I915_READ(DSPSURF(i));
  7657. error->plane[i].tile_offset = I915_READ(DSPTILEOFF(i));
  7658. }
  7659. error->pipe[i].conf = I915_READ(PIPECONF(cpu_transcoder));
  7660. error->pipe[i].source = I915_READ(PIPESRC(i));
  7661. error->pipe[i].htotal = I915_READ(HTOTAL(cpu_transcoder));
  7662. error->pipe[i].hblank = I915_READ(HBLANK(cpu_transcoder));
  7663. error->pipe[i].hsync = I915_READ(HSYNC(cpu_transcoder));
  7664. error->pipe[i].vtotal = I915_READ(VTOTAL(cpu_transcoder));
  7665. error->pipe[i].vblank = I915_READ(VBLANK(cpu_transcoder));
  7666. error->pipe[i].vsync = I915_READ(VSYNC(cpu_transcoder));
  7667. }
  7668. return error;
  7669. }
  7670. void
  7671. intel_display_print_error_state(struct seq_file *m,
  7672. struct drm_device *dev,
  7673. struct intel_display_error_state *error)
  7674. {
  7675. drm_i915_private_t *dev_priv = dev->dev_private;
  7676. int i;
  7677. seq_printf(m, "Num Pipes: %d\n", dev_priv->num_pipe);
  7678. for_each_pipe(i) {
  7679. seq_printf(m, "Pipe [%d]:\n", i);
  7680. seq_printf(m, " CONF: %08x\n", error->pipe[i].conf);
  7681. seq_printf(m, " SRC: %08x\n", error->pipe[i].source);
  7682. seq_printf(m, " HTOTAL: %08x\n", error->pipe[i].htotal);
  7683. seq_printf(m, " HBLANK: %08x\n", error->pipe[i].hblank);
  7684. seq_printf(m, " HSYNC: %08x\n", error->pipe[i].hsync);
  7685. seq_printf(m, " VTOTAL: %08x\n", error->pipe[i].vtotal);
  7686. seq_printf(m, " VBLANK: %08x\n", error->pipe[i].vblank);
  7687. seq_printf(m, " VSYNC: %08x\n", error->pipe[i].vsync);
  7688. seq_printf(m, "Plane [%d]:\n", i);
  7689. seq_printf(m, " CNTR: %08x\n", error->plane[i].control);
  7690. seq_printf(m, " STRIDE: %08x\n", error->plane[i].stride);
  7691. seq_printf(m, " SIZE: %08x\n", error->plane[i].size);
  7692. seq_printf(m, " POS: %08x\n", error->plane[i].pos);
  7693. seq_printf(m, " ADDR: %08x\n", error->plane[i].addr);
  7694. if (INTEL_INFO(dev)->gen >= 4) {
  7695. seq_printf(m, " SURF: %08x\n", error->plane[i].surface);
  7696. seq_printf(m, " TILEOFF: %08x\n", error->plane[i].tile_offset);
  7697. }
  7698. seq_printf(m, "Cursor [%d]:\n", i);
  7699. seq_printf(m, " CNTR: %08x\n", error->cursor[i].control);
  7700. seq_printf(m, " POS: %08x\n", error->cursor[i].position);
  7701. seq_printf(m, " BASE: %08x\n", error->cursor[i].base);
  7702. }
  7703. }
  7704. #endif