sde_kms.c 123 KB

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  1. /*
  2. * Copyright (c) 2014-2021, The Linux Foundation. All rights reserved.
  3. * Copyright (C) 2013 Red Hat
  4. * Author: Rob Clark <[email protected]>
  5. *
  6. * This program is free software; you can redistribute it and/or modify it
  7. * under the terms of the GNU General Public License version 2 as published by
  8. * the Free Software Foundation.
  9. *
  10. * This program is distributed in the hope that it will be useful, but WITHOUT
  11. * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  12. * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
  13. * more details.
  14. *
  15. * You should have received a copy of the GNU General Public License along with
  16. * this program. If not, see <http://www.gnu.org/licenses/>.
  17. */
  18. #define pr_fmt(fmt) "[drm:%s:%d] " fmt, __func__, __LINE__
  19. #include <drm/drm_crtc.h>
  20. #include <drm/drm_fixed.h>
  21. #include <drm/drm_panel.h>
  22. #include <linux/debugfs.h>
  23. #include <linux/of_address.h>
  24. #include <linux/of_irq.h>
  25. #include <linux/dma-buf.h>
  26. #include <linux/memblock.h>
  27. #include <linux/soc/qcom/panel_event_notifier.h>
  28. #include <drm/drm_atomic_uapi.h>
  29. #include <drm/drm_probe_helper.h>
  30. #include "msm_drv.h"
  31. #include "msm_mmu.h"
  32. #include "msm_gem.h"
  33. #include "dsi_display.h"
  34. #include "dsi_drm.h"
  35. #include "sde_wb.h"
  36. #include "dp_display.h"
  37. #include "dp_drm.h"
  38. #include "dp_mst_drm.h"
  39. #include "sde_kms.h"
  40. #include "sde_core_irq.h"
  41. #include "sde_formats.h"
  42. #include "sde_hw_vbif.h"
  43. #include "sde_vbif.h"
  44. #include "sde_encoder.h"
  45. #include "sde_plane.h"
  46. #include "sde_crtc.h"
  47. #include "sde_color_processing.h"
  48. #include "sde_reg_dma.h"
  49. #include "sde_connector.h"
  50. #include "sde_vm.h"
  51. #include <linux/qcom_scm.h>
  52. #include <linux/qcom-iommu-util.h>
  53. #include "soc/qcom/secure_buffer.h"
  54. #include <linux/qtee_shmbridge.h>
  55. #include <linux/gunyah/gh_irq_lend.h>
  56. #define CREATE_TRACE_POINTS
  57. #include "sde_trace.h"
  58. /* defines for secure channel call */
  59. #define MEM_PROTECT_SD_CTRL_SWITCH 0x18
  60. #define MDP_DEVICE_ID 0x1A
  61. #define DEMURA_REGION_NAME_MAX 32
  62. EXPORT_TRACEPOINT_SYMBOL(tracing_mark_write);
  63. static const char * const iommu_ports[] = {
  64. "mdp_0",
  65. };
  66. /**
  67. * Controls size of event log buffer. Specified as a power of 2.
  68. */
  69. #define SDE_EVTLOG_SIZE 1024
  70. /*
  71. * To enable overall DRM driver logging
  72. * # echo 0x2 > /sys/module/drm/parameters/debug
  73. *
  74. * To enable DRM driver h/w logging
  75. * # echo <mask> > /sys/kernel/debug/dri/0/debug/hw_log_mask
  76. *
  77. * See sde_hw_mdss.h for h/w logging mask definitions (search for SDE_DBG_MASK_)
  78. */
  79. #define SDE_DEBUGFS_DIR "msm_sde"
  80. #define SDE_DEBUGFS_HWMASKNAME "hw_log_mask"
  81. #define SDE_KMS_MODESET_LOCK_TIMEOUT_US 500
  82. #define SDE_KMS_MODESET_LOCK_MAX_TRIALS 20
  83. /**
  84. * sdecustom - enable certain driver customizations for sde clients
  85. * Enabling this modifies the standard DRM behavior slightly and assumes
  86. * that the clients have specific knowledge about the modifications that
  87. * are involved, so don't enable this unless you know what you're doing.
  88. *
  89. * Parts of the driver that are affected by this setting may be located by
  90. * searching for invocations of the 'sde_is_custom_client()' function.
  91. *
  92. * This is disabled by default.
  93. */
  94. static bool sdecustom = true;
  95. module_param(sdecustom, bool, 0400);
  96. MODULE_PARM_DESC(sdecustom, "Enable customizations for sde clients");
  97. static int sde_kms_hw_init(struct msm_kms *kms);
  98. static int _sde_kms_mmu_destroy(struct sde_kms *sde_kms);
  99. static int _sde_kms_mmu_init(struct sde_kms *sde_kms);
  100. static int _sde_kms_register_events(struct msm_kms *kms,
  101. struct drm_mode_object *obj, u32 event, bool en);
  102. bool sde_is_custom_client(void)
  103. {
  104. return sdecustom;
  105. }
  106. #ifdef CONFIG_DEBUG_FS
  107. void *sde_debugfs_get_root(struct sde_kms *sde_kms)
  108. {
  109. struct msm_drm_private *priv;
  110. if (!sde_kms || !sde_kms->dev || !sde_kms->dev->dev_private)
  111. return NULL;
  112. priv = sde_kms->dev->dev_private;
  113. return priv->debug_root;
  114. }
  115. static int _sde_debugfs_init(struct sde_kms *sde_kms)
  116. {
  117. void *p;
  118. int rc;
  119. void *debugfs_root;
  120. p = sde_hw_util_get_log_mask_ptr();
  121. if (!sde_kms || !p)
  122. return -EINVAL;
  123. debugfs_root = sde_debugfs_get_root(sde_kms);
  124. if (!debugfs_root)
  125. return -EINVAL;
  126. /* allow debugfs_root to be NULL */
  127. debugfs_create_x32(SDE_DEBUGFS_HWMASKNAME, 0600, debugfs_root, p);
  128. (void) sde_debugfs_vbif_init(sde_kms, debugfs_root);
  129. (void) sde_debugfs_core_irq_init(sde_kms, debugfs_root);
  130. rc = sde_core_perf_debugfs_init(&sde_kms->perf, debugfs_root);
  131. if (rc) {
  132. SDE_ERROR("failed to init perf %d\n", rc);
  133. return rc;
  134. }
  135. sde_rm_debugfs_init(&sde_kms->rm, debugfs_root);
  136. if (sde_kms->catalog->qdss_count)
  137. debugfs_create_u32("qdss", 0600, debugfs_root,
  138. (u32 *)&sde_kms->qdss_enabled);
  139. debugfs_create_u32("pm_suspend_clk_dump", 0600, debugfs_root,
  140. (u32 *)&sde_kms->pm_suspend_clk_dump);
  141. return 0;
  142. }
  143. static void sde_kms_debugfs_destroy(struct msm_kms *kms)
  144. {
  145. struct sde_kms *sde_kms = to_sde_kms(kms);
  146. /* don't need to NULL check debugfs_root */
  147. if (sde_kms) {
  148. sde_debugfs_vbif_destroy(sde_kms);
  149. sde_debugfs_core_irq_destroy(sde_kms);
  150. }
  151. }
  152. static int _sde_kms_dump_clks_state(struct sde_kms *sde_kms)
  153. {
  154. int i;
  155. struct device *dev = sde_kms->dev->dev;
  156. SDE_INFO("runtime PM suspended:%d", pm_runtime_suspended(dev));
  157. for (i = 0; i < sde_kms->dsi_display_count; i++)
  158. dsi_display_dump_clks_state(sde_kms->dsi_displays[i]);
  159. return 0;
  160. }
  161. #else
  162. static int _sde_debugfs_init(struct sde_kms *sde_kms)
  163. {
  164. return 0;
  165. }
  166. static void sde_kms_debugfs_destroy(struct msm_kms *kms)
  167. {
  168. }
  169. static int _sde_kms_dump_clks_state(struct sde_kms *sde_kms)
  170. {
  171. return 0;
  172. }
  173. #endif
  174. static void sde_kms_wait_for_frame_transfer_complete(struct msm_kms *kms,
  175. struct drm_crtc *crtc)
  176. {
  177. struct drm_encoder *encoder;
  178. struct drm_device *dev;
  179. int ret;
  180. if (!kms || !crtc || !crtc->state || !crtc->dev) {
  181. SDE_ERROR("invalid params\n");
  182. return;
  183. }
  184. if (!crtc->state->enable) {
  185. SDE_DEBUG("[crtc:%d] not enable\n", crtc->base.id);
  186. return;
  187. }
  188. if (!crtc->state->active) {
  189. SDE_DEBUG("[crtc:%d] not active\n", crtc->base.id);
  190. return;
  191. }
  192. dev = crtc->dev;
  193. list_for_each_entry(encoder, &dev->mode_config.encoder_list, head) {
  194. if (encoder->crtc != crtc)
  195. continue;
  196. /*
  197. * Video Mode - Wait for VSYNC
  198. * Cmd Mode - Wait for PP_DONE. Will be no-op if transfer is
  199. * complete
  200. */
  201. SDE_EVT32_VERBOSE(DRMID(crtc));
  202. ret = sde_encoder_wait_for_event(encoder, MSM_ENC_TX_COMPLETE);
  203. if (ret && ret != -EWOULDBLOCK) {
  204. SDE_ERROR(
  205. "[crtc: %d][enc: %d] wait for commit done returned %d\n",
  206. crtc->base.id, encoder->base.id, ret);
  207. break;
  208. }
  209. }
  210. }
  211. static int _sde_kms_secure_ctrl_xin_clients(struct sde_kms *sde_kms,
  212. struct drm_crtc *crtc, bool enable)
  213. {
  214. struct drm_device *dev;
  215. struct msm_drm_private *priv;
  216. struct sde_mdss_cfg *sde_cfg;
  217. struct drm_plane *plane;
  218. int i, ret;
  219. dev = sde_kms->dev;
  220. priv = dev->dev_private;
  221. sde_cfg = sde_kms->catalog;
  222. ret = sde_vbif_halt_xin_mask(sde_kms,
  223. sde_cfg->sui_block_xin_mask, enable);
  224. if (ret) {
  225. SDE_ERROR("failed to halt some xin-clients, ret:%d\n", ret);
  226. return ret;
  227. }
  228. if (enable) {
  229. for (i = 0; i < priv->num_planes; i++) {
  230. plane = priv->planes[i];
  231. sde_plane_secure_ctrl_xin_client(plane, crtc);
  232. }
  233. }
  234. return 0;
  235. }
  236. /**
  237. * _sde_kms_scm_call - makes secure channel call to switch the VMIDs
  238. * @sde_kms: Pointer to sde_kms struct
  239. * @vimd: switch the stage 2 translation to this VMID
  240. */
  241. static int _sde_kms_scm_call(struct sde_kms *sde_kms, int vmid)
  242. {
  243. struct device dummy = {};
  244. dma_addr_t dma_handle;
  245. uint32_t num_sids;
  246. uint32_t *sec_sid;
  247. struct sde_mdss_cfg *sde_cfg = sde_kms->catalog;
  248. int ret = 0, i;
  249. struct qtee_shm shm;
  250. bool qtee_en = qtee_shmbridge_is_enabled();
  251. phys_addr_t mem_addr;
  252. u64 mem_size;
  253. num_sids = sde_cfg->sec_sid_mask_count;
  254. if (!num_sids) {
  255. SDE_ERROR("secure SID masks not configured, vmid 0x%x\n", vmid);
  256. return -EINVAL;
  257. }
  258. if (qtee_en) {
  259. ret = qtee_shmbridge_allocate_shm(num_sids * sizeof(uint32_t),
  260. &shm);
  261. if (ret)
  262. return -ENOMEM;
  263. sec_sid = (uint32_t *) shm.vaddr;
  264. mem_addr = shm.paddr;
  265. /**
  266. * SMMUSecureModeSwitch requires the size to be number of SID's
  267. * but shm allocates size in pages. Modify the args as per
  268. * client requirement.
  269. */
  270. mem_size = sizeof(uint32_t) * num_sids;
  271. } else {
  272. sec_sid = kcalloc(num_sids, sizeof(uint32_t), GFP_KERNEL);
  273. if (!sec_sid)
  274. return -ENOMEM;
  275. mem_addr = virt_to_phys(sec_sid);
  276. mem_size = sizeof(uint32_t) * num_sids;
  277. }
  278. for (i = 0; i < num_sids; i++) {
  279. sec_sid[i] = sde_cfg->sec_sid_mask[i];
  280. SDE_DEBUG("sid_mask[%d]: %d\n", i, sec_sid[i]);
  281. }
  282. ret = dma_coerce_mask_and_coherent(&dummy, DMA_BIT_MASK(64));
  283. if (ret) {
  284. SDE_ERROR("Failed to set dma mask for dummy dev %d\n", ret);
  285. goto map_error;
  286. }
  287. set_dma_ops(&dummy, NULL);
  288. dma_handle = dma_map_single(&dummy, sec_sid,
  289. num_sids * sizeof(uint32_t), DMA_TO_DEVICE);
  290. if (dma_mapping_error(&dummy, dma_handle)) {
  291. SDE_ERROR("dma_map_single for dummy dev failed vmid 0x%x\n",
  292. vmid);
  293. goto map_error;
  294. }
  295. SDE_DEBUG("calling scm_call for vmid 0x%x, num_sids %d, qtee_en %d",
  296. vmid, num_sids, qtee_en);
  297. ret = qcom_scm_mem_protect_sd_ctrl(MDP_DEVICE_ID, mem_addr,
  298. mem_size, vmid);
  299. if (ret)
  300. SDE_ERROR("Error:scm_call2, vmid %d, ret%d\n",
  301. vmid, ret);
  302. SDE_EVT32(MEM_PROTECT_SD_CTRL_SWITCH, MDP_DEVICE_ID, mem_size,
  303. vmid, qtee_en, num_sids, ret);
  304. dma_unmap_single(&dummy, dma_handle,
  305. num_sids * sizeof(uint32_t), DMA_TO_DEVICE);
  306. map_error:
  307. if (qtee_en)
  308. qtee_shmbridge_free_shm(&shm);
  309. else
  310. kfree(sec_sid);
  311. return ret;
  312. }
  313. static int _sde_kms_detach_all_cb(struct sde_kms *sde_kms, u32 vmid)
  314. {
  315. u32 ret;
  316. if (atomic_inc_return(&sde_kms->detach_all_cb) > 1)
  317. return 0;
  318. /* detach_all_contexts */
  319. ret = sde_kms_mmu_detach(sde_kms, false);
  320. if (ret) {
  321. SDE_ERROR("failed to detach all cb ret:%d\n", ret);
  322. goto mmu_error;
  323. }
  324. ret = _sde_kms_scm_call(sde_kms, vmid);
  325. if (ret) {
  326. SDE_ERROR("scm call failed for vmid:%d\n", vmid);
  327. goto scm_error;
  328. }
  329. return 0;
  330. scm_error:
  331. sde_kms_mmu_attach(sde_kms, false);
  332. mmu_error:
  333. atomic_dec(&sde_kms->detach_all_cb);
  334. return ret;
  335. }
  336. static int _sde_kms_attach_all_cb(struct sde_kms *sde_kms, u32 vmid,
  337. u32 old_vmid)
  338. {
  339. u32 ret;
  340. if (atomic_dec_return(&sde_kms->detach_all_cb) != 0)
  341. return 0;
  342. ret = _sde_kms_scm_call(sde_kms, vmid);
  343. if (ret) {
  344. SDE_ERROR("scm call failed for vmid:%d\n", vmid);
  345. goto scm_error;
  346. }
  347. /* attach_all_contexts */
  348. ret = sde_kms_mmu_attach(sde_kms, false);
  349. if (ret) {
  350. SDE_ERROR("failed to attach all cb ret:%d\n", ret);
  351. goto mmu_error;
  352. }
  353. return 0;
  354. mmu_error:
  355. _sde_kms_scm_call(sde_kms, old_vmid);
  356. scm_error:
  357. atomic_inc(&sde_kms->detach_all_cb);
  358. return ret;
  359. }
  360. static int _sde_kms_detach_sec_cb(struct sde_kms *sde_kms, int vmid)
  361. {
  362. u32 ret;
  363. if (atomic_inc_return(&sde_kms->detach_sec_cb) > 1)
  364. return 0;
  365. /* detach secure_context */
  366. ret = sde_kms_mmu_detach(sde_kms, true);
  367. if (ret) {
  368. SDE_ERROR("failed to detach sec cb ret:%d\n", ret);
  369. goto mmu_error;
  370. }
  371. ret = _sde_kms_scm_call(sde_kms, vmid);
  372. if (ret) {
  373. SDE_ERROR("scm call failed for vmid:%d\n", vmid);
  374. goto scm_error;
  375. }
  376. return 0;
  377. scm_error:
  378. sde_kms_mmu_attach(sde_kms, true);
  379. mmu_error:
  380. atomic_dec(&sde_kms->detach_sec_cb);
  381. return ret;
  382. }
  383. static int _sde_kms_attach_sec_cb(struct sde_kms *sde_kms, u32 vmid,
  384. u32 old_vmid)
  385. {
  386. u32 ret;
  387. if (atomic_dec_return(&sde_kms->detach_sec_cb) != 0)
  388. return 0;
  389. ret = _sde_kms_scm_call(sde_kms, vmid);
  390. if (ret) {
  391. goto scm_error;
  392. SDE_ERROR("scm call failed for vmid:%d\n", vmid);
  393. }
  394. ret = sde_kms_mmu_attach(sde_kms, true);
  395. if (ret) {
  396. SDE_ERROR("failed to attach sec cb ret:%d\n", ret);
  397. goto mmu_error;
  398. }
  399. return 0;
  400. mmu_error:
  401. _sde_kms_scm_call(sde_kms, old_vmid);
  402. scm_error:
  403. atomic_inc(&sde_kms->detach_sec_cb);
  404. return ret;
  405. }
  406. static int _sde_kms_sui_misr_ctrl(struct sde_kms *sde_kms,
  407. struct drm_crtc *crtc, bool enable)
  408. {
  409. int ret;
  410. if (enable) {
  411. ret = pm_runtime_get_sync(sde_kms->dev->dev);
  412. if (ret < 0) {
  413. SDE_ERROR("failed to enable resource, ret:%d\n", ret);
  414. return ret;
  415. }
  416. sde_crtc_misr_setup(crtc, true, 1);
  417. ret = _sde_kms_secure_ctrl_xin_clients(sde_kms, crtc, true);
  418. if (ret) {
  419. sde_crtc_misr_setup(crtc, false, 0);
  420. pm_runtime_put_sync(sde_kms->dev->dev);
  421. return ret;
  422. }
  423. } else {
  424. _sde_kms_secure_ctrl_xin_clients(sde_kms, crtc, false);
  425. sde_crtc_misr_setup(crtc, false, 0);
  426. pm_runtime_put_sync(sde_kms->dev->dev);
  427. }
  428. return 0;
  429. }
  430. static int _sde_kms_secure_ctrl(struct sde_kms *sde_kms, struct drm_crtc *crtc,
  431. bool post_commit)
  432. {
  433. struct sde_kms_smmu_state_data *smmu_state = &sde_kms->smmu_state;
  434. int old_smmu_state = smmu_state->state;
  435. int ret = 0;
  436. u32 vmid;
  437. if (!sde_kms || !crtc) {
  438. SDE_ERROR("invalid argument(s)\n");
  439. return -EINVAL;
  440. }
  441. SDE_EVT32(DRMID(crtc), smmu_state->state, smmu_state->transition_type,
  442. post_commit, smmu_state->sui_misr_state,
  443. smmu_state->secure_level, SDE_EVTLOG_FUNC_ENTRY);
  444. if ((!smmu_state->transition_type) ||
  445. ((smmu_state->transition_type == POST_COMMIT) && !post_commit))
  446. /* Bail out */
  447. return 0;
  448. /* enable sui misr if requested, before the transition */
  449. if (smmu_state->sui_misr_state == SUI_MISR_ENABLE_REQ) {
  450. ret = _sde_kms_sui_misr_ctrl(sde_kms, crtc, true);
  451. if (ret) {
  452. smmu_state->sui_misr_state = NONE;
  453. goto end;
  454. }
  455. }
  456. mutex_lock(&sde_kms->secure_transition_lock);
  457. switch (smmu_state->state) {
  458. case DETACH_ALL_REQ:
  459. ret = _sde_kms_detach_all_cb(sde_kms, VMID_CP_SEC_DISPLAY);
  460. if (!ret)
  461. smmu_state->state = DETACHED;
  462. break;
  463. case ATTACH_ALL_REQ:
  464. ret = _sde_kms_attach_all_cb(sde_kms, VMID_CP_PIXEL,
  465. VMID_CP_SEC_DISPLAY);
  466. if (!ret) {
  467. smmu_state->state = ATTACHED;
  468. smmu_state->secure_level = SDE_DRM_SEC_NON_SEC;
  469. }
  470. break;
  471. case DETACH_SEC_REQ:
  472. vmid = (smmu_state->secure_level == SDE_DRM_SEC_ONLY) ?
  473. VMID_CP_SEC_DISPLAY : VMID_CP_CAMERA_PREVIEW;
  474. ret = _sde_kms_detach_sec_cb(sde_kms, vmid);
  475. if (!ret)
  476. smmu_state->state = DETACHED_SEC;
  477. break;
  478. case ATTACH_SEC_REQ:
  479. vmid = (smmu_state->secure_level == SDE_DRM_SEC_ONLY) ?
  480. VMID_CP_SEC_DISPLAY : VMID_CP_CAMERA_PREVIEW;
  481. ret = _sde_kms_attach_sec_cb(sde_kms, VMID_CP_PIXEL, vmid);
  482. if (!ret) {
  483. smmu_state->state = ATTACHED;
  484. smmu_state->secure_level = SDE_DRM_SEC_NON_SEC;
  485. }
  486. break;
  487. default:
  488. SDE_ERROR("crtc%d: invalid smmu state %d transition type %d\n",
  489. DRMID(crtc), smmu_state->state,
  490. smmu_state->transition_type);
  491. ret = -EINVAL;
  492. break;
  493. }
  494. mutex_unlock(&sde_kms->secure_transition_lock);
  495. /* disable sui misr if requested, after the transition */
  496. if (!ret && (smmu_state->sui_misr_state == SUI_MISR_DISABLE_REQ)) {
  497. ret = _sde_kms_sui_misr_ctrl(sde_kms, crtc, false);
  498. if (ret)
  499. goto end;
  500. }
  501. end:
  502. smmu_state->transition_error = false;
  503. if (ret) {
  504. smmu_state->transition_error = true;
  505. SDE_ERROR(
  506. "crtc%d: req_state %d, new_state %d, sec_lvl %d, ret %d\n",
  507. DRMID(crtc), old_smmu_state, smmu_state->state,
  508. smmu_state->secure_level, ret);
  509. smmu_state->state = smmu_state->prev_state;
  510. smmu_state->secure_level = smmu_state->prev_secure_level;
  511. if (smmu_state->sui_misr_state == SUI_MISR_ENABLE_REQ)
  512. _sde_kms_sui_misr_ctrl(sde_kms, crtc, false);
  513. }
  514. SDE_DEBUG("crtc %d: req_state %d, new_state %d, sec_lvl %d, ret %d\n",
  515. DRMID(crtc), old_smmu_state, smmu_state->state,
  516. smmu_state->secure_level, ret);
  517. SDE_EVT32(DRMID(crtc), smmu_state->state, smmu_state->prev_state,
  518. smmu_state->transition_type,
  519. smmu_state->transition_error,
  520. smmu_state->secure_level, smmu_state->prev_secure_level,
  521. smmu_state->sui_misr_state, ret, SDE_EVTLOG_FUNC_EXIT);
  522. smmu_state->sui_misr_state = NONE;
  523. smmu_state->transition_type = NONE;
  524. return ret;
  525. }
  526. static int sde_kms_prepare_secure_transition(struct msm_kms *kms,
  527. struct drm_atomic_state *state)
  528. {
  529. struct drm_crtc *crtc;
  530. struct drm_crtc_state *old_crtc_state;
  531. struct drm_plane_state *old_plane_state, *new_plane_state;
  532. struct drm_plane *plane;
  533. struct drm_plane_state *plane_state;
  534. struct sde_kms *sde_kms = to_sde_kms(kms);
  535. struct drm_device *dev = sde_kms->dev;
  536. int i, ops = 0, ret = 0;
  537. bool old_valid_fb = false;
  538. struct sde_kms_smmu_state_data *smmu_state = &sde_kms->smmu_state;
  539. for_each_old_crtc_in_state(state, crtc, old_crtc_state, i) {
  540. if (!crtc->state || !crtc->state->active)
  541. continue;
  542. /*
  543. * It is safe to assume only one active crtc,
  544. * and compatible translation modes on the
  545. * planes staged on this crtc.
  546. * otherwise validation would have failed.
  547. * For this CRTC,
  548. */
  549. /*
  550. * 1. Check if old state on the CRTC has planes
  551. * staged with valid fbs
  552. */
  553. for_each_old_plane_in_state(state, plane, plane_state, i) {
  554. if (!plane_state->crtc)
  555. continue;
  556. if (plane_state->fb) {
  557. old_valid_fb = true;
  558. break;
  559. }
  560. }
  561. /*
  562. * 2.Get the operations needed to be performed before
  563. * secure transition can be initiated.
  564. */
  565. ops = sde_crtc_get_secure_transition_ops(crtc,
  566. old_crtc_state, old_valid_fb);
  567. if (ops < 0) {
  568. SDE_ERROR("invalid secure operations %x\n", ops);
  569. return ops;
  570. }
  571. if (!ops) {
  572. smmu_state->transition_error = false;
  573. goto no_ops;
  574. }
  575. SDE_DEBUG("%d:secure operations(%x) started on state:%pK\n",
  576. crtc->base.id, ops, crtc->state);
  577. SDE_EVT32(DRMID(crtc), ops, crtc->state, old_valid_fb);
  578. /* 3. Perform operations needed for secure transition */
  579. if (ops & SDE_KMS_OPS_WAIT_FOR_TX_DONE) {
  580. SDE_DEBUG("wait_for_transfer_done\n");
  581. sde_kms_wait_for_frame_transfer_complete(kms, crtc);
  582. }
  583. if (ops & SDE_KMS_OPS_CLEANUP_PLANE_FB) {
  584. SDE_DEBUG("cleanup planes\n");
  585. drm_atomic_helper_cleanup_planes(dev, state);
  586. for_each_oldnew_plane_in_state(state, plane,
  587. old_plane_state, new_plane_state, i)
  588. sde_plane_destroy_fb(old_plane_state);
  589. }
  590. if (ops & SDE_KMS_OPS_SECURE_STATE_CHANGE) {
  591. SDE_DEBUG("secure ctrl\n");
  592. _sde_kms_secure_ctrl(sde_kms, crtc, false);
  593. }
  594. if (ops & SDE_KMS_OPS_PREPARE_PLANE_FB) {
  595. SDE_DEBUG("prepare planes %d",
  596. crtc->state->plane_mask);
  597. drm_atomic_crtc_for_each_plane(plane,
  598. crtc) {
  599. const struct drm_plane_helper_funcs *funcs;
  600. plane_state = plane->state;
  601. funcs = plane->helper_private;
  602. SDE_DEBUG("psde:%d FB[%u]\n",
  603. plane->base.id,
  604. plane->fb->base.id);
  605. if (!funcs)
  606. continue;
  607. if (funcs->prepare_fb(plane, plane_state)) {
  608. ret = funcs->prepare_fb(plane,
  609. plane_state);
  610. if (ret)
  611. return ret;
  612. }
  613. }
  614. }
  615. SDE_EVT32(DRMID(crtc), SDE_EVTLOG_FUNC_EXIT);
  616. SDE_DEBUG("secure operations completed\n");
  617. }
  618. no_ops:
  619. return 0;
  620. }
  621. static int _sde_kms_release_shared_buffer(unsigned int mem_addr,
  622. unsigned int splash_buffer_size,
  623. unsigned int ramdump_base,
  624. unsigned int ramdump_buffer_size)
  625. {
  626. unsigned long pfn_start, pfn_end, pfn_idx;
  627. int ret = 0;
  628. if (!mem_addr || !splash_buffer_size) {
  629. SDE_ERROR("invalid params\n");
  630. return -EINVAL;
  631. }
  632. /* leave ramdump memory only if base address matches */
  633. if (ramdump_base == mem_addr &&
  634. ramdump_buffer_size <= splash_buffer_size) {
  635. mem_addr += ramdump_buffer_size;
  636. splash_buffer_size -= ramdump_buffer_size;
  637. }
  638. pfn_start = mem_addr >> PAGE_SHIFT;
  639. pfn_end = (mem_addr + splash_buffer_size) >> PAGE_SHIFT;
  640. ret = memblock_free(mem_addr, splash_buffer_size);
  641. if (ret) {
  642. SDE_ERROR("continuous splash memory free failed:%d\n", ret);
  643. return ret;
  644. }
  645. for (pfn_idx = pfn_start; pfn_idx < pfn_end; pfn_idx++)
  646. free_reserved_page(pfn_to_page(pfn_idx));
  647. return ret;
  648. }
  649. static int _sde_kms_splash_mem_get(struct sde_kms *sde_kms,
  650. struct sde_splash_mem *splash)
  651. {
  652. struct msm_mmu *mmu = NULL;
  653. int ret = 0;
  654. if (!sde_kms->aspace[0]) {
  655. SDE_ERROR("aspace not found for sde kms node\n");
  656. return -EINVAL;
  657. }
  658. mmu = sde_kms->aspace[0]->mmu;
  659. if (!mmu) {
  660. SDE_ERROR("mmu not found for aspace\n");
  661. return -EINVAL;
  662. }
  663. if (!splash || !mmu->funcs || !mmu->funcs->one_to_one_map) {
  664. SDE_ERROR("invalid input params for map\n");
  665. return -EINVAL;
  666. }
  667. if (!splash->ref_cnt) {
  668. ret = mmu->funcs->one_to_one_map(mmu, splash->splash_buf_base,
  669. splash->splash_buf_base,
  670. splash->splash_buf_size,
  671. IOMMU_READ | IOMMU_NOEXEC);
  672. if (ret)
  673. SDE_ERROR("splash memory smmu map failed:%d\n", ret);
  674. }
  675. splash->ref_cnt++;
  676. SDE_DEBUG("one2one mapping done for base:%lx size:%x ref_cnt:%d\n",
  677. splash->splash_buf_base,
  678. splash->splash_buf_size,
  679. splash->ref_cnt);
  680. return ret;
  681. }
  682. static int _sde_kms_map_all_splash_regions(struct sde_kms *sde_kms)
  683. {
  684. int i = 0;
  685. int ret = 0;
  686. struct sde_splash_mem *region;
  687. if (!sde_kms)
  688. return -EINVAL;
  689. for (i = 0; i < sde_kms->splash_data.num_splash_displays; i++) {
  690. region = sde_kms->splash_data.splash_display[i].splash;
  691. ret = _sde_kms_splash_mem_get(sde_kms, region);
  692. if (ret)
  693. return ret;
  694. /* Demura is optional and need not exist */
  695. region = sde_kms->splash_data.splash_display[i].demura;
  696. if (region) {
  697. ret = _sde_kms_splash_mem_get(sde_kms, region);
  698. if (ret)
  699. return ret;
  700. }
  701. }
  702. return ret;
  703. }
  704. static int _sde_kms_splash_mem_put(struct sde_kms *sde_kms,
  705. struct sde_splash_mem *splash)
  706. {
  707. struct msm_mmu *mmu = NULL;
  708. int rc = 0;
  709. if (!sde_kms || !sde_kms->aspace[0] || !sde_kms->aspace[0]->mmu) {
  710. SDE_ERROR("invalid params\n");
  711. return -EINVAL;
  712. }
  713. mmu = sde_kms->aspace[0]->mmu;
  714. if (!splash || !splash->ref_cnt ||
  715. !mmu || !mmu->funcs || !mmu->funcs->one_to_one_unmap)
  716. return -EINVAL;
  717. splash->ref_cnt--;
  718. SDE_DEBUG("splash base:%lx refcnt:%d\n",
  719. splash->splash_buf_base, splash->ref_cnt);
  720. if (!splash->ref_cnt) {
  721. mmu->funcs->one_to_one_unmap(mmu, splash->splash_buf_base,
  722. splash->splash_buf_size);
  723. rc = _sde_kms_release_shared_buffer(splash->splash_buf_base,
  724. splash->splash_buf_size, splash->ramdump_base,
  725. splash->ramdump_size);
  726. splash->splash_buf_base = 0;
  727. splash->splash_buf_size = 0;
  728. }
  729. return rc;
  730. }
  731. static int _sde_kms_unmap_all_splash_regions(struct sde_kms *sde_kms)
  732. {
  733. int i = 0;
  734. int ret = 0, failure = 0;
  735. struct sde_splash_mem *region;
  736. if (!sde_kms || !sde_kms->splash_data.num_splash_regions)
  737. return -EINVAL;
  738. for (i = 0; i < sde_kms->splash_data.num_splash_displays; i++) {
  739. region = sde_kms->splash_data.splash_display[i].splash;
  740. ret = _sde_kms_splash_mem_put(sde_kms, region);
  741. if (ret) {
  742. failure = 1;
  743. pr_err("Error unmapping splash mem for display %d\n",
  744. i);
  745. }
  746. /* Demura is optional and need not exist */
  747. region = sde_kms->splash_data.splash_display[i].demura;
  748. if (region) {
  749. ret = _sde_kms_splash_mem_put(sde_kms, region);
  750. if (ret) {
  751. failure = 1;
  752. pr_err("Error unmapping demura mem for display %d\n",
  753. i);
  754. }
  755. }
  756. }
  757. if (failure)
  758. ret = -EINVAL;
  759. return ret;
  760. }
  761. static int _sde_kms_get_blank(struct drm_crtc_state *crtc_state,
  762. struct drm_connector_state *conn_state)
  763. {
  764. int lp_mode, blank;
  765. if (crtc_state->active)
  766. lp_mode = sde_connector_get_property(conn_state,
  767. CONNECTOR_PROP_LP);
  768. else
  769. lp_mode = SDE_MODE_DPMS_OFF;
  770. switch (lp_mode) {
  771. case SDE_MODE_DPMS_ON:
  772. blank = DRM_PANEL_EVENT_UNBLANK;
  773. break;
  774. case SDE_MODE_DPMS_LP1:
  775. case SDE_MODE_DPMS_LP2:
  776. blank = DRM_PANEL_EVENT_BLANK_LP;
  777. break;
  778. case SDE_MODE_DPMS_OFF:
  779. default:
  780. blank = DRM_PANEL_EVENT_BLANK;
  781. break;
  782. }
  783. return blank;
  784. }
  785. static void _sde_kms_drm_check_dpms(struct drm_atomic_state *old_state,
  786. bool is_pre_commit)
  787. {
  788. struct panel_event_notification notification;
  789. struct drm_connector *connector;
  790. struct drm_connector_state *old_conn_state;
  791. struct drm_crtc_state *old_crtc_state;
  792. struct drm_crtc *crtc;
  793. struct sde_connector *c_conn;
  794. int i, old_mode, new_mode, old_fps, new_fps;
  795. enum panel_event_notifier_tag panel_type;
  796. for_each_old_connector_in_state(old_state, connector,
  797. old_conn_state, i) {
  798. crtc = connector->state->crtc ? connector->state->crtc :
  799. old_conn_state->crtc;
  800. if (!crtc)
  801. continue;
  802. new_fps = drm_mode_vrefresh(&crtc->state->mode);
  803. new_mode = _sde_kms_get_blank(crtc->state, connector->state);
  804. if (old_conn_state->crtc) {
  805. old_crtc_state = drm_atomic_get_existing_crtc_state(
  806. old_state, old_conn_state->crtc);
  807. old_fps = drm_mode_vrefresh(&old_crtc_state->mode);
  808. old_mode = _sde_kms_get_blank(old_crtc_state,
  809. old_conn_state);
  810. } else {
  811. old_fps = 0;
  812. old_mode = DRM_PANEL_EVENT_BLANK;
  813. }
  814. if ((old_mode != new_mode) || (old_fps != new_fps)) {
  815. c_conn = to_sde_connector(connector);
  816. SDE_EVT32(old_mode, new_mode, old_fps, new_fps,
  817. c_conn->panel, crtc->state->active,
  818. old_conn_state->crtc);
  819. pr_debug("change detected for connector:%s (power mode %d->%d, fps %d->%d)\n",
  820. c_conn->name, old_mode, new_mode, old_fps, new_fps);
  821. /* If suspend resume and fps change are happening
  822. * at the same time, give preference to power mode
  823. * changes rather than fps change.
  824. */
  825. if ((old_mode == new_mode) && (old_fps != new_fps))
  826. new_mode = DRM_PANEL_EVENT_FPS_CHANGE;
  827. if (!c_conn->panel)
  828. continue;
  829. panel_type = sde_encoder_is_primary_display(
  830. connector->encoder) ?
  831. PANEL_EVENT_NOTIFICATION_PRIMARY :
  832. PANEL_EVENT_NOTIFICATION_SECONDARY;
  833. notification.notif_type = new_mode;
  834. notification.panel = c_conn->panel;
  835. notification.notif_data.old_fps = old_fps;
  836. notification.notif_data.new_fps = new_fps;
  837. notification.notif_data.early_trigger = is_pre_commit;
  838. panel_event_notification_trigger(panel_type,
  839. &notification);
  840. }
  841. }
  842. }
  843. static struct drm_crtc *sde_kms_vm_get_vm_crtc(
  844. struct drm_atomic_state *state)
  845. {
  846. int i;
  847. enum sde_crtc_vm_req vm_req = VM_REQ_NONE;
  848. struct drm_crtc *crtc, *vm_crtc = NULL;
  849. struct drm_crtc_state *new_cstate, *old_cstate;
  850. struct sde_crtc_state *vm_cstate;
  851. for_each_oldnew_crtc_in_state(state, crtc, old_cstate, new_cstate, i) {
  852. if (!new_cstate->active && !old_cstate->active)
  853. continue;
  854. vm_cstate = to_sde_crtc_state(new_cstate);
  855. vm_req = sde_crtc_get_property(vm_cstate,
  856. CRTC_PROP_VM_REQ_STATE);
  857. if (vm_req != VM_REQ_NONE) {
  858. SDE_DEBUG("valid vm request:%d found on crtc-%d\n",
  859. vm_req, crtc->base.id);
  860. vm_crtc = crtc;
  861. break;
  862. }
  863. }
  864. return vm_crtc;
  865. }
  866. int sde_kms_vm_primary_prepare_commit(struct sde_kms *sde_kms,
  867. struct drm_atomic_state *state)
  868. {
  869. struct drm_device *ddev;
  870. struct drm_crtc *crtc;
  871. struct drm_crtc_state *new_cstate;
  872. struct drm_encoder *encoder;
  873. struct drm_connector *connector;
  874. struct sde_vm_ops *vm_ops;
  875. struct sde_crtc_state *cstate;
  876. enum sde_crtc_vm_req vm_req;
  877. int rc = 0;
  878. ddev = sde_kms->dev;
  879. vm_ops = sde_vm_get_ops(sde_kms);
  880. if (!vm_ops)
  881. return -EINVAL;
  882. crtc = sde_kms_vm_get_vm_crtc(state);
  883. if (!crtc)
  884. return 0;
  885. new_cstate = drm_atomic_get_new_crtc_state(state, crtc);
  886. cstate = to_sde_crtc_state(new_cstate);
  887. vm_req = sde_crtc_get_property(cstate, CRTC_PROP_VM_REQ_STATE);
  888. if (vm_req != VM_REQ_ACQUIRE)
  889. return 0;
  890. /* enable MDSS irq line */
  891. sde_irq_update(&sde_kms->base, true);
  892. /* clear the stale IRQ status bits */
  893. if (sde_kms->hw_intr && sde_kms->hw_intr->ops.clear_all_irqs)
  894. sde_kms->hw_intr->ops.clear_all_irqs(sde_kms->hw_intr);
  895. /* enable the display path IRQ's */
  896. drm_for_each_encoder_mask(encoder, crtc->dev,
  897. crtc->state->encoder_mask) {
  898. if (sde_encoder_in_clone_mode(encoder))
  899. continue;
  900. sde_encoder_irq_control(encoder, true);
  901. }
  902. /* Schedule ESD work */
  903. list_for_each_entry(connector, &ddev->mode_config.connector_list, head)
  904. if (drm_connector_mask(connector) & crtc->state->connector_mask)
  905. sde_connector_schedule_status_work(connector, true);
  906. /* enable vblank events */
  907. drm_crtc_vblank_on(crtc);
  908. sde_dbg_set_hw_ownership_status(true);
  909. /* handle non-SDE pre_acquire */
  910. if (vm_ops->vm_client_post_acquire)
  911. rc = vm_ops->vm_client_post_acquire(sde_kms);
  912. return rc;
  913. }
  914. int sde_kms_vm_trusted_prepare_commit(struct sde_kms *sde_kms,
  915. struct drm_atomic_state *state)
  916. {
  917. struct drm_device *ddev;
  918. struct drm_plane *plane;
  919. struct drm_crtc *crtc;
  920. struct drm_crtc_state *new_cstate;
  921. struct sde_crtc_state *cstate;
  922. enum sde_crtc_vm_req vm_req;
  923. ddev = sde_kms->dev;
  924. crtc = sde_kms_vm_get_vm_crtc(state);
  925. if (!crtc)
  926. return 0;
  927. new_cstate = drm_atomic_get_new_crtc_state(state, crtc);
  928. cstate = to_sde_crtc_state(new_cstate);
  929. vm_req = sde_crtc_get_property(cstate, CRTC_PROP_VM_REQ_STATE);
  930. if (vm_req != VM_REQ_ACQUIRE)
  931. return 0;
  932. /* Clear the stale IRQ status bits */
  933. if (sde_kms->hw_intr && sde_kms->hw_intr->ops.clear_all_irqs)
  934. sde_kms->hw_intr->ops.clear_all_irqs(sde_kms->hw_intr);
  935. /* Program the SID's for the trusted VM */
  936. list_for_each_entry(plane, &ddev->mode_config.plane_list, head)
  937. sde_plane_set_sid(plane, 1);
  938. sde_hw_set_lutdma_sid(sde_kms->hw_sid, 1);
  939. sde_dbg_set_hw_ownership_status(true);
  940. return 0;
  941. }
  942. static void sde_kms_prepare_commit(struct msm_kms *kms,
  943. struct drm_atomic_state *state)
  944. {
  945. struct sde_kms *sde_kms;
  946. struct msm_drm_private *priv;
  947. struct drm_device *dev;
  948. struct drm_encoder *encoder;
  949. struct drm_crtc *crtc;
  950. struct drm_crtc_state *cstate;
  951. struct sde_vm_ops *vm_ops;
  952. int i, rc;
  953. if (!kms)
  954. return;
  955. sde_kms = to_sde_kms(kms);
  956. dev = sde_kms->dev;
  957. if (!dev || !dev->dev_private)
  958. return;
  959. priv = dev->dev_private;
  960. SDE_ATRACE_BEGIN("prepare_commit");
  961. rc = pm_runtime_get_sync(sde_kms->dev->dev);
  962. if (rc < 0) {
  963. SDE_ERROR("failed to enable power resources %d\n", rc);
  964. SDE_EVT32(rc, SDE_EVTLOG_ERROR);
  965. goto end;
  966. }
  967. if (sde_kms->first_kickoff) {
  968. sde_power_scale_reg_bus(&priv->phandle, VOTE_INDEX_HIGH, false);
  969. sde_kms->first_kickoff = false;
  970. }
  971. for_each_new_crtc_in_state(state, crtc, cstate, i) {
  972. drm_for_each_encoder_mask(encoder, dev, cstate->encoder_mask) {
  973. if (sde_encoder_prepare_commit(encoder) == -ETIMEDOUT) {
  974. SDE_ERROR("crtc:%d, initiating hw reset\n",
  975. DRMID(crtc));
  976. sde_encoder_needs_hw_reset(encoder);
  977. sde_crtc_set_needs_hw_reset(crtc);
  978. }
  979. }
  980. }
  981. /*
  982. * NOTE: for secure use cases we want to apply the new HW
  983. * configuration only after completing preparation for secure
  984. * transitions prepare below if any transtions is required.
  985. */
  986. sde_kms_prepare_secure_transition(kms, state);
  987. vm_ops = sde_vm_get_ops(sde_kms);
  988. if (!vm_ops)
  989. goto end_vm;
  990. if (vm_ops->vm_prepare_commit)
  991. vm_ops->vm_prepare_commit(sde_kms, state);
  992. end_vm:
  993. _sde_kms_drm_check_dpms(state, true);
  994. end:
  995. SDE_ATRACE_END("prepare_commit");
  996. }
  997. static void sde_kms_commit(struct msm_kms *kms,
  998. struct drm_atomic_state *old_state)
  999. {
  1000. struct sde_kms *sde_kms;
  1001. struct drm_crtc *crtc;
  1002. struct drm_crtc_state *old_crtc_state;
  1003. int i;
  1004. if (!kms || !old_state)
  1005. return;
  1006. sde_kms = to_sde_kms(kms);
  1007. if (!sde_kms_power_resource_is_enabled(sde_kms->dev)) {
  1008. SDE_ERROR("power resource is not enabled\n");
  1009. return;
  1010. }
  1011. SDE_ATRACE_BEGIN("sde_kms_commit");
  1012. for_each_old_crtc_in_state(old_state, crtc, old_crtc_state, i) {
  1013. if (crtc->state->active) {
  1014. SDE_EVT32(DRMID(crtc), old_state);
  1015. sde_crtc_commit_kickoff(crtc, old_crtc_state);
  1016. }
  1017. }
  1018. SDE_ATRACE_END("sde_kms_commit");
  1019. }
  1020. static void _sde_kms_free_splash_display_data(struct sde_kms *sde_kms,
  1021. struct sde_splash_display *splash_display)
  1022. {
  1023. if (!sde_kms || !splash_display ||
  1024. !sde_kms->splash_data.num_splash_displays)
  1025. return;
  1026. if (sde_kms->splash_data.num_splash_regions) {
  1027. _sde_kms_splash_mem_put(sde_kms, splash_display->splash);
  1028. if (splash_display->demura)
  1029. _sde_kms_splash_mem_put(sde_kms,
  1030. splash_display->demura);
  1031. }
  1032. sde_kms->splash_data.num_splash_displays--;
  1033. SDE_DEBUG("cont_splash handoff done, remaining:%d\n",
  1034. sde_kms->splash_data.num_splash_displays);
  1035. memset(splash_display, 0x0, sizeof(struct sde_splash_display));
  1036. }
  1037. static void _sde_kms_release_splash_resource(struct sde_kms *sde_kms,
  1038. struct drm_crtc *crtc)
  1039. {
  1040. struct msm_drm_private *priv;
  1041. struct sde_splash_display *splash_display;
  1042. int i;
  1043. if (!sde_kms || !crtc)
  1044. return;
  1045. priv = sde_kms->dev->dev_private;
  1046. if (!crtc->state->active || !sde_kms->splash_data.num_splash_displays)
  1047. return;
  1048. SDE_EVT32(DRMID(crtc), crtc->state->active,
  1049. sde_kms->splash_data.num_splash_displays);
  1050. for (i = 0; i < MAX_DSI_DISPLAYS; i++) {
  1051. splash_display = &sde_kms->splash_data.splash_display[i];
  1052. if (splash_display->encoder &&
  1053. crtc == splash_display->encoder->crtc)
  1054. break;
  1055. }
  1056. if (i >= MAX_DSI_DISPLAYS)
  1057. return;
  1058. if (splash_display->cont_splash_enabled) {
  1059. sde_encoder_update_caps_for_cont_splash(splash_display->encoder,
  1060. splash_display, false);
  1061. _sde_kms_free_splash_display_data(sde_kms, splash_display);
  1062. }
  1063. /* remove the votes if all displays are done with splash */
  1064. if (!sde_kms->splash_data.num_splash_displays) {
  1065. for (i = 0; i < SDE_POWER_HANDLE_DBUS_ID_MAX; i++)
  1066. sde_power_data_bus_set_quota(&priv->phandle, i,
  1067. SDE_POWER_HANDLE_ENABLE_BUS_AB_QUOTA,
  1068. priv->phandle.ib_quota[i] ? priv->phandle.ib_quota[i] :
  1069. SDE_POWER_HANDLE_ENABLE_BUS_IB_QUOTA);
  1070. pm_runtime_put_sync(sde_kms->dev->dev);
  1071. }
  1072. }
  1073. int sde_kms_vm_trusted_post_commit(struct sde_kms *sde_kms,
  1074. struct drm_atomic_state *state)
  1075. {
  1076. struct sde_vm_ops *vm_ops;
  1077. struct drm_device *ddev;
  1078. struct drm_crtc *crtc;
  1079. struct drm_plane *plane;
  1080. struct drm_encoder *encoder;
  1081. struct sde_crtc_state *cstate;
  1082. struct drm_crtc_state *new_cstate;
  1083. enum sde_crtc_vm_req vm_req;
  1084. int rc = 0;
  1085. if (!sde_kms || !sde_vm_is_enabled(sde_kms))
  1086. return -EINVAL;
  1087. vm_ops = sde_vm_get_ops(sde_kms);
  1088. ddev = sde_kms->dev;
  1089. crtc = sde_kms_vm_get_vm_crtc(state);
  1090. if (!crtc)
  1091. return 0;
  1092. new_cstate = drm_atomic_get_new_crtc_state(state, crtc);
  1093. cstate = to_sde_crtc_state(new_cstate);
  1094. vm_req = sde_crtc_get_property(cstate, CRTC_PROP_VM_REQ_STATE);
  1095. if (vm_req != VM_REQ_RELEASE)
  1096. return 0;
  1097. /* if vm_req is enabled, once CRTC on the commit is guaranteed */
  1098. sde_kms_wait_for_frame_transfer_complete(&sde_kms->base, crtc);
  1099. drm_for_each_encoder_mask(encoder, crtc->dev,
  1100. crtc->state->encoder_mask) {
  1101. if (sde_encoder_in_clone_mode(encoder))
  1102. continue;
  1103. sde_encoder_irq_control(encoder, false);
  1104. }
  1105. list_for_each_entry(plane, &ddev->mode_config.plane_list, head)
  1106. sde_plane_set_sid(plane, 0);
  1107. sde_hw_set_lutdma_sid(sde_kms->hw_sid, 0);
  1108. sde_dbg_set_hw_ownership_status(false);
  1109. sde_vm_lock(sde_kms);
  1110. if (vm_ops->vm_release)
  1111. rc = vm_ops->vm_release(sde_kms);
  1112. sde_vm_unlock(sde_kms);
  1113. return rc;
  1114. }
  1115. int sde_kms_vm_pre_release(struct sde_kms *sde_kms,
  1116. struct drm_atomic_state *state)
  1117. {
  1118. struct drm_device *ddev;
  1119. struct drm_crtc *crtc;
  1120. struct drm_encoder *encoder;
  1121. struct drm_connector *connector;
  1122. int rc = 0;
  1123. ddev = sde_kms->dev;
  1124. crtc = sde_kms_vm_get_vm_crtc(state);
  1125. if (!crtc)
  1126. return 0;
  1127. /* if vm_req is enabled, once CRTC on the commit is guaranteed */
  1128. sde_kms_wait_for_frame_transfer_complete(&sde_kms->base, crtc);
  1129. /* disable ESD work */
  1130. list_for_each_entry(connector,
  1131. &ddev->mode_config.connector_list, head) {
  1132. if (drm_connector_mask(connector) & crtc->state->connector_mask)
  1133. sde_connector_schedule_status_work(connector, false);
  1134. }
  1135. /* disable SDE irq's */
  1136. drm_for_each_encoder_mask(encoder, crtc->dev,
  1137. crtc->state->encoder_mask) {
  1138. if (sde_encoder_in_clone_mode(encoder))
  1139. continue;
  1140. sde_encoder_irq_control(encoder, false);
  1141. }
  1142. /* disable IRQ line */
  1143. sde_irq_update(&sde_kms->base, false);
  1144. /* disable vblank events */
  1145. drm_crtc_vblank_off(crtc);
  1146. /* reset sw state */
  1147. sde_crtc_reset_sw_state(crtc);
  1148. sde_dbg_set_hw_ownership_status(false);
  1149. return rc;
  1150. }
  1151. int sde_kms_vm_primary_post_commit(struct sde_kms *sde_kms,
  1152. struct drm_atomic_state *state)
  1153. {
  1154. struct sde_vm_ops *vm_ops;
  1155. struct sde_crtc_state *cstate;
  1156. struct drm_crtc *crtc;
  1157. struct drm_crtc_state *new_cstate;
  1158. enum sde_crtc_vm_req vm_req;
  1159. int rc = 0;
  1160. if (!sde_kms || !sde_vm_is_enabled(sde_kms))
  1161. return -EINVAL;
  1162. vm_ops = sde_vm_get_ops(sde_kms);
  1163. crtc = sde_kms_vm_get_vm_crtc(state);
  1164. if (!crtc)
  1165. return 0;
  1166. new_cstate = drm_atomic_get_new_crtc_state(state, crtc);
  1167. cstate = to_sde_crtc_state(new_cstate);
  1168. vm_req = sde_crtc_get_property(cstate, CRTC_PROP_VM_REQ_STATE);
  1169. if (vm_req != VM_REQ_RELEASE)
  1170. return 0;
  1171. /* handle SDE pre-release */
  1172. rc = sde_kms_vm_pre_release(sde_kms, state);
  1173. if (rc) {
  1174. SDE_ERROR("sde vm pre_release failed, rc=%d\n", rc);
  1175. goto exit;
  1176. }
  1177. /* properly handoff color processing features */
  1178. sde_cp_crtc_vm_primary_handoff(crtc);
  1179. /* handle non-SDE clients pre-release */
  1180. if (vm_ops->vm_client_pre_release) {
  1181. rc = vm_ops->vm_client_pre_release(sde_kms);
  1182. if (rc) {
  1183. SDE_ERROR("sde vm client pre_release failed, rc=%d\n",
  1184. rc);
  1185. goto exit;
  1186. }
  1187. }
  1188. sde_vm_lock(sde_kms);
  1189. /* release HW */
  1190. if (vm_ops->vm_release) {
  1191. rc = vm_ops->vm_release(sde_kms);
  1192. if (rc)
  1193. SDE_ERROR("sde vm assign failed, rc=%d\n", rc);
  1194. }
  1195. sde_vm_unlock(sde_kms);
  1196. exit:
  1197. return rc;
  1198. }
  1199. static void sde_kms_complete_commit(struct msm_kms *kms,
  1200. struct drm_atomic_state *old_state)
  1201. {
  1202. struct sde_kms *sde_kms;
  1203. struct msm_drm_private *priv;
  1204. struct drm_crtc *crtc;
  1205. struct drm_crtc_state *old_crtc_state;
  1206. struct drm_connector *connector;
  1207. struct drm_connector_state *old_conn_state;
  1208. struct msm_display_conn_params params;
  1209. struct sde_vm_ops *vm_ops;
  1210. int i, rc = 0;
  1211. if (!kms || !old_state)
  1212. return;
  1213. sde_kms = to_sde_kms(kms);
  1214. if (!sde_kms->dev || !sde_kms->dev->dev_private)
  1215. return;
  1216. priv = sde_kms->dev->dev_private;
  1217. if (!sde_kms_power_resource_is_enabled(sde_kms->dev)) {
  1218. SDE_ERROR("power resource is not enabled\n");
  1219. return;
  1220. }
  1221. SDE_ATRACE_BEGIN("sde_kms_complete_commit");
  1222. for_each_old_crtc_in_state(old_state, crtc, old_crtc_state, i) {
  1223. sde_crtc_complete_commit(crtc, old_crtc_state);
  1224. /* complete secure transitions if any */
  1225. if (sde_kms->smmu_state.transition_type == POST_COMMIT)
  1226. _sde_kms_secure_ctrl(sde_kms, crtc, true);
  1227. }
  1228. for_each_old_connector_in_state(old_state, connector,
  1229. old_conn_state, i) {
  1230. struct sde_connector *c_conn;
  1231. c_conn = to_sde_connector(connector);
  1232. if (!c_conn->ops.post_kickoff)
  1233. continue;
  1234. memset(&params, 0, sizeof(params));
  1235. sde_connector_complete_qsync_commit(connector, &params);
  1236. rc = c_conn->ops.post_kickoff(connector, &params);
  1237. if (rc) {
  1238. pr_err("Connector Post kickoff failed rc=%d\n",
  1239. rc);
  1240. }
  1241. }
  1242. vm_ops = sde_vm_get_ops(sde_kms);
  1243. if (vm_ops && vm_ops->vm_post_commit) {
  1244. rc = vm_ops->vm_post_commit(sde_kms, old_state);
  1245. if (rc)
  1246. SDE_ERROR("vm post commit failed, rc = %d\n",
  1247. rc);
  1248. }
  1249. _sde_kms_drm_check_dpms(old_state, false);
  1250. pm_runtime_put_sync(sde_kms->dev->dev);
  1251. for_each_old_crtc_in_state(old_state, crtc, old_crtc_state, i)
  1252. _sde_kms_release_splash_resource(sde_kms, crtc);
  1253. SDE_EVT32_VERBOSE(SDE_EVTLOG_FUNC_EXIT);
  1254. SDE_ATRACE_END("sde_kms_complete_commit");
  1255. }
  1256. static void sde_kms_wait_for_commit_done(struct msm_kms *kms,
  1257. struct drm_crtc *crtc)
  1258. {
  1259. struct drm_encoder *encoder;
  1260. struct drm_device *dev;
  1261. int ret;
  1262. bool cwb_disabling;
  1263. if (!kms || !crtc || !crtc->state) {
  1264. SDE_ERROR("invalid params\n");
  1265. return;
  1266. }
  1267. dev = crtc->dev;
  1268. if (!crtc->state->enable) {
  1269. SDE_DEBUG("[crtc:%d] not enable\n", crtc->base.id);
  1270. return;
  1271. }
  1272. if (!crtc->state->active) {
  1273. SDE_DEBUG("[crtc:%d] not active\n", crtc->base.id);
  1274. return;
  1275. }
  1276. if (!sde_kms_power_resource_is_enabled(crtc->dev)) {
  1277. SDE_ERROR("power resource is not enabled\n");
  1278. return;
  1279. }
  1280. SDE_ATRACE_BEGIN("sde_kms_wait_for_commit_done");
  1281. list_for_each_entry(encoder, &dev->mode_config.encoder_list, head) {
  1282. cwb_disabling = false;
  1283. if (encoder->crtc != crtc) {
  1284. cwb_disabling = sde_encoder_is_cwb_disabling(encoder,
  1285. crtc);
  1286. if (!cwb_disabling)
  1287. continue;
  1288. }
  1289. /*
  1290. * Wait for post-flush if necessary to delay before
  1291. * plane_cleanup. For example, wait for vsync in case of video
  1292. * mode panels. This may be a no-op for command mode panels.
  1293. */
  1294. SDE_EVT32_VERBOSE(DRMID(crtc));
  1295. ret = sde_encoder_wait_for_event(encoder, MSM_ENC_COMMIT_DONE);
  1296. if (ret && ret != -EWOULDBLOCK) {
  1297. SDE_ERROR("wait for commit done returned %d\n", ret);
  1298. sde_crtc_request_frame_reset(crtc, encoder);
  1299. break;
  1300. }
  1301. sde_crtc_complete_flip(crtc, NULL);
  1302. if (cwb_disabling)
  1303. sde_encoder_virt_reset(encoder);
  1304. }
  1305. sde_crtc_static_cache_read_kickoff(crtc);
  1306. SDE_ATRACE_END("sde_ksm_wait_for_commit_done");
  1307. }
  1308. static void sde_kms_prepare_fence(struct msm_kms *kms,
  1309. struct drm_atomic_state *old_state)
  1310. {
  1311. struct drm_crtc *crtc;
  1312. struct drm_crtc_state *old_crtc_state;
  1313. int i;
  1314. if (!kms || !old_state || !old_state->dev || !old_state->acquire_ctx) {
  1315. SDE_ERROR("invalid argument(s)\n");
  1316. return;
  1317. }
  1318. SDE_ATRACE_BEGIN("sde_kms_prepare_fence");
  1319. /* old_state actually contains updated crtc pointers */
  1320. for_each_old_crtc_in_state(old_state, crtc, old_crtc_state, i) {
  1321. if (crtc->state->active || crtc->state->active_changed)
  1322. sde_crtc_prepare_commit(crtc, old_crtc_state);
  1323. }
  1324. SDE_ATRACE_END("sde_kms_prepare_fence");
  1325. }
  1326. /**
  1327. * _sde_kms_get_displays - query for underlying display handles and cache them
  1328. * @sde_kms: Pointer to sde kms structure
  1329. * Returns: Zero on success
  1330. */
  1331. static int _sde_kms_get_displays(struct sde_kms *sde_kms)
  1332. {
  1333. int rc = -ENOMEM;
  1334. if (!sde_kms) {
  1335. SDE_ERROR("invalid sde kms\n");
  1336. return -EINVAL;
  1337. }
  1338. /* dsi */
  1339. sde_kms->dsi_displays = NULL;
  1340. sde_kms->dsi_display_count = dsi_display_get_num_of_displays();
  1341. if (sde_kms->dsi_display_count) {
  1342. sde_kms->dsi_displays = kcalloc(sde_kms->dsi_display_count,
  1343. sizeof(void *),
  1344. GFP_KERNEL);
  1345. if (!sde_kms->dsi_displays) {
  1346. SDE_ERROR("failed to allocate dsi displays\n");
  1347. goto exit_deinit_dsi;
  1348. }
  1349. sde_kms->dsi_display_count =
  1350. dsi_display_get_active_displays(sde_kms->dsi_displays,
  1351. sde_kms->dsi_display_count);
  1352. }
  1353. /* wb */
  1354. sde_kms->wb_displays = NULL;
  1355. sde_kms->wb_display_count = sde_wb_get_num_of_displays();
  1356. if (sde_kms->wb_display_count) {
  1357. sde_kms->wb_displays = kcalloc(sde_kms->wb_display_count,
  1358. sizeof(void *),
  1359. GFP_KERNEL);
  1360. if (!sde_kms->wb_displays) {
  1361. SDE_ERROR("failed to allocate wb displays\n");
  1362. goto exit_deinit_wb;
  1363. }
  1364. sde_kms->wb_display_count =
  1365. wb_display_get_displays(sde_kms->wb_displays,
  1366. sde_kms->wb_display_count);
  1367. }
  1368. /* dp */
  1369. sde_kms->dp_displays = NULL;
  1370. sde_kms->dp_display_count = dp_display_get_num_of_displays();
  1371. if (sde_kms->dp_display_count) {
  1372. sde_kms->dp_displays = kcalloc(sde_kms->dp_display_count,
  1373. sizeof(void *), GFP_KERNEL);
  1374. if (!sde_kms->dp_displays) {
  1375. SDE_ERROR("failed to allocate dp displays\n");
  1376. goto exit_deinit_dp;
  1377. }
  1378. sde_kms->dp_display_count =
  1379. dp_display_get_displays(sde_kms->dp_displays,
  1380. sde_kms->dp_display_count);
  1381. sde_kms->dp_stream_count = dp_display_get_num_of_streams();
  1382. }
  1383. return 0;
  1384. exit_deinit_dp:
  1385. kfree(sde_kms->dp_displays);
  1386. sde_kms->dp_stream_count = 0;
  1387. sde_kms->dp_display_count = 0;
  1388. sde_kms->dp_displays = NULL;
  1389. exit_deinit_wb:
  1390. kfree(sde_kms->wb_displays);
  1391. sde_kms->wb_display_count = 0;
  1392. sde_kms->wb_displays = NULL;
  1393. exit_deinit_dsi:
  1394. kfree(sde_kms->dsi_displays);
  1395. sde_kms->dsi_display_count = 0;
  1396. sde_kms->dsi_displays = NULL;
  1397. return rc;
  1398. }
  1399. /**
  1400. * _sde_kms_release_displays - release cache of underlying display handles
  1401. * @sde_kms: Pointer to sde kms structure
  1402. */
  1403. static void _sde_kms_release_displays(struct sde_kms *sde_kms)
  1404. {
  1405. if (!sde_kms) {
  1406. SDE_ERROR("invalid sde kms\n");
  1407. return;
  1408. }
  1409. kfree(sde_kms->wb_displays);
  1410. sde_kms->wb_displays = NULL;
  1411. sde_kms->wb_display_count = 0;
  1412. kfree(sde_kms->dsi_displays);
  1413. sde_kms->dsi_displays = NULL;
  1414. sde_kms->dsi_display_count = 0;
  1415. }
  1416. /**
  1417. * _sde_kms_setup_displays - create encoders, bridges and connectors
  1418. * for underlying displays
  1419. * @dev: Pointer to drm device structure
  1420. * @priv: Pointer to private drm device data
  1421. * @sde_kms: Pointer to sde kms structure
  1422. * Returns: Zero on success
  1423. */
  1424. static int _sde_kms_setup_displays(struct drm_device *dev,
  1425. struct msm_drm_private *priv,
  1426. struct sde_kms *sde_kms)
  1427. {
  1428. static const struct sde_connector_ops dsi_ops = {
  1429. .set_info_blob = dsi_conn_set_info_blob,
  1430. .detect = dsi_conn_detect,
  1431. .get_modes = dsi_connector_get_modes,
  1432. .pre_destroy = dsi_connector_put_modes,
  1433. .mode_valid = dsi_conn_mode_valid,
  1434. .get_info = dsi_display_get_info,
  1435. .set_backlight = dsi_display_set_backlight,
  1436. .soft_reset = dsi_display_soft_reset,
  1437. .pre_kickoff = dsi_conn_pre_kickoff,
  1438. .clk_ctrl = dsi_display_clk_ctrl,
  1439. .set_power = dsi_display_set_power,
  1440. .get_mode_info = dsi_conn_get_mode_info,
  1441. .get_dst_format = dsi_display_get_dst_format,
  1442. .post_kickoff = dsi_conn_post_kickoff,
  1443. .check_status = dsi_display_check_status,
  1444. .enable_event = dsi_conn_enable_event,
  1445. .cmd_transfer = dsi_display_cmd_transfer,
  1446. .cont_splash_config = dsi_display_cont_splash_config,
  1447. .cont_splash_res_disable = dsi_display_cont_splash_res_disable,
  1448. .get_panel_vfp = dsi_display_get_panel_vfp,
  1449. .get_default_lms = dsi_display_get_default_lms,
  1450. .cmd_receive = dsi_display_cmd_receive,
  1451. .install_properties = NULL,
  1452. .set_allowed_mode_switch = dsi_conn_set_allowed_mode_switch,
  1453. .set_dyn_bit_clk = dsi_conn_set_dyn_bit_clk,
  1454. .get_qsync_min_fps = dsi_display_get_qsync_min_fps,
  1455. .get_avr_step_req = dsi_display_get_avr_step_req_fps,
  1456. .prepare_commit = dsi_conn_prepare_commit,
  1457. .set_submode_info = dsi_conn_set_submode_blob_info,
  1458. };
  1459. static const struct sde_connector_ops wb_ops = {
  1460. .post_init = sde_wb_connector_post_init,
  1461. .set_info_blob = sde_wb_connector_set_info_blob,
  1462. .detect = sde_wb_connector_detect,
  1463. .get_modes = sde_wb_connector_get_modes,
  1464. .set_property = sde_wb_connector_set_property,
  1465. .get_info = sde_wb_get_info,
  1466. .soft_reset = NULL,
  1467. .get_mode_info = sde_wb_get_mode_info,
  1468. .get_dst_format = NULL,
  1469. .check_status = NULL,
  1470. .cmd_transfer = NULL,
  1471. .cont_splash_config = NULL,
  1472. .cont_splash_res_disable = NULL,
  1473. .get_panel_vfp = NULL,
  1474. .cmd_receive = NULL,
  1475. .install_properties = NULL,
  1476. .set_dyn_bit_clk = NULL,
  1477. .set_allowed_mode_switch = NULL,
  1478. };
  1479. static const struct sde_connector_ops dp_ops = {
  1480. .post_init = dp_connector_post_init,
  1481. .detect = dp_connector_detect,
  1482. .get_modes = dp_connector_get_modes,
  1483. .atomic_check = dp_connector_atomic_check,
  1484. .mode_valid = dp_connector_mode_valid,
  1485. .get_info = dp_connector_get_info,
  1486. .get_mode_info = dp_connector_get_mode_info,
  1487. .post_open = dp_connector_post_open,
  1488. .check_status = NULL,
  1489. .set_colorspace = dp_connector_set_colorspace,
  1490. .config_hdr = dp_connector_config_hdr,
  1491. .cmd_transfer = NULL,
  1492. .cont_splash_config = NULL,
  1493. .cont_splash_res_disable = NULL,
  1494. .get_panel_vfp = NULL,
  1495. .update_pps = dp_connector_update_pps,
  1496. .cmd_receive = NULL,
  1497. .install_properties = dp_connector_install_properties,
  1498. .set_allowed_mode_switch = NULL,
  1499. .set_dyn_bit_clk = NULL,
  1500. };
  1501. struct msm_display_info info;
  1502. struct drm_encoder *encoder;
  1503. void *display, *connector;
  1504. int i, max_encoders;
  1505. int rc = 0;
  1506. u32 dsc_count = 0, mixer_count = 0;
  1507. u32 max_dp_dsc_count, max_dp_mixer_count;
  1508. if (!dev || !priv || !sde_kms) {
  1509. SDE_ERROR("invalid argument(s)\n");
  1510. return -EINVAL;
  1511. }
  1512. max_encoders = sde_kms->dsi_display_count + sde_kms->wb_display_count +
  1513. sde_kms->dp_display_count +
  1514. sde_kms->dp_stream_count;
  1515. if (max_encoders > ARRAY_SIZE(priv->encoders)) {
  1516. max_encoders = ARRAY_SIZE(priv->encoders);
  1517. SDE_ERROR("capping number of displays to %d", max_encoders);
  1518. }
  1519. /* wb */
  1520. for (i = 0; i < sde_kms->wb_display_count &&
  1521. priv->num_encoders < max_encoders; ++i) {
  1522. display = sde_kms->wb_displays[i];
  1523. encoder = NULL;
  1524. memset(&info, 0x0, sizeof(info));
  1525. rc = sde_wb_get_info(NULL, &info, display);
  1526. if (rc) {
  1527. SDE_ERROR("wb get_info %d failed\n", i);
  1528. continue;
  1529. }
  1530. encoder = sde_encoder_init(dev, &info);
  1531. if (IS_ERR_OR_NULL(encoder)) {
  1532. SDE_ERROR("encoder init failed for wb %d\n", i);
  1533. continue;
  1534. }
  1535. rc = sde_wb_drm_init(display, encoder);
  1536. if (rc) {
  1537. SDE_ERROR("wb bridge %d init failed, %d\n", i, rc);
  1538. sde_encoder_destroy(encoder);
  1539. continue;
  1540. }
  1541. connector = sde_connector_init(dev,
  1542. encoder,
  1543. 0,
  1544. display,
  1545. &wb_ops,
  1546. DRM_CONNECTOR_POLL_HPD,
  1547. DRM_MODE_CONNECTOR_VIRTUAL);
  1548. if (connector) {
  1549. priv->encoders[priv->num_encoders++] = encoder;
  1550. priv->connectors[priv->num_connectors++] = connector;
  1551. } else {
  1552. SDE_ERROR("wb %d connector init failed\n", i);
  1553. sde_wb_drm_deinit(display);
  1554. sde_encoder_destroy(encoder);
  1555. }
  1556. }
  1557. /* dsi */
  1558. for (i = 0; i < sde_kms->dsi_display_count &&
  1559. priv->num_encoders < max_encoders; ++i) {
  1560. display = sde_kms->dsi_displays[i];
  1561. encoder = NULL;
  1562. memset(&info, 0x0, sizeof(info));
  1563. rc = dsi_display_get_info(NULL, &info, display);
  1564. if (rc) {
  1565. SDE_ERROR("dsi get_info %d failed\n", i);
  1566. continue;
  1567. }
  1568. encoder = sde_encoder_init(dev, &info);
  1569. if (IS_ERR_OR_NULL(encoder)) {
  1570. SDE_ERROR("encoder init failed for dsi %d\n", i);
  1571. continue;
  1572. }
  1573. rc = dsi_display_drm_bridge_init(display, encoder);
  1574. if (rc) {
  1575. SDE_ERROR("dsi bridge %d init failed, %d\n", i, rc);
  1576. sde_encoder_destroy(encoder);
  1577. continue;
  1578. }
  1579. connector = sde_connector_init(dev,
  1580. encoder,
  1581. dsi_display_get_drm_panel(display),
  1582. display,
  1583. &dsi_ops,
  1584. DRM_CONNECTOR_POLL_HPD,
  1585. DRM_MODE_CONNECTOR_DSI);
  1586. if (connector) {
  1587. priv->encoders[priv->num_encoders++] = encoder;
  1588. priv->connectors[priv->num_connectors++] = connector;
  1589. } else {
  1590. SDE_ERROR("dsi %d connector init failed\n", i);
  1591. dsi_display_drm_bridge_deinit(display);
  1592. sde_encoder_destroy(encoder);
  1593. continue;
  1594. }
  1595. rc = dsi_display_drm_ext_bridge_init(display,
  1596. encoder, connector);
  1597. if (rc) {
  1598. SDE_ERROR("dsi %d ext bridge init failed\n", rc);
  1599. dsi_display_drm_bridge_deinit(display);
  1600. sde_connector_destroy(connector);
  1601. sde_encoder_destroy(encoder);
  1602. }
  1603. dsc_count += info.dsc_count;
  1604. mixer_count += info.lm_count;
  1605. if (dsi_display_has_dsc_switch_support(display))
  1606. sde_kms->dsc_switch_support = true;
  1607. }
  1608. max_dp_mixer_count = sde_kms->catalog->mixer_count > mixer_count ?
  1609. sde_kms->catalog->mixer_count - mixer_count : 0;
  1610. max_dp_dsc_count = sde_kms->catalog->dsc_count > dsc_count ?
  1611. sde_kms->catalog->dsc_count - dsc_count : 0;
  1612. if (sde_kms->catalog->allowed_dsc_reservation_switch &
  1613. SDE_DP_DSC_RESERVATION_SWITCH)
  1614. max_dp_dsc_count = sde_kms->catalog->dsc_count;
  1615. /* dp */
  1616. for (i = 0; i < sde_kms->dp_display_count &&
  1617. priv->num_encoders < max_encoders; ++i) {
  1618. int idx;
  1619. display = sde_kms->dp_displays[i];
  1620. encoder = NULL;
  1621. memset(&info, 0x0, sizeof(info));
  1622. rc = dp_connector_get_info(NULL, &info, display);
  1623. if (rc) {
  1624. SDE_ERROR("dp get_info %d failed\n", i);
  1625. continue;
  1626. }
  1627. encoder = sde_encoder_init(dev, &info);
  1628. if (IS_ERR_OR_NULL(encoder)) {
  1629. SDE_ERROR("dp encoder init failed %d\n", i);
  1630. continue;
  1631. }
  1632. rc = dp_drm_bridge_init(display, encoder,
  1633. max_dp_mixer_count, max_dp_dsc_count);
  1634. if (rc) {
  1635. SDE_ERROR("dp bridge %d init failed, %d\n", i, rc);
  1636. sde_encoder_destroy(encoder);
  1637. continue;
  1638. }
  1639. connector = sde_connector_init(dev,
  1640. encoder,
  1641. NULL,
  1642. display,
  1643. &dp_ops,
  1644. DRM_CONNECTOR_POLL_HPD,
  1645. DRM_MODE_CONNECTOR_DisplayPort);
  1646. if (connector) {
  1647. priv->encoders[priv->num_encoders++] = encoder;
  1648. priv->connectors[priv->num_connectors++] = connector;
  1649. } else {
  1650. SDE_ERROR("dp %d connector init failed\n", i);
  1651. dp_drm_bridge_deinit(display);
  1652. sde_encoder_destroy(encoder);
  1653. }
  1654. /* update display cap to MST_MODE for DP MST encoders */
  1655. info.capabilities |= MSM_DISPLAY_CAP_MST_MODE;
  1656. for (idx = 0; idx < sde_kms->dp_stream_count &&
  1657. priv->num_encoders < max_encoders; idx++) {
  1658. info.h_tile_instance[0] = idx;
  1659. encoder = sde_encoder_init(dev, &info);
  1660. if (IS_ERR_OR_NULL(encoder)) {
  1661. SDE_ERROR("dp mst encoder init failed %d\n", i);
  1662. continue;
  1663. }
  1664. rc = dp_mst_drm_bridge_init(display, encoder);
  1665. if (rc) {
  1666. SDE_ERROR("dp mst bridge %d init failed, %d\n",
  1667. i, rc);
  1668. sde_encoder_destroy(encoder);
  1669. continue;
  1670. }
  1671. priv->encoders[priv->num_encoders++] = encoder;
  1672. }
  1673. }
  1674. return 0;
  1675. }
  1676. static void _sde_kms_drm_obj_destroy(struct sde_kms *sde_kms)
  1677. {
  1678. struct msm_drm_private *priv;
  1679. int i;
  1680. if (!sde_kms) {
  1681. SDE_ERROR("invalid sde_kms\n");
  1682. return;
  1683. } else if (!sde_kms->dev) {
  1684. SDE_ERROR("invalid dev\n");
  1685. return;
  1686. } else if (!sde_kms->dev->dev_private) {
  1687. SDE_ERROR("invalid dev_private\n");
  1688. return;
  1689. }
  1690. priv = sde_kms->dev->dev_private;
  1691. for (i = 0; i < priv->num_crtcs; i++)
  1692. priv->crtcs[i]->funcs->destroy(priv->crtcs[i]);
  1693. priv->num_crtcs = 0;
  1694. for (i = 0; i < priv->num_planes; i++)
  1695. priv->planes[i]->funcs->destroy(priv->planes[i]);
  1696. priv->num_planes = 0;
  1697. for (i = 0; i < priv->num_connectors; i++)
  1698. priv->connectors[i]->funcs->destroy(priv->connectors[i]);
  1699. priv->num_connectors = 0;
  1700. for (i = 0; i < priv->num_encoders; i++)
  1701. priv->encoders[i]->funcs->destroy(priv->encoders[i]);
  1702. priv->num_encoders = 0;
  1703. _sde_kms_release_displays(sde_kms);
  1704. }
  1705. static int _sde_kms_drm_obj_init(struct sde_kms *sde_kms)
  1706. {
  1707. struct drm_device *dev;
  1708. struct drm_plane *primary_planes[MAX_PLANES], *plane;
  1709. struct drm_crtc *crtc;
  1710. struct msm_drm_private *priv;
  1711. struct sde_mdss_cfg *catalog;
  1712. int primary_planes_idx = 0, i, ret;
  1713. int max_crtc_count;
  1714. u32 sspp_id[MAX_PLANES];
  1715. u32 master_plane_id[MAX_PLANES];
  1716. u32 num_virt_planes = 0;
  1717. if (!sde_kms || !sde_kms->dev || !sde_kms->dev->dev) {
  1718. SDE_ERROR("invalid sde_kms\n");
  1719. return -EINVAL;
  1720. }
  1721. dev = sde_kms->dev;
  1722. priv = dev->dev_private;
  1723. catalog = sde_kms->catalog;
  1724. ret = sde_core_irq_domain_add(sde_kms);
  1725. if (ret)
  1726. goto fail_irq;
  1727. /*
  1728. * Query for underlying display drivers, and create connectors,
  1729. * bridges and encoders for them.
  1730. */
  1731. if (!_sde_kms_get_displays(sde_kms))
  1732. (void)_sde_kms_setup_displays(dev, priv, sde_kms);
  1733. max_crtc_count = min(catalog->mixer_count, priv->num_encoders);
  1734. /* Create the planes */
  1735. for (i = 0; i < catalog->sspp_count; i++) {
  1736. bool primary = true;
  1737. if (catalog->sspp[i].features & BIT(SDE_SSPP_CURSOR)
  1738. || primary_planes_idx >= max_crtc_count)
  1739. primary = false;
  1740. plane = sde_plane_init(dev, catalog->sspp[i].id, primary,
  1741. (1UL << max_crtc_count) - 1, 0);
  1742. if (IS_ERR(plane)) {
  1743. SDE_ERROR("sde_plane_init failed\n");
  1744. ret = PTR_ERR(plane);
  1745. goto fail;
  1746. }
  1747. priv->planes[priv->num_planes++] = plane;
  1748. if (primary)
  1749. primary_planes[primary_planes_idx++] = plane;
  1750. if (sde_hw_sspp_multirect_enabled(&catalog->sspp[i]) &&
  1751. sde_is_custom_client()) {
  1752. int priority =
  1753. catalog->sspp[i].sblk->smart_dma_priority;
  1754. sspp_id[priority - 1] = catalog->sspp[i].id;
  1755. master_plane_id[priority - 1] = plane->base.id;
  1756. num_virt_planes++;
  1757. }
  1758. }
  1759. /* Initialize smart DMA virtual planes */
  1760. for (i = 0; i < num_virt_planes; i++) {
  1761. plane = sde_plane_init(dev, sspp_id[i], false,
  1762. (1UL << max_crtc_count) - 1, master_plane_id[i]);
  1763. if (IS_ERR(plane)) {
  1764. SDE_ERROR("sde_plane for virtual SSPP init failed\n");
  1765. ret = PTR_ERR(plane);
  1766. goto fail;
  1767. }
  1768. priv->planes[priv->num_planes++] = plane;
  1769. }
  1770. max_crtc_count = min(max_crtc_count, primary_planes_idx);
  1771. /* Create one CRTC per encoder */
  1772. for (i = 0; i < max_crtc_count; i++) {
  1773. crtc = sde_crtc_init(dev, primary_planes[i]);
  1774. if (IS_ERR(crtc)) {
  1775. ret = PTR_ERR(crtc);
  1776. goto fail;
  1777. }
  1778. priv->crtcs[priv->num_crtcs++] = crtc;
  1779. }
  1780. if (sde_is_custom_client()) {
  1781. /* All CRTCs are compatible with all planes */
  1782. for (i = 0; i < priv->num_planes; i++)
  1783. priv->planes[i]->possible_crtcs =
  1784. (1 << priv->num_crtcs) - 1;
  1785. }
  1786. /* All CRTCs are compatible with all encoders */
  1787. for (i = 0; i < priv->num_encoders; i++)
  1788. priv->encoders[i]->possible_crtcs = (1 << priv->num_crtcs) - 1;
  1789. return 0;
  1790. fail:
  1791. _sde_kms_drm_obj_destroy(sde_kms);
  1792. fail_irq:
  1793. sde_core_irq_domain_fini(sde_kms);
  1794. return ret;
  1795. }
  1796. /**
  1797. * sde_kms_timeline_status - provides current timeline status
  1798. * This API should be called without mode config lock.
  1799. * @dev: Pointer to drm device
  1800. */
  1801. void sde_kms_timeline_status(struct drm_device *dev)
  1802. {
  1803. struct drm_crtc *crtc;
  1804. struct drm_connector *conn;
  1805. struct drm_connector_list_iter conn_iter;
  1806. if (!dev) {
  1807. SDE_ERROR("invalid drm device node\n");
  1808. return;
  1809. }
  1810. drm_for_each_crtc(crtc, dev)
  1811. sde_crtc_timeline_status(crtc);
  1812. if (mutex_is_locked(&dev->mode_config.mutex)) {
  1813. /*
  1814. *Probably locked from last close dumping status anyway
  1815. */
  1816. SDE_ERROR("dumping conn_timeline without mode_config lock\n");
  1817. drm_connector_list_iter_begin(dev, &conn_iter);
  1818. drm_for_each_connector_iter(conn, &conn_iter)
  1819. sde_conn_timeline_status(conn);
  1820. drm_connector_list_iter_end(&conn_iter);
  1821. return;
  1822. }
  1823. mutex_lock(&dev->mode_config.mutex);
  1824. drm_connector_list_iter_begin(dev, &conn_iter);
  1825. drm_for_each_connector_iter(conn, &conn_iter)
  1826. sde_conn_timeline_status(conn);
  1827. drm_connector_list_iter_end(&conn_iter);
  1828. mutex_unlock(&dev->mode_config.mutex);
  1829. }
  1830. static int sde_kms_postinit(struct msm_kms *kms)
  1831. {
  1832. struct sde_kms *sde_kms = to_sde_kms(kms);
  1833. struct drm_device *dev;
  1834. struct drm_crtc *crtc;
  1835. int rc;
  1836. if (!sde_kms || !sde_kms->dev || !sde_kms->dev->dev) {
  1837. SDE_ERROR("invalid sde_kms\n");
  1838. return -EINVAL;
  1839. }
  1840. dev = sde_kms->dev;
  1841. rc = _sde_debugfs_init(sde_kms);
  1842. if (rc)
  1843. SDE_ERROR("sde_debugfs init failed: %d\n", rc);
  1844. drm_for_each_crtc(crtc, dev)
  1845. sde_crtc_post_init(dev, crtc);
  1846. return rc;
  1847. }
  1848. static long sde_kms_round_pixclk(struct msm_kms *kms, unsigned long rate,
  1849. struct drm_encoder *encoder)
  1850. {
  1851. return rate;
  1852. }
  1853. static void _sde_kms_hw_destroy(struct sde_kms *sde_kms,
  1854. struct platform_device *pdev)
  1855. {
  1856. struct drm_device *dev;
  1857. struct msm_drm_private *priv;
  1858. struct sde_vm_ops *vm_ops;
  1859. int i;
  1860. if (!sde_kms || !pdev)
  1861. return;
  1862. dev = sde_kms->dev;
  1863. if (!dev)
  1864. return;
  1865. priv = dev->dev_private;
  1866. if (!priv)
  1867. return;
  1868. if (sde_kms->genpd_init) {
  1869. sde_kms->genpd_init = false;
  1870. pm_genpd_remove(&sde_kms->genpd);
  1871. of_genpd_del_provider(pdev->dev.of_node);
  1872. }
  1873. vm_ops = sde_vm_get_ops(sde_kms);
  1874. if (vm_ops && vm_ops->vm_deinit)
  1875. vm_ops->vm_deinit(sde_kms, vm_ops);
  1876. if (sde_kms->hw_intr)
  1877. sde_hw_intr_destroy(sde_kms->hw_intr);
  1878. sde_kms->hw_intr = NULL;
  1879. if (sde_kms->power_event)
  1880. sde_power_handle_unregister_event(
  1881. &priv->phandle, sde_kms->power_event);
  1882. _sde_kms_release_displays(sde_kms);
  1883. _sde_kms_unmap_all_splash_regions(sde_kms);
  1884. if (sde_kms->catalog) {
  1885. for (i = 0; i < sde_kms->catalog->vbif_count; i++) {
  1886. u32 vbif_idx = sde_kms->catalog->vbif[i].id;
  1887. if ((vbif_idx < VBIF_MAX) && sde_kms->hw_vbif[vbif_idx])
  1888. sde_hw_vbif_destroy(sde_kms->hw_vbif[vbif_idx]);
  1889. }
  1890. }
  1891. if (sde_kms->rm_init)
  1892. sde_rm_destroy(&sde_kms->rm);
  1893. sde_kms->rm_init = false;
  1894. if (sde_kms->catalog)
  1895. sde_hw_catalog_deinit(sde_kms->catalog);
  1896. sde_kms->catalog = NULL;
  1897. if (sde_kms->sid)
  1898. msm_iounmap(pdev, sde_kms->sid);
  1899. sde_kms->sid = NULL;
  1900. if (sde_kms->reg_dma)
  1901. msm_iounmap(pdev, sde_kms->reg_dma);
  1902. sde_kms->reg_dma = NULL;
  1903. if (sde_kms->vbif[VBIF_NRT])
  1904. msm_iounmap(pdev, sde_kms->vbif[VBIF_NRT]);
  1905. sde_kms->vbif[VBIF_NRT] = NULL;
  1906. if (sde_kms->vbif[VBIF_RT])
  1907. msm_iounmap(pdev, sde_kms->vbif[VBIF_RT]);
  1908. sde_kms->vbif[VBIF_RT] = NULL;
  1909. if (sde_kms->mmio)
  1910. msm_iounmap(pdev, sde_kms->mmio);
  1911. sde_kms->mmio = NULL;
  1912. sde_reg_dma_deinit();
  1913. _sde_kms_mmu_destroy(sde_kms);
  1914. }
  1915. int sde_kms_mmu_detach(struct sde_kms *sde_kms, bool secure_only)
  1916. {
  1917. int i;
  1918. if (!sde_kms)
  1919. return -EINVAL;
  1920. for (i = 0; i < MSM_SMMU_DOMAIN_MAX; i++) {
  1921. struct msm_mmu *mmu;
  1922. struct msm_gem_address_space *aspace = sde_kms->aspace[i];
  1923. if (!aspace)
  1924. continue;
  1925. mmu = sde_kms->aspace[i]->mmu;
  1926. if (secure_only &&
  1927. !aspace->mmu->funcs->is_domain_secure(mmu))
  1928. continue;
  1929. /* cleanup aspace before detaching */
  1930. msm_gem_aspace_domain_attach_detach_update(aspace, true);
  1931. SDE_DEBUG("Detaching domain:%d\n", i);
  1932. aspace->mmu->funcs->detach(mmu, (const char **)iommu_ports,
  1933. ARRAY_SIZE(iommu_ports));
  1934. aspace->domain_attached = false;
  1935. }
  1936. return 0;
  1937. }
  1938. int sde_kms_mmu_attach(struct sde_kms *sde_kms, bool secure_only)
  1939. {
  1940. int i;
  1941. if (!sde_kms)
  1942. return -EINVAL;
  1943. for (i = 0; i < MSM_SMMU_DOMAIN_MAX; i++) {
  1944. struct msm_mmu *mmu;
  1945. struct msm_gem_address_space *aspace = sde_kms->aspace[i];
  1946. if (!aspace)
  1947. continue;
  1948. mmu = sde_kms->aspace[i]->mmu;
  1949. if (secure_only &&
  1950. !aspace->mmu->funcs->is_domain_secure(mmu))
  1951. continue;
  1952. SDE_DEBUG("Attaching domain:%d\n", i);
  1953. aspace->mmu->funcs->attach(mmu, (const char **)iommu_ports,
  1954. ARRAY_SIZE(iommu_ports));
  1955. aspace->domain_attached = true;
  1956. msm_gem_aspace_domain_attach_detach_update(aspace, false);
  1957. }
  1958. return 0;
  1959. }
  1960. static void sde_kms_destroy(struct msm_kms *kms)
  1961. {
  1962. struct sde_kms *sde_kms;
  1963. struct drm_device *dev;
  1964. if (!kms) {
  1965. SDE_ERROR("invalid kms\n");
  1966. return;
  1967. }
  1968. sde_kms = to_sde_kms(kms);
  1969. dev = sde_kms->dev;
  1970. if (!dev || !dev->dev) {
  1971. SDE_ERROR("invalid device\n");
  1972. return;
  1973. }
  1974. _sde_kms_hw_destroy(sde_kms, to_platform_device(dev->dev));
  1975. kfree(sde_kms);
  1976. }
  1977. static int _sde_kms_helper_reset_custom_properties(struct sde_kms *sde_kms,
  1978. struct drm_atomic_state *state)
  1979. {
  1980. struct drm_device *dev = sde_kms->dev;
  1981. struct drm_plane *plane;
  1982. struct drm_plane_state *plane_state;
  1983. struct drm_crtc *crtc;
  1984. struct drm_crtc_state *crtc_state;
  1985. struct drm_connector *conn;
  1986. struct drm_connector_state *conn_state;
  1987. struct drm_connector_list_iter conn_iter;
  1988. int ret = 0;
  1989. drm_for_each_plane(plane, dev) {
  1990. plane_state = drm_atomic_get_plane_state(state, plane);
  1991. if (IS_ERR(plane_state)) {
  1992. ret = PTR_ERR(plane_state);
  1993. SDE_ERROR("error %d getting plane %d state\n",
  1994. ret, DRMID(plane));
  1995. return ret;
  1996. }
  1997. ret = sde_plane_helper_reset_custom_properties(plane,
  1998. plane_state);
  1999. if (ret) {
  2000. SDE_ERROR("error %d resetting plane props %d\n",
  2001. ret, DRMID(plane));
  2002. return ret;
  2003. }
  2004. }
  2005. drm_for_each_crtc(crtc, dev) {
  2006. crtc_state = drm_atomic_get_crtc_state(state, crtc);
  2007. if (IS_ERR(crtc_state)) {
  2008. ret = PTR_ERR(crtc_state);
  2009. SDE_ERROR("error %d getting crtc %d state\n",
  2010. ret, DRMID(crtc));
  2011. return ret;
  2012. }
  2013. ret = sde_crtc_helper_reset_custom_properties(crtc, crtc_state);
  2014. if (ret) {
  2015. SDE_ERROR("error %d resetting crtc props %d\n",
  2016. ret, DRMID(crtc));
  2017. return ret;
  2018. }
  2019. }
  2020. drm_connector_list_iter_begin(dev, &conn_iter);
  2021. drm_for_each_connector_iter(conn, &conn_iter) {
  2022. conn_state = drm_atomic_get_connector_state(state, conn);
  2023. if (IS_ERR(conn_state)) {
  2024. ret = PTR_ERR(conn_state);
  2025. SDE_ERROR("error %d getting connector %d state\n",
  2026. ret, DRMID(conn));
  2027. return ret;
  2028. }
  2029. ret = sde_connector_helper_reset_custom_properties(conn,
  2030. conn_state);
  2031. if (ret) {
  2032. SDE_ERROR("error %d resetting connector props %d\n",
  2033. ret, DRMID(conn));
  2034. return ret;
  2035. }
  2036. }
  2037. drm_connector_list_iter_end(&conn_iter);
  2038. return ret;
  2039. }
  2040. static void sde_kms_lastclose(struct msm_kms *kms)
  2041. {
  2042. struct sde_kms *sde_kms;
  2043. struct drm_device *dev;
  2044. struct drm_atomic_state *state;
  2045. struct drm_modeset_acquire_ctx ctx;
  2046. int ret;
  2047. if (!kms) {
  2048. SDE_ERROR("invalid argument\n");
  2049. return;
  2050. }
  2051. sde_kms = to_sde_kms(kms);
  2052. dev = sde_kms->dev;
  2053. drm_modeset_acquire_init(&ctx, 0);
  2054. state = drm_atomic_state_alloc(dev);
  2055. if (!state) {
  2056. ret = -ENOMEM;
  2057. goto out_ctx;
  2058. }
  2059. state->acquire_ctx = &ctx;
  2060. SDE_EVT32(SDE_EVTLOG_FUNC_ENTRY);
  2061. retry:
  2062. ret = drm_modeset_lock_all_ctx(dev, &ctx);
  2063. if (ret)
  2064. goto out_state;
  2065. ret = _sde_kms_helper_reset_custom_properties(sde_kms, state);
  2066. if (ret)
  2067. goto out_state;
  2068. ret = drm_atomic_commit(state);
  2069. out_state:
  2070. if (ret == -EDEADLK)
  2071. goto backoff;
  2072. drm_atomic_state_put(state);
  2073. out_ctx:
  2074. drm_modeset_drop_locks(&ctx);
  2075. drm_modeset_acquire_fini(&ctx);
  2076. if (ret)
  2077. SDE_ERROR("kms lastclose failed: %d\n", ret);
  2078. SDE_EVT32(ret, SDE_EVTLOG_FUNC_EXIT);
  2079. return;
  2080. backoff:
  2081. drm_atomic_state_clear(state);
  2082. drm_modeset_backoff(&ctx);
  2083. SDE_EVT32(ret, SDE_EVTLOG_FUNC_CASE1);
  2084. goto retry;
  2085. }
  2086. static int sde_kms_check_vm_request(struct msm_kms *kms,
  2087. struct drm_atomic_state *state)
  2088. {
  2089. struct sde_kms *sde_kms;
  2090. struct drm_device *dev;
  2091. struct drm_crtc *crtc;
  2092. struct drm_encoder *encoder;
  2093. struct drm_crtc_state *new_cstate, *old_cstate, *active_cstate;
  2094. uint32_t i, commit_crtc_cnt = 0, global_crtc_cnt = 0;
  2095. uint32_t crtc_encoder_cnt = 0;
  2096. struct drm_crtc *active_crtc = NULL, *global_active_crtc = NULL;
  2097. enum sde_crtc_vm_req old_vm_req = VM_REQ_NONE, new_vm_req = VM_REQ_NONE;
  2098. struct sde_vm_ops *vm_ops;
  2099. bool vm_req_active = false;
  2100. enum sde_crtc_idle_pc_state idle_pc_state;
  2101. struct sde_mdss_cfg *catalog;
  2102. int rc = 0;
  2103. struct sde_connector *sde_conn;
  2104. struct dsi_display *dsi_display;
  2105. struct drm_connector *connector;
  2106. struct drm_connector_state *new_connstate;
  2107. if (!kms || !state)
  2108. return -EINVAL;
  2109. sde_kms = to_sde_kms(kms);
  2110. dev = sde_kms->dev;
  2111. catalog = sde_kms->catalog;
  2112. vm_ops = sde_vm_get_ops(sde_kms);
  2113. if (!vm_ops)
  2114. return 0;
  2115. if (!vm_ops->vm_request_valid || !vm_ops->vm_owns_hw ||
  2116. !vm_ops->vm_acquire)
  2117. return -EINVAL;
  2118. sde_vm_lock(sde_kms);
  2119. for_each_oldnew_crtc_in_state(state, crtc, old_cstate, new_cstate, i) {
  2120. struct sde_crtc_state *old_state = NULL, *new_state = NULL;
  2121. if (!new_cstate->active && !old_cstate->active)
  2122. continue;
  2123. new_state = to_sde_crtc_state(new_cstate);
  2124. new_vm_req = sde_crtc_get_property(new_state,
  2125. CRTC_PROP_VM_REQ_STATE);
  2126. old_state = to_sde_crtc_state(old_cstate);
  2127. old_vm_req = sde_crtc_get_property(old_state,
  2128. CRTC_PROP_VM_REQ_STATE);
  2129. /*
  2130. * No active request if the transition is from
  2131. * VM_REQ_NONE to VM_REQ_NONE
  2132. */
  2133. if (old_vm_req || new_vm_req) {
  2134. rc = vm_ops->vm_request_valid(sde_kms,
  2135. old_vm_req, new_vm_req);
  2136. if (rc) {
  2137. SDE_ERROR(
  2138. "VM transition check failed; o_state:%d, n_state:%d, hw_owner:%d, rc:%d\n",
  2139. old_vm_req, new_vm_req,
  2140. vm_ops->vm_owns_hw(sde_kms), rc);
  2141. goto end;
  2142. } else if (old_vm_req == VM_REQ_ACQUIRE &&
  2143. new_vm_req == VM_REQ_NONE) {
  2144. SDE_DEBUG(
  2145. "VM transition valid; ignore further checks\n");
  2146. } else {
  2147. vm_req_active = true;
  2148. }
  2149. }
  2150. idle_pc_state = sde_crtc_get_property(new_state,
  2151. CRTC_PROP_IDLE_PC_STATE);
  2152. active_crtc = crtc;
  2153. active_cstate = new_cstate;
  2154. commit_crtc_cnt++;
  2155. }
  2156. /* return early if no active vm request */
  2157. if (!vm_req_active)
  2158. goto end;
  2159. list_for_each_entry(crtc, &dev->mode_config.crtc_list, head) {
  2160. if (!crtc->state->active)
  2161. continue;
  2162. global_crtc_cnt++;
  2163. global_active_crtc = crtc;
  2164. }
  2165. if (active_crtc) {
  2166. drm_for_each_encoder_mask(encoder, active_crtc->dev,
  2167. active_cstate->encoder_mask)
  2168. crtc_encoder_cnt++;
  2169. }
  2170. SDE_EVT32(old_vm_req, new_vm_req, vm_ops->vm_owns_hw(sde_kms));
  2171. SDE_DEBUG("VM o_state:%d, n_state:%d, hw_owner:%d\n", old_vm_req,
  2172. new_vm_req, vm_ops->vm_owns_hw(sde_kms));
  2173. for_each_new_connector_in_state(state, connector, new_connstate, i) {
  2174. int conn_mask = active_cstate->connector_mask;
  2175. if (drm_connector_mask(connector) & conn_mask) {
  2176. sde_conn = to_sde_connector(connector);
  2177. dsi_display = (struct dsi_display *) sde_conn->display;
  2178. SDE_EVT32(DRMID(connector), DRMID(active_crtc), i,
  2179. dsi_display->type,
  2180. dsi_display->trusted_vm_env);
  2181. SDE_DEBUG(
  2182. "VM display:%s, conn:%d, crtc:%d, type:%d, tvm:%d,",
  2183. dsi_display->name, DRMID(connector),
  2184. DRMID(active_crtc), dsi_display->type,
  2185. dsi_display->trusted_vm_env);
  2186. break;
  2187. }
  2188. }
  2189. /* Check for single crtc commits only on valid VM requests */
  2190. if (active_crtc && global_active_crtc &&
  2191. (commit_crtc_cnt > catalog->max_trusted_vm_displays ||
  2192. global_crtc_cnt > catalog->max_trusted_vm_displays ||
  2193. active_crtc != global_active_crtc)) {
  2194. SDE_ERROR(
  2195. "VM switch failed; MAX:%d a_cnt:%d g_cnt:%d a_crtc:%d g_crtc:%d\n",
  2196. catalog->max_trusted_vm_displays,
  2197. commit_crtc_cnt, global_crtc_cnt, DRMID(active_crtc),
  2198. DRMID(global_active_crtc));
  2199. rc = -E2BIG;
  2200. goto end;
  2201. } else if ((new_vm_req == VM_REQ_RELEASE) &&
  2202. ((idle_pc_state == IDLE_PC_ENABLE) ||
  2203. (crtc_encoder_cnt > TRUSTED_VM_MAX_ENCODER_PER_CRTC))) {
  2204. /*
  2205. * disable idle-pc before releasing the HW
  2206. * allow only specified number of encoders on a given crtc
  2207. */
  2208. SDE_ERROR(
  2209. "VM switch failed; idle-pc:%d max:%d encoder_cnt:%d\n",
  2210. idle_pc_state, TRUSTED_VM_MAX_ENCODER_PER_CRTC,
  2211. crtc_encoder_cnt);
  2212. rc = -EINVAL;
  2213. goto end;
  2214. }
  2215. if ((new_vm_req == VM_REQ_ACQUIRE) && !vm_ops->vm_owns_hw(sde_kms)) {
  2216. rc = vm_ops->vm_acquire(sde_kms);
  2217. if (rc) {
  2218. SDE_ERROR(
  2219. "VM acquire failed; o_state:%d, n_state:%d, hw_owner:%d, rc:%d\n",
  2220. old_vm_req, new_vm_req,
  2221. vm_ops->vm_owns_hw(sde_kms), rc);
  2222. goto end;
  2223. }
  2224. if (vm_ops->vm_resource_init)
  2225. rc = vm_ops->vm_resource_init(sde_kms, state);
  2226. }
  2227. end:
  2228. sde_vm_unlock(sde_kms);
  2229. return rc;
  2230. }
  2231. static int sde_kms_check_secure_transition(struct msm_kms *kms,
  2232. struct drm_atomic_state *state)
  2233. {
  2234. struct sde_kms *sde_kms;
  2235. struct drm_device *dev;
  2236. struct drm_crtc *crtc;
  2237. struct drm_crtc *cur_crtc = NULL, *global_crtc = NULL;
  2238. struct drm_crtc_state *crtc_state;
  2239. int active_crtc_cnt = 0, global_active_crtc_cnt = 0;
  2240. bool sec_session = false, global_sec_session = false;
  2241. uint32_t fb_ns = 0, fb_sec = 0, fb_sec_dir = 0;
  2242. int i;
  2243. if (!kms || !state) {
  2244. return -EINVAL;
  2245. SDE_ERROR("invalid arguments\n");
  2246. }
  2247. sde_kms = to_sde_kms(kms);
  2248. dev = sde_kms->dev;
  2249. /* iterate state object for active secure/non-secure crtc */
  2250. for_each_new_crtc_in_state(state, crtc, crtc_state, i) {
  2251. if (!crtc_state->active)
  2252. continue;
  2253. active_crtc_cnt++;
  2254. sde_crtc_state_find_plane_fb_modes(crtc_state, &fb_ns,
  2255. &fb_sec, &fb_sec_dir);
  2256. if (fb_sec_dir)
  2257. sec_session = true;
  2258. cur_crtc = crtc;
  2259. }
  2260. /* iterate global list for active and secure/non-secure crtc */
  2261. list_for_each_entry(crtc, &dev->mode_config.crtc_list, head) {
  2262. if (!crtc->state->active)
  2263. continue;
  2264. global_active_crtc_cnt++;
  2265. /* update only when crtc is not the same as current crtc */
  2266. if (crtc != cur_crtc) {
  2267. fb_ns = fb_sec = fb_sec_dir = 0;
  2268. sde_crtc_find_plane_fb_modes(crtc, &fb_ns,
  2269. &fb_sec, &fb_sec_dir);
  2270. if (fb_sec_dir)
  2271. global_sec_session = true;
  2272. global_crtc = crtc;
  2273. }
  2274. }
  2275. if (!global_sec_session && !sec_session)
  2276. return 0;
  2277. /*
  2278. * - fail crtc commit, if secure-camera/secure-ui session is
  2279. * in-progress in any other display
  2280. * - fail secure-camera/secure-ui crtc commit, if any other display
  2281. * session is in-progress
  2282. */
  2283. if ((global_active_crtc_cnt > MAX_ALLOWED_CRTC_CNT_DURING_SECURE) ||
  2284. (active_crtc_cnt > MAX_ALLOWED_CRTC_CNT_DURING_SECURE)) {
  2285. SDE_ERROR(
  2286. "crtc%d secure check failed global_active:%d active:%d\n",
  2287. cur_crtc ? cur_crtc->base.id : -1,
  2288. global_active_crtc_cnt, active_crtc_cnt);
  2289. return -EPERM;
  2290. /*
  2291. * As only one crtc is allowed during secure session, the crtc
  2292. * in this commit should match with the global crtc
  2293. */
  2294. } else if (global_crtc && cur_crtc && (global_crtc != cur_crtc)) {
  2295. SDE_ERROR("crtc%d-sec%d not allowed during crtc%d-sec%d\n",
  2296. cur_crtc->base.id, sec_session,
  2297. global_crtc->base.id, global_sec_session);
  2298. return -EPERM;
  2299. }
  2300. return 0;
  2301. }
  2302. static void sde_kms_vm_res_release(struct msm_kms *kms,
  2303. struct drm_atomic_state *state)
  2304. {
  2305. struct drm_crtc *crtc;
  2306. struct drm_crtc_state *new_cstate;
  2307. struct sde_crtc_state *cstate;
  2308. struct sde_vm_ops *vm_ops;
  2309. enum sde_crtc_vm_req vm_req;
  2310. struct sde_kms *sde_kms = to_sde_kms(kms);
  2311. vm_ops = sde_vm_get_ops(sde_kms);
  2312. if (!vm_ops)
  2313. return;
  2314. crtc = sde_kms_vm_get_vm_crtc(state);
  2315. if (!crtc)
  2316. return;
  2317. new_cstate = drm_atomic_get_new_crtc_state(state, crtc);
  2318. cstate = to_sde_crtc_state(new_cstate);
  2319. vm_req = sde_crtc_get_property(cstate, CRTC_PROP_VM_REQ_STATE);
  2320. if (vm_req != VM_REQ_ACQUIRE)
  2321. return;
  2322. sde_vm_lock(sde_kms);
  2323. if (vm_ops->vm_acquire_fail_handler)
  2324. vm_ops->vm_acquire_fail_handler(sde_kms);
  2325. sde_vm_unlock(sde_kms);
  2326. }
  2327. static int sde_kms_atomic_check(struct msm_kms *kms,
  2328. struct drm_atomic_state *state)
  2329. {
  2330. struct sde_kms *sde_kms;
  2331. struct drm_device *dev;
  2332. int ret;
  2333. if (!kms || !state)
  2334. return -EINVAL;
  2335. sde_kms = to_sde_kms(kms);
  2336. dev = sde_kms->dev;
  2337. SDE_ATRACE_BEGIN("atomic_check");
  2338. if (sde_kms_is_suspend_blocked(dev)) {
  2339. SDE_DEBUG("suspended, skip atomic_check\n");
  2340. ret = -EBUSY;
  2341. goto end;
  2342. }
  2343. ret = sde_kms_check_vm_request(kms, state);
  2344. if (ret) {
  2345. SDE_ERROR("vm switch request checks failed\n");
  2346. goto end;
  2347. }
  2348. ret = drm_atomic_helper_check(dev, state);
  2349. if (ret)
  2350. goto vm_clean_up;
  2351. /*
  2352. * Check if any secure transition(moving CRTC between secure and
  2353. * non-secure state and vice-versa) is allowed or not. when moving
  2354. * to secure state, planes with fb_mode set to dir_translated only can
  2355. * be staged on the CRTC, and only one CRTC can be active during
  2356. * Secure state
  2357. */
  2358. ret = sde_kms_check_secure_transition(kms, state);
  2359. if (ret)
  2360. goto vm_clean_up;
  2361. goto end;
  2362. vm_clean_up:
  2363. sde_kms_vm_res_release(kms, state);
  2364. end:
  2365. SDE_ATRACE_END("atomic_check");
  2366. return ret;
  2367. }
  2368. static struct msm_gem_address_space*
  2369. _sde_kms_get_address_space(struct msm_kms *kms,
  2370. unsigned int domain)
  2371. {
  2372. struct sde_kms *sde_kms;
  2373. if (!kms) {
  2374. SDE_ERROR("invalid kms\n");
  2375. return NULL;
  2376. }
  2377. sde_kms = to_sde_kms(kms);
  2378. if (!sde_kms) {
  2379. SDE_ERROR("invalid sde_kms\n");
  2380. return NULL;
  2381. }
  2382. if (domain >= MSM_SMMU_DOMAIN_MAX)
  2383. return NULL;
  2384. return (sde_kms->aspace[domain] &&
  2385. sde_kms->aspace[domain]->domain_attached) ?
  2386. sde_kms->aspace[domain] : NULL;
  2387. }
  2388. static struct device *_sde_kms_get_address_space_device(struct msm_kms *kms,
  2389. unsigned int domain)
  2390. {
  2391. struct sde_kms *sde_kms;
  2392. struct msm_gem_address_space *aspace;
  2393. if (!kms) {
  2394. SDE_ERROR("invalid kms\n");
  2395. return NULL;
  2396. }
  2397. sde_kms = to_sde_kms(kms);
  2398. if (!sde_kms || !sde_kms->dev || !sde_kms->dev->dev) {
  2399. SDE_ERROR("invalid params\n");
  2400. return NULL;
  2401. }
  2402. aspace = _sde_kms_get_address_space(kms, domain);
  2403. return (aspace && aspace->domain_attached) ?
  2404. msm_gem_get_aspace_device(aspace) : NULL;
  2405. }
  2406. static void _sde_kms_post_open(struct msm_kms *kms, struct drm_file *file)
  2407. {
  2408. struct drm_device *dev = NULL;
  2409. struct sde_kms *sde_kms = NULL;
  2410. struct drm_connector *connector = NULL;
  2411. struct drm_connector_list_iter conn_iter;
  2412. struct sde_connector *sde_conn = NULL;
  2413. if (!kms) {
  2414. SDE_ERROR("invalid kms\n");
  2415. return;
  2416. }
  2417. sde_kms = to_sde_kms(kms);
  2418. dev = sde_kms->dev;
  2419. if (!dev) {
  2420. SDE_ERROR("invalid device\n");
  2421. return;
  2422. }
  2423. if (!dev->mode_config.poll_enabled)
  2424. return;
  2425. mutex_lock(&dev->mode_config.mutex);
  2426. drm_connector_list_iter_begin(dev, &conn_iter);
  2427. drm_for_each_connector_iter(connector, &conn_iter) {
  2428. /* Only handle HPD capable connectors. */
  2429. if (!(connector->polled & DRM_CONNECTOR_POLL_HPD))
  2430. continue;
  2431. sde_conn = to_sde_connector(connector);
  2432. if (sde_conn->ops.post_open)
  2433. sde_conn->ops.post_open(&sde_conn->base,
  2434. sde_conn->display);
  2435. }
  2436. drm_connector_list_iter_end(&conn_iter);
  2437. mutex_unlock(&dev->mode_config.mutex);
  2438. }
  2439. static int _sde_kms_update_planes_for_cont_splash(struct sde_kms *sde_kms,
  2440. struct sde_splash_display *splash_display,
  2441. struct drm_crtc *crtc)
  2442. {
  2443. struct msm_drm_private *priv;
  2444. struct drm_plane *plane;
  2445. struct sde_splash_mem *splash;
  2446. struct sde_splash_mem *demura;
  2447. struct sde_plane_state *pstate;
  2448. struct sde_sspp_index_info *pipe_info;
  2449. enum sde_sspp pipe_id;
  2450. bool is_virtual;
  2451. int i;
  2452. if (!sde_kms || !splash_display || !crtc) {
  2453. SDE_ERROR("invalid input args\n");
  2454. return -EINVAL;
  2455. }
  2456. priv = sde_kms->dev->dev_private;
  2457. pipe_info = &splash_display->pipe_info;
  2458. splash = splash_display->splash;
  2459. demura = splash_display->demura;
  2460. for (i = 0; i < priv->num_planes; i++) {
  2461. plane = priv->planes[i];
  2462. pipe_id = sde_plane_pipe(plane);
  2463. is_virtual = is_sde_plane_virtual(plane);
  2464. if ((is_virtual && test_bit(pipe_id, pipe_info->virt_pipes)) ||
  2465. (!is_virtual && test_bit(pipe_id, pipe_info->pipes))) {
  2466. if (splash && sde_plane_validate_src_addr(plane,
  2467. splash->splash_buf_base,
  2468. splash->splash_buf_size)) {
  2469. if (!demura || sde_plane_validate_src_addr(
  2470. plane, demura->splash_buf_base,
  2471. demura->splash_buf_size)) {
  2472. SDE_ERROR("invalid adr on pipe:%d crtc:%d\n",
  2473. pipe_id, DRMID(crtc));
  2474. continue;
  2475. }
  2476. }
  2477. plane->state->crtc = crtc;
  2478. crtc->state->plane_mask |= drm_plane_mask(plane);
  2479. pstate = to_sde_plane_state(plane->state);
  2480. pstate->cont_splash_populated = true;
  2481. SDE_DEBUG("set crtc:%d for plane:%d rect:%d\n",
  2482. DRMID(crtc), DRMID(plane), is_virtual);
  2483. }
  2484. }
  2485. return 0;
  2486. }
  2487. static int sde_kms_inform_cont_splash_res_disable(struct msm_kms *kms,
  2488. struct dsi_display *dsi_display)
  2489. {
  2490. void *display;
  2491. struct drm_encoder *encoder = NULL;
  2492. struct msm_display_info info;
  2493. struct drm_device *dev;
  2494. struct sde_kms *sde_kms;
  2495. struct drm_connector_list_iter conn_iter;
  2496. struct drm_connector *connector = NULL;
  2497. struct sde_connector *sde_conn = NULL;
  2498. int rc = 0;
  2499. sde_kms = to_sde_kms(kms);
  2500. dev = sde_kms->dev;
  2501. display = dsi_display;
  2502. if (dsi_display) {
  2503. if (dsi_display->bridge->base.encoder) {
  2504. encoder = dsi_display->bridge->base.encoder;
  2505. SDE_DEBUG("encoder name = %s\n", encoder->name);
  2506. }
  2507. memset(&info, 0x0, sizeof(info));
  2508. rc = dsi_display_get_info(NULL, &info, display);
  2509. if (rc) {
  2510. SDE_ERROR("%s: dsi get_info failed: %d\n",
  2511. __func__, rc);
  2512. encoder = NULL;
  2513. }
  2514. }
  2515. drm_connector_list_iter_begin(dev, &conn_iter);
  2516. drm_for_each_connector_iter(connector, &conn_iter) {
  2517. struct drm_encoder *c_encoder;
  2518. drm_connector_for_each_possible_encoder(connector,
  2519. c_encoder)
  2520. break;
  2521. if (!c_encoder) {
  2522. SDE_ERROR("c_encoder not found\n");
  2523. return -EINVAL;
  2524. }
  2525. /**
  2526. * Inform cont_splash is disabled to each interface/connector.
  2527. * This is currently supported for DSI interface.
  2528. */
  2529. sde_conn = to_sde_connector(connector);
  2530. if (sde_conn && sde_conn->ops.cont_splash_res_disable) {
  2531. if (!dsi_display || !encoder) {
  2532. sde_conn->ops.cont_splash_res_disable
  2533. (sde_conn->display);
  2534. } else if (c_encoder->base.id == encoder->base.id) {
  2535. /**
  2536. * This handles dual DSI
  2537. * configuration where one DSI
  2538. * interface has cont_splash
  2539. * enabled and the other doesn't.
  2540. */
  2541. sde_conn->ops.cont_splash_res_disable
  2542. (sde_conn->display);
  2543. break;
  2544. }
  2545. }
  2546. }
  2547. drm_connector_list_iter_end(&conn_iter);
  2548. return 0;
  2549. }
  2550. static int sde_kms_vm_trusted_cont_splash_res_init(struct sde_kms *sde_kms)
  2551. {
  2552. int i;
  2553. void *display;
  2554. struct dsi_display *dsi_display;
  2555. struct drm_encoder *encoder;
  2556. if (!sde_kms)
  2557. return -EINVAL;
  2558. if (!sde_in_trusted_vm(sde_kms))
  2559. return 0;
  2560. for (i = 0; i < sde_kms->dsi_display_count; i++) {
  2561. display = sde_kms->dsi_displays[i];
  2562. dsi_display = (struct dsi_display *)display;
  2563. if (!dsi_display->bridge->base.encoder) {
  2564. SDE_ERROR("no encoder on dsi display:%d", i);
  2565. return -EINVAL;
  2566. }
  2567. encoder = dsi_display->bridge->base.encoder;
  2568. encoder->possible_crtcs = 1 << i;
  2569. SDE_DEBUG(
  2570. "dsi-display:%d encoder id[%d]=%d name=%s crtcs=%x\n", i,
  2571. encoder->index, encoder->base.id,
  2572. encoder->name, encoder->possible_crtcs);
  2573. }
  2574. return 0;
  2575. }
  2576. static struct drm_display_mode *_sde_kms_get_splash_mode(
  2577. struct sde_kms *sde_kms, struct drm_connector *connector,
  2578. struct drm_atomic_state *state)
  2579. {
  2580. struct drm_display_mode *mode, *cur_mode = NULL;
  2581. struct drm_crtc *crtc;
  2582. struct drm_crtc_state *new_cstate, *old_cstate;
  2583. u32 i = 0;
  2584. if (sde_kms->splash_data.type == SDE_SPLASH_HANDOFF) {
  2585. list_for_each_entry(mode, &connector->modes, head) {
  2586. if (mode->type & DRM_MODE_TYPE_PREFERRED) {
  2587. cur_mode = mode;
  2588. break;
  2589. }
  2590. }
  2591. } else if (state) {
  2592. /* get the mode from first atomic_check phase for trusted_vm*/
  2593. for_each_oldnew_crtc_in_state(state, crtc, old_cstate,
  2594. new_cstate, i) {
  2595. if (!new_cstate->active && !old_cstate->active)
  2596. continue;
  2597. list_for_each_entry(mode, &connector->modes, head) {
  2598. if (drm_mode_equal(&new_cstate->mode, mode)) {
  2599. cur_mode = mode;
  2600. break;
  2601. }
  2602. }
  2603. }
  2604. }
  2605. return cur_mode;
  2606. }
  2607. static int sde_kms_cont_splash_config(struct msm_kms *kms,
  2608. struct drm_atomic_state *state)
  2609. {
  2610. void *display;
  2611. struct dsi_display *dsi_display;
  2612. struct msm_display_info info;
  2613. struct drm_encoder *encoder = NULL;
  2614. struct drm_crtc *crtc = NULL;
  2615. int i, rc = 0;
  2616. struct drm_display_mode *drm_mode = NULL;
  2617. struct drm_device *dev;
  2618. struct msm_drm_private *priv;
  2619. struct sde_kms *sde_kms;
  2620. struct drm_connector_list_iter conn_iter;
  2621. struct drm_connector *connector = NULL;
  2622. struct sde_connector *sde_conn = NULL;
  2623. struct sde_splash_display *splash_display;
  2624. if (!kms) {
  2625. SDE_ERROR("invalid kms\n");
  2626. return -EINVAL;
  2627. }
  2628. sde_kms = to_sde_kms(kms);
  2629. dev = sde_kms->dev;
  2630. if (!dev) {
  2631. SDE_ERROR("invalid device\n");
  2632. return -EINVAL;
  2633. }
  2634. rc = sde_kms_vm_trusted_cont_splash_res_init(sde_kms);
  2635. if (rc) {
  2636. SDE_ERROR("failed vm cont splash resource init, rc=%d", rc);
  2637. return -EINVAL;
  2638. }
  2639. if (((sde_kms->splash_data.type == SDE_SPLASH_HANDOFF)
  2640. && (!sde_kms->splash_data.num_splash_regions)) ||
  2641. !sde_kms->splash_data.num_splash_displays) {
  2642. DRM_INFO("cont_splash feature not enabled\n");
  2643. sde_kms_inform_cont_splash_res_disable(kms, NULL);
  2644. return rc;
  2645. }
  2646. DRM_INFO("cont_splash enabled in %d of %d display(s)\n",
  2647. sde_kms->splash_data.num_splash_displays,
  2648. sde_kms->dsi_display_count);
  2649. /* dsi */
  2650. for (i = 0; i < sde_kms->dsi_display_count; ++i) {
  2651. struct sde_crtc_state *cstate;
  2652. struct sde_connector_state *conn_state;
  2653. display = sde_kms->dsi_displays[i];
  2654. dsi_display = (struct dsi_display *)display;
  2655. splash_display = &sde_kms->splash_data.splash_display[i];
  2656. if (!splash_display->cont_splash_enabled) {
  2657. SDE_DEBUG("display->name = %s splash not enabled\n",
  2658. dsi_display->name);
  2659. sde_kms_inform_cont_splash_res_disable(kms,
  2660. dsi_display);
  2661. continue;
  2662. }
  2663. SDE_DEBUG("display->name = %s\n", dsi_display->name);
  2664. if (dsi_display->bridge->base.encoder) {
  2665. encoder = dsi_display->bridge->base.encoder;
  2666. SDE_DEBUG("encoder name = %s\n", encoder->name);
  2667. }
  2668. memset(&info, 0x0, sizeof(info));
  2669. rc = dsi_display_get_info(NULL, &info, display);
  2670. if (rc) {
  2671. SDE_ERROR("dsi get_info %d failed\n", i);
  2672. encoder = NULL;
  2673. continue;
  2674. }
  2675. SDE_DEBUG("info.is_connected = %s, info.display_type = %d\n",
  2676. ((info.is_connected) ? "true" : "false"),
  2677. info.display_type);
  2678. if (!encoder) {
  2679. SDE_ERROR("encoder not initialized\n");
  2680. return -EINVAL;
  2681. }
  2682. priv = sde_kms->dev->dev_private;
  2683. encoder->crtc = priv->crtcs[i];
  2684. crtc = encoder->crtc;
  2685. splash_display->encoder = encoder;
  2686. SDE_DEBUG("for dsi-display:%d crtc id[%d]:%d enc id[%d]:%d\n",
  2687. i, crtc->index, crtc->base.id, encoder->index,
  2688. encoder->base.id);
  2689. mutex_lock(&dev->mode_config.mutex);
  2690. drm_connector_list_iter_begin(dev, &conn_iter);
  2691. drm_for_each_connector_iter(connector, &conn_iter) {
  2692. struct drm_encoder *c_encoder;
  2693. drm_connector_for_each_possible_encoder(connector,
  2694. c_encoder)
  2695. break;
  2696. if (!c_encoder) {
  2697. SDE_ERROR("c_encoder not found\n");
  2698. mutex_unlock(&dev->mode_config.mutex);
  2699. return -EINVAL;
  2700. }
  2701. /**
  2702. * SDE_KMS doesn't attach more than one encoder to
  2703. * a DSI connector. So it is safe to check only with
  2704. * the first encoder entry. Revisit this logic if we
  2705. * ever have to support continuous splash for
  2706. * external displays in MST configuration.
  2707. */
  2708. if (c_encoder->base.id == encoder->base.id)
  2709. break;
  2710. }
  2711. drm_connector_list_iter_end(&conn_iter);
  2712. if (!connector) {
  2713. SDE_ERROR("connector not initialized\n");
  2714. mutex_unlock(&dev->mode_config.mutex);
  2715. return -EINVAL;
  2716. }
  2717. mutex_unlock(&dev->mode_config.mutex);
  2718. crtc->state->encoder_mask = drm_encoder_mask(encoder);
  2719. crtc->state->connector_mask = drm_connector_mask(connector);
  2720. connector->state->crtc = crtc;
  2721. drm_mode = _sde_kms_get_splash_mode(sde_kms, connector, state);
  2722. if (!drm_mode) {
  2723. SDE_ERROR("drm_mode not found; handoff_type:%d\n",
  2724. sde_kms->splash_data.type);
  2725. return -EINVAL;
  2726. }
  2727. SDE_DEBUG(
  2728. "drm_mode->name:%s, type:0x%x, flags:0x%x, handoff_type:%d\n",
  2729. drm_mode->name, drm_mode->type,
  2730. drm_mode->flags, sde_kms->splash_data.type);
  2731. /* Update CRTC drm structure */
  2732. crtc->state->active = true;
  2733. rc = drm_atomic_set_mode_for_crtc(crtc->state, drm_mode);
  2734. if (rc) {
  2735. SDE_ERROR("Failed: set mode for crtc. rc = %d\n", rc);
  2736. return rc;
  2737. }
  2738. drm_mode_copy(&crtc->state->adjusted_mode, drm_mode);
  2739. drm_mode_copy(&crtc->mode, drm_mode);
  2740. cstate = to_sde_crtc_state(crtc->state);
  2741. cstate->cont_splash_populated = true;
  2742. /* Update encoder structure */
  2743. sde_encoder_update_caps_for_cont_splash(encoder,
  2744. splash_display, true);
  2745. sde_crtc_update_cont_splash_settings(crtc);
  2746. sde_conn = to_sde_connector(connector);
  2747. if (sde_conn && sde_conn->ops.cont_splash_config)
  2748. sde_conn->ops.cont_splash_config(sde_conn->display);
  2749. conn_state = to_sde_connector_state(connector->state);
  2750. conn_state->cont_splash_populated = true;
  2751. rc = _sde_kms_update_planes_for_cont_splash(sde_kms,
  2752. splash_display, crtc);
  2753. if (rc) {
  2754. SDE_ERROR("Failed: updating plane status rc=%d\n", rc);
  2755. return rc;
  2756. }
  2757. }
  2758. return rc;
  2759. }
  2760. static bool sde_kms_check_for_splash(struct msm_kms *kms)
  2761. {
  2762. struct sde_kms *sde_kms;
  2763. if (!kms) {
  2764. SDE_ERROR("invalid kms\n");
  2765. return false;
  2766. }
  2767. sde_kms = to_sde_kms(kms);
  2768. return sde_kms->splash_data.num_splash_displays;
  2769. }
  2770. static int sde_kms_get_mixer_count(const struct msm_kms *kms,
  2771. const struct drm_display_mode *mode,
  2772. const struct msm_resource_caps_info *res, u32 *num_lm)
  2773. {
  2774. struct sde_kms *sde_kms;
  2775. s64 mode_clock_hz = 0;
  2776. s64 max_mdp_clock_hz = 0;
  2777. s64 max_lm_width = 0;
  2778. s64 hdisplay_fp = 0;
  2779. s64 htotal_fp = 0;
  2780. s64 vtotal_fp = 0;
  2781. s64 vrefresh_fp = 0;
  2782. s64 mdp_fudge_factor = 0;
  2783. s64 num_lm_fp = 0;
  2784. s64 lm_clk_fp = 0;
  2785. s64 lm_width_fp = 0;
  2786. int rc = 0;
  2787. if (!num_lm) {
  2788. SDE_ERROR("invalid num_lm pointer\n");
  2789. return -EINVAL;
  2790. }
  2791. /* default to 1 layer mixer */
  2792. *num_lm = 1;
  2793. if (!kms || !mode || !res) {
  2794. SDE_ERROR("invalid input args\n");
  2795. return -EINVAL;
  2796. }
  2797. sde_kms = to_sde_kms(kms);
  2798. max_mdp_clock_hz = drm_int2fixp(sde_kms->perf.max_core_clk_rate);
  2799. max_lm_width = drm_int2fixp(res->max_mixer_width);
  2800. hdisplay_fp = drm_int2fixp(mode->hdisplay);
  2801. htotal_fp = drm_int2fixp(mode->htotal);
  2802. vtotal_fp = drm_int2fixp(mode->vtotal);
  2803. vrefresh_fp = drm_int2fixp(drm_mode_vrefresh(mode));
  2804. mdp_fudge_factor = drm_fixp_from_fraction(105, 100);
  2805. /* mode clock = [(h * v * fps * 1.05) / (num_lm)] */
  2806. mode_clock_hz = drm_fixp_mul(htotal_fp, vtotal_fp);
  2807. mode_clock_hz = drm_fixp_mul(mode_clock_hz, vrefresh_fp);
  2808. mode_clock_hz = drm_fixp_mul(mode_clock_hz, mdp_fudge_factor);
  2809. if (mode_clock_hz > max_mdp_clock_hz ||
  2810. hdisplay_fp > max_lm_width) {
  2811. *num_lm = 0;
  2812. do {
  2813. *num_lm += 2;
  2814. num_lm_fp = drm_int2fixp(*num_lm);
  2815. lm_clk_fp = drm_fixp_div(mode_clock_hz, num_lm_fp);
  2816. lm_width_fp = drm_fixp_div(hdisplay_fp, num_lm_fp);
  2817. if (*num_lm > 4) {
  2818. rc = -EINVAL;
  2819. goto error;
  2820. }
  2821. } while (lm_clk_fp > max_mdp_clock_hz ||
  2822. lm_width_fp > max_lm_width);
  2823. mode_clock_hz = lm_clk_fp;
  2824. }
  2825. SDE_DEBUG("[%s] h=%d v=%d fps=%d lm=%d mode_clk=%u max_clk=%llu\n",
  2826. mode->name, mode->htotal, mode->vtotal, drm_mode_vrefresh(mode),
  2827. *num_lm, drm_fixp2int(mode_clock_hz),
  2828. sde_kms->perf.max_core_clk_rate);
  2829. return 0;
  2830. error:
  2831. SDE_ERROR("required mode clk exceeds max mdp clk\n");
  2832. SDE_ERROR("[%s] h=%d v=%d fps=%d lm=%d mode_clk=%u max_clk=%llu\n",
  2833. mode->name, mode->htotal, mode->vtotal, drm_mode_vrefresh(mode),
  2834. *num_lm, drm_fixp2int(mode_clock_hz),
  2835. sde_kms->perf.max_core_clk_rate);
  2836. return rc;
  2837. }
  2838. static int sde_kms_get_dsc_count(const struct msm_kms *kms,
  2839. u32 hdisplay, u32 *num_dsc)
  2840. {
  2841. struct sde_kms *sde_kms;
  2842. uint32_t max_dsc_width;
  2843. if (!num_dsc) {
  2844. SDE_ERROR("invalid num_dsc pointer\n");
  2845. return -EINVAL;
  2846. }
  2847. *num_dsc = 0;
  2848. if (!kms || !hdisplay) {
  2849. SDE_ERROR("invalid input args\n");
  2850. return -EINVAL;
  2851. }
  2852. sde_kms = to_sde_kms(kms);
  2853. max_dsc_width = sde_kms->catalog->max_dsc_width;
  2854. *num_dsc = DIV_ROUND_UP(hdisplay, max_dsc_width);
  2855. SDE_DEBUG("h=%d, max_dsc_width=%d, num_dsc=%d\n",
  2856. hdisplay, max_dsc_width,
  2857. *num_dsc);
  2858. return 0;
  2859. }
  2860. static void _sde_kms_null_commit(struct drm_device *dev,
  2861. struct drm_encoder *enc)
  2862. {
  2863. struct drm_modeset_acquire_ctx ctx;
  2864. struct drm_connector *conn = NULL;
  2865. struct drm_connector *tmp_conn = NULL;
  2866. struct drm_connector_list_iter conn_iter;
  2867. struct drm_atomic_state *state = NULL;
  2868. struct drm_crtc_state *crtc_state = NULL;
  2869. struct drm_connector_state *conn_state = NULL;
  2870. int retry_cnt = 0;
  2871. int ret = 0;
  2872. drm_modeset_acquire_init(&ctx, 0);
  2873. retry:
  2874. ret = drm_modeset_lock_all_ctx(dev, &ctx);
  2875. if (ret == -EDEADLK && retry_cnt < SDE_KMS_MODESET_LOCK_MAX_TRIALS) {
  2876. drm_modeset_backoff(&ctx);
  2877. retry_cnt++;
  2878. udelay(SDE_KMS_MODESET_LOCK_TIMEOUT_US);
  2879. goto retry;
  2880. } else if (WARN_ON(ret)) {
  2881. goto end;
  2882. }
  2883. state = drm_atomic_state_alloc(dev);
  2884. if (!state) {
  2885. DRM_ERROR("failed to allocate atomic state, %d\n", ret);
  2886. goto end;
  2887. }
  2888. state->acquire_ctx = &ctx;
  2889. drm_connector_list_iter_begin(dev, &conn_iter);
  2890. drm_for_each_connector_iter(tmp_conn, &conn_iter) {
  2891. if (enc == tmp_conn->state->best_encoder) {
  2892. conn = tmp_conn;
  2893. break;
  2894. }
  2895. }
  2896. drm_connector_list_iter_end(&conn_iter);
  2897. if (!conn) {
  2898. SDE_ERROR("error in finding conn for enc:%d\n", DRMID(enc));
  2899. goto end;
  2900. }
  2901. crtc_state = drm_atomic_get_crtc_state(state, enc->crtc);
  2902. conn_state = drm_atomic_get_connector_state(state, conn);
  2903. if (IS_ERR(conn_state)) {
  2904. SDE_ERROR("error %d getting connector %d state\n",
  2905. ret, DRMID(conn));
  2906. goto end;
  2907. }
  2908. crtc_state->active = true;
  2909. ret = drm_atomic_set_crtc_for_connector(conn_state, enc->crtc);
  2910. if (ret)
  2911. SDE_ERROR("error %d setting the crtc\n", ret);
  2912. ret = drm_atomic_commit(state);
  2913. if (ret)
  2914. SDE_ERROR("Error %d doing the atomic commit\n", ret);
  2915. end:
  2916. if (state)
  2917. drm_atomic_state_put(state);
  2918. drm_modeset_drop_locks(&ctx);
  2919. drm_modeset_acquire_fini(&ctx);
  2920. }
  2921. void sde_kms_display_early_wakeup(struct drm_device *dev,
  2922. const int32_t connector_id)
  2923. {
  2924. struct drm_connector_list_iter conn_iter;
  2925. struct drm_connector *conn;
  2926. struct drm_encoder *drm_enc;
  2927. drm_connector_list_iter_begin(dev, &conn_iter);
  2928. drm_for_each_connector_iter(conn, &conn_iter) {
  2929. if (connector_id != DRM_MSM_WAKE_UP_ALL_DISPLAYS &&
  2930. connector_id != conn->base.id)
  2931. continue;
  2932. if (conn->state && conn->state->best_encoder)
  2933. drm_enc = conn->state->best_encoder;
  2934. else
  2935. drm_enc = conn->encoder;
  2936. if (drm_enc)
  2937. sde_encoder_early_wakeup(drm_enc);
  2938. }
  2939. drm_connector_list_iter_end(&conn_iter);
  2940. }
  2941. static void _sde_kms_pm_suspend_idle_helper(struct sde_kms *sde_kms,
  2942. struct device *dev)
  2943. {
  2944. int i, ret, crtc_id = 0;
  2945. struct drm_device *ddev = dev_get_drvdata(dev);
  2946. struct drm_connector *conn;
  2947. struct drm_connector_list_iter conn_iter;
  2948. struct msm_drm_private *priv = sde_kms->dev->dev_private;
  2949. drm_connector_list_iter_begin(ddev, &conn_iter);
  2950. drm_for_each_connector_iter(conn, &conn_iter) {
  2951. uint64_t lp;
  2952. lp = sde_connector_get_lp(conn);
  2953. if (lp != SDE_MODE_DPMS_LP2)
  2954. continue;
  2955. if (sde_encoder_in_clone_mode(conn->encoder))
  2956. continue;
  2957. crtc_id = drm_crtc_index(conn->state->crtc);
  2958. if (priv->disp_thread[crtc_id].thread)
  2959. kthread_flush_worker(
  2960. &priv->disp_thread[crtc_id].worker);
  2961. ret = sde_encoder_wait_for_event(conn->encoder,
  2962. MSM_ENC_TX_COMPLETE);
  2963. if (ret && ret != -EWOULDBLOCK) {
  2964. SDE_ERROR(
  2965. "[conn: %d] wait for commit done returned %d\n",
  2966. conn->base.id, ret);
  2967. } else if (!ret) {
  2968. if (priv->event_thread[crtc_id].thread)
  2969. kthread_flush_worker(
  2970. &priv->event_thread[crtc_id].worker);
  2971. sde_encoder_idle_request(conn->encoder);
  2972. }
  2973. }
  2974. drm_connector_list_iter_end(&conn_iter);
  2975. for (i = 0; i < priv->num_crtcs; i++) {
  2976. if (priv->disp_thread[i].thread)
  2977. kthread_flush_worker(
  2978. &priv->disp_thread[i].worker);
  2979. if (priv->event_thread[i].thread)
  2980. kthread_flush_worker(
  2981. &priv->event_thread[i].worker);
  2982. }
  2983. kthread_flush_worker(&priv->pp_event_worker);
  2984. }
  2985. struct msm_display_mode *sde_kms_get_msm_mode(struct drm_connector_state *conn_state)
  2986. {
  2987. struct sde_connector_state *sde_conn_state;
  2988. if (!conn_state)
  2989. return NULL;
  2990. sde_conn_state = to_sde_connector_state(conn_state);
  2991. return &sde_conn_state->msm_mode;
  2992. }
  2993. static int sde_kms_pm_suspend(struct device *dev)
  2994. {
  2995. struct drm_device *ddev;
  2996. struct drm_modeset_acquire_ctx ctx;
  2997. struct drm_connector *conn;
  2998. struct drm_encoder *enc;
  2999. struct drm_connector_list_iter conn_iter;
  3000. struct drm_atomic_state *state = NULL;
  3001. struct sde_kms *sde_kms;
  3002. int ret = 0, num_crtcs = 0;
  3003. if (!dev)
  3004. return -EINVAL;
  3005. ddev = dev_get_drvdata(dev);
  3006. if (!ddev || !ddev_to_msm_kms(ddev))
  3007. return -EINVAL;
  3008. sde_kms = to_sde_kms(ddev_to_msm_kms(ddev));
  3009. SDE_EVT32(0);
  3010. /* disable hot-plug polling */
  3011. drm_kms_helper_poll_disable(ddev);
  3012. /* if a display stuck in CS trigger a null commit to complete handoff */
  3013. drm_for_each_encoder(enc, ddev) {
  3014. if (sde_encoder_in_cont_splash(enc) && enc->crtc)
  3015. _sde_kms_null_commit(ddev, enc);
  3016. }
  3017. /* acquire modeset lock(s) */
  3018. drm_modeset_acquire_init(&ctx, 0);
  3019. retry:
  3020. ret = drm_modeset_lock_all_ctx(ddev, &ctx);
  3021. if (ret)
  3022. goto unlock;
  3023. /* save current state for resume */
  3024. if (sde_kms->suspend_state)
  3025. drm_atomic_state_put(sde_kms->suspend_state);
  3026. sde_kms->suspend_state = drm_atomic_helper_duplicate_state(ddev, &ctx);
  3027. if (IS_ERR_OR_NULL(sde_kms->suspend_state)) {
  3028. ret = PTR_ERR(sde_kms->suspend_state);
  3029. DRM_ERROR("failed to back up suspend state, %d\n", ret);
  3030. sde_kms->suspend_state = NULL;
  3031. goto unlock;
  3032. }
  3033. /* create atomic state to disable all CRTCs */
  3034. state = drm_atomic_state_alloc(ddev);
  3035. if (!state) {
  3036. ret = -ENOMEM;
  3037. DRM_ERROR("failed to allocate crtc disable state, %d\n", ret);
  3038. goto unlock;
  3039. }
  3040. state->acquire_ctx = &ctx;
  3041. drm_connector_list_iter_begin(ddev, &conn_iter);
  3042. drm_for_each_connector_iter(conn, &conn_iter) {
  3043. struct drm_crtc_state *crtc_state;
  3044. uint64_t lp;
  3045. if (!conn->state || !conn->state->crtc ||
  3046. conn->dpms != DRM_MODE_DPMS_ON ||
  3047. sde_encoder_in_clone_mode(conn->encoder))
  3048. continue;
  3049. lp = sde_connector_get_lp(conn);
  3050. if (lp == SDE_MODE_DPMS_LP1) {
  3051. /* transition LP1->LP2 on pm suspend */
  3052. ret = sde_connector_set_property_for_commit(conn, state,
  3053. CONNECTOR_PROP_LP, SDE_MODE_DPMS_LP2);
  3054. if (ret) {
  3055. DRM_ERROR("failed to set lp2 for conn %d\n",
  3056. conn->base.id);
  3057. drm_connector_list_iter_end(&conn_iter);
  3058. goto unlock;
  3059. }
  3060. }
  3061. if (lp != SDE_MODE_DPMS_LP2) {
  3062. /* force CRTC to be inactive */
  3063. crtc_state = drm_atomic_get_crtc_state(state,
  3064. conn->state->crtc);
  3065. if (IS_ERR_OR_NULL(crtc_state)) {
  3066. DRM_ERROR("failed to get crtc %d state\n",
  3067. conn->state->crtc->base.id);
  3068. drm_connector_list_iter_end(&conn_iter);
  3069. goto unlock;
  3070. }
  3071. if (lp != SDE_MODE_DPMS_LP1)
  3072. crtc_state->active = false;
  3073. ++num_crtcs;
  3074. }
  3075. }
  3076. drm_connector_list_iter_end(&conn_iter);
  3077. /* check for nothing to do */
  3078. if (num_crtcs == 0) {
  3079. DRM_DEBUG("all crtcs are already in the off state\n");
  3080. sde_kms->suspend_block = true;
  3081. _sde_kms_pm_suspend_idle_helper(sde_kms, dev);
  3082. goto unlock;
  3083. }
  3084. /* commit the "disable all" state */
  3085. ret = drm_atomic_commit(state);
  3086. if (ret < 0) {
  3087. DRM_ERROR("failed to disable crtcs, %d\n", ret);
  3088. goto unlock;
  3089. }
  3090. sde_kms->suspend_block = true;
  3091. _sde_kms_pm_suspend_idle_helper(sde_kms, dev);
  3092. unlock:
  3093. if (state) {
  3094. drm_atomic_state_put(state);
  3095. state = NULL;
  3096. }
  3097. if (ret == -EDEADLK) {
  3098. drm_modeset_backoff(&ctx);
  3099. goto retry;
  3100. }
  3101. drm_modeset_drop_locks(&ctx);
  3102. drm_modeset_acquire_fini(&ctx);
  3103. /*
  3104. * pm runtime driver avoids multiple runtime_suspend API call by
  3105. * checking runtime_status. However, this call helps when there is a
  3106. * race condition between pm_suspend call and doze_suspend/power_off
  3107. * commit. It removes the extra vote from suspend and adds it back
  3108. * later to allow power collapse during pm_suspend call
  3109. */
  3110. pm_runtime_put_sync(dev);
  3111. pm_runtime_get_noresume(dev);
  3112. /* dump clock state before entering suspend */
  3113. if (sde_kms->pm_suspend_clk_dump)
  3114. _sde_kms_dump_clks_state(sde_kms);
  3115. return ret;
  3116. }
  3117. static int sde_kms_pm_resume(struct device *dev)
  3118. {
  3119. struct drm_device *ddev;
  3120. struct sde_kms *sde_kms;
  3121. struct drm_modeset_acquire_ctx ctx;
  3122. int ret, i;
  3123. if (!dev)
  3124. return -EINVAL;
  3125. ddev = dev_get_drvdata(dev);
  3126. if (!ddev || !ddev_to_msm_kms(ddev))
  3127. return -EINVAL;
  3128. sde_kms = to_sde_kms(ddev_to_msm_kms(ddev));
  3129. SDE_EVT32(sde_kms->suspend_state != NULL);
  3130. drm_mode_config_reset(ddev);
  3131. drm_modeset_acquire_init(&ctx, 0);
  3132. retry:
  3133. ret = drm_modeset_lock_all_ctx(ddev, &ctx);
  3134. if (ret == -EDEADLK) {
  3135. drm_modeset_backoff(&ctx);
  3136. goto retry;
  3137. } else if (WARN_ON(ret)) {
  3138. goto end;
  3139. }
  3140. sde_kms->suspend_block = false;
  3141. if (sde_kms->suspend_state) {
  3142. sde_kms->suspend_state->acquire_ctx = &ctx;
  3143. for (i = 0; i < TEARDOWN_DEADLOCK_RETRY_MAX; i++) {
  3144. ret = drm_atomic_helper_commit_duplicated_state(
  3145. sde_kms->suspend_state, &ctx);
  3146. if (ret != -EDEADLK)
  3147. break;
  3148. drm_modeset_backoff(&ctx);
  3149. }
  3150. if (ret < 0)
  3151. DRM_ERROR("failed to restore state, %d\n", ret);
  3152. drm_atomic_state_put(sde_kms->suspend_state);
  3153. sde_kms->suspend_state = NULL;
  3154. }
  3155. end:
  3156. drm_modeset_drop_locks(&ctx);
  3157. drm_modeset_acquire_fini(&ctx);
  3158. /* enable hot-plug polling */
  3159. drm_kms_helper_poll_enable(ddev);
  3160. return 0;
  3161. }
  3162. static const struct msm_kms_funcs kms_funcs = {
  3163. .hw_init = sde_kms_hw_init,
  3164. .postinit = sde_kms_postinit,
  3165. .irq_preinstall = sde_irq_preinstall,
  3166. .irq_postinstall = sde_irq_postinstall,
  3167. .irq_uninstall = sde_irq_uninstall,
  3168. .irq = sde_irq,
  3169. .lastclose = sde_kms_lastclose,
  3170. .prepare_fence = sde_kms_prepare_fence,
  3171. .prepare_commit = sde_kms_prepare_commit,
  3172. .commit = sde_kms_commit,
  3173. .complete_commit = sde_kms_complete_commit,
  3174. .get_msm_mode = sde_kms_get_msm_mode,
  3175. .wait_for_crtc_commit_done = sde_kms_wait_for_commit_done,
  3176. .wait_for_tx_complete = sde_kms_wait_for_frame_transfer_complete,
  3177. .check_modified_format = sde_format_check_modified_format,
  3178. .atomic_check = sde_kms_atomic_check,
  3179. .get_format = sde_get_msm_format,
  3180. .round_pixclk = sde_kms_round_pixclk,
  3181. .display_early_wakeup = sde_kms_display_early_wakeup,
  3182. .pm_suspend = sde_kms_pm_suspend,
  3183. .pm_resume = sde_kms_pm_resume,
  3184. .destroy = sde_kms_destroy,
  3185. .debugfs_destroy = sde_kms_debugfs_destroy,
  3186. .cont_splash_config = sde_kms_cont_splash_config,
  3187. .register_events = _sde_kms_register_events,
  3188. .get_address_space = _sde_kms_get_address_space,
  3189. .get_address_space_device = _sde_kms_get_address_space_device,
  3190. .postopen = _sde_kms_post_open,
  3191. .check_for_splash = sde_kms_check_for_splash,
  3192. .get_mixer_count = sde_kms_get_mixer_count,
  3193. .get_dsc_count = sde_kms_get_dsc_count,
  3194. };
  3195. static int _sde_kms_mmu_destroy(struct sde_kms *sde_kms)
  3196. {
  3197. int i;
  3198. for (i = ARRAY_SIZE(sde_kms->aspace) - 1; i >= 0; i--) {
  3199. if (!sde_kms->aspace[i])
  3200. continue;
  3201. msm_gem_address_space_put(sde_kms->aspace[i]);
  3202. sde_kms->aspace[i] = NULL;
  3203. }
  3204. return 0;
  3205. }
  3206. static int _sde_kms_mmu_init(struct sde_kms *sde_kms)
  3207. {
  3208. struct msm_mmu *mmu;
  3209. int i, ret;
  3210. int early_map = 0;
  3211. if (!sde_kms || !sde_kms->dev || !sde_kms->dev->dev)
  3212. return -EINVAL;
  3213. for (i = 0; i < MSM_SMMU_DOMAIN_MAX; i++) {
  3214. struct msm_gem_address_space *aspace;
  3215. mmu = msm_smmu_new(sde_kms->dev->dev, i);
  3216. if (IS_ERR(mmu)) {
  3217. ret = PTR_ERR(mmu);
  3218. SDE_DEBUG("failed to init iommu id %d: rc:%d\n",
  3219. i, ret);
  3220. continue;
  3221. }
  3222. aspace = msm_gem_smmu_address_space_create(sde_kms->dev,
  3223. mmu, "sde");
  3224. if (IS_ERR(aspace)) {
  3225. ret = PTR_ERR(aspace);
  3226. mmu->funcs->destroy(mmu);
  3227. goto fail;
  3228. }
  3229. sde_kms->aspace[i] = aspace;
  3230. aspace->domain_attached = true;
  3231. /* Mapping splash memory block */
  3232. if ((i == MSM_SMMU_DOMAIN_UNSECURE) &&
  3233. sde_kms->splash_data.num_splash_regions) {
  3234. ret = _sde_kms_map_all_splash_regions(sde_kms);
  3235. if (ret) {
  3236. SDE_ERROR("failed to map ret:%d\n", ret);
  3237. goto early_map_fail;
  3238. }
  3239. }
  3240. /*
  3241. * disable early-map which would have been enabled during
  3242. * bootup by smmu through the device-tree hint for cont-spash
  3243. */
  3244. ret = mmu->funcs->set_attribute(mmu, DOMAIN_ATTR_EARLY_MAP,
  3245. &early_map);
  3246. if (ret) {
  3247. SDE_ERROR("failed to set_att ret:%d, early_map:%d\n",
  3248. ret, early_map);
  3249. goto early_map_fail;
  3250. }
  3251. }
  3252. sde_kms->base.aspace = sde_kms->aspace[0];
  3253. return 0;
  3254. early_map_fail:
  3255. _sde_kms_unmap_all_splash_regions(sde_kms);
  3256. fail:
  3257. _sde_kms_mmu_destroy(sde_kms);
  3258. return ret;
  3259. }
  3260. static void sde_kms_init_rot_sid_hw(struct sde_kms *sde_kms)
  3261. {
  3262. if (!sde_kms || !sde_kms->hw_sid || sde_in_trusted_vm(sde_kms))
  3263. return;
  3264. sde_hw_set_rotator_sid(sde_kms->hw_sid);
  3265. }
  3266. static void sde_kms_init_shared_hw(struct sde_kms *sde_kms)
  3267. {
  3268. if (!sde_kms || !sde_kms->hw_mdp || !sde_kms->catalog)
  3269. return;
  3270. if (sde_kms->hw_mdp->ops.reset_ubwc)
  3271. sde_kms->hw_mdp->ops.reset_ubwc(sde_kms->hw_mdp,
  3272. sde_kms->catalog);
  3273. }
  3274. static void _sde_kms_set_lutdma_vbif_remap(struct sde_kms *sde_kms)
  3275. {
  3276. struct sde_vbif_set_qos_params qos_params;
  3277. struct sde_mdss_cfg *catalog;
  3278. if (!sde_kms->catalog)
  3279. return;
  3280. catalog = sde_kms->catalog;
  3281. memset(&qos_params, 0, sizeof(qos_params));
  3282. qos_params.vbif_idx = catalog->dma_cfg.vbif_idx;
  3283. qos_params.xin_id = catalog->dma_cfg.xin_id;
  3284. qos_params.clk_ctrl = catalog->dma_cfg.clk_ctrl;
  3285. qos_params.client_type = VBIF_LUTDMA_CLIENT;
  3286. sde_vbif_set_qos_remap(sde_kms, &qos_params);
  3287. }
  3288. static int _sde_kms_active_override(struct sde_kms *sde_kms, bool enable)
  3289. {
  3290. struct sde_hw_uidle *uidle;
  3291. if (!sde_kms) {
  3292. SDE_ERROR("invalid kms\n");
  3293. return -EINVAL;
  3294. }
  3295. uidle = sde_kms->hw_uidle;
  3296. if (uidle && uidle->ops.active_override_enable)
  3297. uidle->ops.active_override_enable(uidle, enable);
  3298. return 0;
  3299. }
  3300. static void _sde_kms_update_pm_qos_irq_request(struct sde_kms *sde_kms)
  3301. {
  3302. struct device *cpu_dev;
  3303. int cpu = 0;
  3304. u32 cpu_irq_latency = sde_kms->catalog->perf.cpu_irq_latency;
  3305. if (cpumask_empty(&sde_kms->irq_cpu_mask)) {
  3306. SDE_DEBUG("%s: irq_cpu_mask is empty\n", __func__);
  3307. return;
  3308. }
  3309. for_each_cpu(cpu, &sde_kms->irq_cpu_mask) {
  3310. cpu_dev = get_cpu_device(cpu);
  3311. if (!cpu_dev) {
  3312. SDE_DEBUG("%s: failed to get cpu%d device\n", __func__,
  3313. cpu);
  3314. continue;
  3315. }
  3316. if (dev_pm_qos_request_active(&sde_kms->pm_qos_irq_req[cpu]))
  3317. dev_pm_qos_update_request(&sde_kms->pm_qos_irq_req[cpu],
  3318. cpu_irq_latency);
  3319. else
  3320. dev_pm_qos_add_request(cpu_dev,
  3321. &sde_kms->pm_qos_irq_req[cpu],
  3322. DEV_PM_QOS_RESUME_LATENCY,
  3323. cpu_irq_latency);
  3324. }
  3325. }
  3326. static void _sde_kms_remove_pm_qos_irq_request(struct sde_kms *sde_kms)
  3327. {
  3328. struct device *cpu_dev;
  3329. int cpu = 0;
  3330. if (cpumask_empty(&sde_kms->irq_cpu_mask)) {
  3331. SDE_DEBUG("%s: irq_cpu_mask is empty\n", __func__);
  3332. return;
  3333. }
  3334. for_each_cpu(cpu, &sde_kms->irq_cpu_mask) {
  3335. cpu_dev = get_cpu_device(cpu);
  3336. if (!cpu_dev) {
  3337. SDE_DEBUG("%s: failed to get cpu%d device\n", __func__,
  3338. cpu);
  3339. continue;
  3340. }
  3341. if (dev_pm_qos_request_active(&sde_kms->pm_qos_irq_req[cpu]))
  3342. dev_pm_qos_remove_request(
  3343. &sde_kms->pm_qos_irq_req[cpu]);
  3344. }
  3345. }
  3346. void sde_kms_cpu_vote_for_irq(struct sde_kms *sde_kms, bool enable)
  3347. {
  3348. struct msm_drm_private *priv = sde_kms->dev->dev_private;
  3349. mutex_lock(&priv->phandle.phandle_lock);
  3350. if (enable && atomic_inc_return(&sde_kms->irq_vote_count) == 1)
  3351. _sde_kms_update_pm_qos_irq_request(sde_kms);
  3352. else if (!enable && atomic_dec_return(&sde_kms->irq_vote_count) == 0)
  3353. _sde_kms_remove_pm_qos_irq_request(sde_kms);
  3354. mutex_unlock(&priv->phandle.phandle_lock);
  3355. }
  3356. static void sde_kms_irq_affinity_notify(
  3357. struct irq_affinity_notify *affinity_notify,
  3358. const cpumask_t *mask)
  3359. {
  3360. struct msm_drm_private *priv;
  3361. struct sde_kms *sde_kms = container_of(affinity_notify,
  3362. struct sde_kms, affinity_notify);
  3363. if (!sde_kms || !sde_kms->dev || !sde_kms->dev->dev_private)
  3364. return;
  3365. priv = sde_kms->dev->dev_private;
  3366. mutex_lock(&priv->phandle.phandle_lock);
  3367. _sde_kms_remove_pm_qos_irq_request(sde_kms);
  3368. // save irq cpu mask
  3369. sde_kms->irq_cpu_mask = *mask;
  3370. // request vote with updated irq cpu mask
  3371. if (atomic_read(&sde_kms->irq_vote_count))
  3372. _sde_kms_update_pm_qos_irq_request(sde_kms);
  3373. mutex_unlock(&priv->phandle.phandle_lock);
  3374. }
  3375. static void sde_kms_irq_affinity_release(struct kref *ref) {}
  3376. static void sde_kms_handle_power_event(u32 event_type, void *usr)
  3377. {
  3378. struct sde_kms *sde_kms = usr;
  3379. struct msm_kms *msm_kms;
  3380. msm_kms = &sde_kms->base;
  3381. if (!sde_kms)
  3382. return;
  3383. SDE_DEBUG("event_type:%d\n", event_type);
  3384. SDE_EVT32_VERBOSE(event_type);
  3385. if (event_type == SDE_POWER_EVENT_POST_ENABLE) {
  3386. sde_irq_update(msm_kms, true);
  3387. sde_kms->first_kickoff = true;
  3388. /**
  3389. * Rotator sid needs to be programmed since uefi doesn't
  3390. * configure it during continuous splash
  3391. */
  3392. sde_kms_init_rot_sid_hw(sde_kms);
  3393. if (sde_kms->splash_data.num_splash_displays ||
  3394. sde_in_trusted_vm(sde_kms))
  3395. return;
  3396. sde_vbif_init_memtypes(sde_kms);
  3397. sde_kms_init_shared_hw(sde_kms);
  3398. _sde_kms_set_lutdma_vbif_remap(sde_kms);
  3399. } else if (event_type == SDE_POWER_EVENT_PRE_DISABLE) {
  3400. sde_irq_update(msm_kms, false);
  3401. sde_kms->first_kickoff = false;
  3402. if (sde_in_trusted_vm(sde_kms))
  3403. return;
  3404. _sde_kms_active_override(sde_kms, true);
  3405. if (!is_sde_rsc_available(SDE_RSC_INDEX))
  3406. sde_vbif_axi_halt_request(sde_kms);
  3407. }
  3408. }
  3409. #define genpd_to_sde_kms(domain) container_of(domain, struct sde_kms, genpd)
  3410. static int sde_kms_pd_enable(struct generic_pm_domain *genpd)
  3411. {
  3412. struct sde_kms *sde_kms = genpd_to_sde_kms(genpd);
  3413. int rc = -EINVAL;
  3414. SDE_DEBUG("\n");
  3415. rc = pm_runtime_get_sync(sde_kms->dev->dev);
  3416. if (rc > 0)
  3417. rc = 0;
  3418. SDE_EVT32(rc, genpd->device_count);
  3419. return rc;
  3420. }
  3421. static int sde_kms_pd_disable(struct generic_pm_domain *genpd)
  3422. {
  3423. struct sde_kms *sde_kms = genpd_to_sde_kms(genpd);
  3424. SDE_DEBUG("\n");
  3425. pm_runtime_put_sync(sde_kms->dev->dev);
  3426. SDE_EVT32(genpd->device_count);
  3427. return 0;
  3428. }
  3429. static int _sde_kms_get_demura_plane_data(struct sde_splash_data *data)
  3430. {
  3431. int i = 0;
  3432. int ret = 0;
  3433. int count = 0;
  3434. struct device_node *parent, *node;
  3435. struct resource r;
  3436. char node_name[DEMURA_REGION_NAME_MAX];
  3437. struct sde_splash_mem *mem;
  3438. struct sde_splash_display *splash_display;
  3439. if (!data->num_splash_displays) {
  3440. SDE_DEBUG("no splash displays. skipping\n");
  3441. return 0;
  3442. }
  3443. /**
  3444. * It is expected that each active demura block will have
  3445. * its own memory region defined.
  3446. */
  3447. parent = of_find_node_by_path("/reserved-memory");
  3448. for (i = 0; i < data->num_splash_displays; i++) {
  3449. splash_display = &data->splash_display[i];
  3450. snprintf(&node_name[0], DEMURA_REGION_NAME_MAX,
  3451. "demura_region_%d", i);
  3452. splash_display->demura = NULL;
  3453. node = of_find_node_by_name(parent, node_name);
  3454. if (!node) {
  3455. SDE_DEBUG("no Demura node %s! disp count: %d\n",
  3456. node_name, data->num_splash_displays);
  3457. continue;
  3458. } else if (of_address_to_resource(node, i, &r)) {
  3459. SDE_ERROR("invalid data for:%s\n", node_name);
  3460. ret = -EINVAL;
  3461. break;
  3462. }
  3463. mem = &data->demura_mem[i];
  3464. mem->splash_buf_base = (unsigned long)r.start;
  3465. mem->splash_buf_size = (r.end - r.start) + 1;
  3466. if (!mem->splash_buf_base && !mem->splash_buf_size) {
  3467. SDE_DEBUG("dummy splash mem for disp %d. Skipping\n",
  3468. (i+1));
  3469. continue;
  3470. } else if (!mem->splash_buf_base || !mem->splash_buf_size) {
  3471. SDE_ERROR("mem for disp %d invalid: add:%lx size:%lx\n",
  3472. (i+1), mem->splash_buf_base,
  3473. mem->splash_buf_size);
  3474. continue;
  3475. }
  3476. mem->ref_cnt = 0;
  3477. splash_display->demura = mem;
  3478. count++;
  3479. SDE_DEBUG("demura mem for disp:%d add:%lx size:%x\n", (i + 1),
  3480. mem->splash_buf_base,
  3481. mem->splash_buf_size);
  3482. }
  3483. if (!ret && !count)
  3484. SDE_DEBUG("no demura regions for cont. splash found!\n");
  3485. return ret;
  3486. }
  3487. static int _sde_kms_get_splash_data(struct sde_splash_data *data)
  3488. {
  3489. int i = 0;
  3490. int ret = 0;
  3491. struct device_node *parent, *node, *node1;
  3492. struct resource r, r1;
  3493. const char *node_name = "splash_region";
  3494. struct sde_splash_mem *mem;
  3495. bool share_splash_mem = false;
  3496. int num_displays, num_regions;
  3497. struct sde_splash_display *splash_display;
  3498. if (!data)
  3499. return -EINVAL;
  3500. memset(data, 0, sizeof(*data));
  3501. parent = of_find_node_by_path("/reserved-memory");
  3502. if (!parent) {
  3503. SDE_ERROR("failed to find reserved-memory node\n");
  3504. return -EINVAL;
  3505. }
  3506. node = of_find_node_by_name(parent, node_name);
  3507. if (!node) {
  3508. SDE_DEBUG("failed to find node %s\n", node_name);
  3509. return -EINVAL;
  3510. }
  3511. node1 = of_find_node_by_name(NULL, "disp_rdump_region");
  3512. if (!node1)
  3513. SDE_DEBUG("failed to find disp ramdump memory reservation\n");
  3514. /**
  3515. * Support sharing a single splash memory for all the built in displays
  3516. * and also independent splash region per displays. Incase of
  3517. * independent splash region for each connected display, dtsi node of
  3518. * cont_splash_region should be collection of all memory regions
  3519. * Ex: <r1.start r1.end r2.start r2.end ... rn.start, rn.end>
  3520. */
  3521. num_displays = dsi_display_get_num_of_displays();
  3522. num_regions = of_property_count_u64_elems(node, "reg") / 2;
  3523. data->num_splash_displays = num_displays;
  3524. SDE_DEBUG("splash mem num_regions:%d\n", num_regions);
  3525. if (num_displays > num_regions) {
  3526. share_splash_mem = true;
  3527. pr_info(":%d displays share same splash buf\n", num_displays);
  3528. }
  3529. for (i = 0; i < num_displays; i++) {
  3530. splash_display = &data->splash_display[i];
  3531. if (!i || !share_splash_mem) {
  3532. if (of_address_to_resource(node, i, &r)) {
  3533. SDE_ERROR("invalid data for:%s\n", node_name);
  3534. return -EINVAL;
  3535. }
  3536. mem = &data->splash_mem[i];
  3537. if (!node1 || of_address_to_resource(node1, i, &r1)) {
  3538. SDE_DEBUG("failed to find ramdump memory\n");
  3539. mem->ramdump_base = 0;
  3540. mem->ramdump_size = 0;
  3541. } else {
  3542. mem->ramdump_base = (unsigned long)r1.start;
  3543. mem->ramdump_size = (r1.end - r1.start) + 1;
  3544. }
  3545. mem->splash_buf_base = (unsigned long)r.start;
  3546. mem->splash_buf_size = (r.end - r.start) + 1;
  3547. mem->ref_cnt = 0;
  3548. splash_display->splash = mem;
  3549. data->num_splash_regions++;
  3550. } else {
  3551. data->splash_display[i].splash = &data->splash_mem[0];
  3552. }
  3553. SDE_DEBUG("splash mem for disp:%d add:%lx size:%x\n", (i + 1),
  3554. splash_display->splash->splash_buf_base,
  3555. splash_display->splash->splash_buf_size);
  3556. }
  3557. data->type = SDE_SPLASH_HANDOFF;
  3558. ret = _sde_kms_get_demura_plane_data(data);
  3559. return ret;
  3560. }
  3561. static int _sde_kms_hw_init_ioremap(struct sde_kms *sde_kms,
  3562. struct platform_device *platformdev)
  3563. {
  3564. int rc = -EINVAL;
  3565. sde_kms->mmio = msm_ioremap(platformdev, "mdp_phys", "mdp_phys");
  3566. if (IS_ERR(sde_kms->mmio)) {
  3567. rc = PTR_ERR(sde_kms->mmio);
  3568. SDE_ERROR("mdp register memory map failed: %d\n", rc);
  3569. sde_kms->mmio = NULL;
  3570. goto error;
  3571. }
  3572. DRM_INFO("mapped mdp address space @%pK\n", sde_kms->mmio);
  3573. sde_kms->mmio_len = msm_iomap_size(platformdev, "mdp_phys");
  3574. rc = sde_dbg_reg_register_base(SDE_DBG_NAME, sde_kms->mmio,
  3575. sde_kms->mmio_len,
  3576. msm_get_phys_addr(platformdev, "mdp_phys"),
  3577. SDE_DBG_SDE);
  3578. if (rc)
  3579. SDE_ERROR("dbg base register kms failed: %d\n", rc);
  3580. sde_kms->vbif[VBIF_RT] = msm_ioremap(platformdev, "vbif_phys", "vbif_phys");
  3581. if (IS_ERR(sde_kms->vbif[VBIF_RT])) {
  3582. rc = PTR_ERR(sde_kms->vbif[VBIF_RT]);
  3583. SDE_ERROR("vbif register memory map failed: %d\n", rc);
  3584. sde_kms->vbif[VBIF_RT] = NULL;
  3585. goto error;
  3586. }
  3587. sde_kms->vbif_len[VBIF_RT] = msm_iomap_size(platformdev, "vbif_phys");
  3588. rc = sde_dbg_reg_register_base("vbif_rt", sde_kms->vbif[VBIF_RT],
  3589. sde_kms->vbif_len[VBIF_RT],
  3590. msm_get_phys_addr(platformdev, "vbif_phys"),
  3591. SDE_DBG_VBIF_RT);
  3592. if (rc)
  3593. SDE_ERROR("dbg base register vbif_rt failed: %d\n", rc);
  3594. sde_kms->vbif[VBIF_NRT] = msm_ioremap(platformdev, "vbif_nrt_phys", "vbif_nrt_phys");
  3595. if (IS_ERR(sde_kms->vbif[VBIF_NRT])) {
  3596. sde_kms->vbif[VBIF_NRT] = NULL;
  3597. SDE_DEBUG("VBIF NRT is not defined");
  3598. } else {
  3599. sde_kms->vbif_len[VBIF_NRT] = msm_iomap_size(platformdev, "vbif_nrt_phys");
  3600. }
  3601. sde_kms->reg_dma = msm_ioremap(platformdev, "regdma_phys", "regdma_phys");
  3602. if (IS_ERR(sde_kms->reg_dma)) {
  3603. sde_kms->reg_dma = NULL;
  3604. SDE_DEBUG("REG_DMA is not defined");
  3605. } else {
  3606. sde_kms->reg_dma_len = msm_iomap_size(platformdev, "regdma_phys");
  3607. rc = sde_dbg_reg_register_base("reg_dma", sde_kms->reg_dma,
  3608. sde_kms->reg_dma_len,
  3609. msm_get_phys_addr(platformdev, "regdma_phys"),
  3610. SDE_DBG_LUTDMA);
  3611. if (rc)
  3612. SDE_ERROR("dbg base register reg_dma failed: %d\n", rc);
  3613. }
  3614. sde_kms->sid = msm_ioremap(platformdev, "sid_phys", "sid_phys");
  3615. if (IS_ERR(sde_kms->sid)) {
  3616. SDE_DEBUG("sid register is not defined: %d\n", rc);
  3617. sde_kms->sid = NULL;
  3618. } else {
  3619. sde_kms->sid_len = msm_iomap_size(platformdev, "sid_phys");
  3620. rc = sde_dbg_reg_register_base("sid", sde_kms->sid,
  3621. sde_kms->sid_len,
  3622. msm_get_phys_addr(platformdev, "sid_phys"),
  3623. SDE_DBG_SID);
  3624. if (rc)
  3625. SDE_ERROR("dbg base register sid failed: %d\n", rc);
  3626. }
  3627. error:
  3628. return rc;
  3629. }
  3630. static int _sde_kms_hw_init_power_helper(struct drm_device *dev,
  3631. struct sde_kms *sde_kms)
  3632. {
  3633. int rc = 0;
  3634. if (of_find_property(dev->dev->of_node, "#power-domain-cells", NULL)) {
  3635. sde_kms->genpd.name = dev->unique;
  3636. sde_kms->genpd.power_off = sde_kms_pd_disable;
  3637. sde_kms->genpd.power_on = sde_kms_pd_enable;
  3638. rc = pm_genpd_init(&sde_kms->genpd, NULL, true);
  3639. if (rc < 0) {
  3640. SDE_ERROR("failed to init genpd provider %s: %d\n",
  3641. sde_kms->genpd.name, rc);
  3642. return rc;
  3643. }
  3644. rc = of_genpd_add_provider_simple(dev->dev->of_node,
  3645. &sde_kms->genpd);
  3646. if (rc < 0) {
  3647. SDE_ERROR("failed to add genpd provider %s: %d\n",
  3648. sde_kms->genpd.name, rc);
  3649. pm_genpd_remove(&sde_kms->genpd);
  3650. return rc;
  3651. }
  3652. sde_kms->genpd_init = true;
  3653. SDE_DEBUG("added genpd provider %s\n", sde_kms->genpd.name);
  3654. }
  3655. return rc;
  3656. }
  3657. static int _sde_kms_hw_init_blocks(struct sde_kms *sde_kms,
  3658. struct drm_device *dev,
  3659. struct msm_drm_private *priv)
  3660. {
  3661. struct sde_rm *rm = NULL;
  3662. int i, rc = -EINVAL;
  3663. sde_kms->catalog = sde_hw_catalog_init(dev);
  3664. if (IS_ERR_OR_NULL(sde_kms->catalog)) {
  3665. rc = PTR_ERR(sde_kms->catalog);
  3666. if (!sde_kms->catalog)
  3667. rc = -EINVAL;
  3668. SDE_ERROR("catalog init failed: %d\n", rc);
  3669. sde_kms->catalog = NULL;
  3670. goto power_error;
  3671. }
  3672. sde_kms->core_rev = sde_kms->catalog->hwversion;
  3673. pr_info("sde hardware revision:0x%x\n", sde_kms->core_rev);
  3674. /* initialize power domain if defined */
  3675. rc = _sde_kms_hw_init_power_helper(dev, sde_kms);
  3676. if (rc) {
  3677. SDE_ERROR("_sde_kms_hw_init_power_helper failed: %d\n", rc);
  3678. goto genpd_err;
  3679. }
  3680. rc = _sde_kms_mmu_init(sde_kms);
  3681. if (rc) {
  3682. SDE_ERROR("sde_kms_mmu_init failed: %d\n", rc);
  3683. goto power_error;
  3684. }
  3685. /* Initialize reg dma block which is a singleton */
  3686. rc = sde_reg_dma_init(sde_kms->reg_dma, sde_kms->catalog,
  3687. sde_kms->dev);
  3688. if (rc) {
  3689. SDE_ERROR("failed: reg dma init failed\n");
  3690. goto power_error;
  3691. }
  3692. sde_dbg_init_dbg_buses(sde_kms->core_rev);
  3693. rm = &sde_kms->rm;
  3694. rc = sde_rm_init(rm, sde_kms->catalog, sde_kms->mmio,
  3695. sde_kms->dev);
  3696. if (rc) {
  3697. SDE_ERROR("rm init failed: %d\n", rc);
  3698. goto power_error;
  3699. }
  3700. sde_kms->rm_init = true;
  3701. sde_kms->hw_intr = sde_hw_intr_init(sde_kms->mmio, sde_kms->catalog);
  3702. if (IS_ERR_OR_NULL(sde_kms->hw_intr)) {
  3703. rc = PTR_ERR(sde_kms->hw_intr);
  3704. SDE_ERROR("hw_intr init failed: %d\n", rc);
  3705. sde_kms->hw_intr = NULL;
  3706. goto hw_intr_init_err;
  3707. }
  3708. /*
  3709. * Attempt continuous splash handoff only if reserved
  3710. * splash memory is found & release resources on any error
  3711. * in finding display hw config in splash
  3712. */
  3713. if (sde_kms->splash_data.num_splash_regions) {
  3714. struct sde_splash_display *display;
  3715. int ret, display_count =
  3716. sde_kms->splash_data.num_splash_displays;
  3717. ret = sde_rm_cont_splash_res_init(priv, &sde_kms->rm,
  3718. &sde_kms->splash_data, sde_kms->catalog);
  3719. for (i = 0; i < display_count; i++) {
  3720. display = &sde_kms->splash_data.splash_display[i];
  3721. /*
  3722. * free splash region on resource init failure and
  3723. * cont-splash disabled case
  3724. */
  3725. if (!display->cont_splash_enabled || ret)
  3726. _sde_kms_free_splash_display_data(
  3727. sde_kms, display);
  3728. }
  3729. }
  3730. sde_kms->hw_mdp = sde_rm_get_mdp(&sde_kms->rm);
  3731. if (IS_ERR_OR_NULL(sde_kms->hw_mdp)) {
  3732. rc = PTR_ERR(sde_kms->hw_mdp);
  3733. if (!sde_kms->hw_mdp)
  3734. rc = -EINVAL;
  3735. SDE_ERROR("failed to get hw_mdp: %d\n", rc);
  3736. sde_kms->hw_mdp = NULL;
  3737. goto power_error;
  3738. }
  3739. for (i = 0; i < sde_kms->catalog->vbif_count; i++) {
  3740. u32 vbif_idx = sde_kms->catalog->vbif[i].id;
  3741. sde_kms->hw_vbif[i] = sde_hw_vbif_init(vbif_idx,
  3742. sde_kms->vbif[vbif_idx], sde_kms->catalog);
  3743. if (IS_ERR_OR_NULL(sde_kms->hw_vbif[vbif_idx])) {
  3744. rc = PTR_ERR(sde_kms->hw_vbif[vbif_idx]);
  3745. if (!sde_kms->hw_vbif[vbif_idx])
  3746. rc = -EINVAL;
  3747. SDE_ERROR("failed to init vbif %d: %d\n", vbif_idx, rc);
  3748. sde_kms->hw_vbif[vbif_idx] = NULL;
  3749. goto power_error;
  3750. }
  3751. }
  3752. if (sde_kms->catalog->uidle_cfg.uidle_rev) {
  3753. sde_kms->hw_uidle = sde_hw_uidle_init(UIDLE, sde_kms->mmio,
  3754. sde_kms->mmio_len, sde_kms->catalog);
  3755. if (IS_ERR_OR_NULL(sde_kms->hw_uidle)) {
  3756. rc = PTR_ERR(sde_kms->hw_uidle);
  3757. if (!sde_kms->hw_uidle)
  3758. rc = -EINVAL;
  3759. /* uidle is optional, so do not make it a fatal error */
  3760. SDE_ERROR("failed to init uidle rc:%d\n", rc);
  3761. sde_kms->hw_uidle = NULL;
  3762. rc = 0;
  3763. }
  3764. } else {
  3765. sde_kms->hw_uidle = NULL;
  3766. }
  3767. if (sde_kms->sid) {
  3768. sde_kms->hw_sid = sde_hw_sid_init(sde_kms->sid,
  3769. sde_kms->sid_len, sde_kms->catalog);
  3770. if (IS_ERR_OR_NULL(sde_kms->hw_sid)) {
  3771. rc = PTR_ERR(sde_kms->hw_sid);
  3772. SDE_ERROR("failed to init sid %d\n", rc);
  3773. sde_kms->hw_sid = NULL;
  3774. goto power_error;
  3775. }
  3776. }
  3777. rc = sde_core_perf_init(&sde_kms->perf, dev, sde_kms->catalog,
  3778. &priv->phandle, "core_clk");
  3779. if (rc) {
  3780. SDE_ERROR("failed to init perf %d\n", rc);
  3781. goto perf_err;
  3782. }
  3783. /*
  3784. * set the disable_immediate flag when driver supports the precise vsync
  3785. * timestamp as the DRM hooks for vblank timestamp/counters would be set
  3786. * based on the feature
  3787. */
  3788. if (sde_kms->catalog->has_precise_vsync_ts)
  3789. dev->vblank_disable_immediate = true;
  3790. /*
  3791. * _sde_kms_drm_obj_init should create the DRM related objects
  3792. * i.e. CRTCs, planes, encoders, connectors and so forth
  3793. */
  3794. rc = _sde_kms_drm_obj_init(sde_kms);
  3795. if (rc) {
  3796. SDE_ERROR("modeset init failed: %d\n", rc);
  3797. goto drm_obj_init_err;
  3798. }
  3799. return 0;
  3800. genpd_err:
  3801. drm_obj_init_err:
  3802. sde_core_perf_destroy(&sde_kms->perf);
  3803. hw_intr_init_err:
  3804. perf_err:
  3805. power_error:
  3806. return rc;
  3807. }
  3808. int _sde_kms_get_tvm_inclusion_mem(struct sde_mdss_cfg *catalog, struct list_head *mem_list)
  3809. {
  3810. struct list_head temp_head;
  3811. struct msm_io_mem_entry *io_mem;
  3812. int rc, i = 0;
  3813. INIT_LIST_HEAD(&temp_head);
  3814. for (i = 0; i < catalog->tvm_reg_count; i++) {
  3815. struct resource *res = &catalog->tvm_reg[i];
  3816. io_mem = kzalloc(sizeof(struct msm_io_mem_entry), GFP_KERNEL);
  3817. if (!io_mem) {
  3818. rc = -ENOMEM;
  3819. goto parse_fail;
  3820. }
  3821. io_mem->base = res->start;
  3822. io_mem->size = resource_size(res);
  3823. list_add(&io_mem->list, &temp_head);
  3824. }
  3825. list_splice(&temp_head, mem_list);
  3826. return 0;
  3827. parse_fail:
  3828. msm_dss_clean_io_mem(&temp_head);
  3829. return rc;
  3830. }
  3831. int sde_kms_get_io_resources(struct sde_kms *sde_kms, struct msm_io_res *io_res)
  3832. {
  3833. struct platform_device *pdev = to_platform_device(sde_kms->dev->dev);
  3834. int rc = 0;
  3835. rc = msm_dss_get_io_mem(pdev, &io_res->mem);
  3836. if (rc) {
  3837. SDE_ERROR("failed to get io mem for KMS, rc = %d\n", rc);
  3838. return rc;
  3839. }
  3840. rc = msm_dss_get_pmic_io_mem(pdev, &io_res->mem);
  3841. if (rc) {
  3842. SDE_ERROR("failed to get io mem for pmic, rc:%d\n", rc);
  3843. return rc;
  3844. }
  3845. rc = msm_dss_get_io_irq(pdev, &io_res->irq, GH_IRQ_LABEL_SDE);
  3846. if (rc) {
  3847. SDE_ERROR("failed to get io irq for KMS");
  3848. return rc;
  3849. }
  3850. rc = _sde_kms_get_tvm_inclusion_mem(sde_kms->catalog, &io_res->mem);
  3851. if (rc) {
  3852. SDE_ERROR("failed to get tvm inclusion mem ranges");
  3853. return rc;
  3854. }
  3855. return rc;
  3856. }
  3857. static int sde_kms_hw_init(struct msm_kms *kms)
  3858. {
  3859. struct sde_kms *sde_kms;
  3860. struct drm_device *dev;
  3861. struct msm_drm_private *priv;
  3862. struct platform_device *platformdev;
  3863. int i, irq_num, rc = -EINVAL;
  3864. if (!kms) {
  3865. SDE_ERROR("invalid kms\n");
  3866. goto end;
  3867. }
  3868. sde_kms = to_sde_kms(kms);
  3869. dev = sde_kms->dev;
  3870. if (!dev || !dev->dev) {
  3871. SDE_ERROR("invalid device\n");
  3872. goto end;
  3873. }
  3874. platformdev = to_platform_device(dev->dev);
  3875. priv = dev->dev_private;
  3876. if (!priv) {
  3877. SDE_ERROR("invalid private data\n");
  3878. goto end;
  3879. }
  3880. rc = _sde_kms_hw_init_ioremap(sde_kms, platformdev);
  3881. if (rc)
  3882. goto error;
  3883. rc = _sde_kms_get_splash_data(&sde_kms->splash_data);
  3884. if (rc)
  3885. SDE_DEBUG("sde splash data fetch failed: %d\n", rc);
  3886. rc = _sde_kms_hw_init_blocks(sde_kms, dev, priv);
  3887. if (rc)
  3888. goto error;
  3889. dev->mode_config.min_width = sde_kms->catalog->min_display_width;
  3890. dev->mode_config.min_height = sde_kms->catalog->min_display_height;
  3891. dev->mode_config.max_width = sde_kms->catalog->max_display_width;
  3892. dev->mode_config.max_height = sde_kms->catalog->max_display_height;
  3893. mutex_init(&sde_kms->secure_transition_lock);
  3894. atomic_set(&sde_kms->detach_sec_cb, 0);
  3895. atomic_set(&sde_kms->detach_all_cb, 0);
  3896. atomic_set(&sde_kms->irq_vote_count, 0);
  3897. /*
  3898. * Support format modifiers for compression etc.
  3899. */
  3900. dev->mode_config.allow_fb_modifiers = true;
  3901. /*
  3902. * Handle (re)initializations during power enable
  3903. */
  3904. sde_kms_handle_power_event(SDE_POWER_EVENT_POST_ENABLE, sde_kms);
  3905. sde_kms->power_event = sde_power_handle_register_event(&priv->phandle,
  3906. SDE_POWER_EVENT_POST_ENABLE |
  3907. SDE_POWER_EVENT_PRE_DISABLE,
  3908. sde_kms_handle_power_event, sde_kms, "kms");
  3909. if (sde_kms->splash_data.num_splash_displays) {
  3910. SDE_DEBUG("Skipping MDP Resources disable\n");
  3911. } else {
  3912. for (i = 0; i < SDE_POWER_HANDLE_DBUS_ID_MAX; i++)
  3913. sde_power_data_bus_set_quota(&priv->phandle, i,
  3914. SDE_POWER_HANDLE_ENABLE_BUS_AB_QUOTA,
  3915. SDE_POWER_HANDLE_ENABLE_BUS_IB_QUOTA);
  3916. pm_runtime_put_sync(sde_kms->dev->dev);
  3917. }
  3918. sde_kms->affinity_notify.notify = sde_kms_irq_affinity_notify;
  3919. sde_kms->affinity_notify.release = sde_kms_irq_affinity_release;
  3920. irq_num = platform_get_irq(to_platform_device(sde_kms->dev->dev), 0);
  3921. SDE_DEBUG("Registering for notification of irq_num: %d\n", irq_num);
  3922. irq_set_affinity_notifier(irq_num, &sde_kms->affinity_notify);
  3923. if (sde_in_trusted_vm(sde_kms)) {
  3924. rc = sde_vm_trusted_init(sde_kms);
  3925. sde_dbg_set_hw_ownership_status(false);
  3926. } else {
  3927. rc = sde_vm_primary_init(sde_kms);
  3928. sde_dbg_set_hw_ownership_status(true);
  3929. }
  3930. if (rc) {
  3931. SDE_ERROR("failed to initialize VM ops, rc: %d\n", rc);
  3932. goto error;
  3933. }
  3934. return 0;
  3935. error:
  3936. _sde_kms_hw_destroy(sde_kms, platformdev);
  3937. end:
  3938. return rc;
  3939. }
  3940. struct msm_kms *sde_kms_init(struct drm_device *dev)
  3941. {
  3942. struct msm_drm_private *priv;
  3943. struct sde_kms *sde_kms;
  3944. if (!dev || !dev->dev_private) {
  3945. SDE_ERROR("drm device node invalid\n");
  3946. return ERR_PTR(-EINVAL);
  3947. }
  3948. priv = dev->dev_private;
  3949. sde_kms = kzalloc(sizeof(*sde_kms), GFP_KERNEL);
  3950. if (!sde_kms) {
  3951. SDE_ERROR("failed to allocate sde kms\n");
  3952. return ERR_PTR(-ENOMEM);
  3953. }
  3954. msm_kms_init(&sde_kms->base, &kms_funcs);
  3955. sde_kms->dev = dev;
  3956. return &sde_kms->base;
  3957. }
  3958. void sde_kms_vm_trusted_resource_deinit(struct sde_kms *sde_kms)
  3959. {
  3960. struct dsi_display *display;
  3961. struct sde_splash_display *handoff_display;
  3962. int i;
  3963. for (i = 0; i < sde_kms->dsi_display_count; i++) {
  3964. handoff_display = &sde_kms->splash_data.splash_display[i];
  3965. display = (struct dsi_display *)sde_kms->dsi_displays[i];
  3966. if (handoff_display->cont_splash_enabled)
  3967. _sde_kms_free_splash_display_data(sde_kms,
  3968. handoff_display);
  3969. dsi_display_set_active_state(display, false);
  3970. }
  3971. memset(&sde_kms->splash_data, 0, sizeof(struct sde_splash_data));
  3972. }
  3973. int sde_kms_vm_trusted_resource_init(struct sde_kms *sde_kms,
  3974. struct drm_atomic_state *state)
  3975. {
  3976. struct drm_device *dev;
  3977. struct msm_drm_private *priv;
  3978. struct sde_splash_display *handoff_display;
  3979. struct dsi_display *display;
  3980. int ret, i;
  3981. if (!sde_kms || !sde_kms->dev || !sde_kms->dev->dev_private) {
  3982. SDE_ERROR("invalid params\n");
  3983. return -EINVAL;
  3984. }
  3985. dev = sde_kms->dev;
  3986. priv = dev->dev_private;
  3987. sde_kms->splash_data.type = SDE_VM_HANDOFF;
  3988. sde_kms->splash_data.num_splash_displays = sde_kms->dsi_display_count;
  3989. ret = sde_rm_cont_splash_res_init(priv, &sde_kms->rm,
  3990. &sde_kms->splash_data, sde_kms->catalog);
  3991. if (ret) {
  3992. SDE_ERROR("invalid cont splash init, ret:%d\n", ret);
  3993. return -EINVAL;
  3994. }
  3995. for (i = 0; i < sde_kms->dsi_display_count; i++) {
  3996. handoff_display = &sde_kms->splash_data.splash_display[i];
  3997. display = (struct dsi_display *)sde_kms->dsi_displays[i];
  3998. if (!handoff_display->cont_splash_enabled || ret)
  3999. _sde_kms_free_splash_display_data(sde_kms,
  4000. handoff_display);
  4001. else
  4002. dsi_display_set_active_state(display, true);
  4003. }
  4004. if (sde_kms->splash_data.num_splash_displays != 1) {
  4005. SDE_ERROR("no. of displays not supported:%d\n",
  4006. sde_kms->splash_data.num_splash_displays);
  4007. goto error;
  4008. }
  4009. ret = sde_kms_cont_splash_config(&sde_kms->base, state);
  4010. if (ret) {
  4011. SDE_ERROR("error in setting handoff configs\n");
  4012. goto error;
  4013. }
  4014. /**
  4015. * fill-in vote for the continuous splash hanodff path, which will be
  4016. * removed on the successful first commit.
  4017. */
  4018. pm_runtime_get_sync(sde_kms->dev->dev);
  4019. return 0;
  4020. error:
  4021. return ret;
  4022. }
  4023. static int _sde_kms_register_events(struct msm_kms *kms,
  4024. struct drm_mode_object *obj, u32 event, bool en)
  4025. {
  4026. int ret = 0;
  4027. struct drm_crtc *crtc = NULL;
  4028. struct drm_connector *conn = NULL;
  4029. struct sde_kms *sde_kms = NULL;
  4030. struct sde_vm_ops *vm_ops;
  4031. if (!kms || !obj) {
  4032. SDE_ERROR("invalid argument kms %pK obj %pK\n", kms, obj);
  4033. return -EINVAL;
  4034. }
  4035. sde_kms = to_sde_kms(kms);
  4036. /* check vm ownership, if event registration requires HW access */
  4037. switch (obj->type) {
  4038. case DRM_MODE_OBJECT_CRTC:
  4039. vm_ops = sde_vm_get_ops(sde_kms);
  4040. sde_vm_lock(sde_kms);
  4041. if (vm_ops && vm_ops->vm_owns_hw
  4042. && !vm_ops->vm_owns_hw(sde_kms)) {
  4043. sde_vm_unlock(sde_kms);
  4044. SDE_DEBUG("HW is owned by other VM\n");
  4045. return -EACCES;
  4046. }
  4047. crtc = obj_to_crtc(obj);
  4048. ret = sde_crtc_register_custom_event(sde_kms, crtc, event, en);
  4049. sde_vm_unlock(sde_kms);
  4050. break;
  4051. case DRM_MODE_OBJECT_CONNECTOR:
  4052. conn = obj_to_connector(obj);
  4053. ret = sde_connector_register_custom_event(sde_kms, conn, event,
  4054. en);
  4055. break;
  4056. }
  4057. return ret;
  4058. }
  4059. int sde_kms_handle_recovery(struct drm_encoder *encoder)
  4060. {
  4061. SDE_EVT32(DRMID(encoder), MSM_ENC_ACTIVE_REGION);
  4062. return sde_encoder_wait_for_event(encoder, MSM_ENC_ACTIVE_REGION);
  4063. }