handlers.c 93 KB

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  1. /*
  2. * Copyright(c) 2011-2016 Intel Corporation. All rights reserved.
  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 FROM,
  20. * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
  21. * SOFTWARE.
  22. *
  23. * Authors:
  24. * Kevin Tian <kevin.tian@intel.com>
  25. * Eddie Dong <eddie.dong@intel.com>
  26. * Zhiyuan Lv <zhiyuan.lv@intel.com>
  27. *
  28. * Contributors:
  29. * Min He <min.he@intel.com>
  30. * Tina Zhang <tina.zhang@intel.com>
  31. * Pei Zhang <pei.zhang@intel.com>
  32. * Niu Bing <bing.niu@intel.com>
  33. * Ping Gao <ping.a.gao@intel.com>
  34. * Zhi Wang <zhi.a.wang@intel.com>
  35. *
  36. */
  37. #include "i915_drv.h"
  38. #include "gvt.h"
  39. #include "i915_pvinfo.h"
  40. /* XXX FIXME i915 has changed PP_XXX definition */
  41. #define PCH_PP_STATUS _MMIO(0xc7200)
  42. #define PCH_PP_CONTROL _MMIO(0xc7204)
  43. #define PCH_PP_ON_DELAYS _MMIO(0xc7208)
  44. #define PCH_PP_OFF_DELAYS _MMIO(0xc720c)
  45. #define PCH_PP_DIVISOR _MMIO(0xc7210)
  46. /* Register contains RO bits */
  47. #define F_RO (1 << 0)
  48. /* Register contains graphics address */
  49. #define F_GMADR (1 << 1)
  50. /* Mode mask registers with high 16 bits as the mask bits */
  51. #define F_MODE_MASK (1 << 2)
  52. /* This reg can be accessed by GPU commands */
  53. #define F_CMD_ACCESS (1 << 3)
  54. /* This reg has been accessed by a VM */
  55. #define F_ACCESSED (1 << 4)
  56. /* This reg has been accessed through GPU commands */
  57. #define F_CMD_ACCESSED (1 << 5)
  58. /* This reg could be accessed by unaligned address */
  59. #define F_UNALIGN (1 << 6)
  60. unsigned long intel_gvt_get_device_type(struct intel_gvt *gvt)
  61. {
  62. if (IS_BROADWELL(gvt->dev_priv))
  63. return D_BDW;
  64. else if (IS_SKYLAKE(gvt->dev_priv))
  65. return D_SKL;
  66. else if (IS_KABYLAKE(gvt->dev_priv))
  67. return D_KBL;
  68. return 0;
  69. }
  70. bool intel_gvt_match_device(struct intel_gvt *gvt,
  71. unsigned long device)
  72. {
  73. return intel_gvt_get_device_type(gvt) & device;
  74. }
  75. static void read_vreg(struct intel_vgpu *vgpu, unsigned int offset,
  76. void *p_data, unsigned int bytes)
  77. {
  78. memcpy(p_data, &vgpu_vreg(vgpu, offset), bytes);
  79. }
  80. static void write_vreg(struct intel_vgpu *vgpu, unsigned int offset,
  81. void *p_data, unsigned int bytes)
  82. {
  83. memcpy(&vgpu_vreg(vgpu, offset), p_data, bytes);
  84. }
  85. static int new_mmio_info(struct intel_gvt *gvt,
  86. u32 offset, u32 flags, u32 size,
  87. u32 addr_mask, u32 ro_mask, u32 device,
  88. int (*read)(struct intel_vgpu *, unsigned int, void *, unsigned int),
  89. int (*write)(struct intel_vgpu *, unsigned int, void *, unsigned int))
  90. {
  91. struct intel_gvt_mmio_info *info, *p;
  92. u32 start, end, i;
  93. if (!intel_gvt_match_device(gvt, device))
  94. return 0;
  95. if (WARN_ON(!IS_ALIGNED(offset, 4)))
  96. return -EINVAL;
  97. start = offset;
  98. end = offset + size;
  99. for (i = start; i < end; i += 4) {
  100. info = kzalloc(sizeof(*info), GFP_KERNEL);
  101. if (!info)
  102. return -ENOMEM;
  103. info->offset = i;
  104. p = intel_gvt_find_mmio_info(gvt, info->offset);
  105. if (p)
  106. gvt_err("dup mmio definition offset %x\n",
  107. info->offset);
  108. info->size = size;
  109. info->length = (i + 4) < end ? 4 : (end - i);
  110. info->addr_mask = addr_mask;
  111. info->ro_mask = ro_mask;
  112. info->device = device;
  113. info->read = read ? read : intel_vgpu_default_mmio_read;
  114. info->write = write ? write : intel_vgpu_default_mmio_write;
  115. gvt->mmio.mmio_attribute[info->offset / 4] = flags;
  116. INIT_HLIST_NODE(&info->node);
  117. hash_add(gvt->mmio.mmio_info_table, &info->node, info->offset);
  118. }
  119. return 0;
  120. }
  121. static int render_mmio_to_ring_id(struct intel_gvt *gvt, unsigned int reg)
  122. {
  123. enum intel_engine_id id;
  124. struct intel_engine_cs *engine;
  125. reg &= ~GENMASK(11, 0);
  126. for_each_engine(engine, gvt->dev_priv, id) {
  127. if (engine->mmio_base == reg)
  128. return id;
  129. }
  130. return -1;
  131. }
  132. #define offset_to_fence_num(offset) \
  133. ((offset - i915_mmio_reg_offset(FENCE_REG_GEN6_LO(0))) >> 3)
  134. #define fence_num_to_offset(num) \
  135. (num * 8 + i915_mmio_reg_offset(FENCE_REG_GEN6_LO(0)))
  136. static void enter_failsafe_mode(struct intel_vgpu *vgpu, int reason)
  137. {
  138. switch (reason) {
  139. case GVT_FAILSAFE_UNSUPPORTED_GUEST:
  140. pr_err("Detected your guest driver doesn't support GVT-g.\n");
  141. break;
  142. case GVT_FAILSAFE_INSUFFICIENT_RESOURCE:
  143. pr_err("Graphics resource is not enough for the guest\n");
  144. default:
  145. break;
  146. }
  147. pr_err("Now vgpu %d will enter failsafe mode.\n", vgpu->id);
  148. vgpu->failsafe = true;
  149. }
  150. static int sanitize_fence_mmio_access(struct intel_vgpu *vgpu,
  151. unsigned int fence_num, void *p_data, unsigned int bytes)
  152. {
  153. if (fence_num >= vgpu_fence_sz(vgpu)) {
  154. /* When guest access oob fence regs without access
  155. * pv_info first, we treat guest not supporting GVT,
  156. * and we will let vgpu enter failsafe mode.
  157. */
  158. if (!vgpu->pv_notified)
  159. enter_failsafe_mode(vgpu,
  160. GVT_FAILSAFE_UNSUPPORTED_GUEST);
  161. if (!vgpu->mmio.disable_warn_untrack) {
  162. gvt_vgpu_err("found oob fence register access\n");
  163. gvt_vgpu_err("total fence %d, access fence %d\n",
  164. vgpu_fence_sz(vgpu), fence_num);
  165. }
  166. memset(p_data, 0, bytes);
  167. return -EINVAL;
  168. }
  169. return 0;
  170. }
  171. static int fence_mmio_read(struct intel_vgpu *vgpu, unsigned int off,
  172. void *p_data, unsigned int bytes)
  173. {
  174. int ret;
  175. ret = sanitize_fence_mmio_access(vgpu, offset_to_fence_num(off),
  176. p_data, bytes);
  177. if (ret)
  178. return ret;
  179. read_vreg(vgpu, off, p_data, bytes);
  180. return 0;
  181. }
  182. static int fence_mmio_write(struct intel_vgpu *vgpu, unsigned int off,
  183. void *p_data, unsigned int bytes)
  184. {
  185. unsigned int fence_num = offset_to_fence_num(off);
  186. int ret;
  187. ret = sanitize_fence_mmio_access(vgpu, fence_num, p_data, bytes);
  188. if (ret)
  189. return ret;
  190. write_vreg(vgpu, off, p_data, bytes);
  191. intel_vgpu_write_fence(vgpu, fence_num,
  192. vgpu_vreg64(vgpu, fence_num_to_offset(fence_num)));
  193. return 0;
  194. }
  195. #define CALC_MODE_MASK_REG(old, new) \
  196. (((new) & GENMASK(31, 16)) \
  197. | ((((old) & GENMASK(15, 0)) & ~((new) >> 16)) \
  198. | ((new) & ((new) >> 16))))
  199. static int mul_force_wake_write(struct intel_vgpu *vgpu,
  200. unsigned int offset, void *p_data, unsigned int bytes)
  201. {
  202. u32 old, new;
  203. uint32_t ack_reg_offset;
  204. old = vgpu_vreg(vgpu, offset);
  205. new = CALC_MODE_MASK_REG(old, *(u32 *)p_data);
  206. if (IS_SKYLAKE(vgpu->gvt->dev_priv)
  207. || IS_KABYLAKE(vgpu->gvt->dev_priv)) {
  208. switch (offset) {
  209. case FORCEWAKE_RENDER_GEN9_REG:
  210. ack_reg_offset = FORCEWAKE_ACK_RENDER_GEN9_REG;
  211. break;
  212. case FORCEWAKE_BLITTER_GEN9_REG:
  213. ack_reg_offset = FORCEWAKE_ACK_BLITTER_GEN9_REG;
  214. break;
  215. case FORCEWAKE_MEDIA_GEN9_REG:
  216. ack_reg_offset = FORCEWAKE_ACK_MEDIA_GEN9_REG;
  217. break;
  218. default:
  219. /*should not hit here*/
  220. gvt_vgpu_err("invalid forcewake offset 0x%x\n", offset);
  221. return -EINVAL;
  222. }
  223. } else {
  224. ack_reg_offset = FORCEWAKE_ACK_HSW_REG;
  225. }
  226. vgpu_vreg(vgpu, offset) = new;
  227. vgpu_vreg(vgpu, ack_reg_offset) = (new & GENMASK(15, 0));
  228. return 0;
  229. }
  230. static int gdrst_mmio_write(struct intel_vgpu *vgpu, unsigned int offset,
  231. void *p_data, unsigned int bytes)
  232. {
  233. unsigned int engine_mask = 0;
  234. u32 data;
  235. write_vreg(vgpu, offset, p_data, bytes);
  236. data = vgpu_vreg(vgpu, offset);
  237. if (data & GEN6_GRDOM_FULL) {
  238. gvt_dbg_mmio("vgpu%d: request full GPU reset\n", vgpu->id);
  239. engine_mask = ALL_ENGINES;
  240. } else {
  241. if (data & GEN6_GRDOM_RENDER) {
  242. gvt_dbg_mmio("vgpu%d: request RCS reset\n", vgpu->id);
  243. engine_mask |= (1 << RCS);
  244. }
  245. if (data & GEN6_GRDOM_MEDIA) {
  246. gvt_dbg_mmio("vgpu%d: request VCS reset\n", vgpu->id);
  247. engine_mask |= (1 << VCS);
  248. }
  249. if (data & GEN6_GRDOM_BLT) {
  250. gvt_dbg_mmio("vgpu%d: request BCS Reset\n", vgpu->id);
  251. engine_mask |= (1 << BCS);
  252. }
  253. if (data & GEN6_GRDOM_VECS) {
  254. gvt_dbg_mmio("vgpu%d: request VECS Reset\n", vgpu->id);
  255. engine_mask |= (1 << VECS);
  256. }
  257. if (data & GEN8_GRDOM_MEDIA2) {
  258. gvt_dbg_mmio("vgpu%d: request VCS2 Reset\n", vgpu->id);
  259. if (HAS_BSD2(vgpu->gvt->dev_priv))
  260. engine_mask |= (1 << VCS2);
  261. }
  262. }
  263. intel_gvt_reset_vgpu_locked(vgpu, false, engine_mask);
  264. return 0;
  265. }
  266. static int gmbus_mmio_read(struct intel_vgpu *vgpu, unsigned int offset,
  267. void *p_data, unsigned int bytes)
  268. {
  269. return intel_gvt_i2c_handle_gmbus_read(vgpu, offset, p_data, bytes);
  270. }
  271. static int gmbus_mmio_write(struct intel_vgpu *vgpu, unsigned int offset,
  272. void *p_data, unsigned int bytes)
  273. {
  274. return intel_gvt_i2c_handle_gmbus_write(vgpu, offset, p_data, bytes);
  275. }
  276. static int pch_pp_control_mmio_write(struct intel_vgpu *vgpu,
  277. unsigned int offset, void *p_data, unsigned int bytes)
  278. {
  279. write_vreg(vgpu, offset, p_data, bytes);
  280. if (vgpu_vreg(vgpu, offset) & PANEL_POWER_ON) {
  281. vgpu_vreg(vgpu, PCH_PP_STATUS) |= PP_ON;
  282. vgpu_vreg(vgpu, PCH_PP_STATUS) |= PP_SEQUENCE_STATE_ON_IDLE;
  283. vgpu_vreg(vgpu, PCH_PP_STATUS) &= ~PP_SEQUENCE_POWER_DOWN;
  284. vgpu_vreg(vgpu, PCH_PP_STATUS) &= ~PP_CYCLE_DELAY_ACTIVE;
  285. } else
  286. vgpu_vreg(vgpu, PCH_PP_STATUS) &=
  287. ~(PP_ON | PP_SEQUENCE_POWER_DOWN
  288. | PP_CYCLE_DELAY_ACTIVE);
  289. return 0;
  290. }
  291. static int transconf_mmio_write(struct intel_vgpu *vgpu,
  292. unsigned int offset, void *p_data, unsigned int bytes)
  293. {
  294. write_vreg(vgpu, offset, p_data, bytes);
  295. if (vgpu_vreg(vgpu, offset) & TRANS_ENABLE)
  296. vgpu_vreg(vgpu, offset) |= TRANS_STATE_ENABLE;
  297. else
  298. vgpu_vreg(vgpu, offset) &= ~TRANS_STATE_ENABLE;
  299. return 0;
  300. }
  301. static int lcpll_ctl_mmio_write(struct intel_vgpu *vgpu, unsigned int offset,
  302. void *p_data, unsigned int bytes)
  303. {
  304. write_vreg(vgpu, offset, p_data, bytes);
  305. if (vgpu_vreg(vgpu, offset) & LCPLL_PLL_DISABLE)
  306. vgpu_vreg(vgpu, offset) &= ~LCPLL_PLL_LOCK;
  307. else
  308. vgpu_vreg(vgpu, offset) |= LCPLL_PLL_LOCK;
  309. if (vgpu_vreg(vgpu, offset) & LCPLL_CD_SOURCE_FCLK)
  310. vgpu_vreg(vgpu, offset) |= LCPLL_CD_SOURCE_FCLK_DONE;
  311. else
  312. vgpu_vreg(vgpu, offset) &= ~LCPLL_CD_SOURCE_FCLK_DONE;
  313. return 0;
  314. }
  315. static int dpy_reg_mmio_read(struct intel_vgpu *vgpu, unsigned int offset,
  316. void *p_data, unsigned int bytes)
  317. {
  318. *(u32 *)p_data = (1 << 17);
  319. return 0;
  320. }
  321. static int dpy_reg_mmio_read_2(struct intel_vgpu *vgpu, unsigned int offset,
  322. void *p_data, unsigned int bytes)
  323. {
  324. *(u32 *)p_data = 3;
  325. return 0;
  326. }
  327. static int dpy_reg_mmio_read_3(struct intel_vgpu *vgpu, unsigned int offset,
  328. void *p_data, unsigned int bytes)
  329. {
  330. *(u32 *)p_data = (0x2f << 16);
  331. return 0;
  332. }
  333. static int pipeconf_mmio_write(struct intel_vgpu *vgpu, unsigned int offset,
  334. void *p_data, unsigned int bytes)
  335. {
  336. u32 data;
  337. write_vreg(vgpu, offset, p_data, bytes);
  338. data = vgpu_vreg(vgpu, offset);
  339. if (data & PIPECONF_ENABLE)
  340. vgpu_vreg(vgpu, offset) |= I965_PIPECONF_ACTIVE;
  341. else
  342. vgpu_vreg(vgpu, offset) &= ~I965_PIPECONF_ACTIVE;
  343. intel_gvt_check_vblank_emulation(vgpu->gvt);
  344. return 0;
  345. }
  346. /* ascendingly sorted */
  347. static i915_reg_t force_nonpriv_white_list[] = {
  348. GEN9_CS_DEBUG_MODE1, //_MMIO(0x20ec)
  349. GEN9_CTX_PREEMPT_REG,//_MMIO(0x2248)
  350. GEN8_CS_CHICKEN1,//_MMIO(0x2580)
  351. _MMIO(0x2690),
  352. _MMIO(0x2694),
  353. _MMIO(0x2698),
  354. _MMIO(0x4de0),
  355. _MMIO(0x4de4),
  356. _MMIO(0x4dfc),
  357. GEN7_COMMON_SLICE_CHICKEN1,//_MMIO(0x7010)
  358. _MMIO(0x7014),
  359. HDC_CHICKEN0,//_MMIO(0x7300)
  360. GEN8_HDC_CHICKEN1,//_MMIO(0x7304)
  361. _MMIO(0x7700),
  362. _MMIO(0x7704),
  363. _MMIO(0x7708),
  364. _MMIO(0x770c),
  365. _MMIO(0xb110),
  366. GEN8_L3SQCREG4,//_MMIO(0xb118)
  367. _MMIO(0xe100),
  368. _MMIO(0xe18c),
  369. _MMIO(0xe48c),
  370. _MMIO(0xe5f4),
  371. };
  372. /* a simple bsearch */
  373. static inline bool in_whitelist(unsigned int reg)
  374. {
  375. int left = 0, right = ARRAY_SIZE(force_nonpriv_white_list);
  376. i915_reg_t *array = force_nonpriv_white_list;
  377. while (left < right) {
  378. int mid = (left + right)/2;
  379. if (reg > array[mid].reg)
  380. left = mid + 1;
  381. else if (reg < array[mid].reg)
  382. right = mid;
  383. else
  384. return true;
  385. }
  386. return false;
  387. }
  388. static int force_nonpriv_write(struct intel_vgpu *vgpu,
  389. unsigned int offset, void *p_data, unsigned int bytes)
  390. {
  391. u32 reg_nonpriv = *(u32 *)p_data;
  392. int ret = -EINVAL;
  393. if ((bytes != 4) || ((offset & (bytes - 1)) != 0)) {
  394. gvt_err("vgpu(%d) Invalid FORCE_NONPRIV offset %x(%dB)\n",
  395. vgpu->id, offset, bytes);
  396. return ret;
  397. }
  398. if (in_whitelist(reg_nonpriv)) {
  399. ret = intel_vgpu_default_mmio_write(vgpu, offset, p_data,
  400. bytes);
  401. } else {
  402. gvt_err("vgpu(%d) Invalid FORCE_NONPRIV write %x\n",
  403. vgpu->id, reg_nonpriv);
  404. }
  405. return ret;
  406. }
  407. static int ddi_buf_ctl_mmio_write(struct intel_vgpu *vgpu, unsigned int offset,
  408. void *p_data, unsigned int bytes)
  409. {
  410. write_vreg(vgpu, offset, p_data, bytes);
  411. if (vgpu_vreg(vgpu, offset) & DDI_BUF_CTL_ENABLE) {
  412. vgpu_vreg(vgpu, offset) &= ~DDI_BUF_IS_IDLE;
  413. } else {
  414. vgpu_vreg(vgpu, offset) |= DDI_BUF_IS_IDLE;
  415. if (offset == i915_mmio_reg_offset(DDI_BUF_CTL(PORT_E)))
  416. vgpu_vreg(vgpu, DP_TP_STATUS(PORT_E))
  417. &= ~DP_TP_STATUS_AUTOTRAIN_DONE;
  418. }
  419. return 0;
  420. }
  421. static int fdi_rx_iir_mmio_write(struct intel_vgpu *vgpu,
  422. unsigned int offset, void *p_data, unsigned int bytes)
  423. {
  424. vgpu_vreg(vgpu, offset) &= ~*(u32 *)p_data;
  425. return 0;
  426. }
  427. #define FDI_LINK_TRAIN_PATTERN1 0
  428. #define FDI_LINK_TRAIN_PATTERN2 1
  429. static int fdi_auto_training_started(struct intel_vgpu *vgpu)
  430. {
  431. u32 ddi_buf_ctl = vgpu_vreg(vgpu, DDI_BUF_CTL(PORT_E));
  432. u32 rx_ctl = vgpu_vreg(vgpu, _FDI_RXA_CTL);
  433. u32 tx_ctl = vgpu_vreg(vgpu, DP_TP_CTL(PORT_E));
  434. if ((ddi_buf_ctl & DDI_BUF_CTL_ENABLE) &&
  435. (rx_ctl & FDI_RX_ENABLE) &&
  436. (rx_ctl & FDI_AUTO_TRAINING) &&
  437. (tx_ctl & DP_TP_CTL_ENABLE) &&
  438. (tx_ctl & DP_TP_CTL_FDI_AUTOTRAIN))
  439. return 1;
  440. else
  441. return 0;
  442. }
  443. static int check_fdi_rx_train_status(struct intel_vgpu *vgpu,
  444. enum pipe pipe, unsigned int train_pattern)
  445. {
  446. i915_reg_t fdi_rx_imr, fdi_tx_ctl, fdi_rx_ctl;
  447. unsigned int fdi_rx_check_bits, fdi_tx_check_bits;
  448. unsigned int fdi_rx_train_bits, fdi_tx_train_bits;
  449. unsigned int fdi_iir_check_bits;
  450. fdi_rx_imr = FDI_RX_IMR(pipe);
  451. fdi_tx_ctl = FDI_TX_CTL(pipe);
  452. fdi_rx_ctl = FDI_RX_CTL(pipe);
  453. if (train_pattern == FDI_LINK_TRAIN_PATTERN1) {
  454. fdi_rx_train_bits = FDI_LINK_TRAIN_PATTERN_1_CPT;
  455. fdi_tx_train_bits = FDI_LINK_TRAIN_PATTERN_1;
  456. fdi_iir_check_bits = FDI_RX_BIT_LOCK;
  457. } else if (train_pattern == FDI_LINK_TRAIN_PATTERN2) {
  458. fdi_rx_train_bits = FDI_LINK_TRAIN_PATTERN_2_CPT;
  459. fdi_tx_train_bits = FDI_LINK_TRAIN_PATTERN_2;
  460. fdi_iir_check_bits = FDI_RX_SYMBOL_LOCK;
  461. } else {
  462. gvt_vgpu_err("Invalid train pattern %d\n", train_pattern);
  463. return -EINVAL;
  464. }
  465. fdi_rx_check_bits = FDI_RX_ENABLE | fdi_rx_train_bits;
  466. fdi_tx_check_bits = FDI_TX_ENABLE | fdi_tx_train_bits;
  467. /* If imr bit has been masked */
  468. if (vgpu_vreg(vgpu, fdi_rx_imr) & fdi_iir_check_bits)
  469. return 0;
  470. if (((vgpu_vreg(vgpu, fdi_tx_ctl) & fdi_tx_check_bits)
  471. == fdi_tx_check_bits)
  472. && ((vgpu_vreg(vgpu, fdi_rx_ctl) & fdi_rx_check_bits)
  473. == fdi_rx_check_bits))
  474. return 1;
  475. else
  476. return 0;
  477. }
  478. #define INVALID_INDEX (~0U)
  479. static unsigned int calc_index(unsigned int offset, unsigned int start,
  480. unsigned int next, unsigned int end, i915_reg_t i915_end)
  481. {
  482. unsigned int range = next - start;
  483. if (!end)
  484. end = i915_mmio_reg_offset(i915_end);
  485. if (offset < start || offset > end)
  486. return INVALID_INDEX;
  487. offset -= start;
  488. return offset / range;
  489. }
  490. #define FDI_RX_CTL_TO_PIPE(offset) \
  491. calc_index(offset, _FDI_RXA_CTL, _FDI_RXB_CTL, 0, FDI_RX_CTL(PIPE_C))
  492. #define FDI_TX_CTL_TO_PIPE(offset) \
  493. calc_index(offset, _FDI_TXA_CTL, _FDI_TXB_CTL, 0, FDI_TX_CTL(PIPE_C))
  494. #define FDI_RX_IMR_TO_PIPE(offset) \
  495. calc_index(offset, _FDI_RXA_IMR, _FDI_RXB_IMR, 0, FDI_RX_IMR(PIPE_C))
  496. static int update_fdi_rx_iir_status(struct intel_vgpu *vgpu,
  497. unsigned int offset, void *p_data, unsigned int bytes)
  498. {
  499. i915_reg_t fdi_rx_iir;
  500. unsigned int index;
  501. int ret;
  502. if (FDI_RX_CTL_TO_PIPE(offset) != INVALID_INDEX)
  503. index = FDI_RX_CTL_TO_PIPE(offset);
  504. else if (FDI_TX_CTL_TO_PIPE(offset) != INVALID_INDEX)
  505. index = FDI_TX_CTL_TO_PIPE(offset);
  506. else if (FDI_RX_IMR_TO_PIPE(offset) != INVALID_INDEX)
  507. index = FDI_RX_IMR_TO_PIPE(offset);
  508. else {
  509. gvt_vgpu_err("Unsupport registers %x\n", offset);
  510. return -EINVAL;
  511. }
  512. write_vreg(vgpu, offset, p_data, bytes);
  513. fdi_rx_iir = FDI_RX_IIR(index);
  514. ret = check_fdi_rx_train_status(vgpu, index, FDI_LINK_TRAIN_PATTERN1);
  515. if (ret < 0)
  516. return ret;
  517. if (ret)
  518. vgpu_vreg(vgpu, fdi_rx_iir) |= FDI_RX_BIT_LOCK;
  519. ret = check_fdi_rx_train_status(vgpu, index, FDI_LINK_TRAIN_PATTERN2);
  520. if (ret < 0)
  521. return ret;
  522. if (ret)
  523. vgpu_vreg(vgpu, fdi_rx_iir) |= FDI_RX_SYMBOL_LOCK;
  524. if (offset == _FDI_RXA_CTL)
  525. if (fdi_auto_training_started(vgpu))
  526. vgpu_vreg(vgpu, DP_TP_STATUS(PORT_E)) |=
  527. DP_TP_STATUS_AUTOTRAIN_DONE;
  528. return 0;
  529. }
  530. #define DP_TP_CTL_TO_PORT(offset) \
  531. calc_index(offset, _DP_TP_CTL_A, _DP_TP_CTL_B, 0, DP_TP_CTL(PORT_E))
  532. static int dp_tp_ctl_mmio_write(struct intel_vgpu *vgpu, unsigned int offset,
  533. void *p_data, unsigned int bytes)
  534. {
  535. i915_reg_t status_reg;
  536. unsigned int index;
  537. u32 data;
  538. write_vreg(vgpu, offset, p_data, bytes);
  539. index = DP_TP_CTL_TO_PORT(offset);
  540. data = (vgpu_vreg(vgpu, offset) & GENMASK(10, 8)) >> 8;
  541. if (data == 0x2) {
  542. status_reg = DP_TP_STATUS(index);
  543. vgpu_vreg(vgpu, status_reg) |= (1 << 25);
  544. }
  545. return 0;
  546. }
  547. static int dp_tp_status_mmio_write(struct intel_vgpu *vgpu,
  548. unsigned int offset, void *p_data, unsigned int bytes)
  549. {
  550. u32 reg_val;
  551. u32 sticky_mask;
  552. reg_val = *((u32 *)p_data);
  553. sticky_mask = GENMASK(27, 26) | (1 << 24);
  554. vgpu_vreg(vgpu, offset) = (reg_val & ~sticky_mask) |
  555. (vgpu_vreg(vgpu, offset) & sticky_mask);
  556. vgpu_vreg(vgpu, offset) &= ~(reg_val & sticky_mask);
  557. return 0;
  558. }
  559. static int pch_adpa_mmio_write(struct intel_vgpu *vgpu,
  560. unsigned int offset, void *p_data, unsigned int bytes)
  561. {
  562. u32 data;
  563. write_vreg(vgpu, offset, p_data, bytes);
  564. data = vgpu_vreg(vgpu, offset);
  565. if (data & ADPA_CRT_HOTPLUG_FORCE_TRIGGER)
  566. vgpu_vreg(vgpu, offset) &= ~ADPA_CRT_HOTPLUG_FORCE_TRIGGER;
  567. return 0;
  568. }
  569. static int south_chicken2_mmio_write(struct intel_vgpu *vgpu,
  570. unsigned int offset, void *p_data, unsigned int bytes)
  571. {
  572. u32 data;
  573. write_vreg(vgpu, offset, p_data, bytes);
  574. data = vgpu_vreg(vgpu, offset);
  575. if (data & FDI_MPHY_IOSFSB_RESET_CTL)
  576. vgpu_vreg(vgpu, offset) |= FDI_MPHY_IOSFSB_RESET_STATUS;
  577. else
  578. vgpu_vreg(vgpu, offset) &= ~FDI_MPHY_IOSFSB_RESET_STATUS;
  579. return 0;
  580. }
  581. #define DSPSURF_TO_PIPE(offset) \
  582. calc_index(offset, _DSPASURF, _DSPBSURF, 0, DSPSURF(PIPE_C))
  583. static int pri_surf_mmio_write(struct intel_vgpu *vgpu, unsigned int offset,
  584. void *p_data, unsigned int bytes)
  585. {
  586. struct drm_i915_private *dev_priv = vgpu->gvt->dev_priv;
  587. unsigned int index = DSPSURF_TO_PIPE(offset);
  588. i915_reg_t surflive_reg = DSPSURFLIVE(index);
  589. int flip_event[] = {
  590. [PIPE_A] = PRIMARY_A_FLIP_DONE,
  591. [PIPE_B] = PRIMARY_B_FLIP_DONE,
  592. [PIPE_C] = PRIMARY_C_FLIP_DONE,
  593. };
  594. write_vreg(vgpu, offset, p_data, bytes);
  595. vgpu_vreg(vgpu, surflive_reg) = vgpu_vreg(vgpu, offset);
  596. set_bit(flip_event[index], vgpu->irq.flip_done_event[index]);
  597. return 0;
  598. }
  599. #define SPRSURF_TO_PIPE(offset) \
  600. calc_index(offset, _SPRA_SURF, _SPRB_SURF, 0, SPRSURF(PIPE_C))
  601. static int spr_surf_mmio_write(struct intel_vgpu *vgpu, unsigned int offset,
  602. void *p_data, unsigned int bytes)
  603. {
  604. unsigned int index = SPRSURF_TO_PIPE(offset);
  605. i915_reg_t surflive_reg = SPRSURFLIVE(index);
  606. int flip_event[] = {
  607. [PIPE_A] = SPRITE_A_FLIP_DONE,
  608. [PIPE_B] = SPRITE_B_FLIP_DONE,
  609. [PIPE_C] = SPRITE_C_FLIP_DONE,
  610. };
  611. write_vreg(vgpu, offset, p_data, bytes);
  612. vgpu_vreg(vgpu, surflive_reg) = vgpu_vreg(vgpu, offset);
  613. set_bit(flip_event[index], vgpu->irq.flip_done_event[index]);
  614. return 0;
  615. }
  616. static int trigger_aux_channel_interrupt(struct intel_vgpu *vgpu,
  617. unsigned int reg)
  618. {
  619. struct drm_i915_private *dev_priv = vgpu->gvt->dev_priv;
  620. enum intel_gvt_event_type event;
  621. if (reg == _DPA_AUX_CH_CTL)
  622. event = AUX_CHANNEL_A;
  623. else if (reg == _PCH_DPB_AUX_CH_CTL || reg == _DPB_AUX_CH_CTL)
  624. event = AUX_CHANNEL_B;
  625. else if (reg == _PCH_DPC_AUX_CH_CTL || reg == _DPC_AUX_CH_CTL)
  626. event = AUX_CHANNEL_C;
  627. else if (reg == _PCH_DPD_AUX_CH_CTL || reg == _DPD_AUX_CH_CTL)
  628. event = AUX_CHANNEL_D;
  629. else {
  630. WARN_ON(true);
  631. return -EINVAL;
  632. }
  633. intel_vgpu_trigger_virtual_event(vgpu, event);
  634. return 0;
  635. }
  636. static int dp_aux_ch_ctl_trans_done(struct intel_vgpu *vgpu, u32 value,
  637. unsigned int reg, int len, bool data_valid)
  638. {
  639. /* mark transaction done */
  640. value |= DP_AUX_CH_CTL_DONE;
  641. value &= ~DP_AUX_CH_CTL_SEND_BUSY;
  642. value &= ~DP_AUX_CH_CTL_RECEIVE_ERROR;
  643. if (data_valid)
  644. value &= ~DP_AUX_CH_CTL_TIME_OUT_ERROR;
  645. else
  646. value |= DP_AUX_CH_CTL_TIME_OUT_ERROR;
  647. /* message size */
  648. value &= ~(0xf << 20);
  649. value |= (len << 20);
  650. vgpu_vreg(vgpu, reg) = value;
  651. if (value & DP_AUX_CH_CTL_INTERRUPT)
  652. return trigger_aux_channel_interrupt(vgpu, reg);
  653. return 0;
  654. }
  655. static void dp_aux_ch_ctl_link_training(struct intel_vgpu_dpcd_data *dpcd,
  656. uint8_t t)
  657. {
  658. if ((t & DPCD_TRAINING_PATTERN_SET_MASK) == DPCD_TRAINING_PATTERN_1) {
  659. /* training pattern 1 for CR */
  660. /* set LANE0_CR_DONE, LANE1_CR_DONE */
  661. dpcd->data[DPCD_LANE0_1_STATUS] |= DPCD_LANES_CR_DONE;
  662. /* set LANE2_CR_DONE, LANE3_CR_DONE */
  663. dpcd->data[DPCD_LANE2_3_STATUS] |= DPCD_LANES_CR_DONE;
  664. } else if ((t & DPCD_TRAINING_PATTERN_SET_MASK) ==
  665. DPCD_TRAINING_PATTERN_2) {
  666. /* training pattern 2 for EQ */
  667. /* Set CHANNEL_EQ_DONE and SYMBOL_LOCKED for Lane0_1 */
  668. dpcd->data[DPCD_LANE0_1_STATUS] |= DPCD_LANES_EQ_DONE;
  669. dpcd->data[DPCD_LANE0_1_STATUS] |= DPCD_SYMBOL_LOCKED;
  670. /* Set CHANNEL_EQ_DONE and SYMBOL_LOCKED for Lane2_3 */
  671. dpcd->data[DPCD_LANE2_3_STATUS] |= DPCD_LANES_EQ_DONE;
  672. dpcd->data[DPCD_LANE2_3_STATUS] |= DPCD_SYMBOL_LOCKED;
  673. /* set INTERLANE_ALIGN_DONE */
  674. dpcd->data[DPCD_LANE_ALIGN_STATUS_UPDATED] |=
  675. DPCD_INTERLANE_ALIGN_DONE;
  676. } else if ((t & DPCD_TRAINING_PATTERN_SET_MASK) ==
  677. DPCD_LINK_TRAINING_DISABLED) {
  678. /* finish link training */
  679. /* set sink status as synchronized */
  680. dpcd->data[DPCD_SINK_STATUS] = DPCD_SINK_IN_SYNC;
  681. }
  682. }
  683. #define _REG_HSW_DP_AUX_CH_CTL(dp) \
  684. ((dp) ? (_PCH_DPB_AUX_CH_CTL + ((dp)-1)*0x100) : 0x64010)
  685. #define _REG_SKL_DP_AUX_CH_CTL(dp) (0x64010 + (dp) * 0x100)
  686. #define OFFSET_TO_DP_AUX_PORT(offset) (((offset) & 0xF00) >> 8)
  687. #define dpy_is_valid_port(port) \
  688. (((port) >= PORT_A) && ((port) < I915_MAX_PORTS))
  689. static int dp_aux_ch_ctl_mmio_write(struct intel_vgpu *vgpu,
  690. unsigned int offset, void *p_data, unsigned int bytes)
  691. {
  692. struct intel_vgpu_display *display = &vgpu->display;
  693. int msg, addr, ctrl, op, len;
  694. int port_index = OFFSET_TO_DP_AUX_PORT(offset);
  695. struct intel_vgpu_dpcd_data *dpcd = NULL;
  696. struct intel_vgpu_port *port = NULL;
  697. u32 data;
  698. if (!dpy_is_valid_port(port_index)) {
  699. gvt_vgpu_err("Unsupported DP port access!\n");
  700. return 0;
  701. }
  702. write_vreg(vgpu, offset, p_data, bytes);
  703. data = vgpu_vreg(vgpu, offset);
  704. if ((IS_SKYLAKE(vgpu->gvt->dev_priv)
  705. || IS_KABYLAKE(vgpu->gvt->dev_priv))
  706. && offset != _REG_SKL_DP_AUX_CH_CTL(port_index)) {
  707. /* SKL DPB/C/D aux ctl register changed */
  708. return 0;
  709. } else if (IS_BROADWELL(vgpu->gvt->dev_priv) &&
  710. offset != _REG_HSW_DP_AUX_CH_CTL(port_index)) {
  711. /* write to the data registers */
  712. return 0;
  713. }
  714. if (!(data & DP_AUX_CH_CTL_SEND_BUSY)) {
  715. /* just want to clear the sticky bits */
  716. vgpu_vreg(vgpu, offset) = 0;
  717. return 0;
  718. }
  719. port = &display->ports[port_index];
  720. dpcd = port->dpcd;
  721. /* read out message from DATA1 register */
  722. msg = vgpu_vreg(vgpu, offset + 4);
  723. addr = (msg >> 8) & 0xffff;
  724. ctrl = (msg >> 24) & 0xff;
  725. len = msg & 0xff;
  726. op = ctrl >> 4;
  727. if (op == GVT_AUX_NATIVE_WRITE) {
  728. int t;
  729. uint8_t buf[16];
  730. if ((addr + len + 1) >= DPCD_SIZE) {
  731. /*
  732. * Write request exceeds what we supported,
  733. * DCPD spec: When a Source Device is writing a DPCD
  734. * address not supported by the Sink Device, the Sink
  735. * Device shall reply with AUX NACK and “M” equal to
  736. * zero.
  737. */
  738. /* NAK the write */
  739. vgpu_vreg(vgpu, offset + 4) = AUX_NATIVE_REPLY_NAK;
  740. dp_aux_ch_ctl_trans_done(vgpu, data, offset, 2, true);
  741. return 0;
  742. }
  743. /*
  744. * Write request format: (command + address) occupies
  745. * 3 bytes, followed by (len + 1) bytes of data.
  746. */
  747. if (WARN_ON((len + 4) > AUX_BURST_SIZE))
  748. return -EINVAL;
  749. /* unpack data from vreg to buf */
  750. for (t = 0; t < 4; t++) {
  751. u32 r = vgpu_vreg(vgpu, offset + 8 + t * 4);
  752. buf[t * 4] = (r >> 24) & 0xff;
  753. buf[t * 4 + 1] = (r >> 16) & 0xff;
  754. buf[t * 4 + 2] = (r >> 8) & 0xff;
  755. buf[t * 4 + 3] = r & 0xff;
  756. }
  757. /* write to virtual DPCD */
  758. if (dpcd && dpcd->data_valid) {
  759. for (t = 0; t <= len; t++) {
  760. int p = addr + t;
  761. dpcd->data[p] = buf[t];
  762. /* check for link training */
  763. if (p == DPCD_TRAINING_PATTERN_SET)
  764. dp_aux_ch_ctl_link_training(dpcd,
  765. buf[t]);
  766. }
  767. }
  768. /* ACK the write */
  769. vgpu_vreg(vgpu, offset + 4) = 0;
  770. dp_aux_ch_ctl_trans_done(vgpu, data, offset, 1,
  771. dpcd && dpcd->data_valid);
  772. return 0;
  773. }
  774. if (op == GVT_AUX_NATIVE_READ) {
  775. int idx, i, ret = 0;
  776. if ((addr + len + 1) >= DPCD_SIZE) {
  777. /*
  778. * read request exceeds what we supported
  779. * DPCD spec: A Sink Device receiving a Native AUX CH
  780. * read request for an unsupported DPCD address must
  781. * reply with an AUX ACK and read data set equal to
  782. * zero instead of replying with AUX NACK.
  783. */
  784. /* ACK the READ*/
  785. vgpu_vreg(vgpu, offset + 4) = 0;
  786. vgpu_vreg(vgpu, offset + 8) = 0;
  787. vgpu_vreg(vgpu, offset + 12) = 0;
  788. vgpu_vreg(vgpu, offset + 16) = 0;
  789. vgpu_vreg(vgpu, offset + 20) = 0;
  790. dp_aux_ch_ctl_trans_done(vgpu, data, offset, len + 2,
  791. true);
  792. return 0;
  793. }
  794. for (idx = 1; idx <= 5; idx++) {
  795. /* clear the data registers */
  796. vgpu_vreg(vgpu, offset + 4 * idx) = 0;
  797. }
  798. /*
  799. * Read reply format: ACK (1 byte) plus (len + 1) bytes of data.
  800. */
  801. if (WARN_ON((len + 2) > AUX_BURST_SIZE))
  802. return -EINVAL;
  803. /* read from virtual DPCD to vreg */
  804. /* first 4 bytes: [ACK][addr][addr+1][addr+2] */
  805. if (dpcd && dpcd->data_valid) {
  806. for (i = 1; i <= (len + 1); i++) {
  807. int t;
  808. t = dpcd->data[addr + i - 1];
  809. t <<= (24 - 8 * (i % 4));
  810. ret |= t;
  811. if ((i % 4 == 3) || (i == (len + 1))) {
  812. vgpu_vreg(vgpu, offset +
  813. (i / 4 + 1) * 4) = ret;
  814. ret = 0;
  815. }
  816. }
  817. }
  818. dp_aux_ch_ctl_trans_done(vgpu, data, offset, len + 2,
  819. dpcd && dpcd->data_valid);
  820. return 0;
  821. }
  822. /* i2c transaction starts */
  823. intel_gvt_i2c_handle_aux_ch_write(vgpu, port_index, offset, p_data);
  824. if (data & DP_AUX_CH_CTL_INTERRUPT)
  825. trigger_aux_channel_interrupt(vgpu, offset);
  826. return 0;
  827. }
  828. static int mbctl_write(struct intel_vgpu *vgpu, unsigned int offset,
  829. void *p_data, unsigned int bytes)
  830. {
  831. *(u32 *)p_data &= (~GEN6_MBCTL_ENABLE_BOOT_FETCH);
  832. write_vreg(vgpu, offset, p_data, bytes);
  833. return 0;
  834. }
  835. static int vga_control_mmio_write(struct intel_vgpu *vgpu, unsigned int offset,
  836. void *p_data, unsigned int bytes)
  837. {
  838. bool vga_disable;
  839. write_vreg(vgpu, offset, p_data, bytes);
  840. vga_disable = vgpu_vreg(vgpu, offset) & VGA_DISP_DISABLE;
  841. gvt_dbg_core("vgpu%d: %s VGA mode\n", vgpu->id,
  842. vga_disable ? "Disable" : "Enable");
  843. return 0;
  844. }
  845. static u32 read_virtual_sbi_register(struct intel_vgpu *vgpu,
  846. unsigned int sbi_offset)
  847. {
  848. struct intel_vgpu_display *display = &vgpu->display;
  849. int num = display->sbi.number;
  850. int i;
  851. for (i = 0; i < num; ++i)
  852. if (display->sbi.registers[i].offset == sbi_offset)
  853. break;
  854. if (i == num)
  855. return 0;
  856. return display->sbi.registers[i].value;
  857. }
  858. static void write_virtual_sbi_register(struct intel_vgpu *vgpu,
  859. unsigned int offset, u32 value)
  860. {
  861. struct intel_vgpu_display *display = &vgpu->display;
  862. int num = display->sbi.number;
  863. int i;
  864. for (i = 0; i < num; ++i) {
  865. if (display->sbi.registers[i].offset == offset)
  866. break;
  867. }
  868. if (i == num) {
  869. if (num == SBI_REG_MAX) {
  870. gvt_vgpu_err("SBI caching meets maximum limits\n");
  871. return;
  872. }
  873. display->sbi.number++;
  874. }
  875. display->sbi.registers[i].offset = offset;
  876. display->sbi.registers[i].value = value;
  877. }
  878. static int sbi_data_mmio_read(struct intel_vgpu *vgpu, unsigned int offset,
  879. void *p_data, unsigned int bytes)
  880. {
  881. if (((vgpu_vreg(vgpu, SBI_CTL_STAT) & SBI_OPCODE_MASK) >>
  882. SBI_OPCODE_SHIFT) == SBI_CMD_CRRD) {
  883. unsigned int sbi_offset = (vgpu_vreg(vgpu, SBI_ADDR) &
  884. SBI_ADDR_OFFSET_MASK) >> SBI_ADDR_OFFSET_SHIFT;
  885. vgpu_vreg(vgpu, offset) = read_virtual_sbi_register(vgpu,
  886. sbi_offset);
  887. }
  888. read_vreg(vgpu, offset, p_data, bytes);
  889. return 0;
  890. }
  891. static int sbi_ctl_mmio_write(struct intel_vgpu *vgpu, unsigned int offset,
  892. void *p_data, unsigned int bytes)
  893. {
  894. u32 data;
  895. write_vreg(vgpu, offset, p_data, bytes);
  896. data = vgpu_vreg(vgpu, offset);
  897. data &= ~(SBI_STAT_MASK << SBI_STAT_SHIFT);
  898. data |= SBI_READY;
  899. data &= ~(SBI_RESPONSE_MASK << SBI_RESPONSE_SHIFT);
  900. data |= SBI_RESPONSE_SUCCESS;
  901. vgpu_vreg(vgpu, offset) = data;
  902. if (((vgpu_vreg(vgpu, SBI_CTL_STAT) & SBI_OPCODE_MASK) >>
  903. SBI_OPCODE_SHIFT) == SBI_CMD_CRWR) {
  904. unsigned int sbi_offset = (vgpu_vreg(vgpu, SBI_ADDR) &
  905. SBI_ADDR_OFFSET_MASK) >> SBI_ADDR_OFFSET_SHIFT;
  906. write_virtual_sbi_register(vgpu, sbi_offset,
  907. vgpu_vreg(vgpu, SBI_DATA));
  908. }
  909. return 0;
  910. }
  911. #define _vgtif_reg(x) \
  912. (VGT_PVINFO_PAGE + offsetof(struct vgt_if, x))
  913. static int pvinfo_mmio_read(struct intel_vgpu *vgpu, unsigned int offset,
  914. void *p_data, unsigned int bytes)
  915. {
  916. bool invalid_read = false;
  917. read_vreg(vgpu, offset, p_data, bytes);
  918. switch (offset) {
  919. case _vgtif_reg(magic) ... _vgtif_reg(vgt_id):
  920. if (offset + bytes > _vgtif_reg(vgt_id) + 4)
  921. invalid_read = true;
  922. break;
  923. case _vgtif_reg(avail_rs.mappable_gmadr.base) ...
  924. _vgtif_reg(avail_rs.fence_num):
  925. if (offset + bytes >
  926. _vgtif_reg(avail_rs.fence_num) + 4)
  927. invalid_read = true;
  928. break;
  929. case 0x78010: /* vgt_caps */
  930. case 0x7881c:
  931. break;
  932. default:
  933. invalid_read = true;
  934. break;
  935. }
  936. if (invalid_read)
  937. gvt_vgpu_err("invalid pvinfo read: [%x:%x] = %x\n",
  938. offset, bytes, *(u32 *)p_data);
  939. vgpu->pv_notified = true;
  940. return 0;
  941. }
  942. static int handle_g2v_notification(struct intel_vgpu *vgpu, int notification)
  943. {
  944. int ret = 0;
  945. switch (notification) {
  946. case VGT_G2V_PPGTT_L3_PAGE_TABLE_CREATE:
  947. ret = intel_vgpu_g2v_create_ppgtt_mm(vgpu, 3);
  948. break;
  949. case VGT_G2V_PPGTT_L3_PAGE_TABLE_DESTROY:
  950. ret = intel_vgpu_g2v_destroy_ppgtt_mm(vgpu, 3);
  951. break;
  952. case VGT_G2V_PPGTT_L4_PAGE_TABLE_CREATE:
  953. ret = intel_vgpu_g2v_create_ppgtt_mm(vgpu, 4);
  954. break;
  955. case VGT_G2V_PPGTT_L4_PAGE_TABLE_DESTROY:
  956. ret = intel_vgpu_g2v_destroy_ppgtt_mm(vgpu, 4);
  957. break;
  958. case VGT_G2V_EXECLIST_CONTEXT_CREATE:
  959. case VGT_G2V_EXECLIST_CONTEXT_DESTROY:
  960. case 1: /* Remove this in guest driver. */
  961. break;
  962. default:
  963. gvt_vgpu_err("Invalid PV notification %d\n", notification);
  964. }
  965. return ret;
  966. }
  967. static int send_display_ready_uevent(struct intel_vgpu *vgpu, int ready)
  968. {
  969. struct drm_i915_private *dev_priv = vgpu->gvt->dev_priv;
  970. struct kobject *kobj = &dev_priv->drm.primary->kdev->kobj;
  971. char *env[3] = {NULL, NULL, NULL};
  972. char vmid_str[20];
  973. char display_ready_str[20];
  974. snprintf(display_ready_str, 20, "GVT_DISPLAY_READY=%d", ready);
  975. env[0] = display_ready_str;
  976. snprintf(vmid_str, 20, "VMID=%d", vgpu->id);
  977. env[1] = vmid_str;
  978. return kobject_uevent_env(kobj, KOBJ_ADD, env);
  979. }
  980. static int pvinfo_mmio_write(struct intel_vgpu *vgpu, unsigned int offset,
  981. void *p_data, unsigned int bytes)
  982. {
  983. u32 data;
  984. int ret;
  985. write_vreg(vgpu, offset, p_data, bytes);
  986. data = vgpu_vreg(vgpu, offset);
  987. switch (offset) {
  988. case _vgtif_reg(display_ready):
  989. send_display_ready_uevent(vgpu, data ? 1 : 0);
  990. break;
  991. case _vgtif_reg(g2v_notify):
  992. ret = handle_g2v_notification(vgpu, data);
  993. break;
  994. /* add xhot and yhot to handled list to avoid error log */
  995. case 0x78830:
  996. case 0x78834:
  997. case _vgtif_reg(pdp[0].lo):
  998. case _vgtif_reg(pdp[0].hi):
  999. case _vgtif_reg(pdp[1].lo):
  1000. case _vgtif_reg(pdp[1].hi):
  1001. case _vgtif_reg(pdp[2].lo):
  1002. case _vgtif_reg(pdp[2].hi):
  1003. case _vgtif_reg(pdp[3].lo):
  1004. case _vgtif_reg(pdp[3].hi):
  1005. case _vgtif_reg(execlist_context_descriptor_lo):
  1006. case _vgtif_reg(execlist_context_descriptor_hi):
  1007. break;
  1008. case _vgtif_reg(rsv5[0])..._vgtif_reg(rsv5[3]):
  1009. enter_failsafe_mode(vgpu, GVT_FAILSAFE_INSUFFICIENT_RESOURCE);
  1010. break;
  1011. default:
  1012. gvt_vgpu_err("invalid pvinfo write offset %x bytes %x data %x\n",
  1013. offset, bytes, data);
  1014. break;
  1015. }
  1016. return 0;
  1017. }
  1018. static int pf_write(struct intel_vgpu *vgpu,
  1019. unsigned int offset, void *p_data, unsigned int bytes)
  1020. {
  1021. u32 val = *(u32 *)p_data;
  1022. if ((offset == _PS_1A_CTRL || offset == _PS_2A_CTRL ||
  1023. offset == _PS_1B_CTRL || offset == _PS_2B_CTRL ||
  1024. offset == _PS_1C_CTRL) && (val & PS_PLANE_SEL_MASK) != 0) {
  1025. WARN_ONCE(true, "VM(%d): guest is trying to scaling a plane\n",
  1026. vgpu->id);
  1027. return 0;
  1028. }
  1029. return intel_vgpu_default_mmio_write(vgpu, offset, p_data, bytes);
  1030. }
  1031. static int power_well_ctl_mmio_write(struct intel_vgpu *vgpu,
  1032. unsigned int offset, void *p_data, unsigned int bytes)
  1033. {
  1034. write_vreg(vgpu, offset, p_data, bytes);
  1035. if (vgpu_vreg(vgpu, offset) & HSW_PWR_WELL_ENABLE_REQUEST)
  1036. vgpu_vreg(vgpu, offset) |= HSW_PWR_WELL_STATE_ENABLED;
  1037. else
  1038. vgpu_vreg(vgpu, offset) &= ~HSW_PWR_WELL_STATE_ENABLED;
  1039. return 0;
  1040. }
  1041. static int fpga_dbg_mmio_write(struct intel_vgpu *vgpu,
  1042. unsigned int offset, void *p_data, unsigned int bytes)
  1043. {
  1044. write_vreg(vgpu, offset, p_data, bytes);
  1045. if (vgpu_vreg(vgpu, offset) & FPGA_DBG_RM_NOCLAIM)
  1046. vgpu_vreg(vgpu, offset) &= ~FPGA_DBG_RM_NOCLAIM;
  1047. return 0;
  1048. }
  1049. static int dma_ctrl_write(struct intel_vgpu *vgpu, unsigned int offset,
  1050. void *p_data, unsigned int bytes)
  1051. {
  1052. u32 mode;
  1053. write_vreg(vgpu, offset, p_data, bytes);
  1054. mode = vgpu_vreg(vgpu, offset);
  1055. if (GFX_MODE_BIT_SET_IN_MASK(mode, START_DMA)) {
  1056. WARN_ONCE(1, "VM(%d): iGVT-g doesn't support GuC\n",
  1057. vgpu->id);
  1058. return 0;
  1059. }
  1060. return 0;
  1061. }
  1062. static int gen9_trtte_write(struct intel_vgpu *vgpu, unsigned int offset,
  1063. void *p_data, unsigned int bytes)
  1064. {
  1065. struct drm_i915_private *dev_priv = vgpu->gvt->dev_priv;
  1066. u32 trtte = *(u32 *)p_data;
  1067. if ((trtte & 1) && (trtte & (1 << 1)) == 0) {
  1068. WARN(1, "VM(%d): Use physical address for TRTT!\n",
  1069. vgpu->id);
  1070. return -EINVAL;
  1071. }
  1072. write_vreg(vgpu, offset, p_data, bytes);
  1073. /* TRTTE is not per-context */
  1074. I915_WRITE(_MMIO(offset), vgpu_vreg(vgpu, offset));
  1075. return 0;
  1076. }
  1077. static int gen9_trtt_chicken_write(struct intel_vgpu *vgpu, unsigned int offset,
  1078. void *p_data, unsigned int bytes)
  1079. {
  1080. struct drm_i915_private *dev_priv = vgpu->gvt->dev_priv;
  1081. u32 val = *(u32 *)p_data;
  1082. if (val & 1) {
  1083. /* unblock hw logic */
  1084. I915_WRITE(_MMIO(offset), val);
  1085. }
  1086. write_vreg(vgpu, offset, p_data, bytes);
  1087. return 0;
  1088. }
  1089. static int dpll_status_read(struct intel_vgpu *vgpu, unsigned int offset,
  1090. void *p_data, unsigned int bytes)
  1091. {
  1092. u32 v = 0;
  1093. if (vgpu_vreg(vgpu, 0x46010) & (1 << 31))
  1094. v |= (1 << 0);
  1095. if (vgpu_vreg(vgpu, 0x46014) & (1 << 31))
  1096. v |= (1 << 8);
  1097. if (vgpu_vreg(vgpu, 0x46040) & (1 << 31))
  1098. v |= (1 << 16);
  1099. if (vgpu_vreg(vgpu, 0x46060) & (1 << 31))
  1100. v |= (1 << 24);
  1101. vgpu_vreg(vgpu, offset) = v;
  1102. return intel_vgpu_default_mmio_read(vgpu, offset, p_data, bytes);
  1103. }
  1104. static int mailbox_write(struct intel_vgpu *vgpu, unsigned int offset,
  1105. void *p_data, unsigned int bytes)
  1106. {
  1107. u32 value = *(u32 *)p_data;
  1108. u32 cmd = value & 0xff;
  1109. u32 *data0 = &vgpu_vreg(vgpu, GEN6_PCODE_DATA);
  1110. switch (cmd) {
  1111. case GEN9_PCODE_READ_MEM_LATENCY:
  1112. if (IS_SKYLAKE(vgpu->gvt->dev_priv)
  1113. || IS_KABYLAKE(vgpu->gvt->dev_priv)) {
  1114. /**
  1115. * "Read memory latency" command on gen9.
  1116. * Below memory latency values are read
  1117. * from skylake platform.
  1118. */
  1119. if (!*data0)
  1120. *data0 = 0x1e1a1100;
  1121. else
  1122. *data0 = 0x61514b3d;
  1123. }
  1124. break;
  1125. case SKL_PCODE_CDCLK_CONTROL:
  1126. if (IS_SKYLAKE(vgpu->gvt->dev_priv)
  1127. || IS_KABYLAKE(vgpu->gvt->dev_priv))
  1128. *data0 = SKL_CDCLK_READY_FOR_CHANGE;
  1129. break;
  1130. case GEN6_PCODE_READ_RC6VIDS:
  1131. *data0 |= 0x1;
  1132. break;
  1133. }
  1134. gvt_dbg_core("VM(%d) write %x to mailbox, return data0 %x\n",
  1135. vgpu->id, value, *data0);
  1136. /**
  1137. * PCODE_READY clear means ready for pcode read/write,
  1138. * PCODE_ERROR_MASK clear means no error happened. In GVT-g we
  1139. * always emulate as pcode read/write success and ready for access
  1140. * anytime, since we don't touch real physical registers here.
  1141. */
  1142. value &= ~(GEN6_PCODE_READY | GEN6_PCODE_ERROR_MASK);
  1143. return intel_vgpu_default_mmio_write(vgpu, offset, &value, bytes);
  1144. }
  1145. static int skl_power_well_ctl_write(struct intel_vgpu *vgpu,
  1146. unsigned int offset, void *p_data, unsigned int bytes)
  1147. {
  1148. u32 v = *(u32 *)p_data;
  1149. v &= (1 << 31) | (1 << 29) | (1 << 9) |
  1150. (1 << 7) | (1 << 5) | (1 << 3) | (1 << 1);
  1151. v |= (v >> 1);
  1152. return intel_vgpu_default_mmio_write(vgpu, offset, &v, bytes);
  1153. }
  1154. static int skl_misc_ctl_write(struct intel_vgpu *vgpu, unsigned int offset,
  1155. void *p_data, unsigned int bytes)
  1156. {
  1157. struct drm_i915_private *dev_priv = vgpu->gvt->dev_priv;
  1158. u32 v = *(u32 *)p_data;
  1159. if (!IS_SKYLAKE(dev_priv) && !IS_KABYLAKE(dev_priv))
  1160. return intel_vgpu_default_mmio_write(vgpu,
  1161. offset, p_data, bytes);
  1162. switch (offset) {
  1163. case 0x4ddc:
  1164. /* bypass WaCompressedResourceSamplerPbeMediaNewHashMode */
  1165. vgpu_vreg(vgpu, offset) = v & ~(1 << 31);
  1166. break;
  1167. case 0x42080:
  1168. /* bypass WaCompressedResourceDisplayNewHashMode */
  1169. vgpu_vreg(vgpu, offset) = v & ~(1 << 15);
  1170. break;
  1171. case 0xe194:
  1172. /* bypass WaCompressedResourceSamplerPbeMediaNewHashMode */
  1173. vgpu_vreg(vgpu, offset) = v & ~(1 << 8);
  1174. break;
  1175. case 0x7014:
  1176. /* bypass WaCompressedResourceSamplerPbeMediaNewHashMode */
  1177. vgpu_vreg(vgpu, offset) = v & ~(1 << 13);
  1178. break;
  1179. default:
  1180. return -EINVAL;
  1181. }
  1182. return 0;
  1183. }
  1184. static int skl_lcpll_write(struct intel_vgpu *vgpu, unsigned int offset,
  1185. void *p_data, unsigned int bytes)
  1186. {
  1187. u32 v = *(u32 *)p_data;
  1188. /* other bits are MBZ. */
  1189. v &= (1 << 31) | (1 << 30);
  1190. v & (1 << 31) ? (v |= (1 << 30)) : (v &= ~(1 << 30));
  1191. vgpu_vreg(vgpu, offset) = v;
  1192. return 0;
  1193. }
  1194. static int ring_timestamp_mmio_read(struct intel_vgpu *vgpu,
  1195. unsigned int offset, void *p_data, unsigned int bytes)
  1196. {
  1197. struct drm_i915_private *dev_priv = vgpu->gvt->dev_priv;
  1198. vgpu_vreg(vgpu, offset) = I915_READ(_MMIO(offset));
  1199. return intel_vgpu_default_mmio_read(vgpu, offset, p_data, bytes);
  1200. }
  1201. static int elsp_mmio_write(struct intel_vgpu *vgpu, unsigned int offset,
  1202. void *p_data, unsigned int bytes)
  1203. {
  1204. int ring_id = render_mmio_to_ring_id(vgpu->gvt, offset);
  1205. struct intel_vgpu_execlist *execlist;
  1206. u32 data = *(u32 *)p_data;
  1207. int ret = 0;
  1208. if (WARN_ON(ring_id < 0 || ring_id > I915_NUM_ENGINES - 1))
  1209. return -EINVAL;
  1210. execlist = &vgpu->execlist[ring_id];
  1211. execlist->elsp_dwords.data[execlist->elsp_dwords.index] = data;
  1212. if (execlist->elsp_dwords.index == 3) {
  1213. vgpu->last_ctx_submit_time = ktime_get();
  1214. ret = intel_vgpu_submit_execlist(vgpu, ring_id);
  1215. if(ret)
  1216. gvt_vgpu_err("fail submit workload on ring %d\n",
  1217. ring_id);
  1218. }
  1219. ++execlist->elsp_dwords.index;
  1220. execlist->elsp_dwords.index &= 0x3;
  1221. return ret;
  1222. }
  1223. static int ring_mode_mmio_write(struct intel_vgpu *vgpu, unsigned int offset,
  1224. void *p_data, unsigned int bytes)
  1225. {
  1226. u32 data = *(u32 *)p_data;
  1227. int ring_id = render_mmio_to_ring_id(vgpu->gvt, offset);
  1228. bool enable_execlist;
  1229. write_vreg(vgpu, offset, p_data, bytes);
  1230. /* when PPGTT mode enabled, we will check if guest has called
  1231. * pvinfo, if not, we will treat this guest as non-gvtg-aware
  1232. * guest, and stop emulating its cfg space, mmio, gtt, etc.
  1233. */
  1234. if (((data & _MASKED_BIT_ENABLE(GFX_PPGTT_ENABLE)) ||
  1235. (data & _MASKED_BIT_ENABLE(GFX_RUN_LIST_ENABLE)))
  1236. && !vgpu->pv_notified) {
  1237. enter_failsafe_mode(vgpu, GVT_FAILSAFE_UNSUPPORTED_GUEST);
  1238. return 0;
  1239. }
  1240. if ((data & _MASKED_BIT_ENABLE(GFX_RUN_LIST_ENABLE))
  1241. || (data & _MASKED_BIT_DISABLE(GFX_RUN_LIST_ENABLE))) {
  1242. enable_execlist = !!(data & GFX_RUN_LIST_ENABLE);
  1243. gvt_dbg_core("EXECLIST %s on ring %d\n",
  1244. (enable_execlist ? "enabling" : "disabling"),
  1245. ring_id);
  1246. if (enable_execlist)
  1247. intel_vgpu_start_schedule(vgpu);
  1248. }
  1249. return 0;
  1250. }
  1251. static int gvt_reg_tlb_control_handler(struct intel_vgpu *vgpu,
  1252. unsigned int offset, void *p_data, unsigned int bytes)
  1253. {
  1254. unsigned int id = 0;
  1255. write_vreg(vgpu, offset, p_data, bytes);
  1256. vgpu_vreg(vgpu, offset) = 0;
  1257. switch (offset) {
  1258. case 0x4260:
  1259. id = RCS;
  1260. break;
  1261. case 0x4264:
  1262. id = VCS;
  1263. break;
  1264. case 0x4268:
  1265. id = VCS2;
  1266. break;
  1267. case 0x426c:
  1268. id = BCS;
  1269. break;
  1270. case 0x4270:
  1271. id = VECS;
  1272. break;
  1273. default:
  1274. return -EINVAL;
  1275. }
  1276. set_bit(id, (void *)vgpu->tlb_handle_pending);
  1277. return 0;
  1278. }
  1279. static int ring_reset_ctl_write(struct intel_vgpu *vgpu,
  1280. unsigned int offset, void *p_data, unsigned int bytes)
  1281. {
  1282. u32 data;
  1283. write_vreg(vgpu, offset, p_data, bytes);
  1284. data = vgpu_vreg(vgpu, offset);
  1285. if (data & _MASKED_BIT_ENABLE(RESET_CTL_REQUEST_RESET))
  1286. data |= RESET_CTL_READY_TO_RESET;
  1287. else if (data & _MASKED_BIT_DISABLE(RESET_CTL_REQUEST_RESET))
  1288. data &= ~RESET_CTL_READY_TO_RESET;
  1289. vgpu_vreg(vgpu, offset) = data;
  1290. return 0;
  1291. }
  1292. #define MMIO_F(reg, s, f, am, rm, d, r, w) do { \
  1293. ret = new_mmio_info(gvt, INTEL_GVT_MMIO_OFFSET(reg), \
  1294. f, s, am, rm, d, r, w); \
  1295. if (ret) \
  1296. return ret; \
  1297. } while (0)
  1298. #define MMIO_D(reg, d) \
  1299. MMIO_F(reg, 4, 0, 0, 0, d, NULL, NULL)
  1300. #define MMIO_DH(reg, d, r, w) \
  1301. MMIO_F(reg, 4, 0, 0, 0, d, r, w)
  1302. #define MMIO_DFH(reg, d, f, r, w) \
  1303. MMIO_F(reg, 4, f, 0, 0, d, r, w)
  1304. #define MMIO_GM(reg, d, r, w) \
  1305. MMIO_F(reg, 4, F_GMADR, 0xFFFFF000, 0, d, r, w)
  1306. #define MMIO_GM_RDR(reg, d, r, w) \
  1307. MMIO_F(reg, 4, F_GMADR | F_CMD_ACCESS, 0xFFFFF000, 0, d, r, w)
  1308. #define MMIO_RO(reg, d, f, rm, r, w) \
  1309. MMIO_F(reg, 4, F_RO | f, 0, rm, d, r, w)
  1310. #define MMIO_RING_F(prefix, s, f, am, rm, d, r, w) do { \
  1311. MMIO_F(prefix(RENDER_RING_BASE), s, f, am, rm, d, r, w); \
  1312. MMIO_F(prefix(BLT_RING_BASE), s, f, am, rm, d, r, w); \
  1313. MMIO_F(prefix(GEN6_BSD_RING_BASE), s, f, am, rm, d, r, w); \
  1314. MMIO_F(prefix(VEBOX_RING_BASE), s, f, am, rm, d, r, w); \
  1315. } while (0)
  1316. #define MMIO_RING_D(prefix, d) \
  1317. MMIO_RING_F(prefix, 4, 0, 0, 0, d, NULL, NULL)
  1318. #define MMIO_RING_DFH(prefix, d, f, r, w) \
  1319. MMIO_RING_F(prefix, 4, f, 0, 0, d, r, w)
  1320. #define MMIO_RING_GM(prefix, d, r, w) \
  1321. MMIO_RING_F(prefix, 4, F_GMADR, 0xFFFF0000, 0, d, r, w)
  1322. #define MMIO_RING_GM_RDR(prefix, d, r, w) \
  1323. MMIO_RING_F(prefix, 4, F_GMADR | F_CMD_ACCESS, 0xFFFF0000, 0, d, r, w)
  1324. #define MMIO_RING_RO(prefix, d, f, rm, r, w) \
  1325. MMIO_RING_F(prefix, 4, F_RO | f, 0, rm, d, r, w)
  1326. static int init_generic_mmio_info(struct intel_gvt *gvt)
  1327. {
  1328. struct drm_i915_private *dev_priv = gvt->dev_priv;
  1329. int ret;
  1330. MMIO_RING_DFH(RING_IMR, D_ALL, F_CMD_ACCESS, NULL,
  1331. intel_vgpu_reg_imr_handler);
  1332. MMIO_DFH(SDEIMR, D_ALL, 0, NULL, intel_vgpu_reg_imr_handler);
  1333. MMIO_DFH(SDEIER, D_ALL, 0, NULL, intel_vgpu_reg_ier_handler);
  1334. MMIO_DFH(SDEIIR, D_ALL, 0, NULL, intel_vgpu_reg_iir_handler);
  1335. MMIO_D(SDEISR, D_ALL);
  1336. MMIO_RING_DFH(RING_HWSTAM, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1337. MMIO_GM_RDR(RENDER_HWS_PGA_GEN7, D_ALL, NULL, NULL);
  1338. MMIO_GM_RDR(BSD_HWS_PGA_GEN7, D_ALL, NULL, NULL);
  1339. MMIO_GM_RDR(BLT_HWS_PGA_GEN7, D_ALL, NULL, NULL);
  1340. MMIO_GM_RDR(VEBOX_HWS_PGA_GEN7, D_ALL, NULL, NULL);
  1341. #define RING_REG(base) (base + 0x28)
  1342. MMIO_RING_DFH(RING_REG, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1343. #undef RING_REG
  1344. #define RING_REG(base) (base + 0x134)
  1345. MMIO_RING_DFH(RING_REG, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1346. #undef RING_REG
  1347. MMIO_GM_RDR(0x2148, D_ALL, NULL, NULL);
  1348. MMIO_GM_RDR(CCID, D_ALL, NULL, NULL);
  1349. MMIO_GM_RDR(0x12198, D_ALL, NULL, NULL);
  1350. MMIO_D(GEN7_CXT_SIZE, D_ALL);
  1351. MMIO_RING_DFH(RING_TAIL, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1352. MMIO_RING_DFH(RING_HEAD, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1353. MMIO_RING_DFH(RING_CTL, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1354. MMIO_RING_DFH(RING_ACTHD, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1355. MMIO_RING_GM_RDR(RING_START, D_ALL, NULL, NULL);
  1356. /* RING MODE */
  1357. #define RING_REG(base) (base + 0x29c)
  1358. MMIO_RING_DFH(RING_REG, D_ALL, F_MODE_MASK | F_CMD_ACCESS, NULL,
  1359. ring_mode_mmio_write);
  1360. #undef RING_REG
  1361. MMIO_RING_DFH(RING_MI_MODE, D_ALL, F_MODE_MASK | F_CMD_ACCESS,
  1362. NULL, NULL);
  1363. MMIO_RING_DFH(RING_INSTPM, D_ALL, F_MODE_MASK | F_CMD_ACCESS,
  1364. NULL, NULL);
  1365. MMIO_RING_DFH(RING_TIMESTAMP, D_ALL, F_CMD_ACCESS,
  1366. ring_timestamp_mmio_read, NULL);
  1367. MMIO_RING_DFH(RING_TIMESTAMP_UDW, D_ALL, F_CMD_ACCESS,
  1368. ring_timestamp_mmio_read, NULL);
  1369. MMIO_DFH(GEN7_GT_MODE, D_ALL, F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  1370. MMIO_DFH(CACHE_MODE_0_GEN7, D_ALL, F_MODE_MASK | F_CMD_ACCESS,
  1371. NULL, NULL);
  1372. MMIO_DFH(CACHE_MODE_1, D_ALL, F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  1373. MMIO_DFH(CACHE_MODE_0, D_ALL, F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  1374. MMIO_DFH(0x2124, D_ALL, F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  1375. MMIO_DFH(0x20dc, D_ALL, F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  1376. MMIO_DFH(_3D_CHICKEN3, D_ALL, F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  1377. MMIO_DFH(0x2088, D_ALL, F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  1378. MMIO_DFH(0x20e4, D_ALL, F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  1379. MMIO_DFH(0x2470, D_ALL, F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  1380. MMIO_DFH(GAM_ECOCHK, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1381. MMIO_DFH(GEN7_COMMON_SLICE_CHICKEN1, D_ALL, F_MODE_MASK | F_CMD_ACCESS,
  1382. NULL, NULL);
  1383. MMIO_DFH(COMMON_SLICE_CHICKEN2, D_ALL, F_MODE_MASK | F_CMD_ACCESS, NULL,
  1384. skl_misc_ctl_write);
  1385. MMIO_DFH(0x9030, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1386. MMIO_DFH(0x20a0, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1387. MMIO_DFH(0x2420, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1388. MMIO_DFH(0x2430, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1389. MMIO_DFH(0x2434, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1390. MMIO_DFH(0x2438, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1391. MMIO_DFH(0x243c, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1392. MMIO_DFH(0x7018, D_ALL, F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  1393. MMIO_DFH(HALF_SLICE_CHICKEN3, D_ALL, F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  1394. MMIO_DFH(GEN7_HALF_SLICE_CHICKEN1, D_ALL, F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  1395. /* display */
  1396. MMIO_F(0x60220, 0x20, 0, 0, 0, D_ALL, NULL, NULL);
  1397. MMIO_D(0x602a0, D_ALL);
  1398. MMIO_D(0x65050, D_ALL);
  1399. MMIO_D(0x650b4, D_ALL);
  1400. MMIO_D(0xc4040, D_ALL);
  1401. MMIO_D(DERRMR, D_ALL);
  1402. MMIO_D(PIPEDSL(PIPE_A), D_ALL);
  1403. MMIO_D(PIPEDSL(PIPE_B), D_ALL);
  1404. MMIO_D(PIPEDSL(PIPE_C), D_ALL);
  1405. MMIO_D(PIPEDSL(_PIPE_EDP), D_ALL);
  1406. MMIO_DH(PIPECONF(PIPE_A), D_ALL, NULL, pipeconf_mmio_write);
  1407. MMIO_DH(PIPECONF(PIPE_B), D_ALL, NULL, pipeconf_mmio_write);
  1408. MMIO_DH(PIPECONF(PIPE_C), D_ALL, NULL, pipeconf_mmio_write);
  1409. MMIO_DH(PIPECONF(_PIPE_EDP), D_ALL, NULL, pipeconf_mmio_write);
  1410. MMIO_D(PIPESTAT(PIPE_A), D_ALL);
  1411. MMIO_D(PIPESTAT(PIPE_B), D_ALL);
  1412. MMIO_D(PIPESTAT(PIPE_C), D_ALL);
  1413. MMIO_D(PIPESTAT(_PIPE_EDP), D_ALL);
  1414. MMIO_D(PIPE_FLIPCOUNT_G4X(PIPE_A), D_ALL);
  1415. MMIO_D(PIPE_FLIPCOUNT_G4X(PIPE_B), D_ALL);
  1416. MMIO_D(PIPE_FLIPCOUNT_G4X(PIPE_C), D_ALL);
  1417. MMIO_D(PIPE_FLIPCOUNT_G4X(_PIPE_EDP), D_ALL);
  1418. MMIO_D(PIPE_FRMCOUNT_G4X(PIPE_A), D_ALL);
  1419. MMIO_D(PIPE_FRMCOUNT_G4X(PIPE_B), D_ALL);
  1420. MMIO_D(PIPE_FRMCOUNT_G4X(PIPE_C), D_ALL);
  1421. MMIO_D(PIPE_FRMCOUNT_G4X(_PIPE_EDP), D_ALL);
  1422. MMIO_D(CURCNTR(PIPE_A), D_ALL);
  1423. MMIO_D(CURCNTR(PIPE_B), D_ALL);
  1424. MMIO_D(CURCNTR(PIPE_C), D_ALL);
  1425. MMIO_D(CURPOS(PIPE_A), D_ALL);
  1426. MMIO_D(CURPOS(PIPE_B), D_ALL);
  1427. MMIO_D(CURPOS(PIPE_C), D_ALL);
  1428. MMIO_D(CURBASE(PIPE_A), D_ALL);
  1429. MMIO_D(CURBASE(PIPE_B), D_ALL);
  1430. MMIO_D(CURBASE(PIPE_C), D_ALL);
  1431. MMIO_D(0x700ac, D_ALL);
  1432. MMIO_D(0x710ac, D_ALL);
  1433. MMIO_D(0x720ac, D_ALL);
  1434. MMIO_D(0x70090, D_ALL);
  1435. MMIO_D(0x70094, D_ALL);
  1436. MMIO_D(0x70098, D_ALL);
  1437. MMIO_D(0x7009c, D_ALL);
  1438. MMIO_D(DSPCNTR(PIPE_A), D_ALL);
  1439. MMIO_D(DSPADDR(PIPE_A), D_ALL);
  1440. MMIO_D(DSPSTRIDE(PIPE_A), D_ALL);
  1441. MMIO_D(DSPPOS(PIPE_A), D_ALL);
  1442. MMIO_D(DSPSIZE(PIPE_A), D_ALL);
  1443. MMIO_DH(DSPSURF(PIPE_A), D_ALL, NULL, pri_surf_mmio_write);
  1444. MMIO_D(DSPOFFSET(PIPE_A), D_ALL);
  1445. MMIO_D(DSPSURFLIVE(PIPE_A), D_ALL);
  1446. MMIO_D(DSPCNTR(PIPE_B), D_ALL);
  1447. MMIO_D(DSPADDR(PIPE_B), D_ALL);
  1448. MMIO_D(DSPSTRIDE(PIPE_B), D_ALL);
  1449. MMIO_D(DSPPOS(PIPE_B), D_ALL);
  1450. MMIO_D(DSPSIZE(PIPE_B), D_ALL);
  1451. MMIO_DH(DSPSURF(PIPE_B), D_ALL, NULL, pri_surf_mmio_write);
  1452. MMIO_D(DSPOFFSET(PIPE_B), D_ALL);
  1453. MMIO_D(DSPSURFLIVE(PIPE_B), D_ALL);
  1454. MMIO_D(DSPCNTR(PIPE_C), D_ALL);
  1455. MMIO_D(DSPADDR(PIPE_C), D_ALL);
  1456. MMIO_D(DSPSTRIDE(PIPE_C), D_ALL);
  1457. MMIO_D(DSPPOS(PIPE_C), D_ALL);
  1458. MMIO_D(DSPSIZE(PIPE_C), D_ALL);
  1459. MMIO_DH(DSPSURF(PIPE_C), D_ALL, NULL, pri_surf_mmio_write);
  1460. MMIO_D(DSPOFFSET(PIPE_C), D_ALL);
  1461. MMIO_D(DSPSURFLIVE(PIPE_C), D_ALL);
  1462. MMIO_D(SPRCTL(PIPE_A), D_ALL);
  1463. MMIO_D(SPRLINOFF(PIPE_A), D_ALL);
  1464. MMIO_D(SPRSTRIDE(PIPE_A), D_ALL);
  1465. MMIO_D(SPRPOS(PIPE_A), D_ALL);
  1466. MMIO_D(SPRSIZE(PIPE_A), D_ALL);
  1467. MMIO_D(SPRKEYVAL(PIPE_A), D_ALL);
  1468. MMIO_D(SPRKEYMSK(PIPE_A), D_ALL);
  1469. MMIO_DH(SPRSURF(PIPE_A), D_ALL, NULL, spr_surf_mmio_write);
  1470. MMIO_D(SPRKEYMAX(PIPE_A), D_ALL);
  1471. MMIO_D(SPROFFSET(PIPE_A), D_ALL);
  1472. MMIO_D(SPRSCALE(PIPE_A), D_ALL);
  1473. MMIO_D(SPRSURFLIVE(PIPE_A), D_ALL);
  1474. MMIO_D(SPRCTL(PIPE_B), D_ALL);
  1475. MMIO_D(SPRLINOFF(PIPE_B), D_ALL);
  1476. MMIO_D(SPRSTRIDE(PIPE_B), D_ALL);
  1477. MMIO_D(SPRPOS(PIPE_B), D_ALL);
  1478. MMIO_D(SPRSIZE(PIPE_B), D_ALL);
  1479. MMIO_D(SPRKEYVAL(PIPE_B), D_ALL);
  1480. MMIO_D(SPRKEYMSK(PIPE_B), D_ALL);
  1481. MMIO_DH(SPRSURF(PIPE_B), D_ALL, NULL, spr_surf_mmio_write);
  1482. MMIO_D(SPRKEYMAX(PIPE_B), D_ALL);
  1483. MMIO_D(SPROFFSET(PIPE_B), D_ALL);
  1484. MMIO_D(SPRSCALE(PIPE_B), D_ALL);
  1485. MMIO_D(SPRSURFLIVE(PIPE_B), D_ALL);
  1486. MMIO_D(SPRCTL(PIPE_C), D_ALL);
  1487. MMIO_D(SPRLINOFF(PIPE_C), D_ALL);
  1488. MMIO_D(SPRSTRIDE(PIPE_C), D_ALL);
  1489. MMIO_D(SPRPOS(PIPE_C), D_ALL);
  1490. MMIO_D(SPRSIZE(PIPE_C), D_ALL);
  1491. MMIO_D(SPRKEYVAL(PIPE_C), D_ALL);
  1492. MMIO_D(SPRKEYMSK(PIPE_C), D_ALL);
  1493. MMIO_DH(SPRSURF(PIPE_C), D_ALL, NULL, spr_surf_mmio_write);
  1494. MMIO_D(SPRKEYMAX(PIPE_C), D_ALL);
  1495. MMIO_D(SPROFFSET(PIPE_C), D_ALL);
  1496. MMIO_D(SPRSCALE(PIPE_C), D_ALL);
  1497. MMIO_D(SPRSURFLIVE(PIPE_C), D_ALL);
  1498. MMIO_F(LGC_PALETTE(PIPE_A, 0), 4 * 256, 0, 0, 0, D_ALL, NULL, NULL);
  1499. MMIO_F(LGC_PALETTE(PIPE_B, 0), 4 * 256, 0, 0, 0, D_ALL, NULL, NULL);
  1500. MMIO_F(LGC_PALETTE(PIPE_C, 0), 4 * 256, 0, 0, 0, D_ALL, NULL, NULL);
  1501. MMIO_D(HTOTAL(TRANSCODER_A), D_ALL);
  1502. MMIO_D(HBLANK(TRANSCODER_A), D_ALL);
  1503. MMIO_D(HSYNC(TRANSCODER_A), D_ALL);
  1504. MMIO_D(VTOTAL(TRANSCODER_A), D_ALL);
  1505. MMIO_D(VBLANK(TRANSCODER_A), D_ALL);
  1506. MMIO_D(VSYNC(TRANSCODER_A), D_ALL);
  1507. MMIO_D(BCLRPAT(TRANSCODER_A), D_ALL);
  1508. MMIO_D(VSYNCSHIFT(TRANSCODER_A), D_ALL);
  1509. MMIO_D(PIPESRC(TRANSCODER_A), D_ALL);
  1510. MMIO_D(HTOTAL(TRANSCODER_B), D_ALL);
  1511. MMIO_D(HBLANK(TRANSCODER_B), D_ALL);
  1512. MMIO_D(HSYNC(TRANSCODER_B), D_ALL);
  1513. MMIO_D(VTOTAL(TRANSCODER_B), D_ALL);
  1514. MMIO_D(VBLANK(TRANSCODER_B), D_ALL);
  1515. MMIO_D(VSYNC(TRANSCODER_B), D_ALL);
  1516. MMIO_D(BCLRPAT(TRANSCODER_B), D_ALL);
  1517. MMIO_D(VSYNCSHIFT(TRANSCODER_B), D_ALL);
  1518. MMIO_D(PIPESRC(TRANSCODER_B), D_ALL);
  1519. MMIO_D(HTOTAL(TRANSCODER_C), D_ALL);
  1520. MMIO_D(HBLANK(TRANSCODER_C), D_ALL);
  1521. MMIO_D(HSYNC(TRANSCODER_C), D_ALL);
  1522. MMIO_D(VTOTAL(TRANSCODER_C), D_ALL);
  1523. MMIO_D(VBLANK(TRANSCODER_C), D_ALL);
  1524. MMIO_D(VSYNC(TRANSCODER_C), D_ALL);
  1525. MMIO_D(BCLRPAT(TRANSCODER_C), D_ALL);
  1526. MMIO_D(VSYNCSHIFT(TRANSCODER_C), D_ALL);
  1527. MMIO_D(PIPESRC(TRANSCODER_C), D_ALL);
  1528. MMIO_D(HTOTAL(TRANSCODER_EDP), D_ALL);
  1529. MMIO_D(HBLANK(TRANSCODER_EDP), D_ALL);
  1530. MMIO_D(HSYNC(TRANSCODER_EDP), D_ALL);
  1531. MMIO_D(VTOTAL(TRANSCODER_EDP), D_ALL);
  1532. MMIO_D(VBLANK(TRANSCODER_EDP), D_ALL);
  1533. MMIO_D(VSYNC(TRANSCODER_EDP), D_ALL);
  1534. MMIO_D(BCLRPAT(TRANSCODER_EDP), D_ALL);
  1535. MMIO_D(VSYNCSHIFT(TRANSCODER_EDP), D_ALL);
  1536. MMIO_D(PIPE_DATA_M1(TRANSCODER_A), D_ALL);
  1537. MMIO_D(PIPE_DATA_N1(TRANSCODER_A), D_ALL);
  1538. MMIO_D(PIPE_DATA_M2(TRANSCODER_A), D_ALL);
  1539. MMIO_D(PIPE_DATA_N2(TRANSCODER_A), D_ALL);
  1540. MMIO_D(PIPE_LINK_M1(TRANSCODER_A), D_ALL);
  1541. MMIO_D(PIPE_LINK_N1(TRANSCODER_A), D_ALL);
  1542. MMIO_D(PIPE_LINK_M2(TRANSCODER_A), D_ALL);
  1543. MMIO_D(PIPE_LINK_N2(TRANSCODER_A), D_ALL);
  1544. MMIO_D(PIPE_DATA_M1(TRANSCODER_B), D_ALL);
  1545. MMIO_D(PIPE_DATA_N1(TRANSCODER_B), D_ALL);
  1546. MMIO_D(PIPE_DATA_M2(TRANSCODER_B), D_ALL);
  1547. MMIO_D(PIPE_DATA_N2(TRANSCODER_B), D_ALL);
  1548. MMIO_D(PIPE_LINK_M1(TRANSCODER_B), D_ALL);
  1549. MMIO_D(PIPE_LINK_N1(TRANSCODER_B), D_ALL);
  1550. MMIO_D(PIPE_LINK_M2(TRANSCODER_B), D_ALL);
  1551. MMIO_D(PIPE_LINK_N2(TRANSCODER_B), D_ALL);
  1552. MMIO_D(PIPE_DATA_M1(TRANSCODER_C), D_ALL);
  1553. MMIO_D(PIPE_DATA_N1(TRANSCODER_C), D_ALL);
  1554. MMIO_D(PIPE_DATA_M2(TRANSCODER_C), D_ALL);
  1555. MMIO_D(PIPE_DATA_N2(TRANSCODER_C), D_ALL);
  1556. MMIO_D(PIPE_LINK_M1(TRANSCODER_C), D_ALL);
  1557. MMIO_D(PIPE_LINK_N1(TRANSCODER_C), D_ALL);
  1558. MMIO_D(PIPE_LINK_M2(TRANSCODER_C), D_ALL);
  1559. MMIO_D(PIPE_LINK_N2(TRANSCODER_C), D_ALL);
  1560. MMIO_D(PIPE_DATA_M1(TRANSCODER_EDP), D_ALL);
  1561. MMIO_D(PIPE_DATA_N1(TRANSCODER_EDP), D_ALL);
  1562. MMIO_D(PIPE_DATA_M2(TRANSCODER_EDP), D_ALL);
  1563. MMIO_D(PIPE_DATA_N2(TRANSCODER_EDP), D_ALL);
  1564. MMIO_D(PIPE_LINK_M1(TRANSCODER_EDP), D_ALL);
  1565. MMIO_D(PIPE_LINK_N1(TRANSCODER_EDP), D_ALL);
  1566. MMIO_D(PIPE_LINK_M2(TRANSCODER_EDP), D_ALL);
  1567. MMIO_D(PIPE_LINK_N2(TRANSCODER_EDP), D_ALL);
  1568. MMIO_D(PF_CTL(PIPE_A), D_ALL);
  1569. MMIO_D(PF_WIN_SZ(PIPE_A), D_ALL);
  1570. MMIO_D(PF_WIN_POS(PIPE_A), D_ALL);
  1571. MMIO_D(PF_VSCALE(PIPE_A), D_ALL);
  1572. MMIO_D(PF_HSCALE(PIPE_A), D_ALL);
  1573. MMIO_D(PF_CTL(PIPE_B), D_ALL);
  1574. MMIO_D(PF_WIN_SZ(PIPE_B), D_ALL);
  1575. MMIO_D(PF_WIN_POS(PIPE_B), D_ALL);
  1576. MMIO_D(PF_VSCALE(PIPE_B), D_ALL);
  1577. MMIO_D(PF_HSCALE(PIPE_B), D_ALL);
  1578. MMIO_D(PF_CTL(PIPE_C), D_ALL);
  1579. MMIO_D(PF_WIN_SZ(PIPE_C), D_ALL);
  1580. MMIO_D(PF_WIN_POS(PIPE_C), D_ALL);
  1581. MMIO_D(PF_VSCALE(PIPE_C), D_ALL);
  1582. MMIO_D(PF_HSCALE(PIPE_C), D_ALL);
  1583. MMIO_D(WM0_PIPEA_ILK, D_ALL);
  1584. MMIO_D(WM0_PIPEB_ILK, D_ALL);
  1585. MMIO_D(WM0_PIPEC_IVB, D_ALL);
  1586. MMIO_D(WM1_LP_ILK, D_ALL);
  1587. MMIO_D(WM2_LP_ILK, D_ALL);
  1588. MMIO_D(WM3_LP_ILK, D_ALL);
  1589. MMIO_D(WM1S_LP_ILK, D_ALL);
  1590. MMIO_D(WM2S_LP_IVB, D_ALL);
  1591. MMIO_D(WM3S_LP_IVB, D_ALL);
  1592. MMIO_D(BLC_PWM_CPU_CTL2, D_ALL);
  1593. MMIO_D(BLC_PWM_CPU_CTL, D_ALL);
  1594. MMIO_D(BLC_PWM_PCH_CTL1, D_ALL);
  1595. MMIO_D(BLC_PWM_PCH_CTL2, D_ALL);
  1596. MMIO_D(0x48268, D_ALL);
  1597. MMIO_F(PCH_GMBUS0, 4 * 4, 0, 0, 0, D_ALL, gmbus_mmio_read,
  1598. gmbus_mmio_write);
  1599. MMIO_F(PCH_GPIOA, 6 * 4, F_UNALIGN, 0, 0, D_ALL, NULL, NULL);
  1600. MMIO_F(0xe4f00, 0x28, 0, 0, 0, D_ALL, NULL, NULL);
  1601. MMIO_F(_PCH_DPB_AUX_CH_CTL, 6 * 4, 0, 0, 0, D_PRE_SKL, NULL,
  1602. dp_aux_ch_ctl_mmio_write);
  1603. MMIO_F(_PCH_DPC_AUX_CH_CTL, 6 * 4, 0, 0, 0, D_PRE_SKL, NULL,
  1604. dp_aux_ch_ctl_mmio_write);
  1605. MMIO_F(_PCH_DPD_AUX_CH_CTL, 6 * 4, 0, 0, 0, D_PRE_SKL, NULL,
  1606. dp_aux_ch_ctl_mmio_write);
  1607. MMIO_RO(PCH_ADPA, D_ALL, 0, ADPA_CRT_HOTPLUG_MONITOR_MASK, NULL, pch_adpa_mmio_write);
  1608. MMIO_DH(_PCH_TRANSACONF, D_ALL, NULL, transconf_mmio_write);
  1609. MMIO_DH(_PCH_TRANSBCONF, D_ALL, NULL, transconf_mmio_write);
  1610. MMIO_DH(FDI_RX_IIR(PIPE_A), D_ALL, NULL, fdi_rx_iir_mmio_write);
  1611. MMIO_DH(FDI_RX_IIR(PIPE_B), D_ALL, NULL, fdi_rx_iir_mmio_write);
  1612. MMIO_DH(FDI_RX_IIR(PIPE_C), D_ALL, NULL, fdi_rx_iir_mmio_write);
  1613. MMIO_DH(FDI_RX_IMR(PIPE_A), D_ALL, NULL, update_fdi_rx_iir_status);
  1614. MMIO_DH(FDI_RX_IMR(PIPE_B), D_ALL, NULL, update_fdi_rx_iir_status);
  1615. MMIO_DH(FDI_RX_IMR(PIPE_C), D_ALL, NULL, update_fdi_rx_iir_status);
  1616. MMIO_DH(FDI_RX_CTL(PIPE_A), D_ALL, NULL, update_fdi_rx_iir_status);
  1617. MMIO_DH(FDI_RX_CTL(PIPE_B), D_ALL, NULL, update_fdi_rx_iir_status);
  1618. MMIO_DH(FDI_RX_CTL(PIPE_C), D_ALL, NULL, update_fdi_rx_iir_status);
  1619. MMIO_D(_PCH_TRANS_HTOTAL_A, D_ALL);
  1620. MMIO_D(_PCH_TRANS_HBLANK_A, D_ALL);
  1621. MMIO_D(_PCH_TRANS_HSYNC_A, D_ALL);
  1622. MMIO_D(_PCH_TRANS_VTOTAL_A, D_ALL);
  1623. MMIO_D(_PCH_TRANS_VBLANK_A, D_ALL);
  1624. MMIO_D(_PCH_TRANS_VSYNC_A, D_ALL);
  1625. MMIO_D(_PCH_TRANS_VSYNCSHIFT_A, D_ALL);
  1626. MMIO_D(_PCH_TRANS_HTOTAL_B, D_ALL);
  1627. MMIO_D(_PCH_TRANS_HBLANK_B, D_ALL);
  1628. MMIO_D(_PCH_TRANS_HSYNC_B, D_ALL);
  1629. MMIO_D(_PCH_TRANS_VTOTAL_B, D_ALL);
  1630. MMIO_D(_PCH_TRANS_VBLANK_B, D_ALL);
  1631. MMIO_D(_PCH_TRANS_VSYNC_B, D_ALL);
  1632. MMIO_D(_PCH_TRANS_VSYNCSHIFT_B, D_ALL);
  1633. MMIO_D(_PCH_TRANSA_DATA_M1, D_ALL);
  1634. MMIO_D(_PCH_TRANSA_DATA_N1, D_ALL);
  1635. MMIO_D(_PCH_TRANSA_DATA_M2, D_ALL);
  1636. MMIO_D(_PCH_TRANSA_DATA_N2, D_ALL);
  1637. MMIO_D(_PCH_TRANSA_LINK_M1, D_ALL);
  1638. MMIO_D(_PCH_TRANSA_LINK_N1, D_ALL);
  1639. MMIO_D(_PCH_TRANSA_LINK_M2, D_ALL);
  1640. MMIO_D(_PCH_TRANSA_LINK_N2, D_ALL);
  1641. MMIO_D(TRANS_DP_CTL(PIPE_A), D_ALL);
  1642. MMIO_D(TRANS_DP_CTL(PIPE_B), D_ALL);
  1643. MMIO_D(TRANS_DP_CTL(PIPE_C), D_ALL);
  1644. MMIO_D(TVIDEO_DIP_CTL(PIPE_A), D_ALL);
  1645. MMIO_D(TVIDEO_DIP_DATA(PIPE_A), D_ALL);
  1646. MMIO_D(TVIDEO_DIP_GCP(PIPE_A), D_ALL);
  1647. MMIO_D(TVIDEO_DIP_CTL(PIPE_B), D_ALL);
  1648. MMIO_D(TVIDEO_DIP_DATA(PIPE_B), D_ALL);
  1649. MMIO_D(TVIDEO_DIP_GCP(PIPE_B), D_ALL);
  1650. MMIO_D(TVIDEO_DIP_CTL(PIPE_C), D_ALL);
  1651. MMIO_D(TVIDEO_DIP_DATA(PIPE_C), D_ALL);
  1652. MMIO_D(TVIDEO_DIP_GCP(PIPE_C), D_ALL);
  1653. MMIO_D(_FDI_RXA_MISC, D_ALL);
  1654. MMIO_D(_FDI_RXB_MISC, D_ALL);
  1655. MMIO_D(_FDI_RXA_TUSIZE1, D_ALL);
  1656. MMIO_D(_FDI_RXA_TUSIZE2, D_ALL);
  1657. MMIO_D(_FDI_RXB_TUSIZE1, D_ALL);
  1658. MMIO_D(_FDI_RXB_TUSIZE2, D_ALL);
  1659. MMIO_DH(PCH_PP_CONTROL, D_ALL, NULL, pch_pp_control_mmio_write);
  1660. MMIO_D(PCH_PP_DIVISOR, D_ALL);
  1661. MMIO_D(PCH_PP_STATUS, D_ALL);
  1662. MMIO_D(PCH_LVDS, D_ALL);
  1663. MMIO_D(_PCH_DPLL_A, D_ALL);
  1664. MMIO_D(_PCH_DPLL_B, D_ALL);
  1665. MMIO_D(_PCH_FPA0, D_ALL);
  1666. MMIO_D(_PCH_FPA1, D_ALL);
  1667. MMIO_D(_PCH_FPB0, D_ALL);
  1668. MMIO_D(_PCH_FPB1, D_ALL);
  1669. MMIO_D(PCH_DREF_CONTROL, D_ALL);
  1670. MMIO_D(PCH_RAWCLK_FREQ, D_ALL);
  1671. MMIO_D(PCH_DPLL_SEL, D_ALL);
  1672. MMIO_D(0x61208, D_ALL);
  1673. MMIO_D(0x6120c, D_ALL);
  1674. MMIO_D(PCH_PP_ON_DELAYS, D_ALL);
  1675. MMIO_D(PCH_PP_OFF_DELAYS, D_ALL);
  1676. MMIO_DH(0xe651c, D_ALL, dpy_reg_mmio_read, NULL);
  1677. MMIO_DH(0xe661c, D_ALL, dpy_reg_mmio_read, NULL);
  1678. MMIO_DH(0xe671c, D_ALL, dpy_reg_mmio_read, NULL);
  1679. MMIO_DH(0xe681c, D_ALL, dpy_reg_mmio_read, NULL);
  1680. MMIO_DH(0xe6c04, D_ALL, dpy_reg_mmio_read_2, NULL);
  1681. MMIO_DH(0xe6e1c, D_ALL, dpy_reg_mmio_read_3, NULL);
  1682. MMIO_RO(PCH_PORT_HOTPLUG, D_ALL, 0,
  1683. PORTA_HOTPLUG_STATUS_MASK
  1684. | PORTB_HOTPLUG_STATUS_MASK
  1685. | PORTC_HOTPLUG_STATUS_MASK
  1686. | PORTD_HOTPLUG_STATUS_MASK,
  1687. NULL, NULL);
  1688. MMIO_DH(LCPLL_CTL, D_ALL, NULL, lcpll_ctl_mmio_write);
  1689. MMIO_D(FUSE_STRAP, D_ALL);
  1690. MMIO_D(DIGITAL_PORT_HOTPLUG_CNTRL, D_ALL);
  1691. MMIO_D(DISP_ARB_CTL, D_ALL);
  1692. MMIO_D(DISP_ARB_CTL2, D_ALL);
  1693. MMIO_D(ILK_DISPLAY_CHICKEN1, D_ALL);
  1694. MMIO_D(ILK_DISPLAY_CHICKEN2, D_ALL);
  1695. MMIO_D(ILK_DSPCLK_GATE_D, D_ALL);
  1696. MMIO_D(SOUTH_CHICKEN1, D_ALL);
  1697. MMIO_DH(SOUTH_CHICKEN2, D_ALL, NULL, south_chicken2_mmio_write);
  1698. MMIO_D(_TRANSA_CHICKEN1, D_ALL);
  1699. MMIO_D(_TRANSB_CHICKEN1, D_ALL);
  1700. MMIO_D(SOUTH_DSPCLK_GATE_D, D_ALL);
  1701. MMIO_D(_TRANSA_CHICKEN2, D_ALL);
  1702. MMIO_D(_TRANSB_CHICKEN2, D_ALL);
  1703. MMIO_D(ILK_DPFC_CB_BASE, D_ALL);
  1704. MMIO_D(ILK_DPFC_CONTROL, D_ALL);
  1705. MMIO_D(ILK_DPFC_RECOMP_CTL, D_ALL);
  1706. MMIO_D(ILK_DPFC_STATUS, D_ALL);
  1707. MMIO_D(ILK_DPFC_FENCE_YOFF, D_ALL);
  1708. MMIO_D(ILK_DPFC_CHICKEN, D_ALL);
  1709. MMIO_D(ILK_FBC_RT_BASE, D_ALL);
  1710. MMIO_D(IPS_CTL, D_ALL);
  1711. MMIO_D(PIPE_CSC_COEFF_RY_GY(PIPE_A), D_ALL);
  1712. MMIO_D(PIPE_CSC_COEFF_BY(PIPE_A), D_ALL);
  1713. MMIO_D(PIPE_CSC_COEFF_RU_GU(PIPE_A), D_ALL);
  1714. MMIO_D(PIPE_CSC_COEFF_BU(PIPE_A), D_ALL);
  1715. MMIO_D(PIPE_CSC_COEFF_RV_GV(PIPE_A), D_ALL);
  1716. MMIO_D(PIPE_CSC_COEFF_BV(PIPE_A), D_ALL);
  1717. MMIO_D(PIPE_CSC_MODE(PIPE_A), D_ALL);
  1718. MMIO_D(PIPE_CSC_PREOFF_HI(PIPE_A), D_ALL);
  1719. MMIO_D(PIPE_CSC_PREOFF_ME(PIPE_A), D_ALL);
  1720. MMIO_D(PIPE_CSC_PREOFF_LO(PIPE_A), D_ALL);
  1721. MMIO_D(PIPE_CSC_POSTOFF_HI(PIPE_A), D_ALL);
  1722. MMIO_D(PIPE_CSC_POSTOFF_ME(PIPE_A), D_ALL);
  1723. MMIO_D(PIPE_CSC_POSTOFF_LO(PIPE_A), D_ALL);
  1724. MMIO_D(PIPE_CSC_COEFF_RY_GY(PIPE_B), D_ALL);
  1725. MMIO_D(PIPE_CSC_COEFF_BY(PIPE_B), D_ALL);
  1726. MMIO_D(PIPE_CSC_COEFF_RU_GU(PIPE_B), D_ALL);
  1727. MMIO_D(PIPE_CSC_COEFF_BU(PIPE_B), D_ALL);
  1728. MMIO_D(PIPE_CSC_COEFF_RV_GV(PIPE_B), D_ALL);
  1729. MMIO_D(PIPE_CSC_COEFF_BV(PIPE_B), D_ALL);
  1730. MMIO_D(PIPE_CSC_MODE(PIPE_B), D_ALL);
  1731. MMIO_D(PIPE_CSC_PREOFF_HI(PIPE_B), D_ALL);
  1732. MMIO_D(PIPE_CSC_PREOFF_ME(PIPE_B), D_ALL);
  1733. MMIO_D(PIPE_CSC_PREOFF_LO(PIPE_B), D_ALL);
  1734. MMIO_D(PIPE_CSC_POSTOFF_HI(PIPE_B), D_ALL);
  1735. MMIO_D(PIPE_CSC_POSTOFF_ME(PIPE_B), D_ALL);
  1736. MMIO_D(PIPE_CSC_POSTOFF_LO(PIPE_B), D_ALL);
  1737. MMIO_D(PIPE_CSC_COEFF_RY_GY(PIPE_C), D_ALL);
  1738. MMIO_D(PIPE_CSC_COEFF_BY(PIPE_C), D_ALL);
  1739. MMIO_D(PIPE_CSC_COEFF_RU_GU(PIPE_C), D_ALL);
  1740. MMIO_D(PIPE_CSC_COEFF_BU(PIPE_C), D_ALL);
  1741. MMIO_D(PIPE_CSC_COEFF_RV_GV(PIPE_C), D_ALL);
  1742. MMIO_D(PIPE_CSC_COEFF_BV(PIPE_C), D_ALL);
  1743. MMIO_D(PIPE_CSC_MODE(PIPE_C), D_ALL);
  1744. MMIO_D(PIPE_CSC_PREOFF_HI(PIPE_C), D_ALL);
  1745. MMIO_D(PIPE_CSC_PREOFF_ME(PIPE_C), D_ALL);
  1746. MMIO_D(PIPE_CSC_PREOFF_LO(PIPE_C), D_ALL);
  1747. MMIO_D(PIPE_CSC_POSTOFF_HI(PIPE_C), D_ALL);
  1748. MMIO_D(PIPE_CSC_POSTOFF_ME(PIPE_C), D_ALL);
  1749. MMIO_D(PIPE_CSC_POSTOFF_LO(PIPE_C), D_ALL);
  1750. MMIO_D(PREC_PAL_INDEX(PIPE_A), D_ALL);
  1751. MMIO_D(PREC_PAL_DATA(PIPE_A), D_ALL);
  1752. MMIO_F(PREC_PAL_GC_MAX(PIPE_A, 0), 4 * 3, 0, 0, 0, D_ALL, NULL, NULL);
  1753. MMIO_D(PREC_PAL_INDEX(PIPE_B), D_ALL);
  1754. MMIO_D(PREC_PAL_DATA(PIPE_B), D_ALL);
  1755. MMIO_F(PREC_PAL_GC_MAX(PIPE_B, 0), 4 * 3, 0, 0, 0, D_ALL, NULL, NULL);
  1756. MMIO_D(PREC_PAL_INDEX(PIPE_C), D_ALL);
  1757. MMIO_D(PREC_PAL_DATA(PIPE_C), D_ALL);
  1758. MMIO_F(PREC_PAL_GC_MAX(PIPE_C, 0), 4 * 3, 0, 0, 0, D_ALL, NULL, NULL);
  1759. MMIO_D(0x60110, D_ALL);
  1760. MMIO_D(0x61110, D_ALL);
  1761. MMIO_F(0x70400, 0x40, 0, 0, 0, D_ALL, NULL, NULL);
  1762. MMIO_F(0x71400, 0x40, 0, 0, 0, D_ALL, NULL, NULL);
  1763. MMIO_F(0x72400, 0x40, 0, 0, 0, D_ALL, NULL, NULL);
  1764. MMIO_F(0x70440, 0xc, 0, 0, 0, D_PRE_SKL, NULL, NULL);
  1765. MMIO_F(0x71440, 0xc, 0, 0, 0, D_PRE_SKL, NULL, NULL);
  1766. MMIO_F(0x72440, 0xc, 0, 0, 0, D_PRE_SKL, NULL, NULL);
  1767. MMIO_F(0x7044c, 0xc, 0, 0, 0, D_PRE_SKL, NULL, NULL);
  1768. MMIO_F(0x7144c, 0xc, 0, 0, 0, D_PRE_SKL, NULL, NULL);
  1769. MMIO_F(0x7244c, 0xc, 0, 0, 0, D_PRE_SKL, NULL, NULL);
  1770. MMIO_D(PIPE_WM_LINETIME(PIPE_A), D_ALL);
  1771. MMIO_D(PIPE_WM_LINETIME(PIPE_B), D_ALL);
  1772. MMIO_D(PIPE_WM_LINETIME(PIPE_C), D_ALL);
  1773. MMIO_D(SPLL_CTL, D_ALL);
  1774. MMIO_D(_WRPLL_CTL1, D_ALL);
  1775. MMIO_D(_WRPLL_CTL2, D_ALL);
  1776. MMIO_D(PORT_CLK_SEL(PORT_A), D_ALL);
  1777. MMIO_D(PORT_CLK_SEL(PORT_B), D_ALL);
  1778. MMIO_D(PORT_CLK_SEL(PORT_C), D_ALL);
  1779. MMIO_D(PORT_CLK_SEL(PORT_D), D_ALL);
  1780. MMIO_D(PORT_CLK_SEL(PORT_E), D_ALL);
  1781. MMIO_D(TRANS_CLK_SEL(TRANSCODER_A), D_ALL);
  1782. MMIO_D(TRANS_CLK_SEL(TRANSCODER_B), D_ALL);
  1783. MMIO_D(TRANS_CLK_SEL(TRANSCODER_C), D_ALL);
  1784. MMIO_D(HSW_NDE_RSTWRN_OPT, D_ALL);
  1785. MMIO_D(0x46508, D_ALL);
  1786. MMIO_D(0x49080, D_ALL);
  1787. MMIO_D(0x49180, D_ALL);
  1788. MMIO_D(0x49280, D_ALL);
  1789. MMIO_F(0x49090, 0x14, 0, 0, 0, D_ALL, NULL, NULL);
  1790. MMIO_F(0x49190, 0x14, 0, 0, 0, D_ALL, NULL, NULL);
  1791. MMIO_F(0x49290, 0x14, 0, 0, 0, D_ALL, NULL, NULL);
  1792. MMIO_D(GAMMA_MODE(PIPE_A), D_ALL);
  1793. MMIO_D(GAMMA_MODE(PIPE_B), D_ALL);
  1794. MMIO_D(GAMMA_MODE(PIPE_C), D_ALL);
  1795. MMIO_D(PIPE_MULT(PIPE_A), D_ALL);
  1796. MMIO_D(PIPE_MULT(PIPE_B), D_ALL);
  1797. MMIO_D(PIPE_MULT(PIPE_C), D_ALL);
  1798. MMIO_D(HSW_TVIDEO_DIP_CTL(TRANSCODER_A), D_ALL);
  1799. MMIO_D(HSW_TVIDEO_DIP_CTL(TRANSCODER_B), D_ALL);
  1800. MMIO_D(HSW_TVIDEO_DIP_CTL(TRANSCODER_C), D_ALL);
  1801. MMIO_DH(SFUSE_STRAP, D_ALL, NULL, NULL);
  1802. MMIO_D(SBI_ADDR, D_ALL);
  1803. MMIO_DH(SBI_DATA, D_ALL, sbi_data_mmio_read, NULL);
  1804. MMIO_DH(SBI_CTL_STAT, D_ALL, NULL, sbi_ctl_mmio_write);
  1805. MMIO_D(PIXCLK_GATE, D_ALL);
  1806. MMIO_F(_DPA_AUX_CH_CTL, 6 * 4, 0, 0, 0, D_ALL, NULL,
  1807. dp_aux_ch_ctl_mmio_write);
  1808. MMIO_DH(DDI_BUF_CTL(PORT_A), D_ALL, NULL, ddi_buf_ctl_mmio_write);
  1809. MMIO_DH(DDI_BUF_CTL(PORT_B), D_ALL, NULL, ddi_buf_ctl_mmio_write);
  1810. MMIO_DH(DDI_BUF_CTL(PORT_C), D_ALL, NULL, ddi_buf_ctl_mmio_write);
  1811. MMIO_DH(DDI_BUF_CTL(PORT_D), D_ALL, NULL, ddi_buf_ctl_mmio_write);
  1812. MMIO_DH(DDI_BUF_CTL(PORT_E), D_ALL, NULL, ddi_buf_ctl_mmio_write);
  1813. MMIO_DH(DP_TP_CTL(PORT_A), D_ALL, NULL, dp_tp_ctl_mmio_write);
  1814. MMIO_DH(DP_TP_CTL(PORT_B), D_ALL, NULL, dp_tp_ctl_mmio_write);
  1815. MMIO_DH(DP_TP_CTL(PORT_C), D_ALL, NULL, dp_tp_ctl_mmio_write);
  1816. MMIO_DH(DP_TP_CTL(PORT_D), D_ALL, NULL, dp_tp_ctl_mmio_write);
  1817. MMIO_DH(DP_TP_CTL(PORT_E), D_ALL, NULL, dp_tp_ctl_mmio_write);
  1818. MMIO_DH(DP_TP_STATUS(PORT_A), D_ALL, NULL, dp_tp_status_mmio_write);
  1819. MMIO_DH(DP_TP_STATUS(PORT_B), D_ALL, NULL, dp_tp_status_mmio_write);
  1820. MMIO_DH(DP_TP_STATUS(PORT_C), D_ALL, NULL, dp_tp_status_mmio_write);
  1821. MMIO_DH(DP_TP_STATUS(PORT_D), D_ALL, NULL, dp_tp_status_mmio_write);
  1822. MMIO_DH(DP_TP_STATUS(PORT_E), D_ALL, NULL, NULL);
  1823. MMIO_F(_DDI_BUF_TRANS_A, 0x50, 0, 0, 0, D_ALL, NULL, NULL);
  1824. MMIO_F(0x64e60, 0x50, 0, 0, 0, D_ALL, NULL, NULL);
  1825. MMIO_F(0x64eC0, 0x50, 0, 0, 0, D_ALL, NULL, NULL);
  1826. MMIO_F(0x64f20, 0x50, 0, 0, 0, D_ALL, NULL, NULL);
  1827. MMIO_F(0x64f80, 0x50, 0, 0, 0, D_ALL, NULL, NULL);
  1828. MMIO_D(HSW_AUD_CFG(PIPE_A), D_ALL);
  1829. MMIO_D(HSW_AUD_PIN_ELD_CP_VLD, D_ALL);
  1830. MMIO_DH(_TRANS_DDI_FUNC_CTL_A, D_ALL, NULL, NULL);
  1831. MMIO_DH(_TRANS_DDI_FUNC_CTL_B, D_ALL, NULL, NULL);
  1832. MMIO_DH(_TRANS_DDI_FUNC_CTL_C, D_ALL, NULL, NULL);
  1833. MMIO_DH(_TRANS_DDI_FUNC_CTL_EDP, D_ALL, NULL, NULL);
  1834. MMIO_D(_TRANSA_MSA_MISC, D_ALL);
  1835. MMIO_D(_TRANSB_MSA_MISC, D_ALL);
  1836. MMIO_D(_TRANSC_MSA_MISC, D_ALL);
  1837. MMIO_D(_TRANS_EDP_MSA_MISC, D_ALL);
  1838. MMIO_DH(FORCEWAKE, D_ALL, NULL, NULL);
  1839. MMIO_D(FORCEWAKE_ACK, D_ALL);
  1840. MMIO_D(GEN6_GT_CORE_STATUS, D_ALL);
  1841. MMIO_D(GEN6_GT_THREAD_STATUS_REG, D_ALL);
  1842. MMIO_DFH(GTFIFODBG, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1843. MMIO_DFH(GTFIFOCTL, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1844. MMIO_DH(FORCEWAKE_MT, D_PRE_SKL, NULL, mul_force_wake_write);
  1845. MMIO_DH(FORCEWAKE_ACK_HSW, D_HSW | D_BDW, NULL, NULL);
  1846. MMIO_D(ECOBUS, D_ALL);
  1847. MMIO_DH(GEN6_RC_CONTROL, D_ALL, NULL, NULL);
  1848. MMIO_DH(GEN6_RC_STATE, D_ALL, NULL, NULL);
  1849. MMIO_D(GEN6_RPNSWREQ, D_ALL);
  1850. MMIO_D(GEN6_RC_VIDEO_FREQ, D_ALL);
  1851. MMIO_D(GEN6_RP_DOWN_TIMEOUT, D_ALL);
  1852. MMIO_D(GEN6_RP_INTERRUPT_LIMITS, D_ALL);
  1853. MMIO_D(GEN6_RPSTAT1, D_ALL);
  1854. MMIO_D(GEN6_RP_CONTROL, D_ALL);
  1855. MMIO_D(GEN6_RP_UP_THRESHOLD, D_ALL);
  1856. MMIO_D(GEN6_RP_DOWN_THRESHOLD, D_ALL);
  1857. MMIO_D(GEN6_RP_CUR_UP_EI, D_ALL);
  1858. MMIO_D(GEN6_RP_CUR_UP, D_ALL);
  1859. MMIO_D(GEN6_RP_PREV_UP, D_ALL);
  1860. MMIO_D(GEN6_RP_CUR_DOWN_EI, D_ALL);
  1861. MMIO_D(GEN6_RP_CUR_DOWN, D_ALL);
  1862. MMIO_D(GEN6_RP_PREV_DOWN, D_ALL);
  1863. MMIO_D(GEN6_RP_UP_EI, D_ALL);
  1864. MMIO_D(GEN6_RP_DOWN_EI, D_ALL);
  1865. MMIO_D(GEN6_RP_IDLE_HYSTERSIS, D_ALL);
  1866. MMIO_D(GEN6_RC1_WAKE_RATE_LIMIT, D_ALL);
  1867. MMIO_D(GEN6_RC6_WAKE_RATE_LIMIT, D_ALL);
  1868. MMIO_D(GEN6_RC6pp_WAKE_RATE_LIMIT, D_ALL);
  1869. MMIO_D(GEN6_RC_EVALUATION_INTERVAL, D_ALL);
  1870. MMIO_D(GEN6_RC_IDLE_HYSTERSIS, D_ALL);
  1871. MMIO_D(GEN6_RC_SLEEP, D_ALL);
  1872. MMIO_D(GEN6_RC1e_THRESHOLD, D_ALL);
  1873. MMIO_D(GEN6_RC6_THRESHOLD, D_ALL);
  1874. MMIO_D(GEN6_RC6p_THRESHOLD, D_ALL);
  1875. MMIO_D(GEN6_RC6pp_THRESHOLD, D_ALL);
  1876. MMIO_D(GEN6_PMINTRMSK, D_ALL);
  1877. MMIO_DH(HSW_PWR_WELL_BIOS, D_HSW | D_BDW, NULL, power_well_ctl_mmio_write);
  1878. MMIO_DH(HSW_PWR_WELL_DRIVER, D_HSW | D_BDW, NULL, power_well_ctl_mmio_write);
  1879. MMIO_DH(HSW_PWR_WELL_KVMR, D_HSW | D_BDW, NULL, power_well_ctl_mmio_write);
  1880. MMIO_DH(HSW_PWR_WELL_DEBUG, D_HSW | D_BDW, NULL, power_well_ctl_mmio_write);
  1881. MMIO_DH(HSW_PWR_WELL_CTL5, D_HSW | D_BDW, NULL, power_well_ctl_mmio_write);
  1882. MMIO_DH(HSW_PWR_WELL_CTL6, D_HSW | D_BDW, NULL, power_well_ctl_mmio_write);
  1883. MMIO_D(RSTDBYCTL, D_ALL);
  1884. MMIO_DH(GEN6_GDRST, D_ALL, NULL, gdrst_mmio_write);
  1885. MMIO_F(FENCE_REG_GEN6_LO(0), 0x80, 0, 0, 0, D_ALL, fence_mmio_read, fence_mmio_write);
  1886. MMIO_F(VGT_PVINFO_PAGE, VGT_PVINFO_SIZE, F_UNALIGN, 0, 0, D_ALL, pvinfo_mmio_read, pvinfo_mmio_write);
  1887. MMIO_DH(CPU_VGACNTRL, D_ALL, NULL, vga_control_mmio_write);
  1888. MMIO_F(MCHBAR_MIRROR_BASE_SNB, 0x40000, 0, 0, 0, D_ALL, NULL, NULL);
  1889. MMIO_D(TILECTL, D_ALL);
  1890. MMIO_D(GEN6_UCGCTL1, D_ALL);
  1891. MMIO_D(GEN6_UCGCTL2, D_ALL);
  1892. MMIO_F(0x4f000, 0x90, 0, 0, 0, D_ALL, NULL, NULL);
  1893. MMIO_D(GEN6_PCODE_MAILBOX, D_PRE_BDW);
  1894. MMIO_D(GEN6_PCODE_DATA, D_ALL);
  1895. MMIO_D(0x13812c, D_ALL);
  1896. MMIO_DH(GEN7_ERR_INT, D_ALL, NULL, NULL);
  1897. MMIO_D(HSW_EDRAM_CAP, D_ALL);
  1898. MMIO_D(HSW_IDICR, D_ALL);
  1899. MMIO_DH(GFX_FLSH_CNTL_GEN6, D_ALL, NULL, NULL);
  1900. MMIO_D(0x3c, D_ALL);
  1901. MMIO_D(0x860, D_ALL);
  1902. MMIO_D(ECOSKPD, D_ALL);
  1903. MMIO_D(0x121d0, D_ALL);
  1904. MMIO_D(GEN6_BLITTER_ECOSKPD, D_ALL);
  1905. MMIO_D(0x41d0, D_ALL);
  1906. MMIO_D(GAC_ECO_BITS, D_ALL);
  1907. MMIO_D(0x6200, D_ALL);
  1908. MMIO_D(0x6204, D_ALL);
  1909. MMIO_D(0x6208, D_ALL);
  1910. MMIO_D(0x7118, D_ALL);
  1911. MMIO_D(0x7180, D_ALL);
  1912. MMIO_D(0x7408, D_ALL);
  1913. MMIO_D(0x7c00, D_ALL);
  1914. MMIO_DH(GEN6_MBCTL, D_ALL, NULL, mbctl_write);
  1915. MMIO_D(0x911c, D_ALL);
  1916. MMIO_D(0x9120, D_ALL);
  1917. MMIO_DFH(GEN7_UCGCTL4, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1918. MMIO_D(GAB_CTL, D_ALL);
  1919. MMIO_D(0x48800, D_ALL);
  1920. MMIO_D(0xce044, D_ALL);
  1921. MMIO_D(0xe6500, D_ALL);
  1922. MMIO_D(0xe6504, D_ALL);
  1923. MMIO_D(0xe6600, D_ALL);
  1924. MMIO_D(0xe6604, D_ALL);
  1925. MMIO_D(0xe6700, D_ALL);
  1926. MMIO_D(0xe6704, D_ALL);
  1927. MMIO_D(0xe6800, D_ALL);
  1928. MMIO_D(0xe6804, D_ALL);
  1929. MMIO_D(PCH_GMBUS4, D_ALL);
  1930. MMIO_D(PCH_GMBUS5, D_ALL);
  1931. MMIO_D(0x902c, D_ALL);
  1932. MMIO_D(0xec008, D_ALL);
  1933. MMIO_D(0xec00c, D_ALL);
  1934. MMIO_D(0xec008 + 0x18, D_ALL);
  1935. MMIO_D(0xec00c + 0x18, D_ALL);
  1936. MMIO_D(0xec008 + 0x18 * 2, D_ALL);
  1937. MMIO_D(0xec00c + 0x18 * 2, D_ALL);
  1938. MMIO_D(0xec008 + 0x18 * 3, D_ALL);
  1939. MMIO_D(0xec00c + 0x18 * 3, D_ALL);
  1940. MMIO_D(0xec408, D_ALL);
  1941. MMIO_D(0xec40c, D_ALL);
  1942. MMIO_D(0xec408 + 0x18, D_ALL);
  1943. MMIO_D(0xec40c + 0x18, D_ALL);
  1944. MMIO_D(0xec408 + 0x18 * 2, D_ALL);
  1945. MMIO_D(0xec40c + 0x18 * 2, D_ALL);
  1946. MMIO_D(0xec408 + 0x18 * 3, D_ALL);
  1947. MMIO_D(0xec40c + 0x18 * 3, D_ALL);
  1948. MMIO_D(0xfc810, D_ALL);
  1949. MMIO_D(0xfc81c, D_ALL);
  1950. MMIO_D(0xfc828, D_ALL);
  1951. MMIO_D(0xfc834, D_ALL);
  1952. MMIO_D(0xfcc00, D_ALL);
  1953. MMIO_D(0xfcc0c, D_ALL);
  1954. MMIO_D(0xfcc18, D_ALL);
  1955. MMIO_D(0xfcc24, D_ALL);
  1956. MMIO_D(0xfd000, D_ALL);
  1957. MMIO_D(0xfd00c, D_ALL);
  1958. MMIO_D(0xfd018, D_ALL);
  1959. MMIO_D(0xfd024, D_ALL);
  1960. MMIO_D(0xfd034, D_ALL);
  1961. MMIO_DH(FPGA_DBG, D_ALL, NULL, fpga_dbg_mmio_write);
  1962. MMIO_D(0x2054, D_ALL);
  1963. MMIO_D(0x12054, D_ALL);
  1964. MMIO_D(0x22054, D_ALL);
  1965. MMIO_D(0x1a054, D_ALL);
  1966. MMIO_D(0x44070, D_ALL);
  1967. MMIO_DFH(0x215c, D_HSW_PLUS, F_CMD_ACCESS, NULL, NULL);
  1968. MMIO_DFH(0x2178, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1969. MMIO_DFH(0x217c, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1970. MMIO_DFH(0x12178, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1971. MMIO_DFH(0x1217c, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1972. MMIO_F(0x2290, 8, F_CMD_ACCESS, 0, 0, D_HSW_PLUS, NULL, NULL);
  1973. MMIO_DFH(GEN7_OACONTROL, D_HSW, F_CMD_ACCESS, NULL, NULL);
  1974. MMIO_D(0x2b00, D_BDW_PLUS);
  1975. MMIO_D(0x2360, D_BDW_PLUS);
  1976. MMIO_F(0x5200, 32, F_CMD_ACCESS, 0, 0, D_ALL, NULL, NULL);
  1977. MMIO_F(0x5240, 32, F_CMD_ACCESS, 0, 0, D_ALL, NULL, NULL);
  1978. MMIO_F(0x5280, 16, F_CMD_ACCESS, 0, 0, D_ALL, NULL, NULL);
  1979. MMIO_DFH(0x1c17c, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  1980. MMIO_DFH(0x1c178, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  1981. MMIO_DFH(BCS_SWCTRL, D_ALL, F_CMD_ACCESS, NULL, NULL);
  1982. MMIO_F(HS_INVOCATION_COUNT, 8, F_CMD_ACCESS, 0, 0, D_ALL, NULL, NULL);
  1983. MMIO_F(DS_INVOCATION_COUNT, 8, F_CMD_ACCESS, 0, 0, D_ALL, NULL, NULL);
  1984. MMIO_F(IA_VERTICES_COUNT, 8, F_CMD_ACCESS, 0, 0, D_ALL, NULL, NULL);
  1985. MMIO_F(IA_PRIMITIVES_COUNT, 8, F_CMD_ACCESS, 0, 0, D_ALL, NULL, NULL);
  1986. MMIO_F(VS_INVOCATION_COUNT, 8, F_CMD_ACCESS, 0, 0, D_ALL, NULL, NULL);
  1987. MMIO_F(GS_INVOCATION_COUNT, 8, F_CMD_ACCESS, 0, 0, D_ALL, NULL, NULL);
  1988. MMIO_F(GS_PRIMITIVES_COUNT, 8, F_CMD_ACCESS, 0, 0, D_ALL, NULL, NULL);
  1989. MMIO_F(CL_INVOCATION_COUNT, 8, F_CMD_ACCESS, 0, 0, D_ALL, NULL, NULL);
  1990. MMIO_F(CL_PRIMITIVES_COUNT, 8, F_CMD_ACCESS, 0, 0, D_ALL, NULL, NULL);
  1991. MMIO_F(PS_INVOCATION_COUNT, 8, F_CMD_ACCESS, 0, 0, D_ALL, NULL, NULL);
  1992. MMIO_F(PS_DEPTH_COUNT, 8, F_CMD_ACCESS, 0, 0, D_ALL, NULL, NULL);
  1993. MMIO_DH(0x4260, D_BDW_PLUS, NULL, gvt_reg_tlb_control_handler);
  1994. MMIO_DH(0x4264, D_BDW_PLUS, NULL, gvt_reg_tlb_control_handler);
  1995. MMIO_DH(0x4268, D_BDW_PLUS, NULL, gvt_reg_tlb_control_handler);
  1996. MMIO_DH(0x426c, D_BDW_PLUS, NULL, gvt_reg_tlb_control_handler);
  1997. MMIO_DH(0x4270, D_BDW_PLUS, NULL, gvt_reg_tlb_control_handler);
  1998. MMIO_DFH(0x4094, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  1999. MMIO_DFH(ARB_MODE, D_ALL, F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  2000. MMIO_RING_GM_RDR(RING_BBADDR, D_ALL, NULL, NULL);
  2001. MMIO_DFH(0x2220, D_ALL, F_CMD_ACCESS, NULL, NULL);
  2002. MMIO_DFH(0x12220, D_ALL, F_CMD_ACCESS, NULL, NULL);
  2003. MMIO_DFH(0x22220, D_ALL, F_CMD_ACCESS, NULL, NULL);
  2004. MMIO_RING_DFH(RING_SYNC_1, D_ALL, F_CMD_ACCESS, NULL, NULL);
  2005. MMIO_RING_DFH(RING_SYNC_0, D_ALL, F_CMD_ACCESS, NULL, NULL);
  2006. MMIO_DFH(0x22178, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  2007. MMIO_DFH(0x1a178, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  2008. MMIO_DFH(0x1a17c, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  2009. MMIO_DFH(0x2217c, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  2010. return 0;
  2011. }
  2012. static int init_broadwell_mmio_info(struct intel_gvt *gvt)
  2013. {
  2014. struct drm_i915_private *dev_priv = gvt->dev_priv;
  2015. int ret;
  2016. MMIO_DFH(RING_IMR(GEN8_BSD2_RING_BASE), D_BDW_PLUS, F_CMD_ACCESS, NULL,
  2017. intel_vgpu_reg_imr_handler);
  2018. MMIO_DH(GEN8_GT_IMR(0), D_BDW_PLUS, NULL, intel_vgpu_reg_imr_handler);
  2019. MMIO_DH(GEN8_GT_IER(0), D_BDW_PLUS, NULL, intel_vgpu_reg_ier_handler);
  2020. MMIO_DH(GEN8_GT_IIR(0), D_BDW_PLUS, NULL, intel_vgpu_reg_iir_handler);
  2021. MMIO_D(GEN8_GT_ISR(0), D_BDW_PLUS);
  2022. MMIO_DH(GEN8_GT_IMR(1), D_BDW_PLUS, NULL, intel_vgpu_reg_imr_handler);
  2023. MMIO_DH(GEN8_GT_IER(1), D_BDW_PLUS, NULL, intel_vgpu_reg_ier_handler);
  2024. MMIO_DH(GEN8_GT_IIR(1), D_BDW_PLUS, NULL, intel_vgpu_reg_iir_handler);
  2025. MMIO_D(GEN8_GT_ISR(1), D_BDW_PLUS);
  2026. MMIO_DH(GEN8_GT_IMR(2), D_BDW_PLUS, NULL, intel_vgpu_reg_imr_handler);
  2027. MMIO_DH(GEN8_GT_IER(2), D_BDW_PLUS, NULL, intel_vgpu_reg_ier_handler);
  2028. MMIO_DH(GEN8_GT_IIR(2), D_BDW_PLUS, NULL, intel_vgpu_reg_iir_handler);
  2029. MMIO_D(GEN8_GT_ISR(2), D_BDW_PLUS);
  2030. MMIO_DH(GEN8_GT_IMR(3), D_BDW_PLUS, NULL, intel_vgpu_reg_imr_handler);
  2031. MMIO_DH(GEN8_GT_IER(3), D_BDW_PLUS, NULL, intel_vgpu_reg_ier_handler);
  2032. MMIO_DH(GEN8_GT_IIR(3), D_BDW_PLUS, NULL, intel_vgpu_reg_iir_handler);
  2033. MMIO_D(GEN8_GT_ISR(3), D_BDW_PLUS);
  2034. MMIO_DH(GEN8_DE_PIPE_IMR(PIPE_A), D_BDW_PLUS, NULL,
  2035. intel_vgpu_reg_imr_handler);
  2036. MMIO_DH(GEN8_DE_PIPE_IER(PIPE_A), D_BDW_PLUS, NULL,
  2037. intel_vgpu_reg_ier_handler);
  2038. MMIO_DH(GEN8_DE_PIPE_IIR(PIPE_A), D_BDW_PLUS, NULL,
  2039. intel_vgpu_reg_iir_handler);
  2040. MMIO_D(GEN8_DE_PIPE_ISR(PIPE_A), D_BDW_PLUS);
  2041. MMIO_DH(GEN8_DE_PIPE_IMR(PIPE_B), D_BDW_PLUS, NULL,
  2042. intel_vgpu_reg_imr_handler);
  2043. MMIO_DH(GEN8_DE_PIPE_IER(PIPE_B), D_BDW_PLUS, NULL,
  2044. intel_vgpu_reg_ier_handler);
  2045. MMIO_DH(GEN8_DE_PIPE_IIR(PIPE_B), D_BDW_PLUS, NULL,
  2046. intel_vgpu_reg_iir_handler);
  2047. MMIO_D(GEN8_DE_PIPE_ISR(PIPE_B), D_BDW_PLUS);
  2048. MMIO_DH(GEN8_DE_PIPE_IMR(PIPE_C), D_BDW_PLUS, NULL,
  2049. intel_vgpu_reg_imr_handler);
  2050. MMIO_DH(GEN8_DE_PIPE_IER(PIPE_C), D_BDW_PLUS, NULL,
  2051. intel_vgpu_reg_ier_handler);
  2052. MMIO_DH(GEN8_DE_PIPE_IIR(PIPE_C), D_BDW_PLUS, NULL,
  2053. intel_vgpu_reg_iir_handler);
  2054. MMIO_D(GEN8_DE_PIPE_ISR(PIPE_C), D_BDW_PLUS);
  2055. MMIO_DH(GEN8_DE_PORT_IMR, D_BDW_PLUS, NULL, intel_vgpu_reg_imr_handler);
  2056. MMIO_DH(GEN8_DE_PORT_IER, D_BDW_PLUS, NULL, intel_vgpu_reg_ier_handler);
  2057. MMIO_DH(GEN8_DE_PORT_IIR, D_BDW_PLUS, NULL, intel_vgpu_reg_iir_handler);
  2058. MMIO_D(GEN8_DE_PORT_ISR, D_BDW_PLUS);
  2059. MMIO_DH(GEN8_DE_MISC_IMR, D_BDW_PLUS, NULL, intel_vgpu_reg_imr_handler);
  2060. MMIO_DH(GEN8_DE_MISC_IER, D_BDW_PLUS, NULL, intel_vgpu_reg_ier_handler);
  2061. MMIO_DH(GEN8_DE_MISC_IIR, D_BDW_PLUS, NULL, intel_vgpu_reg_iir_handler);
  2062. MMIO_D(GEN8_DE_MISC_ISR, D_BDW_PLUS);
  2063. MMIO_DH(GEN8_PCU_IMR, D_BDW_PLUS, NULL, intel_vgpu_reg_imr_handler);
  2064. MMIO_DH(GEN8_PCU_IER, D_BDW_PLUS, NULL, intel_vgpu_reg_ier_handler);
  2065. MMIO_DH(GEN8_PCU_IIR, D_BDW_PLUS, NULL, intel_vgpu_reg_iir_handler);
  2066. MMIO_D(GEN8_PCU_ISR, D_BDW_PLUS);
  2067. MMIO_DH(GEN8_MASTER_IRQ, D_BDW_PLUS, NULL,
  2068. intel_vgpu_reg_master_irq_handler);
  2069. MMIO_DFH(RING_HWSTAM(GEN8_BSD2_RING_BASE), D_BDW_PLUS,
  2070. F_CMD_ACCESS, NULL, NULL);
  2071. MMIO_DFH(0x1c134, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  2072. MMIO_DFH(RING_TAIL(GEN8_BSD2_RING_BASE), D_BDW_PLUS, F_CMD_ACCESS,
  2073. NULL, NULL);
  2074. MMIO_DFH(RING_HEAD(GEN8_BSD2_RING_BASE), D_BDW_PLUS,
  2075. F_CMD_ACCESS, NULL, NULL);
  2076. MMIO_GM_RDR(RING_START(GEN8_BSD2_RING_BASE), D_BDW_PLUS, NULL, NULL);
  2077. MMIO_DFH(RING_CTL(GEN8_BSD2_RING_BASE), D_BDW_PLUS, F_CMD_ACCESS,
  2078. NULL, NULL);
  2079. MMIO_DFH(RING_ACTHD(GEN8_BSD2_RING_BASE), D_BDW_PLUS,
  2080. F_CMD_ACCESS, NULL, NULL);
  2081. MMIO_DFH(RING_ACTHD_UDW(GEN8_BSD2_RING_BASE), D_BDW_PLUS,
  2082. F_CMD_ACCESS, NULL, NULL);
  2083. MMIO_DFH(0x1c29c, D_BDW_PLUS, F_MODE_MASK | F_CMD_ACCESS, NULL,
  2084. ring_mode_mmio_write);
  2085. MMIO_DFH(RING_MI_MODE(GEN8_BSD2_RING_BASE), D_BDW_PLUS,
  2086. F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  2087. MMIO_DFH(RING_INSTPM(GEN8_BSD2_RING_BASE), D_BDW_PLUS,
  2088. F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  2089. MMIO_DFH(RING_TIMESTAMP(GEN8_BSD2_RING_BASE), D_BDW_PLUS, F_CMD_ACCESS,
  2090. ring_timestamp_mmio_read, NULL);
  2091. MMIO_RING_DFH(RING_ACTHD_UDW, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  2092. #define RING_REG(base) (base + 0xd0)
  2093. MMIO_RING_F(RING_REG, 4, F_RO, 0,
  2094. ~_MASKED_BIT_ENABLE(RESET_CTL_REQUEST_RESET), D_BDW_PLUS, NULL,
  2095. ring_reset_ctl_write);
  2096. MMIO_F(RING_REG(GEN8_BSD2_RING_BASE), 4, F_RO, 0,
  2097. ~_MASKED_BIT_ENABLE(RESET_CTL_REQUEST_RESET), D_BDW_PLUS, NULL,
  2098. ring_reset_ctl_write);
  2099. #undef RING_REG
  2100. #define RING_REG(base) (base + 0x230)
  2101. MMIO_RING_DFH(RING_REG, D_BDW_PLUS, 0, NULL, elsp_mmio_write);
  2102. MMIO_DH(RING_REG(GEN8_BSD2_RING_BASE), D_BDW_PLUS, NULL, elsp_mmio_write);
  2103. #undef RING_REG
  2104. #define RING_REG(base) (base + 0x234)
  2105. MMIO_RING_F(RING_REG, 8, F_RO | F_CMD_ACCESS, 0, ~0, D_BDW_PLUS,
  2106. NULL, NULL);
  2107. MMIO_F(RING_REG(GEN8_BSD2_RING_BASE), 4, F_RO | F_CMD_ACCESS, 0,
  2108. ~0LL, D_BDW_PLUS, NULL, NULL);
  2109. #undef RING_REG
  2110. #define RING_REG(base) (base + 0x244)
  2111. MMIO_RING_DFH(RING_REG, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  2112. MMIO_DFH(RING_REG(GEN8_BSD2_RING_BASE), D_BDW_PLUS, F_CMD_ACCESS,
  2113. NULL, NULL);
  2114. #undef RING_REG
  2115. #define RING_REG(base) (base + 0x370)
  2116. MMIO_RING_F(RING_REG, 48, F_RO, 0, ~0, D_BDW_PLUS, NULL, NULL);
  2117. MMIO_F(RING_REG(GEN8_BSD2_RING_BASE), 48, F_RO, 0, ~0, D_BDW_PLUS,
  2118. NULL, NULL);
  2119. #undef RING_REG
  2120. #define RING_REG(base) (base + 0x3a0)
  2121. MMIO_RING_DFH(RING_REG, D_BDW_PLUS, F_MODE_MASK, NULL, NULL);
  2122. MMIO_DFH(RING_REG(GEN8_BSD2_RING_BASE), D_BDW_PLUS, F_MODE_MASK, NULL, NULL);
  2123. #undef RING_REG
  2124. MMIO_D(PIPEMISC(PIPE_A), D_BDW_PLUS);
  2125. MMIO_D(PIPEMISC(PIPE_B), D_BDW_PLUS);
  2126. MMIO_D(PIPEMISC(PIPE_C), D_BDW_PLUS);
  2127. MMIO_D(0x1c1d0, D_BDW_PLUS);
  2128. MMIO_D(GEN6_MBCUNIT_SNPCR, D_BDW_PLUS);
  2129. MMIO_D(GEN7_MISCCPCTL, D_BDW_PLUS);
  2130. MMIO_D(0x1c054, D_BDW_PLUS);
  2131. MMIO_DH(GEN6_PCODE_MAILBOX, D_BDW_PLUS, NULL, mailbox_write);
  2132. MMIO_D(GEN8_PRIVATE_PAT_LO, D_BDW_PLUS);
  2133. MMIO_D(GEN8_PRIVATE_PAT_HI, D_BDW_PLUS);
  2134. MMIO_D(GAMTARBMODE, D_BDW_PLUS);
  2135. #define RING_REG(base) (base + 0x270)
  2136. MMIO_RING_F(RING_REG, 32, 0, 0, 0, D_BDW_PLUS, NULL, NULL);
  2137. MMIO_F(RING_REG(GEN8_BSD2_RING_BASE), 32, 0, 0, 0, D_BDW_PLUS, NULL, NULL);
  2138. #undef RING_REG
  2139. MMIO_RING_GM_RDR(RING_HWS_PGA, D_BDW_PLUS, NULL, NULL);
  2140. MMIO_GM_RDR(RING_HWS_PGA(GEN8_BSD2_RING_BASE), D_BDW_PLUS, NULL, NULL);
  2141. MMIO_DFH(HDC_CHICKEN0, D_BDW_PLUS, F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  2142. MMIO_D(CHICKEN_PIPESL_1(PIPE_A), D_BDW_PLUS);
  2143. MMIO_D(CHICKEN_PIPESL_1(PIPE_B), D_BDW_PLUS);
  2144. MMIO_D(CHICKEN_PIPESL_1(PIPE_C), D_BDW_PLUS);
  2145. MMIO_D(WM_MISC, D_BDW);
  2146. MMIO_D(BDW_EDP_PSR_BASE, D_BDW);
  2147. MMIO_D(0x66c00, D_BDW_PLUS);
  2148. MMIO_D(0x66c04, D_BDW_PLUS);
  2149. MMIO_D(HSW_GTT_CACHE_EN, D_BDW_PLUS);
  2150. MMIO_D(GEN8_EU_DISABLE0, D_BDW_PLUS);
  2151. MMIO_D(GEN8_EU_DISABLE1, D_BDW_PLUS);
  2152. MMIO_D(GEN8_EU_DISABLE2, D_BDW_PLUS);
  2153. MMIO_D(0xfdc, D_BDW_PLUS);
  2154. MMIO_DFH(GEN8_ROW_CHICKEN, D_BDW_PLUS, F_MODE_MASK | F_CMD_ACCESS,
  2155. NULL, NULL);
  2156. MMIO_DFH(GEN7_ROW_CHICKEN2, D_BDW_PLUS, F_MODE_MASK | F_CMD_ACCESS,
  2157. NULL, NULL);
  2158. MMIO_DFH(GEN8_UCGCTL6, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  2159. MMIO_DFH(0xb1f0, D_BDW, F_CMD_ACCESS, NULL, NULL);
  2160. MMIO_DFH(0xb1c0, D_BDW, F_CMD_ACCESS, NULL, NULL);
  2161. MMIO_DFH(GEN8_L3SQCREG4, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  2162. MMIO_DFH(0xb100, D_BDW, F_CMD_ACCESS, NULL, NULL);
  2163. MMIO_DFH(0xb10c, D_BDW, F_CMD_ACCESS, NULL, NULL);
  2164. MMIO_D(0xb110, D_BDW);
  2165. MMIO_F(0x24d0, 48, F_CMD_ACCESS, 0, 0, D_BDW_PLUS,
  2166. NULL, force_nonpriv_write);
  2167. MMIO_D(0x22040, D_BDW_PLUS);
  2168. MMIO_D(0x44484, D_BDW_PLUS);
  2169. MMIO_D(0x4448c, D_BDW_PLUS);
  2170. MMIO_DFH(0x83a4, D_BDW, F_CMD_ACCESS, NULL, NULL);
  2171. MMIO_D(GEN8_L3_LRA_1_GPGPU, D_BDW_PLUS);
  2172. MMIO_DFH(0x8430, D_BDW, F_CMD_ACCESS, NULL, NULL);
  2173. MMIO_D(0x110000, D_BDW_PLUS);
  2174. MMIO_D(0x48400, D_BDW_PLUS);
  2175. MMIO_D(0x6e570, D_BDW_PLUS);
  2176. MMIO_D(0x65f10, D_BDW_PLUS);
  2177. MMIO_DFH(0xe194, D_BDW_PLUS, F_MODE_MASK | F_CMD_ACCESS, NULL,
  2178. skl_misc_ctl_write);
  2179. MMIO_DFH(0xe188, D_BDW_PLUS, F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  2180. MMIO_DFH(HALF_SLICE_CHICKEN2, D_BDW_PLUS, F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  2181. MMIO_DFH(0x2580, D_BDW_PLUS, F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  2182. MMIO_DFH(0x2248, D_BDW, F_CMD_ACCESS, NULL, NULL);
  2183. MMIO_DFH(0xe220, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  2184. MMIO_DFH(0xe230, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  2185. MMIO_DFH(0xe240, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  2186. MMIO_DFH(0xe260, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  2187. MMIO_DFH(0xe270, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  2188. MMIO_DFH(0xe280, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  2189. MMIO_DFH(0xe2a0, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  2190. MMIO_DFH(0xe2b0, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  2191. MMIO_DFH(0xe2c0, D_BDW_PLUS, F_CMD_ACCESS, NULL, NULL);
  2192. return 0;
  2193. }
  2194. static int init_skl_mmio_info(struct intel_gvt *gvt)
  2195. {
  2196. struct drm_i915_private *dev_priv = gvt->dev_priv;
  2197. int ret;
  2198. MMIO_DH(FORCEWAKE_RENDER_GEN9, D_SKL_PLUS, NULL, mul_force_wake_write);
  2199. MMIO_DH(FORCEWAKE_ACK_RENDER_GEN9, D_SKL_PLUS, NULL, NULL);
  2200. MMIO_DH(FORCEWAKE_BLITTER_GEN9, D_SKL_PLUS, NULL, mul_force_wake_write);
  2201. MMIO_DH(FORCEWAKE_ACK_BLITTER_GEN9, D_SKL_PLUS, NULL, NULL);
  2202. MMIO_DH(FORCEWAKE_MEDIA_GEN9, D_SKL_PLUS, NULL, mul_force_wake_write);
  2203. MMIO_DH(FORCEWAKE_ACK_MEDIA_GEN9, D_SKL_PLUS, NULL, NULL);
  2204. MMIO_F(_DPB_AUX_CH_CTL, 6 * 4, 0, 0, 0, D_SKL_PLUS, NULL,
  2205. dp_aux_ch_ctl_mmio_write);
  2206. MMIO_F(_DPC_AUX_CH_CTL, 6 * 4, 0, 0, 0, D_SKL_PLUS, NULL,
  2207. dp_aux_ch_ctl_mmio_write);
  2208. MMIO_F(_DPD_AUX_CH_CTL, 6 * 4, 0, 0, 0, D_SKL_PLUS, NULL,
  2209. dp_aux_ch_ctl_mmio_write);
  2210. MMIO_D(HSW_PWR_WELL_BIOS, D_SKL_PLUS);
  2211. MMIO_DH(HSW_PWR_WELL_DRIVER, D_SKL_PLUS, NULL,
  2212. skl_power_well_ctl_write);
  2213. MMIO_DH(GEN6_PCODE_MAILBOX, D_SKL_PLUS, NULL, mailbox_write);
  2214. MMIO_D(0xa210, D_SKL_PLUS);
  2215. MMIO_D(GEN9_MEDIA_PG_IDLE_HYSTERESIS, D_SKL_PLUS);
  2216. MMIO_D(GEN9_RENDER_PG_IDLE_HYSTERESIS, D_SKL_PLUS);
  2217. MMIO_DFH(GEN9_GAMT_ECO_REG_RW_IA, D_SKL_PLUS, F_CMD_ACCESS, NULL, NULL);
  2218. MMIO_DH(0x4ddc, D_SKL_PLUS, NULL, skl_misc_ctl_write);
  2219. MMIO_DH(0x42080, D_SKL_PLUS, NULL, skl_misc_ctl_write);
  2220. MMIO_D(0x45504, D_SKL_PLUS);
  2221. MMIO_D(0x45520, D_SKL_PLUS);
  2222. MMIO_D(0x46000, D_SKL_PLUS);
  2223. MMIO_DH(0x46010, D_SKL | D_KBL, NULL, skl_lcpll_write);
  2224. MMIO_DH(0x46014, D_SKL | D_KBL, NULL, skl_lcpll_write);
  2225. MMIO_D(0x6C040, D_SKL | D_KBL);
  2226. MMIO_D(0x6C048, D_SKL | D_KBL);
  2227. MMIO_D(0x6C050, D_SKL | D_KBL);
  2228. MMIO_D(0x6C044, D_SKL | D_KBL);
  2229. MMIO_D(0x6C04C, D_SKL | D_KBL);
  2230. MMIO_D(0x6C054, D_SKL | D_KBL);
  2231. MMIO_D(0x6c058, D_SKL | D_KBL);
  2232. MMIO_D(0x6c05c, D_SKL | D_KBL);
  2233. MMIO_DH(0X6c060, D_SKL | D_KBL, dpll_status_read, NULL);
  2234. MMIO_DH(SKL_PS_WIN_POS(PIPE_A, 0), D_SKL_PLUS, NULL, pf_write);
  2235. MMIO_DH(SKL_PS_WIN_POS(PIPE_A, 1), D_SKL_PLUS, NULL, pf_write);
  2236. MMIO_DH(SKL_PS_WIN_POS(PIPE_B, 0), D_SKL_PLUS, NULL, pf_write);
  2237. MMIO_DH(SKL_PS_WIN_POS(PIPE_B, 1), D_SKL_PLUS, NULL, pf_write);
  2238. MMIO_DH(SKL_PS_WIN_POS(PIPE_C, 0), D_SKL_PLUS, NULL, pf_write);
  2239. MMIO_DH(SKL_PS_WIN_POS(PIPE_C, 1), D_SKL_PLUS, NULL, pf_write);
  2240. MMIO_DH(SKL_PS_WIN_SZ(PIPE_A, 0), D_SKL_PLUS, NULL, pf_write);
  2241. MMIO_DH(SKL_PS_WIN_SZ(PIPE_A, 1), D_SKL_PLUS, NULL, pf_write);
  2242. MMIO_DH(SKL_PS_WIN_SZ(PIPE_B, 0), D_SKL_PLUS, NULL, pf_write);
  2243. MMIO_DH(SKL_PS_WIN_SZ(PIPE_B, 1), D_SKL_PLUS, NULL, pf_write);
  2244. MMIO_DH(SKL_PS_WIN_SZ(PIPE_C, 0), D_SKL_PLUS, NULL, pf_write);
  2245. MMIO_DH(SKL_PS_WIN_SZ(PIPE_C, 1), D_SKL_PLUS, NULL, pf_write);
  2246. MMIO_DH(SKL_PS_CTRL(PIPE_A, 0), D_SKL_PLUS, NULL, pf_write);
  2247. MMIO_DH(SKL_PS_CTRL(PIPE_A, 1), D_SKL_PLUS, NULL, pf_write);
  2248. MMIO_DH(SKL_PS_CTRL(PIPE_B, 0), D_SKL_PLUS, NULL, pf_write);
  2249. MMIO_DH(SKL_PS_CTRL(PIPE_B, 1), D_SKL_PLUS, NULL, pf_write);
  2250. MMIO_DH(SKL_PS_CTRL(PIPE_C, 0), D_SKL_PLUS, NULL, pf_write);
  2251. MMIO_DH(SKL_PS_CTRL(PIPE_C, 1), D_SKL_PLUS, NULL, pf_write);
  2252. MMIO_DH(PLANE_BUF_CFG(PIPE_A, 0), D_SKL_PLUS, NULL, NULL);
  2253. MMIO_DH(PLANE_BUF_CFG(PIPE_A, 1), D_SKL_PLUS, NULL, NULL);
  2254. MMIO_DH(PLANE_BUF_CFG(PIPE_A, 2), D_SKL_PLUS, NULL, NULL);
  2255. MMIO_DH(PLANE_BUF_CFG(PIPE_A, 3), D_SKL_PLUS, NULL, NULL);
  2256. MMIO_DH(PLANE_BUF_CFG(PIPE_B, 0), D_SKL_PLUS, NULL, NULL);
  2257. MMIO_DH(PLANE_BUF_CFG(PIPE_B, 1), D_SKL_PLUS, NULL, NULL);
  2258. MMIO_DH(PLANE_BUF_CFG(PIPE_B, 2), D_SKL_PLUS, NULL, NULL);
  2259. MMIO_DH(PLANE_BUF_CFG(PIPE_B, 3), D_SKL_PLUS, NULL, NULL);
  2260. MMIO_DH(PLANE_BUF_CFG(PIPE_C, 0), D_SKL_PLUS, NULL, NULL);
  2261. MMIO_DH(PLANE_BUF_CFG(PIPE_C, 1), D_SKL_PLUS, NULL, NULL);
  2262. MMIO_DH(PLANE_BUF_CFG(PIPE_C, 2), D_SKL_PLUS, NULL, NULL);
  2263. MMIO_DH(PLANE_BUF_CFG(PIPE_C, 3), D_SKL_PLUS, NULL, NULL);
  2264. MMIO_DH(CUR_BUF_CFG(PIPE_A), D_SKL_PLUS, NULL, NULL);
  2265. MMIO_DH(CUR_BUF_CFG(PIPE_B), D_SKL_PLUS, NULL, NULL);
  2266. MMIO_DH(CUR_BUF_CFG(PIPE_C), D_SKL_PLUS, NULL, NULL);
  2267. MMIO_F(PLANE_WM(PIPE_A, 0, 0), 4 * 8, 0, 0, 0, D_SKL_PLUS, NULL, NULL);
  2268. MMIO_F(PLANE_WM(PIPE_A, 1, 0), 4 * 8, 0, 0, 0, D_SKL_PLUS, NULL, NULL);
  2269. MMIO_F(PLANE_WM(PIPE_A, 2, 0), 4 * 8, 0, 0, 0, D_SKL_PLUS, NULL, NULL);
  2270. MMIO_F(PLANE_WM(PIPE_B, 0, 0), 4 * 8, 0, 0, 0, D_SKL_PLUS, NULL, NULL);
  2271. MMIO_F(PLANE_WM(PIPE_B, 1, 0), 4 * 8, 0, 0, 0, D_SKL_PLUS, NULL, NULL);
  2272. MMIO_F(PLANE_WM(PIPE_B, 2, 0), 4 * 8, 0, 0, 0, D_SKL_PLUS, NULL, NULL);
  2273. MMIO_F(PLANE_WM(PIPE_C, 0, 0), 4 * 8, 0, 0, 0, D_SKL_PLUS, NULL, NULL);
  2274. MMIO_F(PLANE_WM(PIPE_C, 1, 0), 4 * 8, 0, 0, 0, D_SKL_PLUS, NULL, NULL);
  2275. MMIO_F(PLANE_WM(PIPE_C, 2, 0), 4 * 8, 0, 0, 0, D_SKL_PLUS, NULL, NULL);
  2276. MMIO_F(CUR_WM(PIPE_A, 0), 4 * 8, 0, 0, 0, D_SKL_PLUS, NULL, NULL);
  2277. MMIO_F(CUR_WM(PIPE_B, 0), 4 * 8, 0, 0, 0, D_SKL_PLUS, NULL, NULL);
  2278. MMIO_F(CUR_WM(PIPE_C, 0), 4 * 8, 0, 0, 0, D_SKL_PLUS, NULL, NULL);
  2279. MMIO_DH(PLANE_WM_TRANS(PIPE_A, 0), D_SKL_PLUS, NULL, NULL);
  2280. MMIO_DH(PLANE_WM_TRANS(PIPE_A, 1), D_SKL_PLUS, NULL, NULL);
  2281. MMIO_DH(PLANE_WM_TRANS(PIPE_A, 2), D_SKL_PLUS, NULL, NULL);
  2282. MMIO_DH(PLANE_WM_TRANS(PIPE_B, 0), D_SKL_PLUS, NULL, NULL);
  2283. MMIO_DH(PLANE_WM_TRANS(PIPE_B, 1), D_SKL_PLUS, NULL, NULL);
  2284. MMIO_DH(PLANE_WM_TRANS(PIPE_B, 2), D_SKL_PLUS, NULL, NULL);
  2285. MMIO_DH(PLANE_WM_TRANS(PIPE_C, 0), D_SKL_PLUS, NULL, NULL);
  2286. MMIO_DH(PLANE_WM_TRANS(PIPE_C, 1), D_SKL_PLUS, NULL, NULL);
  2287. MMIO_DH(PLANE_WM_TRANS(PIPE_C, 2), D_SKL_PLUS, NULL, NULL);
  2288. MMIO_DH(CUR_WM_TRANS(PIPE_A), D_SKL_PLUS, NULL, NULL);
  2289. MMIO_DH(CUR_WM_TRANS(PIPE_B), D_SKL_PLUS, NULL, NULL);
  2290. MMIO_DH(CUR_WM_TRANS(PIPE_C), D_SKL_PLUS, NULL, NULL);
  2291. MMIO_DH(PLANE_NV12_BUF_CFG(PIPE_A, 0), D_SKL_PLUS, NULL, NULL);
  2292. MMIO_DH(PLANE_NV12_BUF_CFG(PIPE_A, 1), D_SKL_PLUS, NULL, NULL);
  2293. MMIO_DH(PLANE_NV12_BUF_CFG(PIPE_A, 2), D_SKL_PLUS, NULL, NULL);
  2294. MMIO_DH(PLANE_NV12_BUF_CFG(PIPE_A, 3), D_SKL_PLUS, NULL, NULL);
  2295. MMIO_DH(PLANE_NV12_BUF_CFG(PIPE_B, 0), D_SKL_PLUS, NULL, NULL);
  2296. MMIO_DH(PLANE_NV12_BUF_CFG(PIPE_B, 1), D_SKL_PLUS, NULL, NULL);
  2297. MMIO_DH(PLANE_NV12_BUF_CFG(PIPE_B, 2), D_SKL_PLUS, NULL, NULL);
  2298. MMIO_DH(PLANE_NV12_BUF_CFG(PIPE_B, 3), D_SKL_PLUS, NULL, NULL);
  2299. MMIO_DH(PLANE_NV12_BUF_CFG(PIPE_C, 0), D_SKL_PLUS, NULL, NULL);
  2300. MMIO_DH(PLANE_NV12_BUF_CFG(PIPE_C, 1), D_SKL_PLUS, NULL, NULL);
  2301. MMIO_DH(PLANE_NV12_BUF_CFG(PIPE_C, 2), D_SKL_PLUS, NULL, NULL);
  2302. MMIO_DH(PLANE_NV12_BUF_CFG(PIPE_C, 3), D_SKL_PLUS, NULL, NULL);
  2303. MMIO_DH(_REG_701C0(PIPE_A, 1), D_SKL_PLUS, NULL, NULL);
  2304. MMIO_DH(_REG_701C0(PIPE_A, 2), D_SKL_PLUS, NULL, NULL);
  2305. MMIO_DH(_REG_701C0(PIPE_A, 3), D_SKL_PLUS, NULL, NULL);
  2306. MMIO_DH(_REG_701C0(PIPE_A, 4), D_SKL_PLUS, NULL, NULL);
  2307. MMIO_DH(_REG_701C0(PIPE_B, 1), D_SKL_PLUS, NULL, NULL);
  2308. MMIO_DH(_REG_701C0(PIPE_B, 2), D_SKL_PLUS, NULL, NULL);
  2309. MMIO_DH(_REG_701C0(PIPE_B, 3), D_SKL_PLUS, NULL, NULL);
  2310. MMIO_DH(_REG_701C0(PIPE_B, 4), D_SKL_PLUS, NULL, NULL);
  2311. MMIO_DH(_REG_701C0(PIPE_C, 1), D_SKL_PLUS, NULL, NULL);
  2312. MMIO_DH(_REG_701C0(PIPE_C, 2), D_SKL_PLUS, NULL, NULL);
  2313. MMIO_DH(_REG_701C0(PIPE_C, 3), D_SKL_PLUS, NULL, NULL);
  2314. MMIO_DH(_REG_701C0(PIPE_C, 4), D_SKL_PLUS, NULL, NULL);
  2315. MMIO_DH(_REG_701C4(PIPE_A, 1), D_SKL_PLUS, NULL, NULL);
  2316. MMIO_DH(_REG_701C4(PIPE_A, 2), D_SKL_PLUS, NULL, NULL);
  2317. MMIO_DH(_REG_701C4(PIPE_A, 3), D_SKL_PLUS, NULL, NULL);
  2318. MMIO_DH(_REG_701C4(PIPE_A, 4), D_SKL_PLUS, NULL, NULL);
  2319. MMIO_DH(_REG_701C4(PIPE_B, 1), D_SKL_PLUS, NULL, NULL);
  2320. MMIO_DH(_REG_701C4(PIPE_B, 2), D_SKL_PLUS, NULL, NULL);
  2321. MMIO_DH(_REG_701C4(PIPE_B, 3), D_SKL_PLUS, NULL, NULL);
  2322. MMIO_DH(_REG_701C4(PIPE_B, 4), D_SKL_PLUS, NULL, NULL);
  2323. MMIO_DH(_REG_701C4(PIPE_C, 1), D_SKL_PLUS, NULL, NULL);
  2324. MMIO_DH(_REG_701C4(PIPE_C, 2), D_SKL_PLUS, NULL, NULL);
  2325. MMIO_DH(_REG_701C4(PIPE_C, 3), D_SKL_PLUS, NULL, NULL);
  2326. MMIO_DH(_REG_701C4(PIPE_C, 4), D_SKL_PLUS, NULL, NULL);
  2327. MMIO_D(0x70380, D_SKL_PLUS);
  2328. MMIO_D(0x71380, D_SKL_PLUS);
  2329. MMIO_D(0x72380, D_SKL_PLUS);
  2330. MMIO_D(0x7039c, D_SKL_PLUS);
  2331. MMIO_F(0x80000, 0x3000, 0, 0, 0, D_SKL_PLUS, NULL, NULL);
  2332. MMIO_D(0x8f074, D_SKL | D_KBL);
  2333. MMIO_D(0x8f004, D_SKL | D_KBL);
  2334. MMIO_D(0x8f034, D_SKL | D_KBL);
  2335. MMIO_D(0xb11c, D_SKL | D_KBL);
  2336. MMIO_D(0x51000, D_SKL | D_KBL);
  2337. MMIO_D(0x6c00c, D_SKL_PLUS);
  2338. MMIO_F(0xc800, 0x7f8, F_CMD_ACCESS, 0, 0, D_SKL | D_KBL, NULL, NULL);
  2339. MMIO_F(0xb020, 0x80, F_CMD_ACCESS, 0, 0, D_SKL | D_KBL, NULL, NULL);
  2340. MMIO_D(0xd08, D_SKL_PLUS);
  2341. MMIO_DFH(0x20e0, D_SKL_PLUS, F_MODE_MASK, NULL, NULL);
  2342. MMIO_DFH(0x20ec, D_SKL_PLUS, F_MODE_MASK | F_CMD_ACCESS, NULL, NULL);
  2343. /* TRTT */
  2344. MMIO_DFH(0x4de0, D_SKL | D_KBL, F_CMD_ACCESS, NULL, NULL);
  2345. MMIO_DFH(0x4de4, D_SKL | D_KBL, F_CMD_ACCESS, NULL, NULL);
  2346. MMIO_DFH(0x4de8, D_SKL | D_KBL, F_CMD_ACCESS, NULL, NULL);
  2347. MMIO_DFH(0x4dec, D_SKL | D_KBL, F_CMD_ACCESS, NULL, NULL);
  2348. MMIO_DFH(0x4df0, D_SKL | D_KBL, F_CMD_ACCESS, NULL, NULL);
  2349. MMIO_DFH(0x4df4, D_SKL | D_KBL, F_CMD_ACCESS, NULL, gen9_trtte_write);
  2350. MMIO_DH(0x4dfc, D_SKL | D_KBL, NULL, gen9_trtt_chicken_write);
  2351. MMIO_D(0x45008, D_SKL | D_KBL);
  2352. MMIO_D(0x46430, D_SKL | D_KBL);
  2353. MMIO_D(0x46520, D_SKL | D_KBL);
  2354. MMIO_D(0xc403c, D_SKL | D_KBL);
  2355. MMIO_D(0xb004, D_SKL_PLUS);
  2356. MMIO_DH(DMA_CTRL, D_SKL_PLUS, NULL, dma_ctrl_write);
  2357. MMIO_D(0x65900, D_SKL_PLUS);
  2358. MMIO_D(0x1082c0, D_SKL | D_KBL);
  2359. MMIO_D(0x4068, D_SKL | D_KBL);
  2360. MMIO_D(0x67054, D_SKL | D_KBL);
  2361. MMIO_D(0x6e560, D_SKL | D_KBL);
  2362. MMIO_D(0x6e554, D_SKL | D_KBL);
  2363. MMIO_D(0x2b20, D_SKL | D_KBL);
  2364. MMIO_D(0x65f00, D_SKL | D_KBL);
  2365. MMIO_D(0x65f08, D_SKL | D_KBL);
  2366. MMIO_D(0x320f0, D_SKL | D_KBL);
  2367. MMIO_DFH(_REG_VCS2_EXCC, D_SKL_PLUS, F_CMD_ACCESS, NULL, NULL);
  2368. MMIO_DFH(_REG_VECS_EXCC, D_SKL_PLUS, F_CMD_ACCESS, NULL, NULL);
  2369. MMIO_D(0x70034, D_SKL_PLUS);
  2370. MMIO_D(0x71034, D_SKL_PLUS);
  2371. MMIO_D(0x72034, D_SKL_PLUS);
  2372. MMIO_D(_PLANE_KEYVAL_1(PIPE_A), D_SKL_PLUS);
  2373. MMIO_D(_PLANE_KEYVAL_1(PIPE_B), D_SKL_PLUS);
  2374. MMIO_D(_PLANE_KEYVAL_1(PIPE_C), D_SKL_PLUS);
  2375. MMIO_D(_PLANE_KEYMSK_1(PIPE_A), D_SKL_PLUS);
  2376. MMIO_D(_PLANE_KEYMSK_1(PIPE_B), D_SKL_PLUS);
  2377. MMIO_D(_PLANE_KEYMSK_1(PIPE_C), D_SKL_PLUS);
  2378. MMIO_D(0x44500, D_SKL_PLUS);
  2379. MMIO_DFH(GEN9_CSFE_CHICKEN1_RCS, D_SKL_PLUS, F_CMD_ACCESS, NULL, NULL);
  2380. MMIO_DFH(GEN8_HDC_CHICKEN1, D_SKL | D_KBL, F_MODE_MASK | F_CMD_ACCESS,
  2381. NULL, NULL);
  2382. MMIO_D(0x4ab8, D_KBL);
  2383. MMIO_D(0x940c, D_SKL_PLUS);
  2384. MMIO_D(0x2248, D_SKL_PLUS | D_KBL);
  2385. MMIO_D(0x4ab0, D_SKL | D_KBL);
  2386. MMIO_D(0x20d4, D_SKL | D_KBL);
  2387. return 0;
  2388. }
  2389. /**
  2390. * intel_gvt_find_mmio_info - find MMIO information entry by aligned offset
  2391. * @gvt: GVT device
  2392. * @offset: register offset
  2393. *
  2394. * This function is used to find the MMIO information entry from hash table
  2395. *
  2396. * Returns:
  2397. * pointer to MMIO information entry, NULL if not exists
  2398. */
  2399. struct intel_gvt_mmio_info *intel_gvt_find_mmio_info(struct intel_gvt *gvt,
  2400. unsigned int offset)
  2401. {
  2402. struct intel_gvt_mmio_info *e;
  2403. WARN_ON(!IS_ALIGNED(offset, 4));
  2404. hash_for_each_possible(gvt->mmio.mmio_info_table, e, node, offset) {
  2405. if (e->offset == offset)
  2406. return e;
  2407. }
  2408. return NULL;
  2409. }
  2410. /**
  2411. * intel_gvt_clean_mmio_info - clean up MMIO information table for GVT device
  2412. * @gvt: GVT device
  2413. *
  2414. * This function is called at the driver unloading stage, to clean up the MMIO
  2415. * information table of GVT device
  2416. *
  2417. */
  2418. void intel_gvt_clean_mmio_info(struct intel_gvt *gvt)
  2419. {
  2420. struct hlist_node *tmp;
  2421. struct intel_gvt_mmio_info *e;
  2422. int i;
  2423. hash_for_each_safe(gvt->mmio.mmio_info_table, i, tmp, e, node)
  2424. kfree(e);
  2425. vfree(gvt->mmio.mmio_attribute);
  2426. gvt->mmio.mmio_attribute = NULL;
  2427. }
  2428. /**
  2429. * intel_gvt_setup_mmio_info - setup MMIO information table for GVT device
  2430. * @gvt: GVT device
  2431. *
  2432. * This function is called at the initialization stage, to setup the MMIO
  2433. * information table for GVT device
  2434. *
  2435. * Returns:
  2436. * zero on success, negative if failed.
  2437. */
  2438. int intel_gvt_setup_mmio_info(struct intel_gvt *gvt)
  2439. {
  2440. struct intel_gvt_device_info *info = &gvt->device_info;
  2441. struct drm_i915_private *dev_priv = gvt->dev_priv;
  2442. int ret;
  2443. gvt->mmio.mmio_attribute = vzalloc(info->mmio_size);
  2444. if (!gvt->mmio.mmio_attribute)
  2445. return -ENOMEM;
  2446. ret = init_generic_mmio_info(gvt);
  2447. if (ret)
  2448. goto err;
  2449. if (IS_BROADWELL(dev_priv)) {
  2450. ret = init_broadwell_mmio_info(gvt);
  2451. if (ret)
  2452. goto err;
  2453. } else if (IS_SKYLAKE(dev_priv)
  2454. || IS_KABYLAKE(dev_priv)) {
  2455. ret = init_broadwell_mmio_info(gvt);
  2456. if (ret)
  2457. goto err;
  2458. ret = init_skl_mmio_info(gvt);
  2459. if (ret)
  2460. goto err;
  2461. }
  2462. return 0;
  2463. err:
  2464. intel_gvt_clean_mmio_info(gvt);
  2465. return ret;
  2466. }
  2467. /**
  2468. * intel_gvt_mmio_set_accessed - mark a MMIO has been accessed
  2469. * @gvt: a GVT device
  2470. * @offset: register offset
  2471. *
  2472. */
  2473. void intel_gvt_mmio_set_accessed(struct intel_gvt *gvt, unsigned int offset)
  2474. {
  2475. gvt->mmio.mmio_attribute[offset >> 2] |=
  2476. F_ACCESSED;
  2477. }
  2478. /**
  2479. * intel_gvt_mmio_is_cmd_accessed - mark a MMIO could be accessed by command
  2480. * @gvt: a GVT device
  2481. * @offset: register offset
  2482. *
  2483. */
  2484. bool intel_gvt_mmio_is_cmd_access(struct intel_gvt *gvt,
  2485. unsigned int offset)
  2486. {
  2487. return gvt->mmio.mmio_attribute[offset >> 2] &
  2488. F_CMD_ACCESS;
  2489. }
  2490. /**
  2491. * intel_gvt_mmio_is_unalign - mark a MMIO could be accessed unaligned
  2492. * @gvt: a GVT device
  2493. * @offset: register offset
  2494. *
  2495. */
  2496. bool intel_gvt_mmio_is_unalign(struct intel_gvt *gvt,
  2497. unsigned int offset)
  2498. {
  2499. return gvt->mmio.mmio_attribute[offset >> 2] &
  2500. F_UNALIGN;
  2501. }
  2502. /**
  2503. * intel_gvt_mmio_set_cmd_accessed - mark a MMIO has been accessed by command
  2504. * @gvt: a GVT device
  2505. * @offset: register offset
  2506. *
  2507. */
  2508. void intel_gvt_mmio_set_cmd_accessed(struct intel_gvt *gvt,
  2509. unsigned int offset)
  2510. {
  2511. gvt->mmio.mmio_attribute[offset >> 2] |=
  2512. F_CMD_ACCESSED;
  2513. }
  2514. /**
  2515. * intel_gvt_mmio_has_mode_mask - if a MMIO has a mode mask
  2516. * @gvt: a GVT device
  2517. * @offset: register offset
  2518. *
  2519. * Returns:
  2520. * True if a MMIO has a mode mask in its higher 16 bits, false if it isn't.
  2521. *
  2522. */
  2523. bool intel_gvt_mmio_has_mode_mask(struct intel_gvt *gvt, unsigned int offset)
  2524. {
  2525. return gvt->mmio.mmio_attribute[offset >> 2] &
  2526. F_MODE_MASK;
  2527. }
  2528. /**
  2529. * intel_vgpu_default_mmio_read - default MMIO read handler
  2530. * @vgpu: a vGPU
  2531. * @offset: access offset
  2532. * @p_data: data return buffer
  2533. * @bytes: access data length
  2534. *
  2535. * Returns:
  2536. * Zero on success, negative error code if failed.
  2537. */
  2538. int intel_vgpu_default_mmio_read(struct intel_vgpu *vgpu, unsigned int offset,
  2539. void *p_data, unsigned int bytes)
  2540. {
  2541. read_vreg(vgpu, offset, p_data, bytes);
  2542. return 0;
  2543. }
  2544. /**
  2545. * intel_t_default_mmio_write - default MMIO write handler
  2546. * @vgpu: a vGPU
  2547. * @offset: access offset
  2548. * @p_data: write data buffer
  2549. * @bytes: access data length
  2550. *
  2551. * Returns:
  2552. * Zero on success, negative error code if failed.
  2553. */
  2554. int intel_vgpu_default_mmio_write(struct intel_vgpu *vgpu, unsigned int offset,
  2555. void *p_data, unsigned int bytes)
  2556. {
  2557. write_vreg(vgpu, offset, p_data, bytes);
  2558. return 0;
  2559. }
  2560. /**
  2561. * intel_gvt_in_force_nonpriv_whitelist - if a mmio is in whitelist to be
  2562. * force-nopriv register
  2563. *
  2564. * @gvt: a GVT device
  2565. * @offset: register offset
  2566. *
  2567. * Returns:
  2568. * True if the register is in force-nonpriv whitelist;
  2569. * False if outside;
  2570. */
  2571. bool intel_gvt_in_force_nonpriv_whitelist(struct intel_gvt *gvt,
  2572. unsigned int offset)
  2573. {
  2574. return in_whitelist(offset);
  2575. }