ddp_dsi.c 116 KB

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  1. /* Copyright Statement:
  2. *
  3. * This software/firmware and related documentation ("MediaTek Software") are
  4. * protected under relevant copyright laws. The information contained herein
  5. * is confidential and proprietary to MediaTek Inc. and/or its licensors.
  6. * Without the prior written permission of MediaTek inc. and/or its licensors,
  7. * any reproduction, modification, use or disclosure of MediaTek Software,
  8. * and information contained herein, in whole or in part, shall be strictly prohibited.
  9. */
  10. /* MediaTek Inc. (C) 2015. All rights reserved.
  11. *
  12. * BY OPENING THIS FILE, RECEIVER HEREBY UNEQUIVOCALLY ACKNOWLEDGES AND AGREES
  13. * THAT THE SOFTWARE/FIRMWARE AND ITS DOCUMENTATIONS ("MEDIATEK SOFTWARE")
  14. * RECEIVED FROM MEDIATEK AND/OR ITS REPRESENTATIVES ARE PROVIDED TO RECEIVER ON
  15. * AN "AS-IS" BASIS ONLY. MEDIATEK EXPRESSLY DISCLAIMS ANY AND ALL WARRANTIES,
  16. * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE IMPLIED WARRANTIES OF
  17. * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE OR NONINFRINGEMENT.
  18. * NEITHER DOES MEDIATEK PROVIDE ANY WARRANTY WHATSOEVER WITH RESPECT TO THE
  19. * SOFTWARE OF ANY THIRD PARTY WHICH MAY BE USED BY, INCORPORATED IN, OR
  20. * SUPPLIED WITH THE MEDIATEK SOFTWARE, AND RECEIVER AGREES TO LOOK ONLY TO SUCH
  21. * THIRD PARTY FOR ANY WARRANTY CLAIM RELATING THERETO. RECEIVER EXPRESSLY ACKNOWLEDGES
  22. * THAT IT IS RECEIVER'S SOLE RESPONSIBILITY TO OBTAIN FROM ANY THIRD PARTY ALL PROPER LICENSES
  23. * CONTAINED IN MEDIATEK SOFTWARE. MEDIATEK SHALL ALSO NOT BE RESPONSIBLE FOR ANY MEDIATEK
  24. * SOFTWARE RELEASES MADE TO RECEIVER'S SPECIFICATION OR TO CONFORM TO A PARTICULAR
  25. * STANDARD OR OPEN FORUM. RECEIVER'S SOLE AND EXCLUSIVE REMEDY AND MEDIATEK'S ENTIRE AND
  26. * CUMULATIVE LIABILITY WITH RESPECT TO THE MEDIATEK SOFTWARE RELEASED HEREUNDER WILL BE,
  27. * AT MEDIATEK'S OPTION, TO REVISE OR REPLACE THE MEDIATEK SOFTWARE AT ISSUE,
  28. * OR REFUND ANY SOFTWARE LICENSE FEES OR SERVICE CHARGE PAID BY RECEIVER TO
  29. * MEDIATEK FOR SUCH MEDIATEK SOFTWARE AT ISSUE.
  30. */
  31. #define LOG_TAG "DSI"
  32. #include <platform/ddp_info.h>
  33. #include <platform/mt_typedefs.h>
  34. #include <platform/sync_write.h>
  35. #include <platform/disp_drv_platform.h>
  36. #include <platform/disp_drv_log.h>
  37. #include <platform/ddp_manager.h>
  38. #include <platform/ddp_reg.h>
  39. #include <platform/ddp_dsi.h>
  40. #include <platform/ddp_log.h>
  41. //#include <platform/ddp_dump.h>
  42. //#include <platform/ddp_path.h>
  43. #include <debug.h>
  44. #include <string.h>
  45. #include <platform/mt_gpio.h>
  46. #include "lcm_util.h"
  47. #define ENABLE_DSI_INTERRUPT 0
  48. #define DSI_MODULE_BEGIN(x) (x == DISP_MODULE_DSIDUAL ? 0 : DSI_MODULE_to_ID(x))
  49. #define DSI_MODULE_END(x) (x == DISP_MODULE_DSIDUAL ? 1 : DSI_MODULE_to_ID(x))
  50. #define DSI_MODULE_to_ID(x) (x == DISP_MODULE_DSI0 ? 0 : 1)
  51. #define DIFF_CLK_LANE_LP 0x10
  52. static int dsi_reg_op_debug;
  53. //static int mipi_reg_op_debug = 1;
  54. static int s_isDsiPowerOn;
  55. /*****************************************************************************/
  56. typedef enum {
  57. PAD_D2P_V = 0,
  58. PAD_D2N_V,
  59. PAD_D0P_V,
  60. PAD_D0N_V,
  61. PAD_CKP_V,
  62. PAD_CKN_V,
  63. PAD_D1P_V,
  64. PAD_D1N_V,
  65. PAD_D3P_V,
  66. PAD_D3N_V,
  67. PAD_NUM
  68. } MIPITX_PAD_VALUE;
  69. #define DSI_OUTREG32(cmdq, addr, val) \
  70. do { \
  71. if (dsi_reg_op_debug) \
  72. DISPMSG("[dsi/reg]0x%p=0x%08x, cmdq:0x%p\n", (void *)addr, val, cmdq);\
  73. mt_reg_sync_writel(val, addr); \
  74. } while (0)
  75. #define BIT_TO_VALUE(TYPE,bit) \
  76. do { TYPE r;\
  77. *(unsigned int*)(&r) = ((unsigned int)0x00000000); \
  78. r.bit = ~(r.bit);\
  79. r;\
  80. } while (0);\
  81. #define DSI_MASKREG32(cmdq, REG, MASK, VALUE) DISP_REG_MASK((cmdq), (REG), (VALUE), (MASK))
  82. #define DSI_OUTREGBIT(cmdq, TYPE, REG, bit, value) \
  83. {\
  84. if(cmdq)\
  85. {do {\
  86. } while (0);}\
  87. else\
  88. {\
  89. do {\
  90. TYPE r = *((TYPE*)&INREG32(&REG)); \
  91. r.bit = value; \
  92. DSI_OUTREG32(cmdq, &REG, AS_UINT32(&r)); \
  93. } while (0);\
  94. }}
  95. #ifdef MACH_FPGA
  96. #define MIPITX_INREGBIT(addr, field) (0)
  97. #define MIPITX_OUTREG32(addr, val) \
  98. do { \
  99. if (dsi_reg_op_debug) \
  100. DDPMSG("[mipitx/reg]%p=0x%08x\n", (void *)addr, val); \
  101. if (0) \
  102. mt_reg_sync_writel(val, addr); \
  103. } while (0)
  104. #define MIPITX_OUTREGBIT(addr, field, value) \
  105. do { \
  106. unsigned int val = 0; \
  107. if (0) \
  108. val = INREG32(addr);\
  109. val = (val & ~REG_FLD_MASK(field)) | (REG_FLD_VAL((field), (value))); \
  110. MIPITX_OUTREG32(addr, val); \
  111. } while (0)
  112. #else
  113. #define MIPITX_INREGBIT(addr, field) (REG_FLD_VAL((field), INREG32(addr)))
  114. #define MIPITX_OUTREG32(addr, val) \
  115. do {\
  116. if (dsi_reg_op_debug) { \
  117. DDPMSG("[mipitx/wreg]%p=0x%08x\n", (void *)addr, val);\
  118. } \
  119. mt_reg_sync_writel(val, addr);\
  120. } while (0)
  121. #define MIPITX_OUTREGBIT(addr, field, value) \
  122. do { \
  123. unsigned int val = 0; \
  124. val = INREG32(addr); \
  125. val = (val & ~REG_FLD_MASK(field)) | (REG_FLD_VAL((field), (value))); \
  126. MIPITX_OUTREG32(addr, val); \
  127. } while (0)
  128. #endif
  129. #define DSI_POLLREG32(cmdq, addr,mask,value) \
  130. do{\
  131. {}\
  132. }while(0);
  133. #define DSI_INREG32(type,addr) \
  134. ({ \
  135. unsigned int var = 0; \
  136. union p_regs \
  137. { \
  138. type p_reg; \
  139. unsigned int * p_uint; \
  140. }p_temp1; \
  141. p_temp1.p_reg = (type)(addr); \
  142. var = INREG32(p_temp1.p_uint); \
  143. var; \
  144. })
  145. #define DSI_READREG32(type, dst, src) \
  146. { \
  147. union p_regs \
  148. { \
  149. type p_reg; \
  150. unsigned int * p_uint; \
  151. }p_temp1,p_temp2; \
  152. p_temp1.p_reg = (type)(dst); \
  153. p_temp2.p_reg = (type)(src); \
  154. OUTREG32(p_temp1.p_uint,INREG32(p_temp2.p_uint));}
  155. typedef struct {
  156. void* handle;
  157. bool enable;
  158. struct DSI_REGS_TYPE regBackup;
  159. unsigned int cmdq_size;
  160. LCM_DSI_PARAMS dsi_params;
  161. } t_dsi_context;
  162. struct mipitx_impedance{
  163. unsigned int num_to_fill;
  164. unsigned int base;
  165. unsigned int offset_start;
  166. };
  167. t_dsi_context _dsi_context[DSI_INTERFACE_NUM];
  168. static struct DSI_REGS* const DSI_REG[2] = {(struct DSI_REGS*)(DISPSYS_DSI0_BASE), (struct DSI_REGS*)(DISPSYS_DSI1_BASE)};
  169. static unsigned long const DSI_PHY_REG[2] = {(unsigned long)(DISPSYS_MIPITX0_BASE), (unsigned long)(DISPSYS_MIPITX1_BASE)};
  170. static struct DSI_CMDQ_REGS* const DSI_CMDQ_REG[2] = {(struct DSI_CMDQ_REGS*)(DISPSYS_DSI0_BASE+0x200), (struct DSI_CMDQ_REGS*)(DISPSYS_DSI1_BASE+0x200)};
  171. static struct DSI_CMDQ_REGS_TYPE* const DSI_CMDQ_REG_TYPE[2] = {(struct DSI_CMDQ_REGS_TYPE*)(DISPSYS_DSI0_BASE+0x200), (struct DSI_CMDQ_REGS_TYPE*)(DISPSYS_DSI1_BASE+0x200)};
  172. static struct DSI_VM_CMDQ_REGS* const DSI_VM_CMD_REG[2] = {(struct DSI_VM_CMDQ_REGS*)(DISPSYS_DSI0_BASE + 0x134),(struct DSI_VM_CMDQ_REGS*)(DISPSYS_DSI1_BASE + 0x134)};
  173. static const LCM_UTIL_FUNCS lcm_utils_dsi0;
  174. static const LCM_UTIL_FUNCS lcm_utils_dsi1;
  175. static const LCM_UTIL_FUNCS lcm_utils_dsidual;
  176. //static int dsi0_te_enable = 0;
  177. //static int dsi1_te_enable = 0;
  178. //static int dsidual_te_enable = 0;
  179. static void _DSI_INTERNAL_IRQ_Handler(DISP_MODULE_ENUM module, unsigned int param)
  180. {}
  181. static enum DSI_STATUS DSI_Reset(DISP_MODULE_ENUM module, void* cmdq)
  182. {
  183. int i = 0;
  184. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  185. //DSI_OUTREGBIT(cmdq, struct DSI_COM_CTRL_REG,DSI_REG[i]->DSI_COM_CTRL,DSI_RESET,1);
  186. //DSI_OUTREGBIT(cmdq, struct DSI_COM_CTRL_REG,DSI_REG[i]->DSI_COM_CTRL,DSI_RESET,0);
  187. DISP_REG_SET_FIELD(cmdq, DSI_COM_CON_FLD_DSI_RESET, DSI_REG_BASE[i] + DISP_REG_DSI_COM_CON, 1);
  188. DISP_REG_SET_FIELD(cmdq, DSI_COM_CON_FLD_DSI_RESET, DSI_REG_BASE[i] + DISP_REG_DSI_COM_CON, 0);
  189. }
  190. return DSI_STATUS_OK;
  191. }
  192. static int _dsi_is_video_mode(DISP_MODULE_ENUM module)
  193. {
  194. int i = DSI_MODULE_BEGIN(module);
  195. /*struct DSI_MODE_CTRL_REG tmpreg;*/
  196. if (DSI_REG[i]->DSI_MODE_CTRL.MODE == CMD_MODE)
  197. return 0;
  198. else
  199. return 1;
  200. }
  201. static enum DSI_STATUS DSI_SetMode(DISP_MODULE_ENUM module, void* cmdq, unsigned int mode)
  202. {
  203. int i = 0;
  204. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  205. /*DSI_OUTREGBIT(cmdq, struct DSI_MODE_CTRL_REG,DSI_REG[i]->DSI_MODE_CTRL,MODE,mode);*/
  206. DISP_REG_SET_FIELD(cmdq, DSI_MODE_CON_FLD_MODE_CON, DSI_REG_BASE[i] + DISP_REG_DSI_MODE_CON, mode);
  207. }
  208. return DSI_STATUS_OK;
  209. }
  210. static void DSI_WaitForNotBusy(DISP_MODULE_ENUM module, void* cmdq)
  211. {
  212. /*DISPFUNC();*/
  213. int i = 0;
  214. unsigned int tmp = 0;
  215. if (cmdq) {
  216. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  217. DSI_POLLREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_INTSTA, 0x80000000, 0x0);
  218. }
  219. return;
  220. }
  221. /*...dsi video is always in busy state...*/
  222. if (_dsi_is_video_mode(module)) {
  223. return ;
  224. }
  225. i = DSI_MODULE_BEGIN(module);
  226. while (1) {
  227. tmp = INREG32(DSI_REG_BASE[i] + DISP_REG_DSI_INTSTA);
  228. if (!(tmp &0x80000000))
  229. break;
  230. }
  231. }
  232. void DSI_lane0_ULP_mode(DISP_MODULE_ENUM module, void* cmdq, bool enter)
  233. {
  234. int i = 0;
  235. ASSERT(cmdq == NULL);
  236. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  237. if (enter) {
  238. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_LD0CON_REG, DSI_REG[i]->DSI_PHY_LD0CON, L0_RM_TRIG_EN, 0);
  239. DISP_REG_SET_FIELD(cmdq, DSI_PHY_LD0CON_FLD_L0_RM_TRIG_EN, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_LD0CON, 0);
  240. mdelay(1);
  241. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_LD0CON_REG, DSI_REG[i]->DSI_PHY_LD0CON, L0_ULPM_EN, 0);
  242. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_LD0CON_REG, DSI_REG[i]->DSI_PHY_LD0CON, L0_ULPM_EN, 1);
  243. DISP_REG_SET_FIELD(cmdq, DSI_PHY_LD0CON_FLD_L0_ULPM_EN, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_LD0CON, 0);
  244. DISP_REG_SET_FIELD(cmdq, DSI_PHY_LD0CON_FLD_L0_ULPM_EN, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_LD0CON, 1);
  245. } else {
  246. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_LD0CON_REG, DSI_REG[i]->DSI_PHY_LD0CON, L0_ULPM_EN, 0);
  247. DISP_REG_SET_FIELD(cmdq, DSI_PHY_LD0CON_FLD_L0_ULPM_EN, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_LD0CON, 0);
  248. mdelay(1);
  249. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_LD0CON_REG, DSI_REG[i]->DSI_PHY_LD0CON, L0_WAKEUP_EN, 1);
  250. DISP_REG_SET_FIELD(cmdq, DSI_PHY_LD0CON_FLD_L0_WAKEUP_EN, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_LD0CON, 1);
  251. mdelay(1);
  252. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_LD0CON_REG, DSI_REG[i]->DSI_PHY_LD0CON, L0_WAKEUP_EN, 0);
  253. DISP_REG_SET_FIELD(cmdq, DSI_PHY_LD0CON_FLD_L0_WAKEUP_EN, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_LD0CON, 0);
  254. mdelay(1);
  255. }
  256. }
  257. }
  258. void DSI_clk_ULP_mode(DISP_MODULE_ENUM module, void* cmdq, bool enter)
  259. {
  260. int i = 0;
  261. ASSERT(cmdq == NULL);
  262. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  263. if (enter) {
  264. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_LCCON_REG, DSI_REG[i]->DSI_PHY_LCCON, LC_ULPM_EN, 0);
  265. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_LCCON_REG, DSI_REG[i]->DSI_PHY_LCCON, LC_ULPM_EN, 1);
  266. DISP_REG_SET_FIELD(cmdq, DSI_PHY_LCCON_FLD_LC_ULPM_EN, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_LCCON, 0);
  267. DISP_REG_SET_FIELD(cmdq, DSI_PHY_LCCON_FLD_LC_ULPM_EN, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_LCCON, 1);
  268. mdelay(1);
  269. } else {
  270. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_LCCON_REG, DSI_REG[i]->DSI_PHY_LCCON, LC_ULPM_EN, 0);
  271. DISP_REG_SET_FIELD(cmdq, DSI_PHY_LCCON_FLD_LC_ULPM_EN, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_LCCON, 0);
  272. mdelay(1);
  273. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_LCCON_REG, DSI_REG[i]->DSI_PHY_LCCON, LC_WAKEUP_EN, 1);
  274. DISP_REG_SET_FIELD(cmdq, DSI_PHY_LCCON_FLD_LC_WAKEUP_EN, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_LCCON, 1);
  275. mdelay(1);
  276. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_LCCON_REG, DSI_REG[i]->DSI_PHY_LCCON, LC_WAKEUP_EN, 0);
  277. DISP_REG_SET_FIELD(cmdq, DSI_PHY_LCCON_FLD_LC_WAKEUP_EN, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_LCCON, 0);
  278. mdelay(1);
  279. }
  280. }
  281. }
  282. /**
  283. * DSI_enter_ULPS
  284. *
  285. * 1. disable DSI high-speed clock
  286. * 2. Data lane enter ultra-low power mode
  287. * 3. Clock lane enter ultra-low power mode
  288. * 4. wait DSI sleepin irq (timeout interval ?)
  289. * 5. clear lane_num
  290. */
  291. void DSI_enter_ULPS(DISP_MODULE_ENUM module)
  292. {
  293. int i = 0;
  294. int ret = 0;
  295. int cnt = 0;
  296. /* DSI_clk_HS_mode(module, NULL, FALSE); */
  297. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  298. ASSERT(DSI_REG[i]->DSI_PHY_LD0CON.L0_ULPM_EN == 0);
  299. ASSERT(DSI_REG[i]->DSI_PHY_LCCON.LC_ULPM_EN == 0);
  300. DSI_OUTREGBIT(NULL, struct DSI_INT_ENABLE_REG,
  301. DSI_REG[i]->DSI_INTEN, SLEEPIN_ULPS_INT_EN, 0);
  302. DSI_OUTREGBIT(NULL, struct DSI_INT_STATUS_REG,
  303. DSI_REG[i]->DSI_INTSTA, SLEEPIN_DONE, 0);
  304. DSI_OUTREGBIT(NULL, struct DSI_PHY_LD0CON_REG,
  305. DSI_REG[i]->DSI_PHY_LD0CON, Lx_ULPM_AS_L0, 1);
  306. DSI_OUTREGBIT(NULL, struct DSI_PHY_LD0CON_REG,
  307. DSI_REG[i]->DSI_PHY_LD0CON, L0_ULPM_EN, 1);
  308. DSI_OUTREGBIT(NULL, struct DSI_PHY_LCCON_REG,
  309. DSI_REG[i]->DSI_PHY_LCCON, LC_ULPM_EN, 1);
  310. while (!DSI_REG[i]->DSI_INTSTA.SLEEPIN_DONE) {
  311. if (!(++cnt % 100))
  312. DDPERR("polling SLEEPIN_DONE %d\n", cnt);
  313. }
  314. DSI_OUTREGBIT(NULL, struct DSI_INT_ENABLE_REG,
  315. DSI_REG[i]->DSI_INTEN, SLEEPIN_ULPS_INT_EN, 0);
  316. DSI_OUTREGBIT(NULL, struct DSI_INT_STATUS_REG,
  317. DSI_REG[i]->DSI_INTSTA, SLEEPIN_DONE, 0);
  318. /* clear lane_num when enter ulps */
  319. DSI_OUTREGBIT(NULL, struct DSI_TXRX_CTRL_REG,
  320. DSI_REG[i]->DSI_TXRX_CTRL, LANE_NUM, 0);
  321. }
  322. }
  323. /**
  324. * DSI_exit_ULPS
  325. *
  326. * 1. set DSI sleep out mode
  327. * 2. set wakeup prd according to current MIPI frequency
  328. * 3. recovery lane number
  329. * 4. sleep out start
  330. * 4. wait DSI sleepout irq (timeout interval ?)
  331. */
  332. void DSI_exit_ULPS(DISP_MODULE_ENUM module)
  333. {
  334. int i = 0, cnt = 0;
  335. int ret = 0;
  336. unsigned int lane_num_bitvalue = 0;
  337. unsigned int pll_clock = _dsi_context[i].dsi_params.PLL_CLOCK;
  338. /* wake_up_prd * 1024 * cycle time > 1ms */
  339. int wake_up_prd = (pll_clock * 2 * 1000) / (1024 * 8) + 0x1;
  340. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  341. DSI_OUTREGBIT(NULL, struct DSI_PHY_LD0CON_REG,
  342. DSI_REG[i]->DSI_PHY_LD0CON, Lx_ULPM_AS_L0, 1);
  343. DSI_OUTREGBIT(NULL, struct DSI_INT_ENABLE_REG,
  344. DSI_REG[i]->DSI_INTEN, SLEEPOUT_DONE, 0);
  345. DSI_OUTREGBIT(NULL, struct DSI_INT_STATUS_REG,
  346. DSI_REG[i]->DSI_INTSTA, SLEEPOUT_DONE, 0);
  347. DSI_OUTREGBIT(NULL, struct DSI_MODE_CTRL_REG,
  348. DSI_REG[i]->DSI_MODE_CTRL, SLEEP_MODE, 1);
  349. DSI_OUTREGBIT(NULL, struct DSI_TIME_CON0_REG,
  350. DSI_REG[i]->DSI_TIME_CON0, UPLS_WAKEUP_PRD,
  351. wake_up_prd);
  352. switch (_dsi_context[i].dsi_params.LANE_NUM) {
  353. case LCM_ONE_LANE:
  354. lane_num_bitvalue = 0x1;
  355. break;
  356. case LCM_TWO_LANE:
  357. lane_num_bitvalue = 0x3;
  358. break;
  359. case LCM_THREE_LANE:
  360. lane_num_bitvalue = 0x7;
  361. break;
  362. case LCM_FOUR_LANE:
  363. lane_num_bitvalue = 0xF;
  364. break;
  365. default:
  366. break;
  367. }
  368. DSI_OUTREGBIT(NULL, struct DSI_TXRX_CTRL_REG,
  369. DSI_REG[i]->DSI_TXRX_CTRL, LANE_NUM, lane_num_bitvalue);
  370. DSI_OUTREGBIT(NULL, struct DSI_START_REG,
  371. DSI_REG[i]->DSI_START, SLEEPOUT_START, 0);
  372. DSI_OUTREGBIT(NULL, struct DSI_START_REG,
  373. DSI_REG[i]->DSI_START, SLEEPOUT_START, 1);
  374. while (!DSI_REG[i]->DSI_INTSTA.SLEEPOUT_DONE) {
  375. if (!(++cnt % 100))
  376. DDPERR("polling SLEEPOUT_DONE %d\n", cnt);
  377. }
  378. }
  379. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  380. DSI_OUTREGBIT(NULL, struct DSI_INT_ENABLE_REG,
  381. DSI_REG[i]->DSI_INTEN, SLEEPOUT_DONE, 0);
  382. DSI_OUTREGBIT(NULL, struct DSI_INT_STATUS_REG,
  383. DSI_REG[i]->DSI_INTSTA, SLEEPOUT_DONE, 0);
  384. DSI_OUTREGBIT(NULL, struct DSI_START_REG,
  385. DSI_REG[i]->DSI_START, SLEEPOUT_START, 0);
  386. DSI_OUTREGBIT(NULL, struct DSI_MODE_CTRL_REG,
  387. DSI_REG[i]->DSI_MODE_CTRL, SLEEP_MODE, 0);
  388. }
  389. }
  390. bool DSI_clk_HS_state(DISP_MODULE_ENUM module, void* cmdq)
  391. {
  392. int i = DSI_MODULE_BEGIN(module);
  393. struct DSI_PHY_LCCON_REG tmpreg;
  394. DSI_READREG32(struct DSI_PHY_LCCON_REG*, &tmpreg, &DSI_REG[i]->DSI_PHY_LCCON);
  395. return tmpreg.LC_HS_TX_EN ? TRUE : FALSE;
  396. }
  397. void DSI_clk_HS_mode(DISP_MODULE_ENUM module, cmdqRecHandle cmdq, bool enter)
  398. {
  399. int i = 0;
  400. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  401. if (enter) {
  402. #ifdef MACH_FPGA
  403. DSI_OUTREG32(NULL, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_LCPAT, 0x55);
  404. DSI_OUTREG32(NULL, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_LCCON, 0);
  405. #endif
  406. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_LCCON_REG, DSI_REG[i]->DSI_PHY_LCCON, LC_HS_TX_EN, 1);
  407. DISP_REG_SET_FIELD(cmdq, DSI_PHY_LCCON_FLD_LC_HSTX_EN, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_LCCON, 1);
  408. } else if (!enter) {
  409. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_LCCON_REG, DSI_REG[i]->DSI_PHY_LCCON, LC_HS_TX_EN, 0);
  410. DISP_REG_SET_FIELD(cmdq, DSI_PHY_LCCON_FLD_LC_HSTX_EN, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_LCCON, 0);
  411. }
  412. }
  413. return;
  414. }
  415. const char* _dsi_cmd_mode_parse_state(unsigned int state)
  416. {
  417. switch (state) {
  418. case 0x0001:
  419. return "idle";
  420. case 0x0002:
  421. return "Reading command queue for header";
  422. case 0x0004:
  423. return "Sending type-0 command";
  424. case 0x0008:
  425. return "Waiting frame data from RDMA for type-1 command";
  426. case 0x0010:
  427. return "Sending type-1 command";
  428. case 0x0020:
  429. return "Sending type-2 command";
  430. case 0x0040:
  431. return "Reading command queue for type-2 data";
  432. case 0x0080:
  433. return "Sending type-3 command";
  434. case 0x0100:
  435. return "Sending BTA";
  436. case 0x0200:
  437. return "Waiting RX-read data";
  438. case 0x0400:
  439. return "Waiting SW RACK for RX-read data";
  440. case 0x0800:
  441. return "Waiting TE";
  442. case 0x1000:
  443. return "Get TE";
  444. case 0x2000:
  445. return "Waiting SW RACK for TE";
  446. case 0x4000:
  447. return "Waiting external TE";
  448. case 0x8000:
  449. return "Get external TE";
  450. default:
  451. return "unknown";
  452. }
  453. }
  454. static const char *_dsi_vdo_mode_parse_state(unsigned int state)
  455. {
  456. switch (state) {
  457. case 0x0001:
  458. return "Video mode idle";
  459. case 0x0002:
  460. return "Sync start packet";
  461. case 0x0004:
  462. return "Hsync active";
  463. case 0x0008:
  464. return "Sync end packet";
  465. case 0x0010:
  466. return "Hsync back porch";
  467. case 0x0020:
  468. return "Video data period";
  469. case 0x0040:
  470. return "Hsync front porch";
  471. case 0x0080:
  472. return "BLLP";
  473. case 0x0100:
  474. return "--";
  475. case 0x0200:
  476. return "Mix mode using command mode transmission";
  477. case 0x0400:
  478. return "Command transmission in BLLP";
  479. default:
  480. return "unknown";
  481. }
  482. }
  483. enum DSI_STATUS DSI_DumpRegisters(DISP_MODULE_ENUM module, int level)
  484. {
  485. u32 i = 0;
  486. u32 k = 0;
  487. DDPDUMP("== DISP DSI REGS ==\n");
  488. if (level >= 0) {
  489. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  490. unsigned int DSI_DBG8_Status;
  491. unsigned int DSI_DBG9_Status;
  492. unsigned long dsi_base_addr = (unsigned long)DSI_REG[i];
  493. if (DSI_REG[i]->DSI_MODE_CTRL.MODE == CMD_MODE) {
  494. unsigned int DSI_DBG6_Status = (INREG32(dsi_base_addr + 0x160)) & 0xffff;
  495. DDPDUMP("DSI%d state6(cmd mode):%s\n",
  496. i, _dsi_cmd_mode_parse_state(DSI_DBG6_Status));
  497. } else {
  498. unsigned int DSI_DBG7_Status = (INREG32(dsi_base_addr + 0x164)) & 0xff;
  499. DDPDUMP("DSI%d state7(vdo mode):%s\n",
  500. i, _dsi_vdo_mode_parse_state(DSI_DBG7_Status));
  501. }
  502. DSI_DBG8_Status = (INREG32(dsi_base_addr + 0x168)) & 0x3fff;
  503. DDPDUMP("DSI%d state8 WORD_COUNTER(cmd mode):%d\n", i, DSI_DBG8_Status);
  504. DSI_DBG9_Status = (INREG32(dsi_base_addr + 0x16C)) & 0x3fffff;
  505. DDPDUMP("DSI%d state9 LINE_COUNTER(cmd mode):%d\n", i, DSI_DBG9_Status);
  506. }
  507. }
  508. if (level >= 1) {
  509. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  510. unsigned long dsi_base_addr = (unsigned long)DSI_REG[i];
  511. #ifndef MACH_FPGA
  512. unsigned long mipi_base_addr = (unsigned long)DSI_PHY_REG[i];
  513. #endif
  514. DDPDUMP("== DSI%d REGS ==\n", i);
  515. for (k = 0; k < 0x400; k += 16) {
  516. DDPDUMP("0x%04x: 0x%08x 0x%08x 0x%08x 0x%08x\n", k,
  517. INREG32(dsi_base_addr + k),
  518. INREG32(dsi_base_addr + k + 0x4),
  519. INREG32(dsi_base_addr + k + 0x8),
  520. INREG32(dsi_base_addr + k + 0xc));
  521. }
  522. DDPDUMP("- DSI%d CMD REGS -\n", i);
  523. for (k = 0; k < 32; k += 16) { /* only dump first 32 bytes cmd */
  524. DDPDUMP("0x%04x: 0x%08x 0x%08x 0x%08x 0x%08x\n", k,
  525. INREG32((dsi_base_addr + 0x200 + k)),
  526. INREG32((dsi_base_addr + 0x200 + k + 0x4)),
  527. INREG32((dsi_base_addr + 0x200 + k + 0x8)),
  528. INREG32((dsi_base_addr + 0x200 + k + 0xc)));
  529. }
  530. #ifndef MACH_FPGA
  531. DDPDUMP("== DSI_PHY%d REGS ==\n", i);
  532. for (k = 0; k < 0x6A0; k += 16) {
  533. DDPDUMP("0x%04x: 0x%08x 0x%08x 0x%08x 0x%08x\n", k,
  534. INREG32((mipi_base_addr + k)),
  535. INREG32((mipi_base_addr + k + 0x4)),
  536. INREG32((mipi_base_addr + k + 0x8)),
  537. INREG32((mipi_base_addr + k + 0xc)));
  538. }
  539. #endif
  540. }
  541. }
  542. return DSI_STATUS_OK;
  543. }
  544. static const char *dsi_mode_spy(LCM_DSI_MODE_CON mode)
  545. {
  546. switch (mode) {
  547. case CMD_MODE:
  548. return "CMD_MODE";
  549. case SYNC_PULSE_VDO_MODE:
  550. return "SYNC_PULSE_VDO_MODE";
  551. case SYNC_EVENT_VDO_MODE:
  552. return "SYNC_EVENT_VDO_MODE";
  553. case BURST_VDO_MODE:
  554. return "BURST_VDO_MODE";
  555. default:
  556. return "unknown";
  557. }
  558. }
  559. void dsi_analysis(DISP_MODULE_ENUM module)
  560. {
  561. int i = 0;
  562. DDPDUMP("== DISP DSI ANALYSIS ==\n");
  563. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  564. DDPDUMP("DSI%d Start:%x, Busy:%d, DSI_DUAL_EN:%d, MODE:%s, High Speed:%d, FSM State:%s\n",
  565. i, DSI_REG[i]->DSI_START.DSI_START, DSI_REG[i]->DSI_INTSTA.BUSY,
  566. DSI_REG[i]->DSI_COM_CTRL.DSI_DUAL_EN, dsi_mode_spy(DSI_REG[i]->DSI_MODE_CTRL.MODE),
  567. DSI_REG[i]->DSI_PHY_LCCON.LC_HS_TX_EN,
  568. _dsi_cmd_mode_parse_state(DSI_REG[i]->DSI_STATE_DBG6.CMTRL_STATE));
  569. DDPDUMP("DSI%d IRQ,RD_RDY:%d, CMD_DONE:%d, SLEEPOUT_DONE:%d, TE_RDY:%d, VM_CMD_DONE:%d, VM_DONE:%d\n",
  570. i, DSI_REG[i]->DSI_INTSTA.RD_RDY, DSI_REG[i]->DSI_INTSTA.CMD_DONE,
  571. DSI_REG[i]->DSI_INTSTA.SLEEPOUT_DONE, DSI_REG[i]->DSI_INTSTA.TE_RDY,
  572. DSI_REG[i]->DSI_INTSTA.VM_CMD_DONE, DSI_REG[i]->DSI_INTSTA.VM_DONE);
  573. DDPDUMP("DSI%d Lane Num:%d, Ext_TE_EN:%d, Ext_TE_Edge:%d, HSTX_CKLP_EN:%d\n", i,
  574. DSI_REG[i]->DSI_TXRX_CTRL.LANE_NUM,
  575. DSI_REG[i]->DSI_TXRX_CTRL.EXT_TE_EN,
  576. DSI_REG[i]->DSI_TXRX_CTRL.EXT_TE_EDGE,
  577. DSI_REG[i]->DSI_TXRX_CTRL.HSTX_CKLP_EN);
  578. DDPDUMP("DSI%d LFR En:%d, LFR MODE:%d, LFR TYPE:%d, LFR SKIP NUMBER:%d\n", i,
  579. DSI_REG[i]->DSI_LFR_CON.LFR_EN,
  580. DSI_REG[i]->DSI_LFR_CON.LFR_MODE,
  581. DSI_REG[i]->DSI_LFR_CON.LFR_TYPE, DSI_REG[i]->DSI_LFR_CON.LFR_SKIP_NUM);
  582. }
  583. }
  584. enum DSI_STATUS DSI_SleepOut(DISP_MODULE_ENUM module, void* cmdq)
  585. {
  586. int i = 0;
  587. int wake_up_prd;
  588. DISPFUNC();
  589. /* wake_up_prd *1024*cycle time > 1ms */
  590. wake_up_prd = (_dsi_context[i].dsi_params.PLL_CLOCK * 2 * 1000) / (1024 * 8) + 0x1;
  591. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  592. //DSI_OUTREGBIT(cmdq, struct DSI_MODE_CTRL_REG,DSI_REG[i]->DSI_MODE_CTRL,SLEEP_MODE,1);
  593. //DSI_OUTREGBIT(cmdq, struct DSI_TIME_CON0_REG, DSI_REG[i]->DSI_TIME_CON0, UPLS_WAKEUP_PRD, wake_up_prd); // cycle to 1ms for 520MHz
  594. DISP_REG_SET_FIELD(cmdq, DSI_MODE_CON_FLD_SLEEP_MODE, DSI_REG_BASE[i] + DISP_REG_DSI_MODE_CON, 1);
  595. DISP_REG_SET_FIELD(cmdq, DSI_TIME_CON0_FLD_ULPS_WAKEUP_PRD, DSI_REG_BASE[i] + DISP_REG_DSI_TIME_CON0, wake_up_prd);
  596. }
  597. return DSI_STATUS_OK;
  598. }
  599. enum DSI_STATUS DSI_Wakeup(DISP_MODULE_ENUM module, void* cmdq)
  600. {
  601. int i = 0;
  602. DISPFUNC();
  603. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  604. //DSI_OUTREGBIT(cmdq, struct DSI_START_REG,DSI_REG[i]->DSI_START,SLEEPOUT_START,0);
  605. //DSI_OUTREGBIT(cmdq, struct DSI_START_REG,DSI_REG[i]->DSI_START,SLEEPOUT_START,1);
  606. DISP_REG_SET_FIELD(cmdq, DSI_START_FLD_SLEEPOUT_START, DSI_REG_BASE[i] + DISP_REG_DSI_START, 0);
  607. DISP_REG_SET_FIELD(cmdq, DSI_START_FLD_SLEEPOUT_START, DSI_REG_BASE[i] + DISP_REG_DSI_START, 1);
  608. mdelay(1);
  609. //DSI_OUTREGBIT(cmdq, struct DSI_START_REG,DSI_REG[i]->DSI_START,SLEEPOUT_START,0);
  610. //DSI_OUTREGBIT(cmdq, struct DSI_MODE_CTRL_REG,DSI_REG[i]->DSI_MODE_CTRL,SLEEP_MODE,0);
  611. DISP_REG_SET_FIELD(cmdq, DSI_START_FLD_SLEEPOUT_START, DSI_REG_BASE[i] + DISP_REG_DSI_START, 0);
  612. DISP_REG_SET_FIELD(cmdq, DSI_MODE_CON_FLD_SLEEP_MODE, DSI_REG_BASE[i] + DISP_REG_DSI_MODE_CON, 0);
  613. }
  614. return DSI_STATUS_OK;
  615. }
  616. enum DSI_STATUS DSI_BackupRegisters(DISP_MODULE_ENUM module, void* cmdq)
  617. {
  618. int i = 0;
  619. struct DSI_REGS_TYPE *regs = NULL;
  620. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  621. regs = (void*)&(_dsi_context[i].regBackup);
  622. DSI_OUTREG32(cmdq, &regs->DSI_INTEN, DISP_REG_GET(DSI_REG_BASE[i] + DISP_REG_DSI_INTEN));
  623. DSI_OUTREG32(cmdq,(void*)&_dsi_context[i].regBackup.DSI_MODE_CTRL, DISP_REG_GET(DSI_REG_BASE[i] + DISP_REG_DSI_MODE_CON));
  624. DSI_OUTREG32(cmdq,&regs->DSI_TXRX_CTRL, DISP_REG_GET(DSI_REG_BASE[i] + DISP_REG_DSI_TXRX_CON));
  625. DSI_OUTREG32(cmdq,(void*)&regs->DSI_PSCTRL, DISP_REG_GET(DSI_REG_BASE[i] + DISP_REG_DSI_PSCON));
  626. DSI_OUTREG32(cmdq,(void*)&regs->DSI_VSA_NL, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_VSA_NL));
  627. DSI_OUTREG32(cmdq,(void*)&regs->DSI_VBP_NL, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_VBP_NL));
  628. DSI_OUTREG32(cmdq,(void*)&regs->DSI_VFP_NL, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_VFP_NL));
  629. DSI_OUTREG32(cmdq,(void*)&regs->DSI_VACT_NL, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_VACT_NL));
  630. DSI_OUTREG32(cmdq,(void*)&regs->DSI_HSA_WC, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_HSA_WC));
  631. DSI_OUTREG32(cmdq,(void*)&regs->DSI_HBP_WC, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_HBP_WC));
  632. DSI_OUTREG32(cmdq,(void*)&regs->DSI_HFP_WC, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_HFP_WC));
  633. DSI_OUTREG32(cmdq,(void*)&regs->DSI_BLLP_WC, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_BLLP_WC));
  634. DSI_OUTREG32(cmdq,(void*)&regs->DSI_HSTX_CKL_WC, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_HSTX_CKLP_WC));
  635. DSI_OUTREG32(cmdq,(void*)&regs->DSI_MEM_CONTI, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_MEM_CONTI));
  636. DSI_OUTREG32(cmdq, (void*)&regs->DSI_PHY_TIMECON0,
  637. AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON0));
  638. DSI_OUTREG32(cmdq, (void*)&regs->DSI_PHY_TIMECON1,
  639. AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON1));
  640. DSI_OUTREG32(cmdq, (void*)&regs->DSI_PHY_TIMECON2,
  641. AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON2));
  642. DSI_OUTREG32(cmdq, &regs->DSI_PHY_TIMECON3,
  643. AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON3));
  644. DSI_OUTREG32(cmdq, (void*)&regs->DSI_VM_CMD_CON, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_VM_CMD_CON));
  645. }
  646. return DSI_STATUS_OK;
  647. }
  648. enum DSI_STATUS DSI_RestoreRegisters(DISP_MODULE_ENUM module, void* cmdq)
  649. {
  650. int i = 0;
  651. struct DSI_REGS_TYPE *regs = NULL;
  652. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  653. regs = &(_dsi_context[i].regBackup);
  654. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_INTEN, AS_UINT32(&regs->DSI_INTEN));
  655. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_MODE_CON, AS_UINT32(&regs->DSI_MODE_CTRL));
  656. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_TXRX_CON,
  657. AS_UINT32(&regs->DSI_TXRX_CTRL) & 0xFFFFFFC3);
  658. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_PSCON, AS_UINT32(&regs->DSI_PSCTRL));
  659. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_VSA_NL, AS_UINT32(&regs->DSI_VSA_NL));
  660. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_VBP_NL, AS_UINT32(&regs->DSI_VBP_NL));
  661. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_VFP_NL, AS_UINT32(&regs->DSI_VFP_NL));
  662. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_VACT_NL, AS_UINT32(&regs->DSI_VACT_NL));
  663. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_HSA_WC, AS_UINT32(&regs->DSI_HSA_WC));
  664. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_HBP_WC, AS_UINT32(&regs->DSI_HBP_WC));
  665. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_HFP_WC, AS_UINT32(&regs->DSI_HFP_WC));
  666. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_BLLP_WC, AS_UINT32(&regs->DSI_BLLP_WC));
  667. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_HSTX_CKLP_WC, AS_UINT32(&regs->DSI_HSTX_CKL_WC));
  668. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_MEM_CONTI, AS_UINT32(&regs->DSI_MEM_CONTI));
  669. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON0,
  670. AS_UINT32(&regs->DSI_PHY_TIMECON0));
  671. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON1,
  672. AS_UINT32(&regs->DSI_PHY_TIMECON1));
  673. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON2,
  674. AS_UINT32(&regs->DSI_PHY_TIMECON2));
  675. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON3,
  676. AS_UINT32(&regs->DSI_PHY_TIMECON3));
  677. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_VM_CMD_CON, AS_UINT32(&regs->DSI_VM_CMD_CON));
  678. DDPMSG("DSI_RestoreRegisters VM_CMD_EN %d TS_VFP_EN %d\n",
  679. REG_FLD_VAL_GET(DSI_VM_CMD_CON_FLD_VM_CMD_EN, AS_UINT32(&regs->DSI_VM_CMD_CON)),
  680. REG_FLD_VAL_GET(DSI_VM_CMD_CON_FLD_TS_VFP_EN, AS_UINT32(&regs->DSI_VM_CMD_CON)));
  681. }
  682. return DSI_STATUS_OK;
  683. }
  684. void DSI_PHY_clk_switch(DISP_MODULE_ENUM module, void* cmdq, int on)
  685. {
  686. #ifndef MACH_FPGA
  687. int i = 0;
  688. ASSERT(cmdq == NULL);
  689. if (on) {
  690. i = DSI_MODULE_BEGIN(module);
  691. DSI_PHY_clk_setting(module, cmdq, &(_dsi_context[i].dsi_params));
  692. } else {
  693. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  694. /* disable mipi clock */
  695. /* step 0 */
  696. /* PLL DISABLE */
  697. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PLL_CON1, FLD_RG_DSI_PLL_EN, 0);
  698. /* step 1 */
  699. /* SDM_RWR_ON / SDM_ISO_EN */
  700. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PLL_PWR, FLD_AD_DSI_PLL_SDM_ISO_EN, 1);
  701. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PLL_PWR, FLD_AD_DSI_PLL_SDM_PWR_ON, 0);
  702. /* Switch ON each Lane */
  703. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_D0_SW_CTL_EN,
  704. FLD_DSI_D0_SW_CTL_EN, 1);
  705. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_D1_SW_CTL_EN,
  706. FLD_DSI_D1_SW_CTL_EN, 1);
  707. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_D2_SW_CTL_EN,
  708. FLD_DSI_D2_SW_CTL_EN, 1);
  709. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_D3_SW_CTL_EN,
  710. FLD_DSI_D3_SW_CTL_EN, 1);
  711. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_CK_SW_CTL_EN,
  712. FLD_DSI_CK_SW_CTL_EN, 1);
  713. /* step 2 */
  714. MIPITX_OUTREG32(DSI_PHY_REG[i]+MIPITX_LANE_CON, 0x3FFF0180); /* BG_LPF_EN=0 */
  715. MIPITX_OUTREG32(DSI_PHY_REG[i]+MIPITX_LANE_CON, 0x3FFF0100); /* BG_CORE_EN=1 */
  716. /* mdelay(1); */
  717. }
  718. }
  719. #endif
  720. }
  721. enum DSI_STATUS DSI_BIST_Pattern_Test(DISP_MODULE_ENUM module, void* cmdq, bool enable, unsigned int color)
  722. {
  723. int i = 0;
  724. void* temp;
  725. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  726. if (enable) {
  727. DSI_OUTREG32(cmdq, &DSI_REG[i]->DSI_BIST_PATTERN, color);
  728. /* DSI_OUTREG32(&DSI_REG->DSI_BIST_CON, AS_UINT32(&temp_reg)); */
  729. /* DSI_OUTREGBIT(DSI_BIST_CON_REG, DSI_REG->DSI_BIST_CON, SELF_PAT_MODE, 1); */
  730. //DSI_OUTREGBIT(cmdq, struct DSI_BIST_CON_REG, DSI_REG[i]->DSI_BIST_CON,
  731. // SELF_PAT_MODE, 1);
  732. DISP_REG_SET_FIELD(cmdq, DSI_BIST_CON_FLD_SELF_PAT_MODE, DSI_REG_BASE[i] + DISP_REG_DSI_BIST_CON, 1);
  733. dprintf(INFO, "DSI_BIST_Pattern_Test SELF_PAT_MODE\n");
  734. if (!_dsi_is_video_mode(module)) {
  735. struct DSI_T0_INS t0;
  736. t0.CONFG = 0x09;
  737. t0.Data_ID = 0x39;
  738. t0.Data0 = 0x2c;
  739. t0.Data1 = 0;
  740. temp =&t0;
  741. //DSI_OUTREG32(cmdq, &DSI_CMDQ_REG[i]->data[0], AS_UINT32((void*)&t0));
  742. DSI_OUTREG32(cmdq, &DSI_CMDQ_REG[i]->data[0], AS_UINT32(temp));
  743. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_CMDQ_CON, 1);
  744. /* DSI_OUTREGBIT(DSI_START_REG,DSI_REG->DSI_START,DSI_START,0); */
  745. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_START, 0);
  746. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_START, 1);
  747. /* DSI_OUTREGBIT(DSI_START_REG,DSI_REG->DSI_START,DSI_START,1); */
  748. }
  749. } else {
  750. /* if disable dsi pattern, need enable mutex, can't just start dsi */
  751. /* so we just disable pattern bit, do not start dsi here */
  752. /* DSI_WaitForNotBusy(module,cmdq); */
  753. /* DSI_OUTREGBIT(cmdq, DSI_BIST_CON_REG, DSI_REG[i]->DSI_BIST_CON, SELF_PAT_MODE, 0); */
  754. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_BIST_CON, 0x00);
  755. }
  756. }
  757. return DSI_STATUS_OK;
  758. }
  759. void DSI_Config_VDO_Timing(DISP_MODULE_ENUM module, void* cmdq, LCM_DSI_PARAMS *dsi_params)
  760. {
  761. int i = 0;
  762. //unsigned int line_byte;
  763. unsigned int horizontal_sync_active_byte;
  764. unsigned int horizontal_backporch_byte;
  765. unsigned int horizontal_frontporch_byte;
  766. unsigned int horizontal_bllp_byte;
  767. unsigned int dsiTmpBufBpp;
  768. DISPFUNC();
  769. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  770. if (dsi_params->data_format.format == LCM_DSI_FORMAT_RGB565)
  771. dsiTmpBufBpp = 2;
  772. else
  773. dsiTmpBufBpp = 3;
  774. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_VSA_NL, dsi_params->vertical_sync_active);
  775. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_VBP_NL, dsi_params->vertical_backporch);
  776. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_VFP_NL, dsi_params->vertical_frontporch);
  777. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_VACT_NL, dsi_params->vertical_active_line);
  778. /*line_byte =
  779. (dsi_params->horizontal_sync_active + dsi_params->horizontal_backporch +
  780. dsi_params->horizontal_frontporch +
  781. dsi_params->horizontal_active_pixel) * dsiTmpBufBpp;*/
  782. horizontal_sync_active_byte =
  783. (dsi_params->horizontal_sync_active * dsiTmpBufBpp - 4);
  784. if (dsi_params->mode == SYNC_EVENT_VDO_MODE || dsi_params->mode == BURST_VDO_MODE
  785. || dsi_params->switch_mode == SYNC_EVENT_VDO_MODE
  786. || dsi_params->switch_mode == BURST_VDO_MODE) {
  787. ASSERT((dsi_params->horizontal_backporch +
  788. dsi_params->horizontal_sync_active) * dsiTmpBufBpp > 9);
  789. horizontal_backporch_byte =
  790. ((dsi_params->horizontal_backporch +
  791. dsi_params->horizontal_sync_active) * dsiTmpBufBpp - 10);
  792. } else {
  793. ASSERT(dsi_params->horizontal_sync_active * dsiTmpBufBpp > 9);
  794. horizontal_sync_active_byte =
  795. (dsi_params->horizontal_sync_active * dsiTmpBufBpp - 10);
  796. ASSERT(dsi_params->horizontal_backporch * dsiTmpBufBpp > 9);
  797. horizontal_backporch_byte =
  798. (dsi_params->horizontal_backporch * dsiTmpBufBpp - 10);
  799. }
  800. ASSERT(dsi_params->horizontal_frontporch * dsiTmpBufBpp > 11);
  801. horizontal_frontporch_byte =
  802. (dsi_params->horizontal_frontporch * dsiTmpBufBpp - 12);
  803. horizontal_bllp_byte = (dsi_params->horizontal_bllp * dsiTmpBufBpp);
  804. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_HSA_WC,
  805. ALIGN_TO((horizontal_sync_active_byte), 4));
  806. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_HBP_WC,
  807. ALIGN_TO((horizontal_backporch_byte), 4));
  808. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_HFP_WC,
  809. ALIGN_TO((horizontal_frontporch_byte), 4));
  810. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_BLLP_WC, ALIGN_TO((horizontal_bllp_byte), 4));
  811. }
  812. }
  813. void DSI_PHY_CLK_LP_PerLine_config(DISP_MODULE_ENUM module, cmdqRecHandle cmdq, LCM_DSI_PARAMS *dsi_params)
  814. {
  815. int i;
  816. void* temp;
  817. /*struct DSI_PHY_TIMCON0_REG timcon0; // LPX
  818. struct DSI_PHY_TIMCON2_REG timcon2; // CLK_HS_TRAIL, CLK_HS_ZERO
  819. struct DSI_PHY_TIMCON3_REG timcon3; // CLK_HS_EXIT, CLK_HS_POST, CLK_HS_PREP
  820. struct DSI_HSA_WC_REG hsa;
  821. struct DSI_HBP_WC_REG hbp;
  822. struct DSI_HFP_WC_REG hfp,new_hfp;
  823. struct DSI_BLLP_WC_REG bllp;
  824. struct DSI_PSCTRL_REG ps;*/
  825. UINT32 timcon0; // LPX
  826. UINT32 timcon2; // CLK_HS_TRAIL, CLK_HS_ZERO
  827. UINT32 timcon3; // CLK_HS_EXIT, CLK_HS_POST, CLK_HS_PREP
  828. UINT32 hsa;
  829. UINT32 hbp;
  830. UINT32 hfp,new_hfp;
  831. UINT32 bllp;
  832. UINT32 ps;
  833. UINT32 hstx_ckl_wc = 0;
  834. UINT32 new_hstx_ckl_wc = 0;
  835. UINT32 v_a,v_b,v_c,lane_num ;
  836. LCM_DSI_MODE_CON dsi_mode;
  837. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  838. lane_num = dsi_params->LANE_NUM;
  839. dsi_mode = dsi_params->mode;
  840. if (dsi_mode == CMD_MODE) {
  841. continue;
  842. }
  843. // vdo mode
  844. temp = &hsa;
  845. DSI_OUTREG32(cmdq,temp, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_HSA_WC));
  846. temp = &hbp;
  847. DSI_OUTREG32(cmdq,temp, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_HBP_WC));
  848. temp = &hfp;
  849. DSI_OUTREG32(cmdq,temp, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_HFP_WC));
  850. temp = &bllp;
  851. DSI_OUTREG32(cmdq,temp, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_BLLP_WC));
  852. temp = &ps;
  853. DSI_OUTREG32(cmdq,temp, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_PSCON));
  854. temp = &hstx_ckl_wc;
  855. DSI_OUTREG32(cmdq,temp, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_HSTX_CKLP_WC));
  856. temp = &timcon0;
  857. DSI_OUTREG32(cmdq,temp, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON0));
  858. temp = &timcon2;
  859. DSI_OUTREG32(cmdq,temp, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON2));
  860. temp = &timcon3;
  861. DSI_OUTREG32(cmdq,temp, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON3));
  862. // 1. sync_pulse_mode
  863. // Total WC(A) = HSA_WC + HBP_WC + HFP_WC + PS_WC + 32
  864. // CLK init WC(B) = (CLK_HS_EXIT + LPX + CLK_HS_PREP + CLK_HS_ZERO)*lane_num
  865. // CLK end WC(C) = (CLK_HS_POST + CLK_HS_TRAIL)*lane_num
  866. // HSTX_CKLP_WC = A - B
  867. // Limitation: B + C < HFP_WC
  868. if (dsi_mode == SYNC_PULSE_VDO_MODE ) {
  869. //v_a = hsa.HSA_WC + hbp.HBP_WC + hfp.HFP_WC + ps.DSI_PS_WC +32;
  870. //v_b = (timcon3.CLK_HS_EXIT + timcon0.LPX + timcon3.CLK_HS_PRPR + timcon2.CLK_ZERO)*lane_num;
  871. //v_c = (timcon3.CLK_HS_POST + timcon2.CLK_TRAIL)* lane_num;
  872. v_a = REG_FLD_VAL_GET(DSI_HSA_WC_FLD_DSI_HSA_WC, (UINT32)hsa) + REG_FLD_VAL_GET(DSI_HBP_WC_FLD_DSI_HBP_WC, (UINT32)hbp)
  873. + REG_FLD_VAL_GET(DSI_HFP_WC_FLD_DSI_HFP_WC, (UINT32)hfp) + REG_FLD_VAL_GET(DSI_PSCON_FLD_DSI_PS_WC, (UINT32)ps) + 32;
  874. v_b = (REG_FLD_VAL_GET(DSI_PHY_TIMCON3_FLD_CLK_HS_EXIT, timcon3) + REG_FLD_VAL_GET(DSI_PHY_TIMCON0_FLD_LPX, timcon0)
  875. + REG_FLD_VAL_GET(DSI_PHY_TIMCON3_FLD_CLK_HS_PREP, timcon3) + REG_FLD_VAL_GET(DSI_PHY_TIMCON2_FLD_CLK_HS_ZERO, timcon2))*lane_num;
  876. v_c = (REG_FLD_VAL_GET(DSI_PHY_TIMCON3_FLD_CLK_HS_POST, timcon3) + REG_FLD_VAL_GET(DSI_PHY_TIMCON2_FLD_CLK_HS_TRAIL, timcon2))*lane_num;
  877. DISPCHECK("===>v_a-v_b=0x%x,HSTX_CKLP_WC=0x%x\n",(v_a - v_b),hstx_ckl_wc);
  878. DISPCHECK("===>v_b+v_c=0x%x,HFP_WC=0x%x\n",(v_b+v_c),hfp);
  879. DISPCHECK("===>Will Reconfig in order to fulfill LP clock lane per line\n");
  880. DSI_OUTREG32(cmdq,DSI_REG_BASE[i] + DISP_REG_DSI_HFP_WC,(v_b+v_c+DIFF_CLK_LANE_LP));//B+C < HFP ,here diff is 0x10;
  881. temp = &new_hfp;
  882. DSI_OUTREG32(cmdq,temp, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_HFP_WC));
  883. //v_a = hsa.HSA_WC + hbp.HBP_WC + new_hfp.HFP_WC + ps.DSI_PS_WC +32;
  884. v_a = REG_FLD_VAL_GET(DSI_HSA_WC_FLD_DSI_HSA_WC, hsa) + REG_FLD_VAL_GET(DSI_HBP_WC_FLD_DSI_HBP_WC, hbp)
  885. + REG_FLD_VAL_GET(DSI_HFP_WC_FLD_DSI_HFP_WC, new_hfp) + REG_FLD_VAL_GET(DSI_PSCON_FLD_DSI_PS_WC, ps) + 32;
  886. DSI_OUTREG32(cmdq,DSI_REG_BASE[i] + DISP_REG_DSI_HSTX_CKLP_WC, (v_a - v_b));
  887. DSI_OUTREG32(cmdq,&new_hstx_ckl_wc, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_HSTX_CKLP_WC));
  888. //DISPCHECK("===>new HSTX_CKL_WC=0x%x, HFP_WC=0x%x\n",new_hstx_ckl_wc,new_hfp.HFP_WC);
  889. DISPCHECK("===>new HSTX_CKL_WC=0x%x, HFP_WC=0x%x\n",new_hstx_ckl_wc, REG_FLD_VAL_GET(DSI_HFP_WC_FLD_DSI_HFP_WC, new_hfp));
  890. }
  891. // 2. sync_event_mode
  892. // Total WC(A) = HBP_WC + HFP_WC + PS_WC + 26
  893. // CLK init WC(B) = (CLK_HS_EXIT + LPX + CLK_HS_PREP + CLK_HS_ZERO)*lane_num
  894. // CLK end WC(C) = (CLK_HS_POST + CLK_HS_TRAIL)*lane_num
  895. // HSTX_CKLP_WC = A - B
  896. // Limitation: B + C < HFP_WC
  897. else if (dsi_mode == SYNC_EVENT_VDO_MODE) {
  898. //v_a = hbp.HBP_WC + hfp.HFP_WC + ps.DSI_PS_WC +26;
  899. //v_b = (timcon3.CLK_HS_EXIT + timcon0.LPX + timcon3.CLK_HS_PRPR + timcon2.CLK_ZERO)*lane_num;
  900. //v_c = (timcon3.CLK_HS_POST + timcon2.CLK_TRAIL)* lane_num;
  901. v_a = REG_FLD_VAL_GET(DSI_HBP_WC_FLD_DSI_HBP_WC, hbp)
  902. + REG_FLD_VAL_GET(DSI_HFP_WC_FLD_DSI_HFP_WC, hfp) + REG_FLD_VAL_GET(DSI_PSCON_FLD_DSI_PS_WC, ps) + 26;
  903. v_b = (REG_FLD_VAL_GET(DSI_PHY_TIMCON3_FLD_CLK_HS_EXIT, timcon3) + REG_FLD_VAL_GET(DSI_PHY_TIMCON0_FLD_LPX, timcon0)
  904. + REG_FLD_VAL_GET(DSI_PHY_TIMCON3_FLD_CLK_HS_PREP, timcon3) + REG_FLD_VAL_GET(DSI_PHY_TIMCON2_FLD_CLK_HS_ZERO, timcon2))*lane_num;
  905. v_c = (REG_FLD_VAL_GET(DSI_PHY_TIMCON3_FLD_CLK_HS_POST, timcon3) + REG_FLD_VAL_GET(DSI_PHY_TIMCON2_FLD_CLK_HS_TRAIL, timcon2))*lane_num;
  906. DISPCHECK("===>v_a-v_b=0x%x,HSTX_CKLP_WC=0x%x\n",(v_a - v_b),hstx_ckl_wc);
  907. DISPCHECK("===>v_b+v_c=0x%x,HFP_WC=0x%x\n",(v_b+v_c),hfp);
  908. DISPCHECK("===>Will Reconfig in order to fulfill LP clock lane per line\n");
  909. DSI_OUTREG32(cmdq,DSI_REG_BASE[i] + DISP_REG_DSI_HFP_WC,(v_b+v_c+DIFF_CLK_LANE_LP));//B+C < HFP ,here diff is 0x10;
  910. temp = &new_hfp;
  911. DSI_OUTREG32(cmdq,temp, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_HFP_WC));
  912. //v_a = hbp.HBP_WC + new_hfp.HFP_WC + ps.DSI_PS_WC +26;
  913. v_a = REG_FLD_VAL_GET(DSI_HBP_WC_FLD_DSI_HBP_WC, hbp)
  914. + REG_FLD_VAL_GET(DSI_HFP_WC_FLD_DSI_HFP_WC, new_hfp) + REG_FLD_VAL_GET(DSI_PSCON_FLD_DSI_PS_WC, ps) + 26;
  915. DSI_OUTREG32(cmdq,DSI_REG_BASE[i] + DISP_REG_DSI_HSTX_CKLP_WC, (v_a - v_b));
  916. DSI_OUTREG32(cmdq,&new_hstx_ckl_wc, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_HSTX_CKLP_WC));
  917. //DISPCHECK("===>new HSTX_CKL_WC=0x%x, HFP_WC=0x%x\n",new_hstx_ckl_wc,new_hfp.HFP_WC);
  918. DISPCHECK("===>new HSTX_CKL_WC=0x%x, HFP_WC=0x%x\n",new_hstx_ckl_wc, REG_FLD_VAL_GET(DSI_HFP_WC_FLD_DSI_HFP_WC, new_hfp));
  919. }
  920. // 3. burst_mode
  921. // Total WC(A) = HBP_WC + HFP_WC + PS_WC + BLLP_WC + 32
  922. // CLK init WC(B) = (CLK_HS_EXIT + LPX + CLK_HS_PREP + CLK_HS_ZERO)*lane_num
  923. // CLK end WC(C) = (CLK_HS_POST + CLK_HS_TRAIL)*lane_num
  924. // HSTX_CKLP_WC = A - B
  925. // Limitation: B + C < HFP_WC
  926. else if (dsi_mode == BURST_VDO_MODE) {
  927. //v_a = hbp.HBP_WC + hfp.HFP_WC + ps.DSI_PS_WC +bllp.BLLP_WC+32;
  928. //v_b = (timcon3.CLK_HS_EXIT + timcon0.LPX + timcon3.CLK_HS_PRPR + timcon2.CLK_ZERO)*lane_num;
  929. //v_c = (timcon3.CLK_HS_POST + timcon2.CLK_TRAIL)* lane_num;
  930. v_a = REG_FLD_VAL_GET(DSI_HBP_WC_FLD_DSI_HBP_WC, hbp) + REG_FLD_VAL_GET(DSI_HFP_WC_FLD_DSI_HFP_WC, hfp)
  931. + REG_FLD_VAL_GET(DSI_PSCON_FLD_DSI_PS_WC, ps) + REG_FLD_VAL_GET(DSI_BLLP_WC_FLD_DSI_BLLP_WC, bllp) + 32;
  932. v_b = (REG_FLD_VAL_GET(DSI_PHY_TIMCON3_FLD_CLK_HS_EXIT, timcon3)
  933. + REG_FLD_VAL_GET(DSI_PHY_TIMCON3_FLD_CLK_HS_PREP, timcon3) + REG_FLD_VAL_GET(DSI_PHY_TIMCON2_FLD_CLK_HS_ZERO, timcon2))*lane_num;
  934. v_c = (REG_FLD_VAL_GET(DSI_PHY_TIMCON3_FLD_CLK_HS_POST, timcon3) + REG_FLD_VAL_GET(DSI_PHY_TIMCON2_FLD_CLK_HS_TRAIL, timcon2))*lane_num;
  935. DISPCHECK("===>v_a-v_b=0x%x,HSTX_CKLP_WC=0x%x\n",(v_a - v_b),hstx_ckl_wc);
  936. DISPCHECK("===>v_b+v_c=0x%x,HFP_WC=0x%x\n",(v_b+v_c),hfp);
  937. DISPCHECK("===>Will Reconfig in order to fulfill LP clock lane per line\n");
  938. DSI_OUTREG32(cmdq,DSI_REG_BASE[i] + DISP_REG_DSI_HFP_WC,(v_b+v_c+DIFF_CLK_LANE_LP));//B+C < HFP ,here diff is 0x10;
  939. DSI_OUTREG32(cmdq,&new_hfp, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_HFP_WC));
  940. //v_a = hbp.HBP_WC + new_hfp.HFP_WC + ps.DSI_PS_WC +bllp.BLLP_WC+32;
  941. v_a = REG_FLD_VAL_GET(DSI_HBP_WC_FLD_DSI_HBP_WC, hbp) + REG_FLD_VAL_GET(DSI_HFP_WC_FLD_DSI_HFP_WC, new_hfp)
  942. + REG_FLD_VAL_GET(DSI_PSCON_FLD_DSI_PS_WC, ps) + REG_FLD_VAL_GET(DSI_BLLP_WC_FLD_DSI_BLLP_WC, bllp)+ 32;
  943. DSI_OUTREG32(cmdq,DSI_REG_BASE[i] + DISP_REG_DSI_HSTX_CKLP_WC, (v_a - v_b));
  944. DSI_OUTREG32(cmdq,&new_hstx_ckl_wc, AS_UINT32(DSI_REG_BASE[i] + DISP_REG_DSI_HSTX_CKLP_WC));
  945. //DISPCHECK("===>new HSTX_CKL_WC=0x%x, HFP_WC=0x%x\n",new_hstx_ckl_wc,new_hfp.HFP_WC);
  946. DISPCHECK("===>new HSTX_CKL_WC=0x%x, HFP_WC=0x%x\n",new_hstx_ckl_wc, REG_FLD_VAL_GET(DSI_HFP_WC_FLD_DSI_HFP_WC, new_hfp));
  947. }
  948. }
  949. }
  950. int _dsi_ps_type_to_bpp(LCM_PS_TYPE ps)
  951. {
  952. switch (ps) {
  953. case LCM_PACKED_PS_16BIT_RGB565:
  954. return 2;
  955. case LCM_LOOSELY_PS_18BIT_RGB666:
  956. return 3;
  957. case LCM_PACKED_PS_24BIT_RGB888:
  958. return 3;
  959. case LCM_PACKED_PS_18BIT_RGB666:
  960. return 3;
  961. }
  962. return 0;
  963. }
  964. enum DSI_STATUS DSI_PS_Control(DISP_MODULE_ENUM module, void* cmdq, LCM_DSI_PARAMS *dsi_params, int w, int h)
  965. {
  966. int i = 0;
  967. unsigned int params_ps;
  968. unsigned int ps_sel_bitvalue = 0;
  969. unsigned int ps_wc_adjust = 0;
  970. unsigned int ps_wc = 0;
  971. DISPFUNC();
  972. params_ps = dsi_params->PS;
  973. ASSERT( params_ps <= PACKED_PS_18BIT_RGB666);
  974. if ((int)(dsi_params->PS) > (int)(LOOSELY_PS_18BIT_RGB666))
  975. ps_sel_bitvalue = (5 - dsi_params->PS);
  976. else
  977. ps_sel_bitvalue = dsi_params->PS;
  978. if (module == DISP_MODULE_DSIDUAL)
  979. w = w / 2;
  980. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  981. //DSI_OUTREGBIT(cmdq, struct DSI_VACT_NL_REG, DSI_REG[i]->DSI_VACT_NL, VACT_NL, h);
  982. DISP_REG_SET_FIELD(cmdq, DSI_VACT_NL_FLD_VACT_NL, DSI_REG_BASE[i] + DISP_REG_DSI_VACT_NL, h);
  983. if (dsi_params->ufoe_enable && dsi_params->ufoe_params.lr_mode_en != 1) {
  984. if (dsi_params->ufoe_params.compress_ratio == 3) {
  985. unsigned int ufoe_internal_width = w + w % 4;
  986. if (ufoe_internal_width % 3 == 0) {
  987. ps_wc = (ufoe_internal_width / 3) * _dsi_ps_type_to_bpp(dsi_params->PS);
  988. } else {
  989. unsigned int temp_w = ufoe_internal_width / 3 + 1;
  990. temp_w = ((temp_w % 2) == 1) ? (temp_w + 1) : temp_w;
  991. ps_wc = temp_w * _dsi_ps_type_to_bpp(dsi_params->PS);
  992. }
  993. } else { /* 1/2 */
  994. ps_wc = (w + w % 4) / 2 * _dsi_ps_type_to_bpp(dsi_params->PS);
  995. }
  996. } else if (dsi_params->dsc_enable) {
  997. ps_wc = dsi_params->word_count;
  998. } else {
  999. ps_wc = w * _dsi_ps_type_to_bpp(dsi_params->PS);
  1000. }
  1001. if (ps_wc_adjust)
  1002. ps_wc *= dsi_params->packet_size_mult;
  1003. /*DSI_OUTREGBIT(cmdq, struct DSI_PSCTRL_REG, DSI_REG[i]->DSI_PSCTRL, DSI_PS_WC, ps_wc);
  1004. DSI_OUTREGBIT(cmdq, struct DSI_PSCTRL_REG, DSI_REG[i]->DSI_PSCTRL, DSI_PS_SEL,
  1005. ps_sel_bitvalue);*/
  1006. DISP_REG_SET_FIELD(cmdq, DSI_PSCON_FLD_DSI_PS_WC, DSI_REG_BASE[i] + DISP_REG_DSI_PSCON, ps_wc);
  1007. DISP_REG_SET_FIELD(cmdq, DSI_PSCON_FLD_DSI_PS_SEL, DSI_REG_BASE[i] + DISP_REG_DSI_PSCON, ps_sel_bitvalue);
  1008. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_SIZE_CON, h<<16 | w);
  1009. }
  1010. return DSI_STATUS_OK;
  1011. }
  1012. enum DSI_STATUS DSI_TXRX_Control(DISP_MODULE_ENUM module, void* cmdq, LCM_DSI_PARAMS *dsi_params)
  1013. {
  1014. int i = 0;
  1015. unsigned int lane_num_bitvalue = 0;
  1016. int lane_num = dsi_params->LANE_NUM;
  1017. int vc_num = 0;
  1018. bool null_packet_en = FALSE;
  1019. bool dis_eotp_en = FALSE;
  1020. bool hstx_cklp_en = dsi_params->cont_clock ? FALSE : TRUE;
  1021. int max_return_size = 0;
  1022. switch (lane_num) {
  1023. case LCM_ONE_LANE:
  1024. lane_num_bitvalue = 0x1;
  1025. break;
  1026. case LCM_TWO_LANE:
  1027. lane_num_bitvalue = 0x3;
  1028. break;
  1029. case LCM_THREE_LANE:
  1030. lane_num_bitvalue = 0x7;
  1031. break;
  1032. case LCM_FOUR_LANE:
  1033. lane_num_bitvalue = 0xF;
  1034. break;
  1035. }
  1036. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  1037. /*DSI_OUTREGBIT(cmdq, struct DSI_TXRX_CTRL_REG, DSI_REG[i]->DSI_TXRX_CTRL, VC_NUM, vc_num);
  1038. DSI_OUTREGBIT(cmdq, struct DSI_TXRX_CTRL_REG, DSI_REG[i]->DSI_TXRX_CTRL, DIS_EOT,
  1039. dis_eotp_en);
  1040. DSI_OUTREGBIT(cmdq, struct DSI_TXRX_CTRL_REG, DSI_REG[i]->DSI_TXRX_CTRL, BLLP_EN,
  1041. null_packet_en);
  1042. DSI_OUTREGBIT(cmdq, struct DSI_TXRX_CTRL_REG, DSI_REG[i]->DSI_TXRX_CTRL, MAX_RTN_SIZE,
  1043. max_return_size);
  1044. DSI_OUTREGBIT(cmdq, struct DSI_TXRX_CTRL_REG, DSI_REG[i]->DSI_TXRX_CTRL, HSTX_CKLP_EN,
  1045. hstx_cklp_en);
  1046. DSI_OUTREGBIT(cmdq, struct DSI_TXRX_CTRL_REG, DSI_REG[i]->DSI_TXRX_CTRL, LANE_NUM,
  1047. lane_num_bitvalue);*/
  1048. DISP_REG_SET_FIELD(cmdq, DSI_TXRX_CON_FLD_VC_NUM, DSI_REG_BASE[i] + DISP_REG_DSI_TXRX_CON, vc_num);
  1049. DISP_REG_SET_FIELD(cmdq, DSI_TXRX_CON_FLD_HSTX_DIS_EOT, DSI_REG_BASE[i] + DISP_REG_DSI_TXRX_CON, dis_eotp_en);
  1050. DISP_REG_SET_FIELD(cmdq, DSI_TXRX_CON_FLD_HSTX_BLLP_EN, DSI_REG_BASE[i] + DISP_REG_DSI_TXRX_CON, null_packet_en);
  1051. DISP_REG_SET_FIELD(cmdq, DSI_TXRX_CON_FLD_MAX_RTN_SIZE, DSI_REG_BASE[i] + DISP_REG_DSI_TXRX_CON, max_return_size);
  1052. DISP_REG_SET_FIELD(cmdq, DSI_TXRX_CON_FLD_HSTX_CKLP_EN, DSI_REG_BASE[i] + DISP_REG_DSI_TXRX_CON, hstx_cklp_en);
  1053. DISP_REG_SET_FIELD(cmdq, DSI_TXRX_CON_FLD_LANE_NUM , DSI_REG_BASE[i] + DISP_REG_DSI_TXRX_CON, lane_num_bitvalue);
  1054. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_MEM_CONTI, DSI_WMEM_CONTI);
  1055. if (CMD_MODE == dsi_params->mode
  1056. || (CMD_MODE != dsi_params->mode && dsi_params->eint_disable)) {
  1057. if (dsi_params->ext_te_edge == LCM_POLARITY_FALLING) {
  1058. /*use ext te falling edge */
  1059. //DSI_OUTREGBIT(cmdq, struct DSI_TXRX_CTRL_REG, DSI_REG[i]->DSI_TXRX_CTRL,
  1060. // EXT_TE_EDGE, 1);
  1061. DISP_REG_SET_FIELD(cmdq, DSI_TXRX_CON_FLD_EXT_TE_EDGE_SEL, DSI_REG_BASE[i] + DISP_REG_DSI_TXRX_CON, 1);
  1062. }
  1063. //DSI_OUTREGBIT(cmdq, struct DSI_TXRX_CTRL_REG, DSI_REG[i]->DSI_TXRX_CTRL, EXT_TE_EN, 1);
  1064. DISP_REG_SET_FIELD(cmdq, DSI_TXRX_CON_FLD_EXT_TE_EN, DSI_REG_BASE[i] + DISP_REG_DSI_TXRX_CON, 1);
  1065. }
  1066. }
  1067. return DSI_STATUS_OK;
  1068. }
  1069. void fill_mipitx_reg1(unsigned int value, unsigned int addr, unsigned num)
  1070. {
  1071. unsigned int i = 0;
  1072. unsigned int t_value = 0, t_addr = 0;
  1073. for (i = 0; i < num; i++) {
  1074. t_addr = addr + i * 0x4;
  1075. t_value = (value >> i) & 0x1;
  1076. MIPITX_OUTREG32(t_addr, t_value);
  1077. }
  1078. }
  1079. void fill_mipitx_reg2(unsigned int value, unsigned int addr)
  1080. {
  1081. unsigned int i = 0;
  1082. unsigned t_value = 0;
  1083. for (i = 0; i < 3; i++) {
  1084. t_value |= (((value >> i) & 0x1) << i * 8);
  1085. }
  1086. MIPITX_OUTREG32(addr, t_value);
  1087. }
  1088. void fill_mipitx_impedance(DISP_MODULE_ENUM module, void* cmdq)
  1089. {
  1090. unsigned int tmp = 0, i = 0, j = 0;
  1091. unsigned int value = 0;
  1092. unsigned int mipitx_base;
  1093. /* fix wrong default value */
  1094. for (i = 0x1CC; i <= 0x5CC; i += 0x100) {
  1095. mipitx_base = DSI_PHY_REG[0] + i;
  1096. MIPITX_OUTREG32(mipitx_base, 0x100);
  1097. }
  1098. /* 0x11C10190 */
  1099. value = INREG32(0x11C10190);
  1100. if (value) {
  1101. fill_mipitx_reg1(value & 0xf, 0x11E50214, 4);
  1102. fill_mipitx_reg1((value >> 4) & 0xf, 0x11E50200, 4);
  1103. fill_mipitx_reg1((value >> 8) & 0xf, 0x11E50114, 4);
  1104. fill_mipitx_reg1((value >> 12) & 0xf, 0x11E50100, 4);
  1105. }
  1106. /* 0x11C10194 */
  1107. value = INREG32(0x11C10194);
  1108. if (value) {
  1109. fill_mipitx_reg1((value >> 8) & 0xf, 0x11E50514, 4);
  1110. fill_mipitx_reg1((value >> 12) & 0xf, 0x11E50500, 4);
  1111. fill_mipitx_reg1((value >> 16) & 0xf, 0x11E50414, 4);
  1112. fill_mipitx_reg1((value >> 20) & 0xf, 0x11E50400, 4);
  1113. fill_mipitx_reg1((value >> 24) & 0xf, 0x11E50314, 4);
  1114. fill_mipitx_reg1((value >> 28) & 0xf, 0x11E50300, 4);
  1115. }
  1116. /* 0x11C10198 */
  1117. value = INREG32(0x11C10198);
  1118. if (value) {
  1119. fill_mipitx_reg2((value >> 2) & 0x7, 0x11E505CC);
  1120. fill_mipitx_reg2((value >> 5) & 0x7, 0x11E505C8);
  1121. fill_mipitx_reg2((value >> 8) & 0x7, 0x11E504CC);
  1122. fill_mipitx_reg2((value >> 11) & 0x7, 0x11E504C8);
  1123. fill_mipitx_reg2((value >> 14) & 0x7, 0x11E503CC);
  1124. fill_mipitx_reg2((value >> 17) & 0x7, 0x11E503C8);
  1125. fill_mipitx_reg2((value >> 20) & 0x7, 0x11E502CC);
  1126. fill_mipitx_reg2((value >> 23) & 0x7, 0x11E502C8);
  1127. fill_mipitx_reg2((value >> 26) & 0x7, 0x11E501CC);
  1128. fill_mipitx_reg2((value >> 29) & 0x7, 0x11E501C8);
  1129. }
  1130. }
  1131. void DSI_PHY_clk_setting(DISP_MODULE_ENUM module, void* cmdq, LCM_DSI_PARAMS *dsi_params)
  1132. {
  1133. int i = 0;
  1134. unsigned int j = 0;
  1135. unsigned int k = 0;
  1136. unsigned int data_Rate = dsi_params->PLL_CLOCK * 2;
  1137. unsigned int pcw_ratio = 0;
  1138. unsigned int pcw = 0;
  1139. unsigned int posdiv = 0;
  1140. //unsigned int prediv = 0;
  1141. unsigned int delta1 = 2; /* Delta1 is SSC range, default is 0%~-5% */
  1142. unsigned int pdelta1 = 0;
  1143. /* struct mipitx_impedance m_mipitx_impedance[3]; */
  1144. unsigned int mipitx_base = 0;
  1145. unsigned int mipitx_addr = 0;
  1146. unsigned int mipitx_value = 0;
  1147. unsigned int tmp;
  1148. unsigned int efuse_addr[3] = {0x11C10190, 0x11C10194, 0x11C10198};
  1149. MIPITX_PAD_VALUE pad_mapping[MIPITX_PHY_LANE_NUM]
  1150. = {PAD_D0P_V, PAD_D1P_V, PAD_D2P_V, PAD_D3P_V, PAD_CKP_V, PAD_CKP_V};
  1151. DISPFUNC();
  1152. /* DPHY SETTING */
  1153. /* MIPITX lane swap setting */
  1154. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  1155. /* step 0 MIPITX lane swap setting */
  1156. if (dsi_params->lane_swap_en) {
  1157. DISPCHECK("MIPITX Lane Swap Enabled for DSI Port %d\n", i);
  1158. DISPCHECK("MIPITX Lane Swap mapping: %d|%d|%d|%d|%d|%d\n",
  1159. dsi_params->lane_swap[i][MIPITX_PHY_LANE_0],
  1160. dsi_params->lane_swap[i][MIPITX_PHY_LANE_1],
  1161. dsi_params->lane_swap[i][MIPITX_PHY_LANE_2],
  1162. dsi_params->lane_swap[i][MIPITX_PHY_LANE_3],
  1163. dsi_params->lane_swap[i][MIPITX_PHY_LANE_CK],
  1164. dsi_params->lane_swap[i][MIPITX_PHY_LANE_RX]);
  1165. /* CKMODE_EN */
  1166. for (j = MIPITX_PHY_LANE_0; j < MIPITX_PHY_LANE_CK; j++) {
  1167. if (dsi_params->lane_swap[i][j] == MIPITX_PHY_LANE_CK)
  1168. break;
  1169. }
  1170. switch (j) {
  1171. case MIPITX_PHY_LANE_0:
  1172. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_D0_CKMODE_EN, FLD_DSI_D0_CKMODE_EN, 1);
  1173. break;
  1174. case MIPITX_PHY_LANE_1:
  1175. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_D1_CKMODE_EN, FLD_DSI_D1_CKMODE_EN, 1);
  1176. break;
  1177. case MIPITX_PHY_LANE_2:
  1178. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_D2_CKMODE_EN, FLD_DSI_D2_CKMODE_EN, 1);
  1179. break;
  1180. case MIPITX_PHY_LANE_3:
  1181. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_D3_CKMODE_EN, FLD_DSI_D3_CKMODE_EN, 1);
  1182. break;
  1183. case MIPITX_PHY_LANE_CK:
  1184. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_CK_CKMODE_EN, FLD_DSI_CK_CKMODE_EN, 1);
  1185. break;
  1186. default:
  1187. break;
  1188. }
  1189. /* LANE_0 */
  1190. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PHY_SEL0, FLD_MIPI_TX_PHY0_SEL,
  1191. pad_mapping[dsi_params->lane_swap[i][MIPITX_PHY_LANE_0]]);
  1192. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PHY_SEL0, FLD_MIPI_TX_PHY1AB_SEL,
  1193. pad_mapping[dsi_params->lane_swap[i][MIPITX_PHY_LANE_0]]+1);
  1194. /* LANE_1 */
  1195. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PHY_SEL0, FLD_MIPI_TX_PHY1_SEL,
  1196. pad_mapping[dsi_params->lane_swap[i][MIPITX_PHY_LANE_1]]);
  1197. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PHY_SEL1, FLD_MIPI_TX_PHY2BC_SEL,
  1198. pad_mapping[dsi_params->lane_swap[i][MIPITX_PHY_LANE_1]]+1);
  1199. /* LANE_2 */
  1200. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PHY_SEL0, FLD_MIPI_TX_PHY2_SEL,
  1201. pad_mapping[dsi_params->lane_swap[i][MIPITX_PHY_LANE_2]]);
  1202. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PHY_SEL0, FLD_MIPI_TX_CPHY0BC_SEL,
  1203. pad_mapping[dsi_params->lane_swap[i][MIPITX_PHY_LANE_2]]+1);
  1204. /* LANE_3 */
  1205. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PHY_SEL1, FLD_MIPI_TX_PHY3_SEL,
  1206. pad_mapping[dsi_params->lane_swap[i][MIPITX_PHY_LANE_3]]);
  1207. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PHY_SEL1, FLD_MIPI_TX_CPHYXXX_SEL,
  1208. pad_mapping[dsi_params->lane_swap[i][MIPITX_PHY_LANE_3]]+1);
  1209. /* CK LANE */
  1210. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PHY_SEL0, FLD_MIPI_TX_PHYC_SEL,
  1211. pad_mapping[dsi_params->lane_swap[i][MIPITX_PHY_LANE_0]]);
  1212. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PHY_SEL0, FLD_MIPI_TX_CPHY1CA_SEL,
  1213. pad_mapping[dsi_params->lane_swap[i][MIPITX_PHY_LANE_0]]+1);
  1214. /* LPRX SETTING */
  1215. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PHY_SEL1, FLD_MIPI_TX_LPRX0AB_SEL,
  1216. pad_mapping[dsi_params->lane_swap[i][MIPITX_PHY_LANE_RX]]);
  1217. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PHY_SEL1, FLD_MIPI_TX_LPRX0BC_SEL,
  1218. pad_mapping[dsi_params->lane_swap[i][MIPITX_PHY_LANE_RX]]+1);
  1219. /* HS_DATA SETTING */
  1220. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PHY_SEL2, FLD_MIPI_TX_PHY2_HSDATA_SEL,
  1221. pad_mapping[dsi_params->lane_swap[i][MIPITX_PHY_LANE_2]]);
  1222. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PHY_SEL2, FLD_MIPI_TX_PHY0_HSDATA_SEL,
  1223. pad_mapping[dsi_params->lane_swap[i][MIPITX_PHY_LANE_0]]);
  1224. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PHY_SEL2, FLD_MIPI_TX_PHYC_HSDATA_SEL,
  1225. pad_mapping[dsi_params->lane_swap[i][MIPITX_PHY_LANE_CK]]);
  1226. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PHY_SEL2, FLD_MIPI_TX_PHY1_HSDATA_SEL,
  1227. pad_mapping[dsi_params->lane_swap[i][MIPITX_PHY_LANE_1]]);
  1228. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PHY_SEL3, FLD_MIPI_TX_PHY3_HSDATA_SEL,
  1229. pad_mapping[dsi_params->lane_swap[i][MIPITX_PHY_LANE_3]]);
  1230. } else {
  1231. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_CK_CKMODE_EN, FLD_DSI_CK_CKMODE_EN, 1);
  1232. }
  1233. }
  1234. fill_mipitx_impedance(module, cmdq);
  1235. #if 0
  1236. /* fill mipitx impedance */
  1237. m_mipitx_impedance[0] = (struct mipitx_impedance){3, 0x11F10190, 11};
  1238. m_mipitx_impedance[1] = (struct mipitx_impedance){6, 0x11F10194, 27};
  1239. m_mipitx_impedance[2] = (struct mipitx_impedance){1, 0x11F10198, 27};
  1240. mipitx_base = DSI_PHY_REG[0]+MIPITX_D2P_RTCODE0;
  1241. for (i = 0; i < 3; i++) {
  1242. mipitx_value = INREG32(m_mipitx_impedance[i].base);
  1243. for (j = 0; j < m_mipitx_impedance[i].num_to_fill; j++) {
  1244. tmp = (mipitx_value>>(m_mipitx_impedance[i].offset_start-j*5))&0x1F;
  1245. if (tmp == 0)
  1246. tmp = 0x10;
  1247. /* fill value into mipitx reg */
  1248. mipitx_addr = mipitx_base;
  1249. for (k=0; k<5; k++) {
  1250. MIPITX_OUTREG32(mipitx_addr, (tmp>>k)&0x1);
  1251. mipitx_addr += 0x4;
  1252. }
  1253. /* update mipitx base */
  1254. mipitx_base += (mipitx_base & 0xf) ? 0xEC : 0x14;
  1255. }
  1256. }
  1257. #endif
  1258. /* MIPI INIT */
  1259. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  1260. #if 0
  1261. MIPITX_OUTREGBIT(struct MIPITX_DSI_IMPENDANCE_0_REG,
  1262. DSI_PHY_REG[i]->MIPITX_DSI_IMPENDANCE_0, RG_DSI0_D2P_RT_CODE, impendance0[i] & 0x1F);
  1263. MIPITX_OUTREGBIT(struct MIPITX_DSI_IMPENDANCE_0_REG,
  1264. DSI_PHY_REG[i]->MIPITX_DSI_IMPENDANCE_0, RG_DSI0_D2N_RT_CODE, (impendance0[i] >> 8) & 0x1F);
  1265. MIPITX_OUTREGBIT(struct MIPITX_DSI_IMPENDANCE_0_REG,
  1266. DSI_PHY_REG[i]->MIPITX_DSI_IMPENDANCE_0, RG_DSI0_D0P_RT_CODE, (impendance0[i] >> 16) & 0x1F);
  1267. MIPITX_OUTREGBIT(struct MIPITX_DSI_IMPENDANCE_0_REG,
  1268. DSI_PHY_REG[i]->MIPITX_DSI_IMPENDANCE_0, RG_DSI0_D0N_RT_CODE, (impendance0[i] >> 24) & 0x1F);
  1269. MIPITX_OUTREGBIT(struct MIPITX_DSI_IMPENDANCE_1_REG,
  1270. DSI_PHY_REG[i]->MIPITX_DSI_IMPENDANCE_1, RG_DSI0_CKP_RT_CODE, impendance1[i] & 0x1F);
  1271. MIPITX_OUTREGBIT(struct MIPITX_DSI_IMPENDANCE_1_REG,
  1272. DSI_PHY_REG[i]->MIPITX_DSI_IMPENDANCE_1, RG_DSI0_CKN_RT_CODE, (impendance1[i] >> 8) & 0x1F);
  1273. MIPITX_OUTREGBIT(struct MIPITX_DSI_IMPENDANCE_1_REG,
  1274. DSI_PHY_REG[i]->MIPITX_DSI_IMPENDANCE_1, RG_DSI0_D1P_RT_CODE, (impendance1[i] >> 16) & 0x1F);
  1275. MIPITX_OUTREGBIT(struct MIPITX_DSI_IMPENDANCE_1_REG,
  1276. DSI_PHY_REG[i]->MIPITX_DSI_IMPENDANCE_1, RG_DSI0_D1N_RT_CODE, (impendance1[i] >> 24) & 0x1F);
  1277. MIPITX_OUTREGBIT(struct MIPITX_DSI_IMPENDANCE_2_REG,
  1278. DSI_PHY_REG[i]->MIPITX_DSI_IMPENDANCE_2, RG_DSI0_D3P_RT_CODE, impendance2[i] & 0x1F);
  1279. MIPITX_OUTREGBIT(struct MIPITX_DSI_IMPENDANCE_2_REG,
  1280. DSI_PHY_REG[i]->MIPITX_DSI_IMPENDANCE_2, RG_DSI0_D3N_RT_CODE, (impendance2[i] >> 8) & 0x1F);
  1281. #endif
  1282. /* step 0 */
  1283. /* RG_DSI0_PLL_IBIAS = 0*/
  1284. MIPITX_OUTREG32(DSI_PHY_REG[i]+MIPITX_PLL_CON4, 0x00FF12E0);
  1285. /* BG_LPF_EN / BG_CORE_EN */
  1286. MIPITX_OUTREG32(DSI_PHY_REG[i]+MIPITX_LANE_CON, 0x3FFF0180); /* BG_LPF_EN=0 BG_CORE_EN=1 */
  1287. mdelay(1);
  1288. MIPITX_OUTREG32(DSI_PHY_REG[i]+MIPITX_LANE_CON, 0x3FFF0080); /* BG_LPF_EN=1 */
  1289. /* Switch OFF each Lane */
  1290. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_D0_SW_CTL_EN,
  1291. FLD_DSI_D0_SW_CTL_EN, 0);
  1292. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_D1_SW_CTL_EN,
  1293. FLD_DSI_D1_SW_CTL_EN, 0);
  1294. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_D2_SW_CTL_EN,
  1295. FLD_DSI_D2_SW_CTL_EN, 0);
  1296. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_D3_SW_CTL_EN,
  1297. FLD_DSI_D3_SW_CTL_EN, 0);
  1298. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_CK_SW_CTL_EN,
  1299. FLD_DSI_CK_SW_CTL_EN, 0);
  1300. /* step 1 */
  1301. /* SDM_RWR_ON / SDM_ISO_EN */
  1302. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PLL_PWR, FLD_AD_DSI_PLL_SDM_PWR_ON, 1);
  1303. mdelay(1); /* 1us */
  1304. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PLL_PWR, FLD_AD_DSI_PLL_SDM_ISO_EN, 0);
  1305. if (data_Rate != 0) {
  1306. unsigned int tmp = 0;
  1307. if (data_Rate > 2500) {
  1308. DISPERR("mipitx Data Rate exceed limitation(%d)\n", data_Rate);
  1309. ASSERT(0);
  1310. } else if (data_Rate >= 2000) { /* 2G ~ 2.5G */
  1311. pcw_ratio = 1;
  1312. posdiv = 0;
  1313. //prediv = 0;
  1314. } else if (data_Rate >= 1000) { /* 1G ~ 2G */
  1315. pcw_ratio = 2;
  1316. posdiv = 1;
  1317. //prediv = 0;
  1318. } else if (data_Rate >= 500) { /* 500M ~ 1G */
  1319. pcw_ratio = 4;
  1320. posdiv = 2;
  1321. //prediv = 0;
  1322. } else if (data_Rate > 250) { /* 250M ~ 500M */
  1323. pcw_ratio = 8;
  1324. posdiv = 3;
  1325. //prediv = 0;
  1326. } else if (data_Rate >= 125) { /* 125M ~ 250M */
  1327. pcw_ratio = 16;
  1328. posdiv = 4;
  1329. //prediv = 0;
  1330. } else {
  1331. DISPERR("dataRate is too low(%d)\n", data_Rate);
  1332. ASSERT(0);
  1333. }
  1334. /* step 3 */
  1335. /* PLL PCW config */
  1336. /**
  1337. * PCW bit 24~30 = floor(pcw)
  1338. * PCW bit 16~23 = (pcw - floor(pcw))*256
  1339. * PCW bit 8~15 = (pcw*256 - floor(pcw)*256)*256
  1340. * PCW bit 8~15 = (pcw*256*256 - floor(pcw)*256*256)*256
  1341. */
  1342. /* pcw = data_Rate*4*txdiv/(26*2);//Post DIV =4, so need data_Rate*4 */
  1343. pcw = data_Rate * pcw_ratio / 26;
  1344. tmp = ((pcw & 0xFF) << 24) | (((256 * (data_Rate * pcw_ratio % 26) / 26) & 0xFF) << 16) |
  1345. (((256 * (256 * (data_Rate * pcw_ratio % 26) % 26) / 26) & 0xFF) << 8) |
  1346. ((256 * (256 * (256 * (data_Rate * pcw_ratio % 26) % 26) % 26) / 26) & 0xFF);
  1347. MIPITX_OUTREG32(DSI_PHY_REG[i]+MIPITX_PLL_CON0, tmp);
  1348. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PLL_CON1, FLD_RG_DSI_PLL_POSDIV, posdiv);
  1349. /* SSC config */
  1350. if (dsi_params->ssc_disable != 1) {
  1351. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PLL_CON2, FLD_RG_DSI_PLL_SDM_SSC_PH_INIT, 1);
  1352. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PLL_CON2, FLD_RG_DSI_PLL_SDM_SSC_PRD, 0x1B1);
  1353. delta1 = (dsi_params->ssc_range == 0) ? delta1 : dsi_params->ssc_range;
  1354. ASSERT(delta1 <= 8);
  1355. pdelta1 = (delta1 * (data_Rate / 2) * pcw_ratio * 262144 + 281664) / 563329;
  1356. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PLL_CON3, FLD_RG_DSI_PLL_SDM_SSC_DELTA, pdelta1);
  1357. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PLL_CON3, FLD_RG_DSI_PLL_SDM_SSC_DELTA1,
  1358. pdelta1);
  1359. DDPMSG("PLL config:data_rate=%d,pcw_ratio=%d,delta1=%d,pdelta1=0x%x\n",
  1360. data_Rate, pcw_ratio, delta1, pdelta1);
  1361. }
  1362. }
  1363. /* step 4 */
  1364. /* PLL EN */
  1365. mdelay(1);
  1366. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PLL_CON1, FLD_RG_DSI_PLL_EN, 1);
  1367. mdelay(1);
  1368. }
  1369. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  1370. if ((data_Rate != 0) && (dsi_params->ssc_disable != 1)) {
  1371. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PLL_CON2, FLD_RG_DSI_PLL_SDM_SSC_EN, 1);
  1372. } else {
  1373. MIPITX_OUTREGBIT(DSI_PHY_REG[i]+MIPITX_PLL_CON2, FLD_RG_DSI_PLL_SDM_SSC_EN, 0);
  1374. }
  1375. }
  1376. }
  1377. void DSI_PHY_TIMCONFIG(DISP_MODULE_ENUM module, void* cmdq, LCM_DSI_PARAMS *dsi_params)
  1378. {
  1379. struct DSI_PHY_TIMCON0_REG timcon0;
  1380. struct DSI_PHY_TIMCON1_REG timcon1;
  1381. struct DSI_PHY_TIMCON2_REG timcon2;
  1382. struct DSI_PHY_TIMCON3_REG timcon3;
  1383. int i = 0;
  1384. unsigned int lane_no;
  1385. unsigned int cycle_time = 0;
  1386. unsigned int ui = 0;
  1387. unsigned int hs_trail_m, hs_trail_n;
  1388. //unsigned char timcon_temp;
  1389. #ifdef MACH_FPGA
  1390. return 0;
  1391. #endif
  1392. lane_no = dsi_params->LANE_NUM;
  1393. if (dsi_params->PLL_CLOCK != 0) {
  1394. ui = 1000 / (dsi_params->PLL_CLOCK * 2) + 0x01;
  1395. cycle_time = 8000 / (dsi_params->PLL_CLOCK * 2) + 0x01;
  1396. DISPCHECK("[DISP] - LK - DSI_PHY_TIMCONFIG, pll=%d, Cycle Time = %d(ns), Unit Interval = %d(ns). , lane# = %d\n",
  1397. dsi_params->PLL_CLOCK, cycle_time, ui, lane_no);
  1398. } else {
  1399. DISPERR("[dsi_dsi.c] PLL clock should not be 0!!!\n");
  1400. ASSERT(0);
  1401. }
  1402. // div2_real=div2 ? div2*0x02 : 0x1;
  1403. //cycle_time = (1000 * div2 * div1 * pre_div * post_div)/ (fbk_sel * (fbk_div+0x01) * 26) + 1;
  1404. //ui = (1000 * div2 * div1 * pre_div * post_div)/ (fbk_sel * (fbk_div+0x01) * 26 * 2) + 1;
  1405. #define NS_TO_CYCLE(n, c) ((n) / (c))
  1406. hs_trail_m=1;
  1407. hs_trail_n= (dsi_params->HS_TRAIL == 0) ? NS_TO_CYCLE(((hs_trail_m * 0x4 * ui) + 0x50), cycle_time) : dsi_params->HS_TRAIL;
  1408. // +3 is recommended from designer becauase of HW latency
  1409. timcon0.HS_TRAIL = (hs_trail_m > hs_trail_n) ? hs_trail_m : hs_trail_n;
  1410. timcon0.HS_PRPR = (dsi_params->HS_PRPR == 0) ? NS_TO_CYCLE((0x40 + 0x5 * ui), cycle_time) : dsi_params->HS_PRPR;
  1411. // HS_PRPR can't be 1.
  1412. if (timcon0.HS_PRPR < 1)
  1413. timcon0.HS_PRPR = 1;
  1414. timcon0.HS_ZERO = (dsi_params->HS_ZERO == 0) ? NS_TO_CYCLE((0xC8 + 0x0a * ui), cycle_time) : dsi_params->HS_ZERO;
  1415. if (timcon0.HS_ZERO > timcon0.HS_PRPR)
  1416. timcon0.HS_ZERO -= timcon0.HS_PRPR;
  1417. timcon0.LPX = (dsi_params->LPX == 0) ? NS_TO_CYCLE(0x50, cycle_time) : dsi_params->LPX;
  1418. if (timcon0.LPX < 1)
  1419. timcon0.LPX = 1;
  1420. // timcon1.TA_SACK = (dsi_params->TA_SACK == 0) ? 1 : dsi_params->TA_SACK;
  1421. timcon1.TA_GET = (dsi_params->TA_GET == 0) ? (0x5 * timcon0.LPX) : dsi_params->TA_GET;
  1422. timcon1.TA_SURE = (dsi_params->TA_SURE == 0) ? (0x3 * timcon0.LPX / 0x2) : dsi_params->TA_SURE;
  1423. timcon1.TA_GO = (dsi_params->TA_GO == 0) ? (0x4 * timcon0.LPX) : dsi_params->TA_GO;
  1424. // --------------------------------------------------------------
  1425. // NT35510 need fine tune timing
  1426. // Data_hs_exit = 60 ns + 128UI
  1427. // Clk_post = 60 ns + 128 UI.
  1428. // --------------------------------------------------------------
  1429. timcon1.DA_HS_EXIT = (dsi_params->DA_HS_EXIT == 0) ? (0x2 * timcon0.LPX) : dsi_params->DA_HS_EXIT;
  1430. timcon2.CLK_TRAIL = ((dsi_params->CLK_TRAIL == 0) ? NS_TO_CYCLE(0x60, cycle_time) : dsi_params->CLK_TRAIL) + 0x01;
  1431. // CLK_TRAIL can't be 1.
  1432. if (timcon2.CLK_TRAIL < 2)
  1433. timcon2.CLK_TRAIL = 2;
  1434. // timcon2.LPX_WAIT = (dsi_params->LPX_WAIT == 0) ? 1 : dsi_params->LPX_WAIT;
  1435. timcon2.CONT_DET = dsi_params->CONT_DET;
  1436. timcon2.CLK_ZERO = (dsi_params->CLK_ZERO == 0) ? NS_TO_CYCLE(0x190, cycle_time) : dsi_params->CLK_ZERO;
  1437. timcon3.CLK_HS_PRPR = (dsi_params->CLK_HS_PRPR == 0) ? NS_TO_CYCLE(0x40, cycle_time) : dsi_params->CLK_HS_PRPR;
  1438. if (timcon3.CLK_HS_PRPR < 1)
  1439. timcon3.CLK_HS_PRPR = 1;
  1440. timcon3.CLK_HS_EXIT= (dsi_params->CLK_HS_EXIT == 0) ? (0x2 * timcon0.LPX) : dsi_params->CLK_HS_EXIT;
  1441. timcon3.CLK_HS_POST= (dsi_params->CLK_HS_POST == 0) ? NS_TO_CYCLE((0x60 + 0x34 * ui), cycle_time) : dsi_params->CLK_HS_POST;
  1442. DISP_LOG_PRINT(ANDROID_LOG_INFO, "DSI", "[DISP] - LK - DSI_PHY_TIMCONFIG, HS_TRAIL = %d, HS_ZERO = %d, HS_PRPR = %d, LPX = %d, TA_GET = %d, TA_SURE = %d, TA_GO = %d, CLK_TRAIL = %d, CLK_ZERO = %d, CLK_HS_PRPR = %d \n", \
  1443. timcon0.HS_TRAIL, timcon0.HS_ZERO, timcon0.HS_PRPR, timcon0.LPX, timcon1.TA_GET, timcon1.TA_SURE, timcon1.TA_GO, timcon2.CLK_TRAIL, timcon2.CLK_ZERO, timcon3.CLK_HS_PRPR);
  1444. DISP_LOG_PRINT(ANDROID_LOG_INFO, "DSI", "CLK_HS_POST=%d,CLK_HS_EXIT=%d,CLK_TRAIL=%d\n",timcon3.CLK_HS_POST,timcon3.CLK_HS_EXIT,timcon2.CLK_TRAIL);
  1445. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  1446. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_TIMCON0_REG, DSI_REG[i]->DSI_PHY_TIMECON0,LPX,timcon0.LPX);
  1447. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_TIMCON0_REG, DSI_REG[i]->DSI_PHY_TIMECON0,HS_PRPR,timcon0.HS_PRPR);
  1448. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_TIMCON0_REG, DSI_REG[i]->DSI_PHY_TIMECON0,HS_ZERO,timcon0.HS_ZERO);
  1449. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_TIMCON0_REG, DSI_REG[i]->DSI_PHY_TIMECON0,HS_TRAIL,timcon0.HS_TRAIL);
  1450. DISP_REG_SET_FIELD(cmdq, DSI_PHY_TIMCON0_FLD_LPX, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON0, timcon0.LPX);
  1451. DISP_REG_SET_FIELD(cmdq, DSI_PHY_TIMCON0_FLD_DA_HS_PREP, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON0, timcon0.HS_PRPR);
  1452. DISP_REG_SET_FIELD(cmdq, DSI_PHY_TIMCON0_FLD_DA_HS_ZERO, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON0, timcon0.HS_ZERO);
  1453. DISP_REG_SET_FIELD(cmdq, DSI_PHY_TIMCON0_FLD_DA_HS_TRAIL, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON0, timcon0.HS_TRAIL);
  1454. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_TIMCON1_REG, DSI_REG[i]->DSI_PHY_TIMECON1,TA_GO,timcon1.TA_GO);
  1455. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_TIMCON1_REG, DSI_REG[i]->DSI_PHY_TIMECON1,TA_SURE,timcon1.TA_SURE);
  1456. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_TIMCON1_REG, DSI_REG[i]->DSI_PHY_TIMECON1,TA_GET,timcon1.TA_GET);
  1457. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_TIMCON1_REG, DSI_REG[i]->DSI_PHY_TIMECON1,DA_HS_EXIT,timcon1.DA_HS_EXIT);
  1458. DISP_REG_SET_FIELD(cmdq, DSI_PHY_TIMCON1_FLD_TA_GO, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON1, timcon1.TA_GO);
  1459. DISP_REG_SET_FIELD(cmdq, DSI_PHY_TIMCON1_FLD_TA_SURE, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON1, timcon1.TA_SURE);
  1460. DISP_REG_SET_FIELD(cmdq, DSI_PHY_TIMCON1_FLD_TA_GET, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON1, timcon1.TA_GET);
  1461. DISP_REG_SET_FIELD(cmdq, DSI_PHY_TIMCON1_FLD_DA_HS_EXIT, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON1, timcon1.DA_HS_EXIT);
  1462. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_TIMCON2_REG, DSI_REG[i]->DSI_PHY_TIMECON2,CONT_DET,timcon2.CONT_DET);
  1463. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_TIMCON2_REG, DSI_REG[i]->DSI_PHY_TIMECON2,CLK_ZERO,timcon2.CLK_ZERO);
  1464. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_TIMCON2_REG, DSI_REG[i]->DSI_PHY_TIMECON2,CLK_TRAIL,timcon2.CLK_TRAIL);
  1465. DISP_REG_SET_FIELD(cmdq, DSI_PHY_TIMCON2_FLD_CONT_DET, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON2, timcon2.CONT_DET);
  1466. DISP_REG_SET_FIELD(cmdq, DSI_PHY_TIMCON2_FLD_CLK_HS_ZERO, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON2, timcon2.CLK_ZERO);
  1467. DISP_REG_SET_FIELD(cmdq, DSI_PHY_TIMCON2_FLD_CLK_HS_TRAIL, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON2, timcon2.CLK_TRAIL);
  1468. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_TIMCON3_REG, DSI_REG[i]->DSI_PHY_TIMECON3,CLK_HS_PRPR,timcon3.CLK_HS_PRPR);
  1469. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_TIMCON3_REG, DSI_REG[i]->DSI_PHY_TIMECON3,CLK_HS_POST,timcon3.CLK_HS_POST);
  1470. //DSI_OUTREGBIT(cmdq, struct DSI_PHY_TIMCON3_REG, DSI_REG[i]->DSI_PHY_TIMECON3,CLK_HS_EXIT,timcon3.CLK_HS_EXIT);
  1471. DISP_REG_SET_FIELD(cmdq, DSI_PHY_TIMCON3_FLD_CLK_HS_PREP, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON3, timcon3.CLK_HS_PRPR);
  1472. DISP_REG_SET_FIELD(cmdq, DSI_PHY_TIMCON3_FLD_CLK_HS_POST, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON3, timcon3.CLK_HS_POST);
  1473. DISP_REG_SET_FIELD(cmdq, DSI_PHY_TIMCON3_FLD_CLK_HS_EXIT, DSI_REG_BASE[i] + DISP_REG_DSI_PHY_TIMCON3, timcon3.CLK_HS_EXIT);
  1474. dprintf(INFO,"%s, 0x%08x,0x%08x,0x%08x,0x%08x\n", __func__, INREG32(DSI0_BASE+0x110),INREG32(DSI0_BASE+0x114),INREG32(DSI0_BASE+0x118),INREG32(DSI0_BASE+0x11c));
  1475. }
  1476. }
  1477. enum DSI_STATUS DSI_Start(DISP_MODULE_ENUM module, void *cmdq)
  1478. {
  1479. int i = 0;
  1480. if (module != DISP_MODULE_DSIDUAL) {
  1481. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  1482. //DSI_OUTREGBIT(cmdq, struct DSI_START_REG, DSI_REG[i]->DSI_START, DSI_START, 0);
  1483. //DSI_OUTREGBIT(cmdq, struct DSI_START_REG, DSI_REG[i]->DSI_START, DSI_START, 1);
  1484. DISP_REG_SET_FIELD(cmdq, DSI_START_FLD_DSI_START, DSI_REG_BASE[i] + DISP_REG_DSI_START, 0);
  1485. DISP_REG_SET_FIELD(cmdq, DSI_START_FLD_DSI_START, DSI_REG_BASE[i] + DISP_REG_DSI_START, 1);
  1486. }
  1487. } else {
  1488. /* TODO: do we need this? */
  1489. //DSI_OUTREGBIT(cmdq, struct DSI_START_REG, DSI_REG[0]->DSI_START, DSI_START, 0);
  1490. //DSI_OUTREGBIT(cmdq, struct DSI_START_REG, DSI_REG[0]->DSI_START, DSI_START, 1);
  1491. DISP_REG_SET_FIELD(cmdq, DSI_START_FLD_DSI_START, DSI_REG_BASE[0] + DISP_REG_DSI_START, 0);
  1492. DISP_REG_SET_FIELD(cmdq, DSI_START_FLD_DSI_START, DSI_REG_BASE[0] + DISP_REG_DSI_START, 1);
  1493. }
  1494. return DSI_STATUS_OK;
  1495. }
  1496. enum DSI_STATUS DSI_EnableVM_CMD(DISP_MODULE_ENUM module, cmdqRecHandle cmdq)
  1497. {
  1498. if (module == DISP_MODULE_DSI0 || module == DISP_MODULE_DSIDUAL) {
  1499. //DSI_OUTREGBIT(cmdq, struct DSI_START_REG,DSI_REG[0]->DSI_START,VM_CMD_START,0);
  1500. //DSI_OUTREGBIT(cmdq, struct DSI_START_REG,DSI_REG[0]->DSI_START,VM_CMD_START,1);
  1501. DISP_REG_SET_FIELD(cmdq, DSI_START_FLD_VM_CMD_START, DSI_REG_BASE[0] + DISP_REG_DSI_START, 0);
  1502. DISP_REG_SET_FIELD(cmdq, DSI_START_FLD_VM_CMD_START, DSI_REG_BASE[0] + DISP_REG_DSI_START, 1);
  1503. }
  1504. return DSI_STATUS_OK;
  1505. }
  1506. /// return value: the data length we got
  1507. UINT32 DSI_dcs_read_lcm_reg_v2(DISP_MODULE_ENUM module, void* cmdq, UINT8 cmd, UINT8 *buffer, UINT8 buffer_size)
  1508. {
  1509. int d = 0;
  1510. UINT32 max_try_count = 5;
  1511. UINT32 recv_data_cnt = 0; // reture value
  1512. unsigned int read_timeout_ms; // used for polling rd_rdy
  1513. unsigned char packet_type;
  1514. struct DSI_RX_DATA_REG read_data0;
  1515. struct DSI_RX_DATA_REG read_data1;
  1516. struct DSI_RX_DATA_REG read_data2;
  1517. struct DSI_RX_DATA_REG read_data3;
  1518. struct DSI_T0_INS t0;
  1519. struct DSI_T0_INS t1;
  1520. void* temp;
  1521. DISPFUNC();
  1522. #if ENABLE_DSI_INTERRUPT
  1523. static const long WAIT_TIMEOUT = 2 * HZ; // 2 sec
  1524. long ret;
  1525. #endif
  1526. for (d = DSI_MODULE_BEGIN(module); d <= DSI_MODULE_END(module); d++) {
  1527. if (DSI_REG[d]->DSI_MODE_CTRL.MODE) {
  1528. // only support cmd mode read
  1529. DISPDBG("DSI Read Fail: DSI Mode is %d \n", DSI_REG[d]->DSI_MODE_CTRL.MODE);
  1530. return 0;
  1531. }
  1532. if (buffer == NULL || buffer_size == 0) {
  1533. // illegal parameters
  1534. DISPERR("DSI Read Fail: buffer=0x%p and buffer_size=%d \n", buffer, buffer_size);
  1535. return 0;
  1536. }
  1537. do {
  1538. if (max_try_count == 0) {
  1539. DISPERR("DSI Read Fail: try 5 times \n");
  1540. return 0;
  1541. }
  1542. max_try_count--;
  1543. recv_data_cnt = 0;
  1544. read_timeout_ms = 20;
  1545. // 1. wait dsi not busy => can't read if dsi busy
  1546. DSI_WaitForNotBusy(module, cmdq);
  1547. // 2. Check rd_rdy & cmd_done irq
  1548. if (DSI_REG[d]->DSI_INTEN.RD_RDY == 0) {
  1549. //DSI_OUTREGBIT(cmdq, struct DSI_INT_ENABLE_REG, DSI_REG[d]->DSI_INTEN,
  1550. // RD_RDY, 1);
  1551. DISP_REG_SET_FIELD(cmdq, DSI_INTEN_FLD_LPRX_RD_RDY_INT_EN, DSI_REG_BASE[d] + DISP_REG_DSI_INTEN, 1);
  1552. }
  1553. if (DSI_REG[d]->DSI_INTEN.CMD_DONE == 0) {
  1554. //DSI_OUTREGBIT(cmdq, struct DSI_INT_ENABLE_REG, DSI_REG[d]->DSI_INTEN,
  1555. // CMD_DONE, 1);
  1556. DISP_REG_SET_FIELD(cmdq, DSI_INTEN_FLD_CMD_DONE_INT_EN, DSI_REG_BASE[d] + DISP_REG_DSI_INTEN, 1);
  1557. }
  1558. if (DSI_REG[d]->DSI_INTSTA.RD_RDY != 0
  1559. || DSI_REG[d]->DSI_INTSTA.CMD_DONE != 0) {
  1560. /* dump cmdq & rxdata */
  1561. {
  1562. unsigned int i;
  1563. DISPCHECK("Last DSI Read Why not clear irq???\n");
  1564. DISPCHECK("DSI_CMDQ_SIZE : %d\n",
  1565. AS_UINT32(DSI_REG_BASE[d] + DISP_REG_DSI_CMDQ_CON));
  1566. for (i = 0; i < DSI_REG[d]->DSI_CMDQ_SIZE.CMDQ_SIZE; i++) {
  1567. DISPCHECK("DSI_CMDQ_DATA%d : 0x%08x\n", i,
  1568. AS_UINT32(&DSI_CMDQ_REG[d]->data[i]));
  1569. }
  1570. DISPCHECK("DSI_RX_DATA0 : 0x%08x\n",
  1571. AS_UINT32(DSI_REG_BASE[d] + DISP_REG_DSI_RX_DATA03));
  1572. DISPCHECK("DSI_RX_DATA1 : 0x%08x\n",
  1573. AS_UINT32(DSI_REG_BASE[d] + DISP_REG_DSI_RX_DATA47));
  1574. DISPCHECK("DSI_RX_DATA2 : 0x%08x\n",
  1575. AS_UINT32(DSI_REG_BASE[d] + DISP_REG_DSI_RX_DATA8B));
  1576. DISPCHECK("DSI_RX_DATA3 : 0x%08x\n",
  1577. AS_UINT32(DSI_REG_BASE[d] + DISP_REG_DSI_RX_DATAC));
  1578. }
  1579. /* clear irq */
  1580. //DSI_OUTREGBIT(cmdq, struct DSI_INT_STATUS_REG, DSI_REG[d]->DSI_INTSTA,
  1581. // RD_RDY, 0);
  1582. //DSI_OUTREGBIT(cmdq, struct DSI_INT_STATUS_REG, DSI_REG[d]->DSI_INTSTA,
  1583. // CMD_DONE, 0);
  1584. DISP_REG_SET_FIELD(cmdq, DSI_INTSTA_FLD_LPRX_RD_RDY_INT_FLAG, DSI_REG_BASE[d] + DISP_REG_DSI_INTSTA, 0);
  1585. DISP_REG_SET_FIELD(cmdq, DSI_INTSTA_FLD_CMD_DONE_INT_FLAG, DSI_REG_BASE[d] + DISP_REG_DSI_INTSTA, 0);
  1586. }
  1587. /* 3. Send cmd */
  1588. t0.CONFG = 0x04; /* /BTA */
  1589. /* / 0xB0 is used to distinguish DCS cmd or Gerneric cmd, is that Right??? */
  1590. t0.Data_ID =
  1591. (cmd <
  1592. 0xB0) ? DSI_DCS_READ_PACKET_ID : DSI_GERNERIC_READ_LONG_PACKET_ID;
  1593. t0.Data0 = cmd;
  1594. t0.Data1 = 0;
  1595. /* set max return size */
  1596. t1.CONFG = 0x00;
  1597. t1.Data_ID = 0x37;
  1598. t1.Data0 = buffer_size <= 10 ? buffer_size : 10;
  1599. t1.Data1 = 0;
  1600. temp = &t1;
  1601. DSI_OUTREG32(cmdq, &DSI_CMDQ_REG[d]->data[0], AS_UINT32(temp));
  1602. temp = &t0;
  1603. DSI_OUTREG32(cmdq, &DSI_CMDQ_REG[d]->data[1], AS_UINT32(temp));
  1604. DSI_OUTREG32(cmdq, DSI_REG_BASE[d] + DISP_REG_DSI_CMDQ_CON, 2);
  1605. DSI_OUTREG32(cmdq, DSI_REG_BASE[d] + DISP_REG_DSI_START, 0);
  1606. DSI_OUTREG32(cmdq, DSI_REG_BASE[d] + DISP_REG_DSI_START, 1);
  1607. DSI_OUTREG32(cmdq, DSI_REG_BASE[d] + DISP_REG_DSI_START, 0);
  1608. /* / the following code is to */
  1609. /* / 1: wait read ready */
  1610. /* / 2: ack read ready */
  1611. /* / 3: wait for CMDQ_DONE(interrupt handler do this op) */
  1612. /* / 4: read data */
  1613. #if ENABLE_DSI_INTERRUPT
  1614. ret = wait_event_interruptible_timeout(_dsi_dcs_read_wait_queue, !_IsEngineBusy(), WAIT_TIMEOUT);
  1615. if (0 == ret) {
  1616. DISP_LOG_PRINT(ANDROID_LOG_INFO, "DSI", " Wait for DSI engine read ready timeout!!!\n");
  1617. DSI_DumpRegisters(module, 2);
  1618. //DSI_OUTREGBIT(cmdq, struct DSI_RACK_REG,DSI_REG[d]->DSI_RACK,DSI_RACK,1);
  1619. DISP_REG_SET_FIELD(cmdq, DSI_RX_RACK_FLD_RACK, DSI_REG_BASE[d] + DISP_REG_DSI_RX_RACK, 1);
  1620. DSI_Reset();
  1621. return 0;
  1622. }
  1623. #else
  1624. // wait read ready
  1625. DISP_LOG_PRINT(ANDROID_LOG_INFO, "DSI", " Start polling DSI read ready!!!\n");
  1626. while (DSI_REG[d]->DSI_INTSTA.RD_RDY == 0) {
  1627. ///keep polling
  1628. mdelay(1);
  1629. read_timeout_ms --;
  1630. if (read_timeout_ms == 0) {
  1631. DISP_LOG_PRINT(ANDROID_LOG_INFO, "DSI", " DSI Read Fail: Polling DSI read ready timeout!!!\n");
  1632. DSI_DumpRegisters(module, 2);
  1633. ///do necessary reset here
  1634. //DSI_OUTREGBIT(cmdq, struct DSI_RACK_REG,DSI_REG[d]->DSI_RACK,DSI_RACK,1);
  1635. DISP_REG_SET_FIELD(cmdq, DSI_RX_RACK_FLD_RACK, DSI_REG_BASE[d] + DISP_REG_DSI_RX_RACK, 1);
  1636. DSI_Reset(module, cmdq);
  1637. return 0;
  1638. }
  1639. }
  1640. DISP_LOG_PRINT(ANDROID_LOG_INFO, "DSI", " End polling DSI read ready!!!\n");
  1641. // ack read ready
  1642. //DSI_OUTREGBIT(cmdq, struct DSI_RACK_REG,DSI_REG[d]->DSI_RACK,DSI_RACK,1);
  1643. DISP_REG_SET_FIELD(cmdq, DSI_RX_RACK_FLD_RACK, DSI_REG_BASE[d] + DISP_REG_DSI_RX_RACK, 1);
  1644. // clear read ready irq
  1645. //DSI_OUTREGBIT(cmdq, struct DSI_INT_STATUS_REG,DSI_REG[d]->DSI_INTSTA,RD_RDY,0);
  1646. DISP_REG_SET_FIELD(cmdq, DSI_INTSTA_FLD_LPRX_RD_RDY_INT_FLAG, DSI_REG_BASE[d] + DISP_REG_DSI_INTSTA, 0);
  1647. // wait dsi cmd done
  1648. read_timeout_ms = 20;
  1649. while (DSI_REG[d]->DSI_INTSTA.CMD_DONE == 0) {
  1650. ///keep polling
  1651. mdelay(1);
  1652. read_timeout_ms --;
  1653. if (read_timeout_ms == 0) {
  1654. DISP_LOG_PRINT(ANDROID_LOG_INFO, "DSI", " DSI Read Fail: Polling DSI cmd done timeout!!!\n");
  1655. DSI_DumpRegisters(module, 2);
  1656. ///do necessary reset here
  1657. //DSI_OUTREGBIT(cmdq, struct DSI_RACK_REG,DSI_REG[d]->DSI_RACK,DSI_RACK,1);
  1658. DISP_REG_SET_FIELD(cmdq, DSI_RX_RACK_FLD_RACK, DSI_REG_BASE[d] + DISP_REG_DSI_RX_RACK, 1);
  1659. DSI_Reset(module, cmdq);
  1660. return 0;
  1661. }
  1662. }
  1663. // clear cmd done irq
  1664. //DSI_OUTREGBIT(cmdq, struct DSI_INT_STATUS_REG,DSI_REG[d]->DSI_INTSTA,CMD_DONE,0);
  1665. DISP_REG_SET_FIELD(cmdq, DSI_INTSTA_FLD_CMD_DONE_INT_FLAG, DSI_REG_BASE[d] + DISP_REG_DSI_INTSTA, 0);
  1666. #endif
  1667. DSI_OUTREG32(cmdq, &read_data0, AS_UINT32(DSI_REG_BASE[d] + DISP_REG_DSI_RX_DATA03));
  1668. DSI_OUTREG32(cmdq, &read_data1, AS_UINT32(DSI_REG_BASE[d] + DISP_REG_DSI_RX_DATA47));
  1669. DSI_OUTREG32(cmdq, &read_data2, AS_UINT32(DSI_REG_BASE[d] + DISP_REG_DSI_RX_DATA8B));
  1670. DSI_OUTREG32(cmdq, &read_data3, AS_UINT32(DSI_REG_BASE[d] + DISP_REG_DSI_RX_DATAC));
  1671. {
  1672. unsigned int i;
  1673. DISPCHECK("DSI read begin i = %d --------------------\n",
  1674. 5 - max_try_count);
  1675. DISPCHECK("DSI_RX_STA : 0x%08x\n",
  1676. AS_UINT32(DSI_REG_BASE[d] + DISP_REG_DSI_RX_TRIG_STA));
  1677. DISPCHECK("DSI_CMDQ_SIZE : %d\n",
  1678. AS_UINT32(DSI_REG_BASE[d] + DISP_REG_DSI_CMDQ_CON));
  1679. for (i = 0; i < DSI_REG[d]->DSI_CMDQ_SIZE.CMDQ_SIZE; i++) {
  1680. DISPCHECK("DSI_CMDQ_DATA%d : 0x%08x\n", i,
  1681. AS_UINT32(&DSI_CMDQ_REG[d]->data[i]));
  1682. }
  1683. DISPCHECK("DSI_RX_DATA0 : 0x%08x\n",
  1684. AS_UINT32(DSI_REG_BASE[d] + DISP_REG_DSI_RX_DATA03));
  1685. DISPCHECK("DSI_RX_DATA1 : 0x%08x\n",
  1686. AS_UINT32(DSI_REG_BASE[d] + DISP_REG_DSI_RX_DATA47));
  1687. DISPCHECK("DSI_RX_DATA2 : 0x%08x\n",
  1688. AS_UINT32(DSI_REG_BASE[d] + DISP_REG_DSI_RX_DATA8B));
  1689. DISPCHECK("DSI_RX_DATA3 : 0x%08x\n",
  1690. AS_UINT32(DSI_REG_BASE[d] + DISP_REG_DSI_RX_DATAC));
  1691. DISPCHECK("DSI read end ----------------------------\n");
  1692. }
  1693. packet_type = read_data0.byte0;
  1694. DISPCHECK("DSI read packet_type is 0x%x\n", packet_type);
  1695. /* 0x02: acknowledge & error report */
  1696. /* 0x11: generic short read response(1 byte return) */
  1697. /* 0x12: generic short read response(2 byte return) */
  1698. /* 0x1a: generic long read response */
  1699. /* 0x1c: dcs long read response */
  1700. /* 0x21: dcs short read response(1 byte return) */
  1701. /* 0x22: dcs short read response(2 byte return) */
  1702. if (packet_type == 0x1A || packet_type == 0x1C) {
  1703. recv_data_cnt = read_data0.byte1 + read_data0.byte2 * 16;
  1704. if (recv_data_cnt > 10) {
  1705. DISPCHECK
  1706. ("DSI read long packet data exceeds 4 bytes return size: %d\n",
  1707. recv_data_cnt);
  1708. recv_data_cnt = 10;
  1709. }
  1710. if (recv_data_cnt > buffer_size) {
  1711. DISPCHECK
  1712. ("DSI read long packet data exceeds buffer size return size %d\n",
  1713. recv_data_cnt);
  1714. recv_data_cnt = buffer_size;
  1715. }
  1716. DISPCHECK("DSI read long packet size: %d\n", recv_data_cnt);
  1717. if (recv_data_cnt <= 4) {
  1718. memcpy((void *)buffer, (void *)&read_data1, recv_data_cnt);
  1719. } else if (recv_data_cnt <= 8) {
  1720. memcpy((void *)buffer, (void *)&read_data1, 4);
  1721. memcpy((void *)buffer + 4, (void *)&read_data2,
  1722. recv_data_cnt - 4);
  1723. } else {
  1724. memcpy((void *)buffer, (void *)&read_data1, 4);
  1725. memcpy((void *)buffer + 4, (void *)&read_data2, 4);
  1726. memcpy((void *)buffer + 8, (void *)&read_data2,
  1727. recv_data_cnt - 8);
  1728. }
  1729. } else if (packet_type == 0x11 || packet_type == 0x12 ||
  1730. packet_type == 0x21 || packet_type == 0x22) {
  1731. if (packet_type == 0x11 || packet_type == 0x21)
  1732. recv_data_cnt = 1;
  1733. else
  1734. recv_data_cnt = 2;
  1735. if (recv_data_cnt > buffer_size) {
  1736. DISPCHECK
  1737. ("DSI read short packet data exceeds buffer size: %d\n",
  1738. buffer_size);
  1739. recv_data_cnt = buffer_size;
  1740. memcpy((void *)buffer, (void *)&read_data0.byte1,
  1741. recv_data_cnt);
  1742. } else {
  1743. memcpy((void *)buffer, (void *)&read_data0.byte1,
  1744. recv_data_cnt);
  1745. }
  1746. } else if (packet_type == 0x02) {
  1747. DISPCHECK("read return type is 0x02, re-read\n");
  1748. } else {
  1749. DISPCHECK("read return type is non-recognite, type = 0x%x\n",
  1750. packet_type);
  1751. return 0;
  1752. }
  1753. } while (packet_type == 0x02);
  1754. /* / here: we may receive a ACK packet which packet type is 0x02 (incdicates some error happened) */
  1755. /* / therefore we try re-read again until no ACK packet */
  1756. /* / But: if it is a good way to keep re-trying ??? */
  1757. }
  1758. return recv_data_cnt;
  1759. }
  1760. void DSI_set_cmdq_V2(DISP_MODULE_ENUM module, void* cmdq, unsigned cmd, unsigned char count, unsigned char *para_list, unsigned char force_update)
  1761. {
  1762. UINT32 i = 0;
  1763. int d = 0;
  1764. UINT32 goto_addr, mask_para, set_para;
  1765. struct DSI_T0_INS t0 = {0};
  1766. struct DSI_T2_INS t2 = {0};
  1767. void* temp;
  1768. //DISPFUNC();
  1769. for (d = DSI_MODULE_BEGIN(module); d <= DSI_MODULE_END(module); d++) {
  1770. if (0 != DSI_REG[d]->DSI_MODE_CTRL.MODE) {
  1771. //not in cmd mode
  1772. struct DSI_VM_CMD_CON_REG vm_cmdq;
  1773. memset(&vm_cmdq,0,sizeof(struct DSI_VM_CMD_CON_REG));
  1774. DSI_READREG32(struct DSI_VM_CMD_CON_REG *, &vm_cmdq,&DSI_REG[d]->DSI_VM_CMD_CON);
  1775. if (cmd < 0xB0) {
  1776. if (count > 1) {
  1777. vm_cmdq.LONG_PKT = 1;
  1778. vm_cmdq.CM_DATA_ID = DSI_DCS_LONG_PACKET_ID;
  1779. vm_cmdq.CM_DATA_0 = count+1;
  1780. //DISP_REG_SET_FIELD(cmdq, DSI_VM_CMD_CON_FLD_LONG_PKT, DSI_REG_BASE[d] + DISP_REG_DSI_VM_CMD_CON, 1);
  1781. //DISP_REG_SET_FIELD(cmdq, DSI_VM_CMD_CON_FLD_CM_DATA_ID, DSI_REG_BASE[d] + DISP_REG_DSI_VM_CMD_CON, DSI_DCS_LONG_PACKET_ID);
  1782. //DISP_REG_SET_FIELD(cmdq, DSI_VM_CMD_CON_FLD_CM_DATA_0, DSI_REG_BASE[d] + DISP_REG_DSI_VM_CMD_CON, count+1);
  1783. temp = &vm_cmdq;
  1784. DSI_OUTREG32(cmdq, DSI_REG_BASE[d] + DISP_REG_DSI_VM_CMD_CON, AS_UINT32(temp));
  1785. goto_addr = (UINT32)(&DSI_VM_CMD_REG[d]->data[0].byte0);
  1786. mask_para = (0xFF<<((goto_addr&0x3)*8));
  1787. set_para = (cmd<<((goto_addr&0x3)*8));
  1788. DSI_MASKREG32(cmdq, goto_addr&(~0x3), mask_para, set_para);
  1789. for (i=0; i<count; i++) {
  1790. goto_addr = (UINT32)(&DSI_VM_CMD_REG[d]->data[0].byte1) + i;
  1791. mask_para = (0xFF<<((goto_addr&0x3)*8));
  1792. set_para = (para_list[i]<<((goto_addr&0x3)*8));
  1793. DSI_MASKREG32(cmdq, goto_addr&(~0x3), mask_para, set_para);
  1794. }
  1795. } else {
  1796. vm_cmdq.LONG_PKT = 0;
  1797. vm_cmdq.CM_DATA_0 = cmd;
  1798. if (count) {
  1799. vm_cmdq.CM_DATA_ID = DSI_DCS_SHORT_PACKET_ID_1;
  1800. vm_cmdq.CM_DATA_1 = para_list[0];
  1801. } else {
  1802. vm_cmdq.CM_DATA_ID = DSI_DCS_SHORT_PACKET_ID_0;
  1803. vm_cmdq.CM_DATA_1 = 0;
  1804. }
  1805. temp = &vm_cmdq;
  1806. DSI_OUTREG32(cmdq, DSI_REG_BASE[d] + DISP_REG_DSI_VM_CMD_CON, AS_UINT32(temp));
  1807. }
  1808. } else {
  1809. if (count > 1) {
  1810. vm_cmdq.LONG_PKT = 1;
  1811. vm_cmdq.CM_DATA_ID = DSI_GERNERIC_LONG_PACKET_ID;
  1812. vm_cmdq.CM_DATA_0 = count+1;
  1813. temp = &vm_cmdq;
  1814. DSI_OUTREG32(cmdq, DSI_REG_BASE[d] + DISP_REG_DSI_VM_CMD_CON, AS_UINT32(temp));
  1815. goto_addr = (UINT32)(&DSI_VM_CMD_REG[d]->data[0].byte0);
  1816. mask_para = (0xFF<<((goto_addr&0x3)*8));
  1817. set_para = (cmd<<((goto_addr&0x3)*8));
  1818. DSI_MASKREG32(cmdq, goto_addr&(~0x3), mask_para, set_para);
  1819. for (i=0; i<count; i++) {
  1820. goto_addr = (UINT32)(&DSI_VM_CMD_REG[d]->data[0].byte1) + i;
  1821. mask_para = (0xFF<<((goto_addr&0x3)*8));
  1822. set_para = (para_list[i]<<((goto_addr&0x3)*8));
  1823. DSI_MASKREG32(cmdq, goto_addr&(~0x3), mask_para, set_para);
  1824. }
  1825. } else {
  1826. vm_cmdq.LONG_PKT = 0;
  1827. vm_cmdq.CM_DATA_0 = cmd;
  1828. if (count) {
  1829. vm_cmdq.CM_DATA_ID = DSI_GERNERIC_SHORT_PACKET_ID_2;
  1830. vm_cmdq.CM_DATA_1 = para_list[0];
  1831. } else {
  1832. vm_cmdq.CM_DATA_ID = DSI_GERNERIC_SHORT_PACKET_ID_1;
  1833. vm_cmdq.CM_DATA_1 = 0;
  1834. }
  1835. temp = &vm_cmdq;
  1836. DSI_OUTREG32(cmdq, DSI_REG_BASE[d] + DISP_REG_DSI_VM_CMD_CON, AS_UINT32(temp));
  1837. }
  1838. }
  1839. } else {
  1840. #ifdef ENABLE_DSI_ERROR_REPORT
  1841. if ((para_list[0] & 1)) {
  1842. memset(_dsi_cmd_queue, 0, sizeof(_dsi_cmd_queue));
  1843. memcpy(_dsi_cmd_queue, para_list, count);
  1844. _dsi_cmd_queue[(count+3)/4*4] = 0x4;
  1845. count = (count+3)/4*4 + 4;
  1846. para_list = (unsigned char*) _dsi_cmd_queue;
  1847. } else {
  1848. para_list[0] |= 4;
  1849. }
  1850. #endif
  1851. DSI_WaitForNotBusy(module, cmdq);
  1852. if (cmd < 0xB0) {
  1853. if (count > 1) {
  1854. t2.CONFG = 2;
  1855. t2.Data_ID = DSI_DCS_LONG_PACKET_ID;
  1856. t2.WC16 = count+1;
  1857. temp=&t2;
  1858. DSI_OUTREG32(cmdq, &DSI_CMDQ_REG[d]->data[0], AS_UINT32(temp));
  1859. goto_addr = (UINT32)(&DSI_CMDQ_REG[d]->data[1].byte0);
  1860. mask_para = (0xFF<<((goto_addr&0x3)*8));
  1861. set_para = (cmd<<((goto_addr&0x3)*8));
  1862. DSI_MASKREG32(cmdq, goto_addr&(~0x3), mask_para, set_para);
  1863. for (i=0; i<count; i++) {
  1864. goto_addr = (UINT32)(&DSI_CMDQ_REG[d]->data[1].byte1) + i;
  1865. mask_para = (0xFF<<((goto_addr&0x3)*8));
  1866. set_para = (para_list[i]<<((goto_addr&0x3)*8));
  1867. DSI_MASKREG32(cmdq, goto_addr&(~0x3), mask_para, set_para);
  1868. }
  1869. DSI_OUTREG32(cmdq, DSI_REG_BASE[d] + DISP_REG_DSI_CMDQ_CON, 2+(count)/4);
  1870. } else {
  1871. t0.CONFG = 0;
  1872. t0.Data0 = cmd;
  1873. if (count) {
  1874. t0.Data_ID = DSI_DCS_SHORT_PACKET_ID_1;
  1875. t0.Data1 = para_list[0];
  1876. } else {
  1877. t0.Data_ID = DSI_DCS_SHORT_PACKET_ID_0;
  1878. t0.Data1 = 0;
  1879. }
  1880. temp=&t0;
  1881. DSI_OUTREG32(cmdq, &DSI_CMDQ_REG[d]->data[0], AS_UINT32(temp));
  1882. DSI_OUTREG32(cmdq, DSI_REG_BASE[d] + DISP_REG_DSI_CMDQ_CON, 1);
  1883. }
  1884. } else {
  1885. if (count > 1) {
  1886. t2.CONFG = 2;
  1887. t2.Data_ID = DSI_GERNERIC_LONG_PACKET_ID;
  1888. t2.WC16 = count+1;
  1889. temp=&t2;
  1890. DSI_OUTREG32(cmdq, &DSI_CMDQ_REG[d]->data[0], AS_UINT32(temp));
  1891. goto_addr = (UINT32)(&DSI_CMDQ_REG[d]->data[1].byte0);
  1892. mask_para = (0xFF<<((goto_addr&0x3)*8));
  1893. set_para = (cmd<<((goto_addr&0x3)*8));
  1894. DSI_MASKREG32(cmdq, goto_addr&(~0x3), mask_para, set_para);
  1895. for (i=0; i<count; i++) {
  1896. goto_addr = (UINT32)(&DSI_CMDQ_REG[d]->data[1].byte1) + i;
  1897. mask_para = (0xFF<<((goto_addr&0x3)*8));
  1898. set_para = (para_list[i]<<((goto_addr&0x3)*8));
  1899. DSI_MASKREG32(cmdq, goto_addr&(~0x3), mask_para, set_para);
  1900. }
  1901. DSI_OUTREG32(cmdq, DSI_REG_BASE[d] + DISP_REG_DSI_CMDQ_CON, 2+(count)/4);
  1902. } else {
  1903. t0.CONFG = 0;
  1904. t0.Data0 = cmd;
  1905. if (count) {
  1906. t0.Data_ID = DSI_GERNERIC_SHORT_PACKET_ID_2;
  1907. t0.Data1 = para_list[0];
  1908. } else {
  1909. t0.Data_ID = DSI_GERNERIC_SHORT_PACKET_ID_1;
  1910. t0.Data1 = 0;
  1911. }
  1912. temp=&t0;
  1913. DSI_OUTREG32(cmdq, &DSI_CMDQ_REG[d]->data[0], AS_UINT32(temp));
  1914. DSI_OUTREG32(cmdq, DSI_REG_BASE[d] + DISP_REG_DSI_CMDQ_CON, 1);
  1915. }
  1916. }
  1917. }
  1918. }
  1919. if (((module != DISP_MODULE_DSI1) && (0 != DSI_REG[0]->DSI_MODE_CTRL.MODE))
  1920. || ((module == DISP_MODULE_DSI1) && (0 != DSI_REG[1]->DSI_MODE_CTRL.MODE))) { /* not in cmd mode */
  1921. /* start DSI VM CMDQ */
  1922. if (force_update)
  1923. DSI_EnableVM_CMD(module, cmdq);
  1924. } else {
  1925. if (force_update) {
  1926. DSI_Start(module, cmdq);
  1927. DSI_WaitForNotBusy(module, cmdq);
  1928. }
  1929. }
  1930. }
  1931. void DSI_set_cmdq_V3(DISP_MODULE_ENUM module, void* cmdq, LCM_setting_table_V3 *para_tbl, unsigned int size, unsigned char force_update)
  1932. {
  1933. UINT32 i;
  1934. //UINT32 layer, layer_state, lane_num;
  1935. unsigned long goto_addr, mask_para, set_para;
  1936. //UINT32 fbPhysAddr, fbVirAddr;
  1937. struct DSI_T0_INS t0;
  1938. //struct DSI_T1_INS t1;
  1939. struct DSI_T2_INS t2;
  1940. void* temp;
  1941. UINT32 index = 0;
  1942. unsigned char data_id, cmd, count;
  1943. unsigned char *para_list;
  1944. UINT32 d;
  1945. for (d = DSI_MODULE_BEGIN(module); d <= DSI_MODULE_END(module); d++) {
  1946. do {
  1947. data_id = para_tbl[index].id;
  1948. cmd = para_tbl[index].cmd;
  1949. count = para_tbl[index].count;
  1950. para_list = para_tbl[index].para_list;
  1951. if (data_id == REGFLAG_ESCAPE_ID && cmd == REGFLAG_DELAY_MS_V3) {
  1952. udelay(1000*count);
  1953. dprintf(INFO, "DISP/DSI " "DSI_set_cmdq_V3[%d]. Delay %d (ms) \n", index, count);
  1954. continue;
  1955. }
  1956. if (0 != DSI_REG[d]->DSI_MODE_CTRL.MODE) {
  1957. //not in cmd mode
  1958. struct DSI_VM_CMD_CON_REG vm_cmdq;
  1959. temp = &vm_cmdq;
  1960. OUTREG32(temp, AS_UINT32(DSI_REG_BASE[d] + DISP_REG_DSI_VM_CMD_CON));
  1961. dprintf(INFO, "set cmdq in VDO mode\n");
  1962. if (count > 1) {
  1963. vm_cmdq.LONG_PKT = 1;
  1964. vm_cmdq.CM_DATA_ID = data_id;
  1965. vm_cmdq.CM_DATA_0 = count+1;
  1966. temp = &vm_cmdq;
  1967. OUTREG32(DSI_REG_BASE[d] + DISP_REG_DSI_VM_CMD_CON, AS_UINT32(temp));
  1968. goto_addr = (unsigned long)(&DSI_VM_CMD_REG[d]->data[0].byte0);
  1969. mask_para = (0xFF<<((goto_addr&0x3)*8));
  1970. set_para = (cmd<<((goto_addr&0x3)*8));
  1971. MASKREG32(goto_addr&(~0x3), mask_para, set_para);
  1972. for (i=0; i<count; i++) {
  1973. goto_addr = (unsigned long)(&DSI_VM_CMD_REG[d]->data[0].byte1) + i;
  1974. mask_para = (0xFF<<((goto_addr&0x3)*8));
  1975. set_para = (para_list[i]<<((goto_addr&0x3)*8));
  1976. MASKREG32(goto_addr&(~0x3), mask_para, set_para);
  1977. }
  1978. } else {
  1979. vm_cmdq.LONG_PKT = 0;
  1980. vm_cmdq.CM_DATA_0 = cmd;
  1981. if (count) {
  1982. vm_cmdq.CM_DATA_ID = data_id;
  1983. vm_cmdq.CM_DATA_1 = para_list[0];
  1984. } else {
  1985. vm_cmdq.CM_DATA_ID = data_id;
  1986. vm_cmdq.CM_DATA_1 = 0;
  1987. }
  1988. temp = &vm_cmdq;
  1989. OUTREG32(DSI_REG_BASE[d] + DISP_REG_DSI_VM_CMD_CON, AS_UINT32(temp));
  1990. }
  1991. if (force_update) {
  1992. DSI_EnableVM_CMD(module, cmdq);
  1993. }
  1994. } else {
  1995. DSI_WaitForNotBusy(module, cmdq);
  1996. OUTREG32(&DSI_CMDQ_REG[d]->data[0], 0);
  1997. if (count > 1) {
  1998. t2.CONFG = 2;
  1999. t2.Data_ID = data_id;
  2000. t2.WC16 = count+1;
  2001. temp = &t2;
  2002. //DSI_OUTREG32(cmdq,&DSI_CMDQ_REG[d]->data[0].byte0, AS_UINT32(temp));
  2003. DSI_OUTREG32(cmdq,&DSI_CMDQ_REG[d]->data[0], AS_UINT32(temp));
  2004. goto_addr = (unsigned long)(&DSI_CMDQ_REG[d]->data[1].byte0);
  2005. mask_para = (0xFFu<<((goto_addr&0x3u)*8));
  2006. set_para = (cmd<<((goto_addr&0x3u)*8));
  2007. DSI_MASKREG32(cmdq,goto_addr&(~((unsigned long)0x3u)), mask_para, set_para);
  2008. for (i=0; i<count; i++) {
  2009. goto_addr = (unsigned long)(&DSI_CMDQ_REG[d]->data[1].byte1) + i;
  2010. mask_para = (0xFFu<<((goto_addr&0x3u)*8));
  2011. set_para = (para_list[i]<<((goto_addr&0x3u)*8));
  2012. DSI_MASKREG32(cmdq, goto_addr&(~((unsigned long)0x3u)), mask_para, set_para);
  2013. }
  2014. DSI_OUTREG32(cmdq, DSI_REG_BASE[d] + DISP_REG_DSI_CMDQ_CON, 2+(count)/4);
  2015. } else {
  2016. t0.CONFG = 0;
  2017. t0.Data0 = cmd;
  2018. if (count) {
  2019. t0.Data_ID = data_id;
  2020. t0.Data1 = para_list[0];
  2021. } else {
  2022. t0.Data_ID = data_id;
  2023. t0.Data1 = 0;
  2024. }
  2025. temp = &t0;
  2026. DSI_OUTREG32(cmdq, &DSI_CMDQ_REG[d]->data[0], AS_UINT32(temp));
  2027. DSI_OUTREG32(cmdq, DSI_REG_BASE[d] + DISP_REG_DSI_CMDQ_CON, 1);
  2028. }
  2029. if (force_update) {
  2030. DSI_Start(module, cmdq);
  2031. DSI_WaitForNotBusy(module, cmdq);
  2032. }
  2033. }
  2034. } while (++index < size);
  2035. }
  2036. }
  2037. void DSI_set_cmdq(DISP_MODULE_ENUM module, void* cmdq, unsigned int *pdata, unsigned int queue_size, unsigned char force_update)
  2038. {
  2039. DISPFUNC();
  2040. unsigned int j = 0;
  2041. int i = 0;
  2042. char *module_name = ddp_get_module_name(module);
  2043. DISPCHECK("DSI_set_cmdq, module=%s, cmdq=0x%p\n", module_name, cmdq);
  2044. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  2045. if (0 != DSI_REG[i]->DSI_MODE_CTRL.MODE) {
  2046. #if 0
  2047. //not in cmd mode
  2048. DSI_VM_CMD_CON_REG vm_cmdq;
  2049. OUTREG32(&vm_cmdq, AS_UINT32(&DSI_REG[i]->DSI_VM_CMD_CON));
  2050. dprintf(INFO,"set cmdq in VDO mode\n");
  2051. if (queue_size > 1) {
  2052. //long packet
  2053. vm_cmdq.LONG_PKT = 1;
  2054. vm_cmdq.CM_DATA_ID = ((pdata[0] >> 8) & 0xFF);
  2055. vm_cmdq.CM_DATA_0 = ((pdata[0] >> 16) & 0xFF);
  2056. vm_cmdq.CM_DATA_1 = 0;
  2057. OUTREG32(&DSI_REG[i]->DSI_VM_CMD_CON, AS_UINT32(&vm_cmdq));
  2058. for (j=0; j<queue_size-1; j++) {
  2059. OUTREG32(&DSI_VM_CMD_REG->data[j], AS_UINT32((pdata+j+1)));
  2060. }
  2061. } else {
  2062. vm_cmdq.LONG_PKT = 0;
  2063. vm_cmdq.CM_DATA_ID = ((pdata[0] >> 8) & 0xFF);
  2064. vm_cmdq.CM_DATA_0 = ((pdata[0] >> 16) & 0xFF);
  2065. vm_cmdq.CM_DATA_1 = ((pdata[0] >> 24) & 0xFF);
  2066. OUTREG32(&DSI_REG->DSI_VM_CMD_CON, AS_UINT32(&vm_cmdq));
  2067. }
  2068. #endif
  2069. } else {
  2070. ASSERT(queue_size<=32);
  2071. DSI_WaitForNotBusy(module, cmdq);
  2072. #ifdef ENABLE_DSI_ERROR_REPORT
  2073. if ((pdata[0] & 1)) {
  2074. memcpy(_dsi_cmd_queue, pdata, queue_size*4);
  2075. _dsi_cmd_queue[queue_size++] = 0x4;
  2076. pdata = (unsigned int*) _dsi_cmd_queue;
  2077. } else {
  2078. pdata[0] |= 4;
  2079. }
  2080. #endif
  2081. for (j=0; j<queue_size; j++) {
  2082. DSI_OUTREG32(cmdq, &DSI_CMDQ_REG[i]->data[j], AS_UINT32((pdata+j)));
  2083. }
  2084. DSI_OUTREG32(cmdq, DSI_REG_BASE[i] + DISP_REG_DSI_CMDQ_CON, queue_size);
  2085. for (j = 0; j < queue_size; j++)
  2086. dprintf(INFO,"[DISP] - kernel - DSI_set_cmdq. DSI_CMDQ+%04x : 0x%08x\n", j*4, INREG32(DSI0_BASE + 0x200 + j*4));
  2087. }
  2088. }
  2089. if ((module != DISP_MODULE_DSI1 && 0 != DSI_REG[0]->DSI_MODE_CTRL.MODE)
  2090. || (module == DISP_MODULE_DSI1 && 0 != DSI_REG[1]->DSI_MODE_CTRL.MODE)) { /* not in cmd mode */
  2091. #if 0
  2092. //start DSI VM CMDQ
  2093. if (force_update) {
  2094. MMProfileLogEx(MTKFB_MMP_Events.DSICmd, MMProfileFlagStart, *(unsigned int*)(&DSI_VM_CMD_REG->data[0]), *(unsigned int*)(&DSI_VM_CMD_REG->data[1]));
  2095. DSI_EnableVM_CMD();
  2096. //must wait VM CMD done?
  2097. MMProfileLogEx(MTKFB_MMP_Events.DSICmd, MMProfileFlagEnd, *(unsigned int*)(&DSI_VM_CMD_REG->data[2]), *(unsigned int*)(&DSI_VM_CMD_REG->data[3]));
  2098. }
  2099. #endif
  2100. } else {
  2101. if (force_update) {
  2102. DSI_Start(module, cmdq);
  2103. DSI_WaitForNotBusy(module, cmdq);
  2104. }
  2105. }
  2106. }
  2107. void _copy_dsi_params(LCM_DSI_PARAMS *src, LCM_DSI_PARAMS *dst)
  2108. {
  2109. memcpy((LCM_DSI_PARAMS*)dst, (LCM_DSI_PARAMS*)src, sizeof(LCM_DSI_PARAMS));
  2110. }
  2111. int ddp_dsi_init(DISP_MODULE_ENUM module, void* cmdq)
  2112. {
  2113. enum DSI_STATUS ret = DSI_STATUS_OK;
  2114. int i = 0;
  2115. DISPFUNC();
  2116. //DSI_OUTREG32(cmdq, 0x10000048, 0x80000000);
  2117. ddp_enable_module_clock(module);
  2118. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  2119. memset(&_dsi_context[i], 0, sizeof(_dsi_context[i]));
  2120. DISPCHECK("dsi%d init finished\n", i);
  2121. }
  2122. return ret;
  2123. }
  2124. int ddp_dsi_deinit(DISP_MODULE_ENUM module, void *cmdq)
  2125. {
  2126. int i = 0;
  2127. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  2128. memset(&_dsi_context[i], 0, sizeof(_dsi_context[i]));
  2129. DISPCHECK("dsi%d init finished\n", i);
  2130. }
  2131. DSI_SetMode(module, NULL, CMD_MODE);
  2132. DSI_clk_HS_mode(module, NULL, FALSE);
  2133. DSI_enter_ULPS(module);
  2134. ddp_disable_module_clock(module);
  2135. DSI_PHY_clk_switch(module, NULL, false);
  2136. return 0;
  2137. }
  2138. void _dump_dsi_params(LCM_DSI_PARAMS *dsi_config)
  2139. {
  2140. //int i = 0;
  2141. if (dsi_config) {
  2142. switch (dsi_config->mode) {
  2143. case CMD_MODE:
  2144. DISPCHECK("[DDPDSI] DSI Mode: CMD_MODE\n");
  2145. break;
  2146. case SYNC_PULSE_VDO_MODE:
  2147. DISPCHECK("[DDPDSI] DSI Mode: SYNC_PULSE_VDO_MODE\n");
  2148. break;
  2149. case SYNC_EVENT_VDO_MODE:
  2150. DISPCHECK("[DDPDSI] DSI Mode: SYNC_EVENT_VDO_MODE\n");
  2151. break;
  2152. case BURST_VDO_MODE:
  2153. DISPCHECK("[DDPDSI] DSI Mode: BURST_VDO_MODE\n");
  2154. break;
  2155. default:
  2156. DISPCHECK("[DDPDSI] DSI Mode: Unknown\n");
  2157. break;
  2158. }
  2159. DISPCHECK("[DDPDSI] LANE_NUM: %d,data_format:(%d,%d,%d,%d)\n",dsi_config->LANE_NUM,
  2160. dsi_config->data_format.color_order, dsi_config->data_format.format,
  2161. dsi_config->data_format.padding, dsi_config->data_format.trans_seq);
  2162. DISPCHECK("[DDPDSI] vact: %d, vbp: %d, vfp: %d, vact_line: %d, hact: %d, hbp: %d, hfp: %d, hblank: %d\n",
  2163. dsi_config->vertical_sync_active, dsi_config->vertical_backporch,dsi_config->vertical_frontporch,
  2164. dsi_config->vertical_active_line,dsi_config->horizontal_sync_active,dsi_config->horizontal_backporch,
  2165. dsi_config->horizontal_frontporch,dsi_config->horizontal_blanking_pixel);
  2166. DISPCHECK("[DDPDSI] pll_select: %d, pll_div1: %d, pll_div2: %d, fbk_div: %d,fbk_sel: %d, rg_bir: %d\n",dsi_config->pll_select,dsi_config->pll_div1,dsi_config->pll_div2,dsi_config->fbk_div,dsi_config->fbk_sel,dsi_config->rg_bir);
  2167. DISPCHECK("[DDPDSI] rg_bic: %d, rg_bp: %d, PLL_CLOCK: %d, dsi_clock: %d, ssc_range: %d, ssc_disable: %d, compatibility_for_nvk: %d, cont_clock: %d\n", dsi_config->rg_bic, dsi_config->rg_bp,dsi_config->PLL_CLOCK,dsi_config->dsi_clock,dsi_config->ssc_range,dsi_config->ssc_disable,dsi_config->compatibility_for_nvk,dsi_config->cont_clock);
  2168. DISPCHECK("[DDPDSI] lcm_ext_te_enable: %d, noncont_clock: %d, noncont_clock_period: %d\n", dsi_config->lcm_ext_te_enable,dsi_config->noncont_clock,dsi_config->noncont_clock_period);
  2169. }
  2170. return;
  2171. }
  2172. void DSI_Set_LFR(DISP_MODULE_ENUM module, cmdqRecHandle cmdq,unsigned int mode,
  2173. unsigned int type,unsigned int enable,unsigned int skip_num)
  2174. {
  2175. //LFR_MODE 0 disable,1 static mode ,2 dynamic mode 3,both
  2176. unsigned int i=0;
  2177. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  2178. //DSI_OUTREGBIT(cmdq, struct DSI_LFR_CON_REG,DSI_REG[i]->DSI_LFR_CON,LFR_MODE,mode);
  2179. //DSI_OUTREGBIT(cmdq, struct DSI_LFR_CON_REG,DSI_REG[i]->DSI_LFR_CON,LFR_TYPE,type);
  2180. //DSI_OUTREGBIT(cmdq, struct DSI_LFR_CON_REG,DSI_REG[i]->DSI_LFR_CON,LFR_EN,enable);
  2181. //DSI_OUTREGBIT(cmdq, struct DSI_LFR_CON_REG,DSI_REG[i]->DSI_LFR_CON,LFR_UPDATE,1);
  2182. //DSI_OUTREGBIT(cmdq, struct DSI_LFR_CON_REG,DSI_REG[i]->DSI_LFR_CON,LFR_VSE_DIS,0);
  2183. //DSI_OUTREGBIT(cmdq, struct DSI_LFR_CON_REG,DSI_REG[i]->DSI_LFR_CON,LFR_SKIP_NUM,skip_num);
  2184. DISP_REG_SET_FIELD(cmdq, DSI_LFR_CON_FLD_DSI_LFR_MODE, DSI_REG_BASE[i] + DISP_REG_DSI_LFR_CON, mode);
  2185. DISP_REG_SET_FIELD(cmdq, DSI_LFR_CON_FLD_DSI_LFR_TYPE, DSI_REG_BASE[i] + DISP_REG_DSI_LFR_CON, type);
  2186. DISP_REG_SET_FIELD(cmdq, DSI_LFR_CON_FLD_DSI_LFR_EN, DSI_REG_BASE[i] + DISP_REG_DSI_LFR_CON, enable);
  2187. DISP_REG_SET_FIELD(cmdq, DSI_LFR_CON_FLD_DSI_LFR_UPDATE, DSI_REG_BASE[i] + DISP_REG_DSI_LFR_CON, 1);
  2188. DISP_REG_SET_FIELD(cmdq, DSI_LFR_CON_FLD_DSI_LFR_VSE_DIS, DSI_REG_BASE[i] + DISP_REG_DSI_LFR_CON, 0);
  2189. DISP_REG_SET_FIELD(cmdq, DSI_LFR_CON_FLD_DSI_LFR_SKIP_NUM, DSI_REG_BASE[i] + DISP_REG_DSI_LFR_CON, skip_num);
  2190. }
  2191. }
  2192. void DSI_LFR_UPDATE(DISP_MODULE_ENUM module,cmdqRecHandle cmdq)
  2193. {
  2194. unsigned int i=0;
  2195. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  2196. //DSI_OUTREGBIT(cmdq, struct DSI_LFR_CON_REG,DSI_REG[i]->DSI_LFR_CON,LFR_UPDATE,0);
  2197. //DSI_OUTREGBIT(cmdq, struct DSI_LFR_CON_REG,DSI_REG[i]->DSI_LFR_CON,LFR_UPDATE,1);
  2198. DISP_REG_SET_FIELD(cmdq, DSI_LFR_CON_FLD_DSI_LFR_UPDATE, DSI_REG_BASE[i] + DISP_REG_DSI_LFR_CON, 0);
  2199. DISP_REG_SET_FIELD(cmdq, DSI_LFR_CON_FLD_DSI_LFR_UPDATE, DSI_REG_BASE[i] + DISP_REG_DSI_LFR_CON, 1);
  2200. }
  2201. }
  2202. void DSI_Set_VM_CMD(DISP_MODULE_ENUM module, cmdqRecHandle cmdq)
  2203. {
  2204. if (module == DISP_MODULE_DSI0 || module == DISP_MODULE_DSIDUAL) {
  2205. //DSI_OUTREGBIT(cmdq, struct DSI_VM_CMD_CON_REG,DSI_REG[0]->DSI_VM_CMD_CON,TS_VFP_EN,1);
  2206. //DSI_OUTREGBIT(cmdq, struct DSI_VM_CMD_CON_REG,DSI_REG[0]->DSI_VM_CMD_CON,VM_CMD_EN,1);
  2207. DISP_REG_SET_FIELD(cmdq, DSI_VM_CMD_CON_FLD_TS_VFP_EN, DSI_REG_BASE[0] + DISP_REG_DSI_VM_CMD_CON, 1);
  2208. DISP_REG_SET_FIELD(cmdq, DSI_VM_CMD_CON_FLD_VM_CMD_EN, DSI_REG_BASE[0] + DISP_REG_DSI_VM_CMD_CON, 1);
  2209. }
  2210. return;
  2211. }
  2212. int ddp_dsi_config(DISP_MODULE_ENUM module, disp_ddp_path_config *config, void *cmdq_handle)
  2213. {
  2214. int i = 0;
  2215. static int cnt = 0;
  2216. DISPFUNC();
  2217. if (!config->dst_dirty)
  2218. return 0;
  2219. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  2220. _copy_dsi_params(&(config->dsi_config), &(_dsi_context[i].dsi_params));
  2221. _dump_dsi_params(&(_dsi_context[i].dsi_params));
  2222. }
  2223. DSI_PHY_clk_setting(module, NULL, &(config->dsi_config));
  2224. /* the first power up, don't need to WakeUp !! */
  2225. if (cnt++)
  2226. DSI_exit_ULPS(module);
  2227. DSI_TXRX_Control(module, NULL, &(config->dsi_config));
  2228. DSI_PS_Control(module, NULL, &(config->dsi_config), config->dst_w, config->dst_h);
  2229. #ifndef MACH_FPGA
  2230. DSI_PHY_TIMCONFIG(module, NULL, &(config->dsi_config));
  2231. #endif
  2232. if (config->dsi_config.mode != CMD_MODE ||( (config->dsi_config.switch_mode_enable == 1) && (config->dsi_config.switch_mode != CMD_MODE))) {
  2233. DSI_Config_VDO_Timing(module, NULL, &(config->dsi_config));
  2234. DSI_Set_VM_CMD(module, cmdq_handle);
  2235. if (config->dsi_config.mode != CMD_MODE && config->dsi_config.lfr_enable) {
  2236. unsigned int mode=config->dsi_config.lfr_mode;
  2237. unsigned int type=config->dsi_config.lfr_type;
  2238. unsigned int skip_num = config->dsi_config.lfr_skip_num;
  2239. unsigned int enable = config->dsi_config.lfr_enable;
  2240. dprintf(CRITICAL,"lfr en %d mode= %d type=%d,skip_num %d\n",enable,mode,type,skip_num);
  2241. DSI_Set_LFR(module, cmdq_handle,mode,type,enable,skip_num);
  2242. }
  2243. }
  2244. // Enable clk low power per Line ;
  2245. if (config->dsi_config.clk_lp_per_line_enable) {
  2246. DSI_PHY_CLK_LP_PerLine_config(module, NULL, &(config->dsi_config));
  2247. }
  2248. DSI_BackupRegisters(module,cmdq_handle);
  2249. return 0;
  2250. }
  2251. //int ddp_dsi_stop(DISP_MODULE_ENUM module, struct disp_path_config_struct_ex *config, void *cmdq_handle)
  2252. int ddp_dsi_stop(DISP_MODULE_ENUM module, void *cmdq_handle)
  2253. {
  2254. //ths caller should call wait_event_or_idle for frame stop event then.
  2255. if (_dsi_is_video_mode(module)) {
  2256. DSI_SetMode(module, cmdq_handle, CMD_MODE);
  2257. }
  2258. return 0;
  2259. }
  2260. int ddp_dsi_reset(DISP_MODULE_ENUM module, void *cmdq_handle)
  2261. {
  2262. DSI_Reset(module, cmdq_handle);
  2263. return 0;
  2264. }
  2265. int ddp_dsi_power_on(DISP_MODULE_ENUM module, void *cmdq_handle)
  2266. {
  2267. int i = 0;
  2268. int ret = 0;
  2269. if (!s_isDsiPowerOn) {
  2270. if (module == DISP_MODULE_DSI0 || module == DISP_MODULE_DSI1) {
  2271. ddp_enable_module_clock(module);
  2272. if (ret > 0) {
  2273. DISP_LOG_PRINT(ANDROID_LOG_WARN, "DSI", "DSI0 power manager API return FALSE\n");
  2274. }
  2275. }
  2276. s_isDsiPowerOn = TRUE;
  2277. }
  2278. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  2279. if (_dsi_context[i].dsi_params.mode == CMD_MODE) {
  2280. DSI_PHY_clk_switch(module, NULL, true);
  2281. // restore dsi register
  2282. DSI_RestoreRegisters(module, NULL);
  2283. // enable sleep-out mode
  2284. DSI_SleepOut(module, NULL);
  2285. // enter wakeup
  2286. DSI_Wakeup(module, NULL);
  2287. DSI_Reset(module, NULL);
  2288. } else {
  2289. // initialize clock setting
  2290. DSI_PHY_clk_switch(module, NULL, true);
  2291. // restore dsi register
  2292. DSI_RestoreRegisters(module, NULL);
  2293. // enable sleep-out mode
  2294. DSI_SleepOut(module, NULL);
  2295. // enter wakeup
  2296. DSI_Wakeup(module, NULL);
  2297. DSI_clk_HS_mode(module, NULL, false);
  2298. DSI_Reset(module, NULL);
  2299. }
  2300. }
  2301. return DSI_STATUS_OK;
  2302. }
  2303. int ddp_dsi_power_off(DISP_MODULE_ENUM module, void *cmdq_handle)
  2304. {
  2305. int i = 0;
  2306. int ret = 0;
  2307. if (!s_isDsiPowerOn) {
  2308. if (module == DISP_MODULE_DSI0 || module == DISP_MODULE_DSI1) {
  2309. ddp_disable_module_clock(module);
  2310. if (ret > 0) {
  2311. DISP_LOG_PRINT(ANDROID_LOG_WARN, "DSI0", "DSI0 power manager API return FALSE\n");
  2312. }
  2313. }
  2314. s_isDsiPowerOn = TRUE;
  2315. }
  2316. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  2317. if (_dsi_context[i].dsi_params.mode == CMD_MODE) {
  2318. // no need this, we will make dsi is in idle when ddp_dsi_stop() returns
  2319. //DSI_CHECK_RET(DSI_WaitForNotBusy(module, NULL));
  2320. DSI_CHECK_RET(DSI_BackupRegisters(module, NULL));
  2321. // disable HS mode
  2322. DSI_clk_HS_mode(module, NULL, false);
  2323. // enter ULPS mode
  2324. DSI_lane0_ULP_mode(module, NULL,1);
  2325. DSI_clk_ULP_mode(module, NULL, 1);
  2326. // disable mipi pll
  2327. DSI_PHY_clk_switch(module, NULL, false);
  2328. } else {
  2329. // backup dsi register
  2330. // no need this, we will make dsi is in idle when ddp_dsi_stop() returns
  2331. //DSI_CHECK_RET(DSI_WaitForNotBusy());
  2332. DSI_BackupRegisters(module, NULL);
  2333. // disable HS mode
  2334. DSI_clk_HS_mode(module, NULL, false);
  2335. // enter ULPS mode
  2336. DSI_lane0_ULP_mode(module, NULL,1);
  2337. DSI_clk_ULP_mode(module, NULL,1);
  2338. // disable mipi pll
  2339. DSI_PHY_clk_switch(module, NULL, false);
  2340. }
  2341. }
  2342. return DSI_STATUS_OK;
  2343. }
  2344. int ddp_dsi_is_busy(DISP_MODULE_ENUM module)
  2345. {
  2346. int i = 0;
  2347. int busy = 0;
  2348. struct DSI_INT_STATUS_REG status;
  2349. DISPFUNC();
  2350. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  2351. status = DSI_REG[i]->DSI_INTSTA;
  2352. if (status.BUSY)
  2353. busy++;
  2354. }
  2355. return busy;
  2356. }
  2357. int ddp_dsi_is_idle(DISP_MODULE_ENUM module)
  2358. {
  2359. return !ddp_dsi_is_busy(module);
  2360. }
  2361. int ddp_dsi_dump(DISP_MODULE_ENUM module, int level)
  2362. {
  2363. DSI_DumpRegisters(module, level);
  2364. return 0;
  2365. }
  2366. int ddp_dsi_start(DISP_MODULE_ENUM module, void* cmdq)
  2367. {
  2368. int i = 0;
  2369. #ifdef LK_BYPASS_SHADOW_REG
  2370. for (i = DSI_MODULE_BEGIN(module); i <= DSI_MODULE_END(module); i++) {
  2371. //DSI_OUTREGBIT(cmdq, struct DSI_SHADOW_DEBUG_REG, DSI_REG[i]->DSI_SHADOW_DEBUG, BYPASS_SHADOW, 1);
  2372. //DSI_OUTREGBIT(cmdq, struct DSI_SHADOW_DEBUG_REG, DSI_REG[i]->DSI_SHADOW_DEBUG, READ_WORKING, 1);
  2373. DISP_REG_SET_FIELD(cmdq, DSI_SHADOW_DEBUG_FLD_BYPASS_SHADOW, DSI_REG_BASE[i] + DISP_REG_DSI_SHADOW_DEBUG, 1);
  2374. DISP_REG_SET_FIELD(cmdq, DSI_SHADOW_DEBUG_FLD_READ_WORKING, DSI_REG_BASE[i] + DISP_REG_DSI_SHADOW_DEBUG, 1);
  2375. }
  2376. #endif
  2377. if (module == DISP_MODULE_DSIDUAL) {
  2378. //DSI_OUTREGBIT(cmdq, struct DSI_START_REG,DSI_REG[0]->DSI_START,DSI_START,0);
  2379. //DSI_OUTREGBIT(cmdq, struct DSI_START_REG,DSI_REG[1]->DSI_START,DSI_START,0);
  2380. DISP_REG_SET_FIELD(cmdq, DSI_START_FLD_DSI_START, DSI_REG_BASE[0] + DISP_REG_DSI_START, 0);
  2381. DISP_REG_SET_FIELD(cmdq, DSI_START_FLD_DSI_START, DSI_REG_BASE[1] + DISP_REG_DSI_START, 0);
  2382. if (_dsi_context[i].dsi_params.mode != CMD_MODE) {
  2383. //DSI_OUTREGBIT(cmdq, struct DSI_COM_CTRL_REG, DSI_REG[0]->DSI_COM_CTRL, DSI_DUAL_EN, 1);
  2384. //DSI_OUTREGBIT(cmdq, struct DSI_COM_CTRL_REG, DSI_REG[1]->DSI_COM_CTRL, DSI_DUAL_EN, 1);
  2385. DISP_REG_SET_FIELD(cmdq, DSI_COM_CON_FLD_DSI_DUAL_EN, DSI_REG_BASE[0] + DISP_REG_DSI_COM_CON, 1);
  2386. DISP_REG_SET_FIELD(cmdq, DSI_COM_CON_FLD_DSI_DUAL_EN, DSI_REG_BASE[1] + DISP_REG_DSI_COM_CON, 1);
  2387. }
  2388. DSI_SetMode(module, cmdq, _dsi_context[0].dsi_params.mode);
  2389. DSI_clk_HS_mode(module, cmdq, TRUE);
  2390. } else if (module == DISP_MODULE_DSI0 || module == DISP_MODULE_DSI1) {
  2391. DISPFUNC();
  2392. i = DSI_MODULE_BEGIN(module);
  2393. DSI_SetMode(module, cmdq, _dsi_context[i].dsi_params.mode);
  2394. DSI_clk_HS_mode(module, cmdq, TRUE);
  2395. }
  2396. return 0;
  2397. }
  2398. int ddp_dsi_trigger(DISP_MODULE_ENUM module, void* cmdq)
  2399. {
  2400. int i = 0;
  2401. unsigned int data_array[1];
  2402. #if 0
  2403. //dsi pattern
  2404. DSI_BIST_Pattern_Test(module, NULL, 1, 0x00ffff00);
  2405. dprintf(CRITICAL, "make it hang after dsi pattern\n");
  2406. while (1);
  2407. #endif
  2408. i = DSI_MODULE_BEGIN(module);
  2409. if (_dsi_context[i].dsi_params.mode == CMD_MODE) {
  2410. /*test*/
  2411. /* DSI_OUTREG32(cmdq, &DSI_REG[0]->DSI_BIST_PATTERN, 0x00ffff00);
  2412. DSI_OUTREG32(cmdq, &DSI_REG[0]->DSI_BIST_CON, 0x00000040);
  2413. */
  2414. data_array[0] = 0x002c3909;
  2415. DSI_set_cmdq(module, cmdq, data_array, 1, 0);
  2416. if (module == DISP_MODULE_DSIDUAL) {
  2417. /*
  2418. * DSI1 is only used for triggering video data; thus pull up DSI_DUAL_EN,
  2419. * and pull down DSI_DUAL_EN after triggering video data is done.
  2420. */
  2421. //DSI_OUTREGBIT(cmdq, struct DSI_START_REG, DSI_REG[0]->DSI_START, DSI_START, 0);
  2422. //DSI_OUTREGBIT(cmdq, struct DSI_START_REG, DSI_REG[1]->DSI_START, DSI_START, 0);
  2423. //DSI_OUTREGBIT(cmdq, struct DSI_COM_CTRL_REG, DSI_REG[0]->DSI_COM_CTRL, DSI_DUAL_EN, 1);
  2424. //DSI_OUTREGBIT(cmdq, struct DSI_COM_CTRL_REG, DSI_REG[1]->DSI_COM_CTRL, DSI_DUAL_EN, 1);
  2425. DISP_REG_SET_FIELD(cmdq, DSI_START_FLD_DSI_START, DSI_REG_BASE[0] + DISP_REG_DSI_START, 0);
  2426. DISP_REG_SET_FIELD(cmdq, DSI_START_FLD_DSI_START, DSI_REG_BASE[1] + DISP_REG_DSI_START, 0);
  2427. DISP_REG_SET_FIELD(cmdq, DSI_COM_CON_FLD_DSI_DUAL_EN, DSI_REG_BASE[0] + DISP_REG_DSI_COM_CON, 1);
  2428. DISP_REG_SET_FIELD(cmdq, DSI_COM_CON_FLD_DSI_DUAL_EN, DSI_REG_BASE[1] + DISP_REG_DSI_COM_CON, 1);
  2429. }
  2430. }
  2431. DSI_Start(module, cmdq);
  2432. if (module == DISP_MODULE_DSIDUAL && _dsi_context[i].dsi_params.mode == CMD_MODE) {
  2433. /* Reading one reg is only used for delay in order to pull down DSI_DUAL_EN. */
  2434. INREG32(DSI0_BASE + 0xc);
  2435. //DSI_OUTREGBIT(cmdq, struct DSI_COM_CTRL_REG, DSI_REG[0]->DSI_COM_CTRL, DSI_DUAL_EN, 0);
  2436. //DSI_OUTREGBIT(cmdq, struct DSI_COM_CTRL_REG, DSI_REG[1]->DSI_COM_CTRL, DSI_DUAL_EN, 0);
  2437. DISP_REG_SET_FIELD(cmdq, DSI_COM_CON_FLD_DSI_DUAL_EN, DSI_REG_BASE[0] + DISP_REG_DSI_COM_CON, 0);
  2438. DISP_REG_SET_FIELD(cmdq, DSI_COM_CON_FLD_DSI_DUAL_EN, DSI_REG_BASE[1] + DISP_REG_DSI_COM_CON, 0);
  2439. }
  2440. return 0;
  2441. }
  2442. static void lcm_set_reset_pin(UINT32 value)
  2443. {
  2444. int rst_pin;
  2445. #if 0
  2446. OUTREG32(MMSYS_CONFIG_BASE+0x150, value);
  2447. #else
  2448. rst_pin = lcm_util_get_pin("lcm_rst_out0_gpio");
  2449. if (rst_pin < 0)
  2450. return;
  2451. rst_pin |= PIN_ENCRYPT;
  2452. mt_set_gpio_mode(rst_pin, GPIO_MODE_00);
  2453. mt_set_gpio_dir(rst_pin, GPIO_DIR_OUT);
  2454. if(value)
  2455. mt_set_gpio_out(rst_pin, GPIO_OUT_ONE);
  2456. else
  2457. mt_set_gpio_out(rst_pin, GPIO_OUT_ZERO);
  2458. #endif
  2459. }
  2460. static void lcm_udelay(UINT32 us)
  2461. {
  2462. udelay(us);
  2463. }
  2464. static void lcm_mdelay(UINT32 ms)
  2465. {
  2466. mdelay(ms);
  2467. }
  2468. void DSI_set_cmdq_V2_Wrapper_DSI0(unsigned cmd, unsigned char count, unsigned char *para_list, unsigned char force_update)
  2469. {
  2470. DSI_set_cmdq_V2(DISP_MODULE_DSI0, NULL, cmd, count, para_list, force_update);
  2471. }
  2472. void DSI_set_cmdq_V2_Wrapper_DSI1(unsigned cmd, unsigned char count, unsigned char *para_list, unsigned char force_update)
  2473. {
  2474. DSI_set_cmdq_V2(DISP_MODULE_DSI1, NULL, cmd, count, para_list, force_update);
  2475. }
  2476. void DSI_set_cmdq_V11_wrapper_DSI0(void *cmdq, unsigned int *pdata, unsigned int queue_size, unsigned char force_update)
  2477. {
  2478. DSI_set_cmdq(DISP_MODULE_DSI0, cmdq, pdata, queue_size, force_update);
  2479. }
  2480. void DSI_set_cmdq_V11_wrapper_DSI1(void *cmdq, unsigned int *pdata, unsigned int queue_size, unsigned char force_update)
  2481. {
  2482. DSI_set_cmdq(DISP_MODULE_DSI1, cmdq, pdata, queue_size, force_update);
  2483. }
  2484. void DSI_set_cmdq_V2_Wrapper_DSIDual(unsigned cmd, unsigned char count, unsigned char *para_list, unsigned char force_update)
  2485. {
  2486. DSI_set_cmdq_V2(DISP_MODULE_DSIDUAL, NULL, cmd, count, para_list, force_update);
  2487. }
  2488. void DSI_set_cmdq_V2_DSI0(void *cmdq, unsigned cmd, unsigned char count, unsigned char *para_list,
  2489. unsigned char force_update)
  2490. {
  2491. DSI_set_cmdq_V2(DISP_MODULE_DSI0, cmdq, cmd, count, para_list, force_update);
  2492. }
  2493. void DSI_set_cmdq_V2_DSI1(void *cmdq, unsigned cmd, unsigned char count, unsigned char *para_list,
  2494. unsigned char force_update)
  2495. {
  2496. DSI_set_cmdq_V2(DISP_MODULE_DSI1, cmdq, cmd, count, para_list, force_update);
  2497. }
  2498. void DSI_set_cmdq_V2_DSIDual(void *cmdq, unsigned cmd, unsigned char count,
  2499. unsigned char *para_list, unsigned char force_update)
  2500. {
  2501. DSI_set_cmdq_V2(DISP_MODULE_DSIDUAL, cmdq, cmd, count, para_list, force_update);
  2502. }
  2503. void DSI_set_cmdq_V3_Wrapper_DSI0(LCM_setting_table_V3 *para_tbl, unsigned int size, unsigned char force_update)
  2504. {
  2505. DSI_set_cmdq_V3(DISP_MODULE_DSI0, NULL, para_tbl, size, force_update);
  2506. }
  2507. void DSI_set_cmdq_V3_Wrapper_DSI1(LCM_setting_table_V3 *para_tbl, unsigned int size, unsigned char force_update)
  2508. {
  2509. DSI_set_cmdq_V3(DISP_MODULE_DSI1, NULL, para_tbl, size, force_update);
  2510. }
  2511. void DSI_set_cmdq_V3_Wrapper_DSIDual(LCM_setting_table_V3 *para_tbl, unsigned int size, unsigned char force_update)
  2512. {
  2513. DSI_set_cmdq_V3(DISP_MODULE_DSIDUAL, NULL, para_tbl, size, force_update);
  2514. }
  2515. void DSI_set_cmdq_wrapper_DSI0(unsigned int *pdata, unsigned int queue_size, unsigned char force_update)
  2516. {
  2517. DSI_set_cmdq(DISP_MODULE_DSI0, NULL, pdata, queue_size, force_update);
  2518. }
  2519. void DSI_set_cmdq_wrapper_DSI1(unsigned int *pdata, unsigned int queue_size, unsigned char force_update)
  2520. {
  2521. DSI_set_cmdq(DISP_MODULE_DSI1, NULL, pdata, queue_size, force_update);
  2522. }
  2523. void DSI_set_cmdq_wrapper_DSIDual(unsigned int *pdata, unsigned int queue_size, unsigned char force_update)
  2524. {
  2525. DSI_set_cmdq(DISP_MODULE_DSIDUAL, NULL, pdata, queue_size, force_update);
  2526. }
  2527. unsigned int DSI_dcs_read_lcm_reg_v2_wrapper_DSI0(UINT8 cmd, UINT8 *buffer, UINT8 buffer_size)
  2528. {
  2529. return DSI_dcs_read_lcm_reg_v2(DISP_MODULE_DSI0, NULL, cmd, buffer, buffer_size);
  2530. }
  2531. unsigned int DSI_dcs_read_lcm_reg_v2_wrapper_DSI1(UINT8 cmd, UINT8 *buffer, UINT8 buffer_size)
  2532. {
  2533. return DSI_dcs_read_lcm_reg_v2(DISP_MODULE_DSI1, NULL, cmd, buffer, buffer_size);
  2534. }
  2535. unsigned int DSI_dcs_read_lcm_reg_v2_wrapper_DSIDUAL(UINT8 cmd, UINT8 *buffer, UINT8 buffer_size)
  2536. {
  2537. return DSI_dcs_read_lcm_reg_v2(DISP_MODULE_DSIDUAL, NULL, cmd, buffer, buffer_size);
  2538. }
  2539. long lcd_enp_bias_setting(unsigned int value)
  2540. {
  2541. long ret = 0;
  2542. int lcd_enp_pin, lcd_enn_pin;
  2543. #ifdef MACH_FPGA
  2544. DDPMSG("In FPGA stage, no need to control gate power ic by gpio\n");
  2545. #else
  2546. lcd_enp_pin = lcm_util_get_pin("lcd_bias_enp0_gpio");
  2547. lcd_enn_pin = lcm_util_get_pin("lcd_bias_enn0_gpio");
  2548. if (lcd_enp_pin < 0 || lcd_enn_pin < 0)
  2549. return -1;
  2550. lcd_enp_pin |= PIN_ENCRYPT;
  2551. lcd_enn_pin |= PIN_ENCRYPT;
  2552. if (value) { /* power on gate power ic */
  2553. mt_set_gpio_mode(lcd_enp_pin, GPIO_MODE_00);
  2554. mt_set_gpio_dir(lcd_enp_pin, GPIO_DIR_OUT);
  2555. mt_set_gpio_out(lcd_enp_pin, GPIO_OUT_ONE);
  2556. lcm_mdelay(2);
  2557. mt_set_gpio_mode(lcd_enn_pin, GPIO_MODE_00);
  2558. mt_set_gpio_dir(lcd_enn_pin, GPIO_DIR_OUT);
  2559. mt_set_gpio_out(lcd_enn_pin, GPIO_OUT_ONE);
  2560. } else { /* power off gate power ic */
  2561. mt_set_gpio_mode(lcd_enn_pin, GPIO_MODE_00);
  2562. mt_set_gpio_dir(lcd_enn_pin, GPIO_DIR_OUT);
  2563. mt_set_gpio_out(lcd_enn_pin, GPIO_OUT_ZERO);
  2564. lcm_mdelay(1);
  2565. mt_set_gpio_mode(lcd_enp_pin, GPIO_MODE_00);
  2566. mt_set_gpio_dir(lcd_enp_pin, GPIO_DIR_OUT);
  2567. mt_set_gpio_out(lcd_enp_pin, GPIO_OUT_ZERO);
  2568. }
  2569. #endif
  2570. return ret;
  2571. }
  2572. int ddp_dsi_set_lcm_utils(DISP_MODULE_ENUM module, LCM_DRIVER *lcm_drv)
  2573. {
  2574. LCM_UTIL_FUNCS *utils = NULL;
  2575. if (lcm_drv == NULL) {
  2576. DISPERR("lcm_drv is null\n");
  2577. return -1;
  2578. }
  2579. if (module == DISP_MODULE_DSI0) {
  2580. utils = (LCM_UTIL_FUNCS *)&lcm_utils_dsi0;
  2581. } else if (module == DISP_MODULE_DSI1) {
  2582. utils = (LCM_UTIL_FUNCS *)&lcm_utils_dsi1;
  2583. } else if (module == DISP_MODULE_DSIDUAL) {
  2584. utils = (LCM_UTIL_FUNCS *)&lcm_utils_dsidual;
  2585. } else {
  2586. DISPERR("wrong module: %d\n", module);
  2587. return -1;
  2588. }
  2589. utils->set_reset_pin = lcm_set_reset_pin;
  2590. utils->udelay = lcm_udelay;
  2591. utils->mdelay = lcm_mdelay;
  2592. if (module == DISP_MODULE_DSI0) {
  2593. utils->dsi_set_cmdq = DSI_set_cmdq_wrapper_DSI0;
  2594. utils->dsi_set_cmdq_V2 = DSI_set_cmdq_V2_Wrapper_DSI0;
  2595. utils->dsi_set_cmdq_V3 = DSI_set_cmdq_V3_Wrapper_DSI0;
  2596. utils->dsi_dcs_read_lcm_reg_v2 = DSI_dcs_read_lcm_reg_v2_wrapper_DSI0;
  2597. utils->dsi_set_cmdq_V22 = DSI_set_cmdq_V2_DSI0;
  2598. utils->dsi_set_cmdq_V11 = DSI_set_cmdq_V11_wrapper_DSI0;
  2599. } else if (module == DISP_MODULE_DSI1) {
  2600. utils->dsi_set_cmdq = DSI_set_cmdq_wrapper_DSI1;
  2601. utils->dsi_set_cmdq_V2 = DSI_set_cmdq_V2_Wrapper_DSI1;
  2602. utils->dsi_set_cmdq_V3 = DSI_set_cmdq_V3_Wrapper_DSI1;
  2603. utils->dsi_dcs_read_lcm_reg_v2 = DSI_dcs_read_lcm_reg_v2_wrapper_DSI1;
  2604. utils->dsi_set_cmdq_V22 = DSI_set_cmdq_V2_DSI1;
  2605. utils->dsi_set_cmdq_V11 = DSI_set_cmdq_V11_wrapper_DSI1;
  2606. } else if (module == DISP_MODULE_DSIDUAL) {
  2607. // TODO: Ugly workaround, hope we can found better resolution
  2608. LCM_PARAMS lcm_param;
  2609. lcm_drv->get_params(&lcm_param);
  2610. if (lcm_param.lcm_cmd_if == LCM_INTERFACE_DSI0) {
  2611. utils->dsi_set_cmdq = DSI_set_cmdq_wrapper_DSI0;
  2612. utils->dsi_set_cmdq_V2 = DSI_set_cmdq_V2_Wrapper_DSI0;
  2613. utils->dsi_set_cmdq_V3 = DSI_set_cmdq_V3_Wrapper_DSI0;
  2614. utils->dsi_dcs_read_lcm_reg_v2 = DSI_dcs_read_lcm_reg_v2_wrapper_DSI0;
  2615. } else if (lcm_param.lcm_cmd_if == LCM_INTERFACE_DSI1) {
  2616. utils->dsi_set_cmdq = DSI_set_cmdq_wrapper_DSI1;
  2617. utils->dsi_set_cmdq_V2 = DSI_set_cmdq_V2_Wrapper_DSI1;
  2618. utils->dsi_set_cmdq_V3 = DSI_set_cmdq_V3_Wrapper_DSI1;
  2619. utils->dsi_dcs_read_lcm_reg_v2 = DSI_dcs_read_lcm_reg_v2_wrapper_DSI1;
  2620. } else {
  2621. utils->dsi_set_cmdq = DSI_set_cmdq_wrapper_DSIDual;
  2622. utils->dsi_set_cmdq_V2 = DSI_set_cmdq_V2_Wrapper_DSIDual;
  2623. utils->dsi_set_cmdq_V3 = DSI_set_cmdq_V3_Wrapper_DSIDual;
  2624. utils->dsi_dcs_read_lcm_reg_v2 = DSI_dcs_read_lcm_reg_v2_wrapper_DSIDUAL;
  2625. }
  2626. }
  2627. #ifndef MACH_FPGA
  2628. utils->set_gpio_out = mt_set_gpio_out;
  2629. utils->set_gpio_mode= mt_set_gpio_mode;
  2630. utils->set_gpio_dir = mt_set_gpio_dir;
  2631. utils->set_gpio_pull_enable = (int (*)(unsigned int,unsigned char))mt_set_gpio_pull_enable;
  2632. #endif
  2633. utils->set_gpio_lcd_enp_bias = lcd_enp_bias_setting;
  2634. lcm_drv->set_util_funcs(utils);
  2635. return 0;
  2636. }
  2637. static int ddp_dsi_polling_irq(DISP_MODULE_ENUM module, int bit, int timeout)
  2638. {
  2639. //int i = 0;
  2640. unsigned int cnt = 0;
  2641. unsigned int irq_reg_base = 0;
  2642. unsigned int reg_val=0;
  2643. if (module == DISP_MODULE_DSI0 || module == DISP_MODULE_DSIDUAL)
  2644. irq_reg_base = (unsigned int)(&DSI_REG[0]->DSI_INTSTA);
  2645. //DISPCHECK("dsi polling irq, module=%d, bit=0x%08x, timeout=%d, irq_regbase=0x%08x\n", module, bit, timeout, irq_reg_base);
  2646. if ( timeout <= 0) {
  2647. while ((DISP_REG_GET(irq_reg_base) & bit)==0);
  2648. cnt = 1;
  2649. } else {
  2650. // time need to update
  2651. cnt = timeout*1000/100;
  2652. while (cnt > 0) {
  2653. cnt--;
  2654. reg_val = DISP_REG_GET(irq_reg_base);
  2655. //DISPMSG("reg_val=0x%08x\n", reg_val);
  2656. if (reg_val & bit) {
  2657. DSI_OUTREG32(NULL, irq_reg_base, ~reg_val);
  2658. break;
  2659. }
  2660. udelay(100);
  2661. }
  2662. }
  2663. DISPMSG("DSI polling interrupt ret =%d \n", cnt);
  2664. if (cnt == 0)
  2665. DSI_DumpRegisters(module, 2);
  2666. return cnt;
  2667. }
  2668. DDP_MODULE_DRIVER ddp_driver_dsi0 = {
  2669. .module = DISP_MODULE_DSI0,
  2670. .init = ddp_dsi_init,
  2671. .deinit = ddp_dsi_deinit,
  2672. .config = ddp_dsi_config,
  2673. .trigger = ddp_dsi_trigger,
  2674. .start = ddp_dsi_start,
  2675. .stop = ddp_dsi_stop,
  2676. .reset = ddp_dsi_reset,
  2677. .power_on = ddp_dsi_power_on,
  2678. .power_off = ddp_dsi_power_off,
  2679. .is_idle = ddp_dsi_is_idle,
  2680. .is_busy = ddp_dsi_is_busy,
  2681. .dump_info = ddp_dsi_dump,
  2682. .set_lcm_utils = ddp_dsi_set_lcm_utils,
  2683. .polling_irq = ddp_dsi_polling_irq
  2684. };
  2685. DDP_MODULE_DRIVER ddp_driver_dsi1 = {
  2686. .module = DISP_MODULE_DSI1,
  2687. .init = ddp_dsi_init,
  2688. .deinit = ddp_dsi_deinit,
  2689. .config = ddp_dsi_config,
  2690. .trigger = ddp_dsi_trigger,
  2691. .start = ddp_dsi_start,
  2692. .stop = ddp_dsi_stop,
  2693. .reset = ddp_dsi_reset,
  2694. .power_on = ddp_dsi_power_on,
  2695. .power_off = ddp_dsi_power_off,
  2696. .is_idle = ddp_dsi_is_idle,
  2697. .is_busy = ddp_dsi_is_busy,
  2698. .dump_info = ddp_dsi_dump,
  2699. .set_lcm_utils = ddp_dsi_set_lcm_utils,
  2700. .polling_irq = ddp_dsi_polling_irq
  2701. };
  2702. DDP_MODULE_DRIVER ddp_driver_dsidual = {
  2703. .module = DISP_MODULE_DSIDUAL,
  2704. .init = ddp_dsi_init,
  2705. .deinit = ddp_dsi_deinit,
  2706. .config = ddp_dsi_config,
  2707. .trigger = ddp_dsi_trigger,
  2708. .start = ddp_dsi_start,
  2709. .stop = ddp_dsi_stop,
  2710. .reset = ddp_dsi_reset,
  2711. .power_on = ddp_dsi_power_on,
  2712. .power_off = ddp_dsi_power_off,
  2713. .is_idle = ddp_dsi_is_idle,
  2714. .is_busy = ddp_dsi_is_busy,
  2715. .dump_info = ddp_dsi_dump,
  2716. .set_lcm_utils = ddp_dsi_set_lcm_utils,
  2717. .polling_irq = ddp_dsi_polling_irq
  2718. };