ddp_rdma.c 30 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 "RDMA"
  32. #include <platform/mt_gpt.h>
  33. #include "platform/ddp_info.h"
  34. #include "platform/ddp_matrix_para.h"
  35. #include "platform/ddp_reg.h"
  36. #include "platform/ddp_log.h"
  37. #include "platform/ddp_rdma.h"
  38. #include "platform/ddp_dump.h"
  39. #include "lcm_drv.h" // to check if UFO enabled.
  40. //#include "platform/mt_clkmgr.h"
  41. enum RDMA_INPUT_FORMAT {
  42. RDMA_INPUT_FORMAT_BGR565 = 0,
  43. RDMA_INPUT_FORMAT_RGB888 = 1,
  44. RDMA_INPUT_FORMAT_RGBA8888 = 2,
  45. RDMA_INPUT_FORMAT_ARGB8888 = 3,
  46. RDMA_INPUT_FORMAT_VYUY = 4,
  47. RDMA_INPUT_FORMAT_YVYU = 5,
  48. RDMA_INPUT_FORMAT_RGB565 = 6,
  49. RDMA_INPUT_FORMAT_BGR888 = 7,
  50. RDMA_INPUT_FORMAT_BGRA8888 = 8,
  51. RDMA_INPUT_FORMAT_ABGR8888 = 9,
  52. RDMA_INPUT_FORMAT_UYVY = 10,
  53. RDMA_INPUT_FORMAT_YUYV = 11,
  54. RDMA_INPUT_FORMAT_UNKNOW = 32,
  55. };
  56. static enum RDMA_INPUT_FORMAT rdma_input_format_convert(DpColorFormat fmt);
  57. static unsigned int rdma_input_format_byte_swap(enum RDMA_INPUT_FORMAT inputFormat);
  58. static unsigned int rdma_input_format_bpp(enum RDMA_INPUT_FORMAT inputFormat);
  59. static unsigned int rdma_input_format_color_space(enum RDMA_INPUT_FORMAT inputFormat);
  60. static unsigned int rdma_input_format_reg_value(enum RDMA_INPUT_FORMAT inputFormat);
  61. static char * rdma_intput_format_name(int reg );
  62. static unsigned int rdma_index(DISP_MODULE_ENUM module)
  63. {
  64. int idx = 0;
  65. switch (module) {
  66. case DISP_MODULE_RDMA0:
  67. idx = 0;
  68. break;
  69. case DISP_MODULE_RDMA1:
  70. idx = 1;
  71. break;
  72. default:
  73. DDPERR("invalid rdma module=%d \n", module);// invalid module
  74. ASSERT(0);
  75. }
  76. return idx;
  77. }
  78. int RDMAStart(DISP_MODULE_ENUM module, void * handle)
  79. {
  80. unsigned int idx = rdma_index(module);
  81. ASSERT(idx <= RDMA_INSTANCES);
  82. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_INT_ENABLE, 0x3F);
  83. DISP_REG_SET_FIELD(handle,GLOBAL_CON_FLD_ENGINE_EN, idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_GLOBAL_CON, 1);
  84. return 0;
  85. }
  86. int RDMAStop(DISP_MODULE_ENUM module,void * handle)
  87. {
  88. unsigned int idx = rdma_index(module);
  89. ASSERT(idx <= RDMA_INSTANCES);
  90. DISP_REG_SET_FIELD(handle,GLOBAL_CON_FLD_ENGINE_EN, idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_GLOBAL_CON, 0);
  91. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_INT_ENABLE, 0);
  92. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_INT_STATUS, 0);
  93. return 0;
  94. }
  95. int RDMAReset(DISP_MODULE_ENUM module,void * handle)
  96. {
  97. unsigned int delay_cnt=0;
  98. unsigned int idx = rdma_index(module);
  99. ASSERT(idx <= RDMA_INSTANCES);
  100. DISP_REG_SET_FIELD(handle,GLOBAL_CON_FLD_SOFT_RESET, idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_GLOBAL_CON, 1);
  101. while ((DISP_REG_GET(idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_GLOBAL_CON)&0x700)==0x100) { //polling RESET_STATE is 0
  102. delay_cnt++;
  103. if (delay_cnt>10000) {
  104. DDPERR("RDMAReset(%d) timeout, stage 1! DISP_REG_RDMA_GLOBAL_CON=0x%x \n", idx, DISP_REG_GET(idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_GLOBAL_CON));
  105. break;
  106. }
  107. }
  108. DISP_REG_SET_FIELD(handle,GLOBAL_CON_FLD_SOFT_RESET, idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_GLOBAL_CON, 0);
  109. delay_cnt =0;
  110. while ((DISP_REG_GET(idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_GLOBAL_CON)&0x700)!=0x100) {
  111. delay_cnt++;
  112. if (delay_cnt>10000) {
  113. DDPERR("RDMAReset(%d) timeout, stage 2! DISP_REG_RDMA_GLOBAL_CON=0x%x \n", idx, DISP_REG_GET(idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_GLOBAL_CON));
  114. break;
  115. }
  116. }
  117. return 0;
  118. }
  119. // set ultra registers
  120. void rdma_set_ultra(unsigned int idx, unsigned int width, unsigned int height, unsigned int bpp, unsigned int frame_rate,void * handle)
  121. {
  122. // constant
  123. static const unsigned int blank_overhead = 115; //it is 1.15, need to divide 100 later
  124. static const unsigned int rdma_fifo_width = 16; //in unit of byte
  125. static const unsigned int ultra_low_time = 6; //in unit of us
  126. static const unsigned int pre_ultra_low_time = 8; //in unit of us
  127. static const unsigned int pre_ultra_high_time = 9; //in unit of us
  128. //static const unsigned int fifo_size = 512;
  129. static const unsigned int fifo_valid_line_ratio = 125; //valid size 1/8 line;
  130. static const unsigned int fifo_min_size = 32;
  131. // working variables
  132. unsigned int consume_levels_per_sec;
  133. unsigned int ultra_low_level;
  134. unsigned int pre_ultra_low_level;
  135. unsigned int pre_ultra_high_level;
  136. unsigned int ultra_high_ofs;
  137. unsigned int pre_ultra_low_ofs;
  138. unsigned int pre_ultra_high_ofs;
  139. unsigned int fifo_valid_size = 16;
  140. /* compute fifo valid size */
  141. fifo_valid_size = (width * bpp * fifo_valid_line_ratio) / (rdma_fifo_width * 1000);
  142. fifo_valid_size = fifo_valid_size > fifo_min_size ? fifo_valid_size : fifo_min_size;
  143. //consume_levels_per_sec = ((long long unsigned int)width*height*frame_rate*blank_overhead*bpp)/rdma_fifo_width/100;
  144. //change calculation order to prevent overflow of unsigned int
  145. consume_levels_per_sec = (width*height*frame_rate*bpp/rdma_fifo_width/100)*blank_overhead;
  146. // /1000000 for ultra_low_time in unit of us
  147. ultra_low_level = (unsigned int)(ultra_low_time * consume_levels_per_sec / 1000000 );
  148. pre_ultra_low_level = (unsigned int)(pre_ultra_low_time * consume_levels_per_sec / 1000000 );
  149. pre_ultra_high_level = (unsigned int)(pre_ultra_high_time * consume_levels_per_sec / 1000000 );
  150. pre_ultra_low_ofs = pre_ultra_low_level - ultra_low_level;
  151. ultra_high_ofs = 1;
  152. pre_ultra_high_ofs = pre_ultra_high_level - pre_ultra_low_level ;
  153. if (1) {
  154. ultra_low_level = 0x6b;
  155. pre_ultra_low_ofs = 0xa0;
  156. ultra_high_ofs = 1;
  157. pre_ultra_high_ofs = 1;
  158. }
  159. //write ultra_low_level, ultra_high_ofs, pre_ultra_low_ofs, pre_ultra_high_ofs into register DISP_RDMA_MEM_GMC_SETTING_0
  160. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_MEM_GMC_SETTING_0,
  161. ultra_low_level|(pre_ultra_low_ofs<<8)|(ultra_high_ofs<<16)|(pre_ultra_high_ofs<<24));
  162. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_MEM_GMC_SETTING_0, 0x1a01356b);
  163. DISP_REG_SET_FIELD(handle,FIFO_CON_FLD_OUTPUT_VALID_FIFO_THRESHOLD, idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_FIFO_CON, fifo_valid_size);
  164. DDPDBG("FIFO_VALID_Size = 0x%03x = %d\n", fifo_valid_size , fifo_valid_size );
  165. DDPDBG("ultra_low_level = 0x%03x = %d\n", ultra_low_level , ultra_low_level );
  166. DDPDBG("pre_ultra_low_level = 0x%03x = %d\n", pre_ultra_low_level , pre_ultra_low_level );
  167. DDPDBG("pre_ultra_high_level = 0x%03x = %d\n", pre_ultra_high_level, pre_ultra_high_level);
  168. DDPDBG("ultra_high_ofs = 0x%03x = %d\n", ultra_high_ofs , ultra_high_ofs );
  169. DDPDBG("pre_ultra_low_ofs = 0x%03x = %d\n", pre_ultra_low_ofs , pre_ultra_low_ofs );
  170. DDPDBG("pre_ultra_high_ofs = 0x%03x = %d\n", pre_ultra_high_ofs , pre_ultra_high_ofs );
  171. }
  172. // fixme: spec has no RDMA format, fix enum definition here
  173. int RDMAConfig(DISP_MODULE_ENUM module,
  174. enum RDMA_MODE mode,
  175. unsigned address,
  176. DpColorFormat inFormat,
  177. unsigned pitch,
  178. unsigned width,
  179. unsigned height,
  180. unsigned ufoe_enable,
  181. void * handle) // ourput setting
  182. {
  183. unsigned int output_is_yuv = 0;
  184. enum RDMA_INPUT_FORMAT inputFormat = rdma_input_format_convert(inFormat);
  185. unsigned int bpp = rdma_input_format_bpp(inputFormat);
  186. unsigned int input_is_yuv = rdma_input_format_color_space(inputFormat);
  187. unsigned int input_swap = rdma_input_format_byte_swap(inputFormat);
  188. unsigned int input_format_reg = rdma_input_format_reg_value(inputFormat);
  189. unsigned int idx = rdma_index(module);
  190. //DDPDBG("RDMAConfig idx %d, mode %d, address 0x%x, inputformat %d, input_swap %u, pitch %u, width %u, height %u\n",
  191. // idx, mode, address, inputFormat,input_swap, pitch,width, height);
  192. ASSERT(idx <= RDMA_INSTANCES);
  193. if ((width > RDMA_MAX_WIDTH) || (height > RDMA_MAX_HEIGHT)) {
  194. DDPERR("RDMA input overflow, w=%d, h=%d, max_w=%d, max_h=%d\n", width, height, RDMA_MAX_WIDTH, RDMA_MAX_HEIGHT);
  195. }
  196. if (input_is_yuv==1 && output_is_yuv==0) {
  197. DISP_REG_SET_FIELD(handle,SIZE_CON_0_FLD_MATRIX_ENABLE, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_SIZE_CON_0, 1);
  198. DISP_REG_SET_FIELD(handle,SIZE_CON_0_FLD_MATRIX_INT_MTX_SEL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_SIZE_CON_0, 0x6);
  199. // set color conversion matrix
  200. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_C00, coef_rdma_601_y2r[0][0] );
  201. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_C01, coef_rdma_601_y2r[0][1] );
  202. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_C02, coef_rdma_601_y2r[0][2] );
  203. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_C10, coef_rdma_601_y2r[1][0] );
  204. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_C11, coef_rdma_601_y2r[1][1] );
  205. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_C12, coef_rdma_601_y2r[1][2] );
  206. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_C20, coef_rdma_601_y2r[2][0] );
  207. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_C21, coef_rdma_601_y2r[2][1] );
  208. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_C22, coef_rdma_601_y2r[2][2] );
  209. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_PRE_ADD_0, coef_rdma_601_y2r[3][0]);
  210. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_PRE_ADD_1, coef_rdma_601_y2r[3][1]);
  211. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_PRE_ADD_2, coef_rdma_601_y2r[3][2]);
  212. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_POST_ADD_0, coef_rdma_601_y2r[4][0]);
  213. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_POST_ADD_1, coef_rdma_601_y2r[4][1]);
  214. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_POST_ADD_2, coef_rdma_601_y2r[4][2]);
  215. } else if (input_is_yuv==0 && output_is_yuv==1) {
  216. DISP_REG_SET_FIELD(handle,SIZE_CON_0_FLD_MATRIX_ENABLE, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_SIZE_CON_0, 1);
  217. DISP_REG_SET_FIELD(handle,SIZE_CON_0_FLD_MATRIX_INT_MTX_SEL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_SIZE_CON_0, 0x2);
  218. // set color conversion matrix
  219. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_C00, coef_rdma_601_r2y[0][0] );
  220. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_C01, coef_rdma_601_r2y[0][1] );
  221. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_C02, coef_rdma_601_r2y[0][2] );
  222. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_C10, coef_rdma_601_r2y[1][0] );
  223. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_C11, coef_rdma_601_r2y[1][1] );
  224. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_C12, coef_rdma_601_r2y[1][2] );
  225. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_C20, coef_rdma_601_r2y[2][0] );
  226. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_C21, coef_rdma_601_r2y[2][1] );
  227. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_C22, coef_rdma_601_r2y[2][2] );
  228. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_PRE_ADD_0, coef_rdma_601_r2y[3][0]);
  229. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_PRE_ADD_1, coef_rdma_601_r2y[3][1]);
  230. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_PRE_ADD_2, coef_rdma_601_r2y[3][2]);
  231. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_POST_ADD_0, coef_rdma_601_r2y[4][0]);
  232. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_POST_ADD_1, coef_rdma_601_r2y[4][1]);
  233. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_POST_ADD_2, coef_rdma_601_r2y[4][2]);
  234. } else {
  235. DISP_REG_SET_FIELD(handle,SIZE_CON_0_FLD_MATRIX_ENABLE, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_SIZE_CON_0, 0);
  236. DISP_REG_SET_FIELD(handle,SIZE_CON_0_FLD_MATRIX_INT_MTX_SEL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_SIZE_CON_0, 0);
  237. }
  238. DISP_REG_SET_FIELD(handle,GLOBAL_CON_FLD_MODE_SEL, idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_GLOBAL_CON, mode);
  239. // FORMAT & SWAP only works when RDMA memory mode, set both to 0 when RDMA direct link mode.
  240. DISP_REG_SET_FIELD(handle,MEM_CON_FLD_MEM_MODE_INPUT_FORMAT, idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_MEM_CON, ((mode == RDMA_MODE_DIRECT_LINK) ? 0 : input_format_reg&0xf));
  241. DISP_REG_SET_FIELD(handle,MEM_CON_FLD_MEM_MODE_INPUT_SWAP, idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_MEM_CON, ((mode == RDMA_MODE_DIRECT_LINK) ? 0 : input_swap));
  242. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_MEM_START_ADDR, address);
  243. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_MEM_SRC_PITCH, pitch);
  244. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_INT_ENABLE, 0x1F);
  245. DISP_REG_SET_FIELD(handle,SIZE_CON_0_FLD_OUTPUT_FRAME_WIDTH, idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_SIZE_CON_0, width);
  246. DISP_REG_SET_FIELD(handle,SIZE_CON_1_FLD_OUTPUT_FRAME_HEIGHT, idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_SIZE_CON_1, height);
  247. rdma_set_ultra(idx, width, height, bpp, 60, handle);
  248. #if 1
  249. if (ufoe_enable==0) { //UFOE bypassed, enable RDMA underflow intr, else disable RDMA underflow intr
  250. DISP_REG_SET_FIELD(handle,FIFO_CON_FLD_FIFO_UNDERFLOW_EN, idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_FIFO_CON, 1);
  251. DISP_REG_SET_FIELD(handle,FIFO_CON_FLD_OUTPUT_VALID_FIFO_THRESHOLD, idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_FIFO_CON, 16);
  252. } else {
  253. DISP_REG_SET_FIELD(handle,FIFO_CON_FLD_FIFO_UNDERFLOW_EN, idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_FIFO_CON, 1);
  254. DISP_REG_SET_FIELD(handle,FIFO_CON_FLD_OUTPUT_VALID_FIFO_THRESHOLD, idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_FIFO_CON, width*3*3/16/2); //FHD:304, HD:203, QHD:151
  255. }
  256. #endif
  257. return 0;
  258. }
  259. int RDMAWait(DISP_MODULE_ENUM module,void * handle)
  260. {
  261. unsigned int cnt = 0;
  262. unsigned int idx = rdma_index(module);
  263. // polling interrupt status
  264. while ((DISP_REG_GET(idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_INT_STATUS) & 0x4) != 0x4) {
  265. cnt++;
  266. if (cnt>1000) {
  267. DDPERR("RDMA%dWait timeout! \n", idx);
  268. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_INT_STATUS , 0x0);
  269. return -1;
  270. }
  271. }
  272. DDPMSG(" RDMA%dWait cnt=%d \n", idx, cnt);
  273. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_INT_STATUS , 0x0);
  274. return 0;
  275. }
  276. void RDMASetTargetLine(DISP_MODULE_ENUM module, unsigned int line,void * handle)
  277. {
  278. unsigned int idx = rdma_index(module);
  279. DISP_REG_SET(handle,idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_TARGET_LINE, line);
  280. }
  281. static int RDMAPollingInterrupt(DISP_MODULE_ENUM module, int bit, int timeout)
  282. {
  283. unsigned int idx = rdma_index(module);
  284. unsigned int cnt = 0;
  285. unsigned int regval = 0;
  286. if ( timeout <= 0) {
  287. while ((DISP_REG_GET(idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_INT_STATUS) & bit)==0);
  288. cnt = 1;
  289. } else {
  290. // time need to update
  291. cnt = timeout*1000/100;
  292. while (cnt > 0) {
  293. cnt--;
  294. regval = DISP_REG_GET(idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_INT_STATUS);
  295. if (regval & bit ) {
  296. DISP_CPU_REG_SET(idx*DISP_RDMA_INDEX_OFFSET+ DISP_REG_RDMA_INT_STATUS, ~regval);
  297. break;
  298. }
  299. udelay(100);
  300. }
  301. }
  302. //should clear?
  303. DDPMSG(" RDMA%d polling interrupt ret =%d \n", idx, cnt);
  304. return cnt;
  305. }
  306. static enum RDMA_INPUT_FORMAT rdma_input_format_convert(DpColorFormat fmt)
  307. {
  308. enum RDMA_INPUT_FORMAT rdma_fmt = RDMA_INPUT_FORMAT_RGB565;
  309. switch (fmt) {
  310. case eBGR565 :
  311. rdma_fmt = RDMA_INPUT_FORMAT_BGR565 ;
  312. break;
  313. case eRGB888 :
  314. rdma_fmt = RDMA_INPUT_FORMAT_RGB888 ;
  315. break;
  316. case eRGBA8888 :
  317. rdma_fmt = RDMA_INPUT_FORMAT_RGBA8888 ;
  318. break;
  319. case eARGB8888 :
  320. rdma_fmt = RDMA_INPUT_FORMAT_ARGB8888 ;
  321. break;
  322. case eVYUY :
  323. rdma_fmt = RDMA_INPUT_FORMAT_VYUY ;
  324. break;
  325. case eYVYU :
  326. rdma_fmt = RDMA_INPUT_FORMAT_YVYU ;
  327. break;
  328. case eRGB565 :
  329. rdma_fmt = RDMA_INPUT_FORMAT_RGB565 ;
  330. break;
  331. case eBGR888 :
  332. rdma_fmt = RDMA_INPUT_FORMAT_BGR888 ;
  333. break;
  334. case eBGRA8888 :
  335. rdma_fmt = RDMA_INPUT_FORMAT_BGRA8888 ;
  336. break;
  337. case eABGR8888 :
  338. rdma_fmt = RDMA_INPUT_FORMAT_ABGR8888 ;
  339. break;
  340. case eUYVY :
  341. rdma_fmt = RDMA_INPUT_FORMAT_UYVY ;
  342. break;
  343. case eYUY2 :
  344. rdma_fmt = RDMA_INPUT_FORMAT_YUYV ;
  345. break;
  346. default:
  347. DDPERR("rdma_fmt_convert fmt=%d, rdma_fmt=%d \n", fmt, rdma_fmt);
  348. }
  349. return rdma_fmt;
  350. }
  351. static unsigned int rdma_input_format_byte_swap(enum RDMA_INPUT_FORMAT inputFormat)
  352. {
  353. int input_swap = 0;
  354. switch (inputFormat) {
  355. case RDMA_INPUT_FORMAT_BGR565:
  356. case RDMA_INPUT_FORMAT_RGB888:
  357. case RDMA_INPUT_FORMAT_RGBA8888:
  358. case RDMA_INPUT_FORMAT_ARGB8888:
  359. case RDMA_INPUT_FORMAT_VYUY:
  360. case RDMA_INPUT_FORMAT_YVYU:
  361. input_swap = 1;
  362. break;
  363. case RDMA_INPUT_FORMAT_RGB565:
  364. case RDMA_INPUT_FORMAT_BGR888:
  365. case RDMA_INPUT_FORMAT_BGRA8888:
  366. case RDMA_INPUT_FORMAT_ABGR8888:
  367. case RDMA_INPUT_FORMAT_UYVY:
  368. case RDMA_INPUT_FORMAT_YUYV:
  369. input_swap = 0;
  370. break;
  371. default:
  372. DDPERR("unknow RDMA input format is %d\n", inputFormat);
  373. ASSERT(0);
  374. }
  375. return input_swap;
  376. }
  377. static unsigned int rdma_input_format_bpp(enum RDMA_INPUT_FORMAT inputFormat)
  378. {
  379. int bpp = 0;
  380. switch (inputFormat) {
  381. case RDMA_INPUT_FORMAT_BGR565:
  382. case RDMA_INPUT_FORMAT_RGB565:
  383. case RDMA_INPUT_FORMAT_VYUY:
  384. case RDMA_INPUT_FORMAT_UYVY:
  385. case RDMA_INPUT_FORMAT_YVYU:
  386. case RDMA_INPUT_FORMAT_YUYV:
  387. bpp = 2;
  388. break;
  389. case RDMA_INPUT_FORMAT_RGB888:
  390. case RDMA_INPUT_FORMAT_BGR888:
  391. bpp = 3;
  392. break;
  393. case RDMA_INPUT_FORMAT_ARGB8888:
  394. case RDMA_INPUT_FORMAT_ABGR8888:
  395. case RDMA_INPUT_FORMAT_RGBA8888:
  396. case RDMA_INPUT_FORMAT_BGRA8888:
  397. bpp = 4;
  398. break;
  399. default:
  400. DDPERR("unknown RDMA input format = %d\n", inputFormat);
  401. ASSERT(0);
  402. }
  403. return bpp;
  404. }
  405. static unsigned int rdma_input_format_color_space(enum RDMA_INPUT_FORMAT inputFormat)
  406. {
  407. int space = 0;
  408. switch (inputFormat) {
  409. case RDMA_INPUT_FORMAT_BGR565:
  410. case RDMA_INPUT_FORMAT_RGB565:
  411. case RDMA_INPUT_FORMAT_RGB888:
  412. case RDMA_INPUT_FORMAT_BGR888:
  413. case RDMA_INPUT_FORMAT_RGBA8888:
  414. case RDMA_INPUT_FORMAT_BGRA8888:
  415. case RDMA_INPUT_FORMAT_ARGB8888:
  416. case RDMA_INPUT_FORMAT_ABGR8888:
  417. space = 0;
  418. break;
  419. case RDMA_INPUT_FORMAT_VYUY:
  420. case RDMA_INPUT_FORMAT_UYVY:
  421. case RDMA_INPUT_FORMAT_YVYU:
  422. case RDMA_INPUT_FORMAT_YUYV:
  423. space = 1;
  424. break;
  425. default:
  426. DDPERR("unknown RDMA input format = %d\n", inputFormat);
  427. ASSERT(0);
  428. }
  429. return space;
  430. }
  431. static unsigned int rdma_input_format_reg_value(enum RDMA_INPUT_FORMAT inputFormat)
  432. {
  433. int reg_value = 0;
  434. switch (inputFormat) {
  435. case RDMA_INPUT_FORMAT_BGR565:
  436. case RDMA_INPUT_FORMAT_RGB565:
  437. reg_value = 0x0;
  438. break;
  439. case RDMA_INPUT_FORMAT_RGB888:
  440. case RDMA_INPUT_FORMAT_BGR888:
  441. reg_value = 0x1;
  442. break;
  443. case RDMA_INPUT_FORMAT_RGBA8888:
  444. case RDMA_INPUT_FORMAT_BGRA8888:
  445. reg_value = 0x2;
  446. break;
  447. case RDMA_INPUT_FORMAT_ARGB8888:
  448. case RDMA_INPUT_FORMAT_ABGR8888:
  449. reg_value = 0x3;
  450. break;
  451. case RDMA_INPUT_FORMAT_VYUY:
  452. case RDMA_INPUT_FORMAT_UYVY:
  453. reg_value = 0x4;
  454. break;
  455. case RDMA_INPUT_FORMAT_YVYU:
  456. case RDMA_INPUT_FORMAT_YUYV:
  457. reg_value = 0x5;
  458. break;
  459. default:
  460. DDPERR("unknow RDMA input format is %d\n", inputFormat);
  461. ASSERT(0);
  462. }
  463. return reg_value;
  464. }
  465. static char * rdma_intput_format_name(int reg )
  466. {
  467. switch (reg) {
  468. case 0:
  469. return "rgb565";
  470. case 1:
  471. return "rgb888";
  472. case 2:
  473. return "rgba8888";
  474. case 3:
  475. return "argb8888";
  476. case 4:
  477. return "uyvy";
  478. case 5:
  479. return "yuyv";
  480. default:
  481. DDPMSG("rdma unknown reg=%d\n", reg);
  482. return "unknown";
  483. }
  484. }
  485. static int RDMAClockOn(DISP_MODULE_ENUM module,void * handle)
  486. {
  487. unsigned int idx = rdma_index(module);
  488. ddp_enable_module_clock(module);
  489. DDPMSG("RDMA%dClockOn CG 0x%x \n",idx, DISP_REG_GET(DISP_REG_CONFIG_MMSYS_CG_CON0));
  490. return 0;
  491. }
  492. static int RDMAClockOff(DISP_MODULE_ENUM module,void * handle)
  493. {
  494. unsigned int idx = rdma_index(module);
  495. DDPMSG("RDMA%dClockOff\n",idx);
  496. ddp_disable_module_clock(module);
  497. return 0;
  498. }
  499. static int RDMAInit(DISP_MODULE_ENUM module,void * handle)
  500. {
  501. unsigned int idx = rdma_index(module);
  502. ddp_enable_module_clock(module);
  503. DDPMSG("RDMA%dInit CG 0x%x \n",idx, DISP_REG_GET(DISP_REG_CONFIG_MMSYS_CG_CON0));
  504. return 0;
  505. }
  506. static int RDMADeInit(DISP_MODULE_ENUM module,void * handle)
  507. {
  508. unsigned int idx = rdma_index(module);
  509. DDPMSG("RDMA%dDeinit\n",idx);
  510. ddp_disable_module_clock(module);
  511. return 0;
  512. }
  513. void RDMADump(DISP_MODULE_ENUM module)
  514. {
  515. unsigned int idx = rdma_index(module);
  516. DDPMSG("== DISP RDMA%d ==\n", idx);
  517. DDPMSG("(0x000)R_INTEN =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_INT_ENABLE+DISP_RDMA_INDEX_OFFSET*idx));
  518. DDPMSG("(0x004)R_INTS =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_INT_STATUS+DISP_RDMA_INDEX_OFFSET*idx));
  519. DDPMSG("(0x010)R_CON =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_GLOBAL_CON+DISP_RDMA_INDEX_OFFSET*idx));
  520. DDPMSG("(0x014)R_SIZE0 =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_SIZE_CON_0+DISP_RDMA_INDEX_OFFSET*idx));
  521. DDPMSG("(0x018)R_SIZE1 =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_SIZE_CON_1+DISP_RDMA_INDEX_OFFSET*idx));
  522. DDPMSG("(0x01c)R_TAR_LINE =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_TARGET_LINE+DISP_RDMA_INDEX_OFFSET*idx));
  523. DDPMSG("(0x024)R_M_CON =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_MEM_CON+DISP_RDMA_INDEX_OFFSET*idx));
  524. DDPMSG("(0xf00)R_M_S_ADDR =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_MEM_START_ADDR+DISP_RDMA_INDEX_OFFSET*idx));
  525. DDPMSG("(0x02c)R_M_SRC_PITCH =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_MEM_SRC_PITCH+DISP_RDMA_INDEX_OFFSET*idx));
  526. DDPMSG("(0x030)R_M_GMC_SET0 =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_MEM_GMC_SETTING_0+DISP_RDMA_INDEX_OFFSET*idx));
  527. DDPMSG("(0x034)R_M_SLOW_CON =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_MEM_SLOW_CON+DISP_RDMA_INDEX_OFFSET*idx));
  528. DDPMSG("(0x038)R_M_GMC_SET1 =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_MEM_GMC_SETTING_1+DISP_RDMA_INDEX_OFFSET*idx));
  529. DDPMSG("(0x040)R_FIFO_CON =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_FIFO_CON+DISP_RDMA_INDEX_OFFSET*idx));
  530. DDPMSG("(0x044)R_FIFO_LOG =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_FIFO_LOG+DISP_RDMA_INDEX_OFFSET*idx));
  531. DDPMSG("(0x078)R_PRE_ADD0 =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_PRE_ADD_0+DISP_RDMA_INDEX_OFFSET*idx));
  532. DDPMSG("(0x07c)R_PRE_ADD1 =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_PRE_ADD_1+DISP_RDMA_INDEX_OFFSET*idx));
  533. DDPMSG("(0x080)R_PRE_ADD2 =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_PRE_ADD_2+DISP_RDMA_INDEX_OFFSET*idx));
  534. DDPMSG("(0x084)R_POST_ADD0 =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_POST_ADD_0+DISP_RDMA_INDEX_OFFSET*idx));
  535. DDPMSG("(0x088)R_POST_ADD1 =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_POST_ADD_1+DISP_RDMA_INDEX_OFFSET*idx));
  536. DDPMSG("(0x08c)R_POST_ADD2 =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_POST_ADD_2+DISP_RDMA_INDEX_OFFSET*idx));
  537. DDPMSG("(0x090)R_DUMMY =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_DUMMY+DISP_RDMA_INDEX_OFFSET*idx));
  538. DDPMSG("(0x094)R_OUT_SEL =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_DEBUG_OUT_SEL+DISP_RDMA_INDEX_OFFSET*idx));
  539. DDPMSG("(0x094)R_M_START =0x%x\n", DISP_REG_GET(DISP_REG_RDMA_MEM_START_ADDR+DISP_RDMA_INDEX_OFFSET*idx));
  540. return;
  541. }
  542. void rdma_dump_analysis(DISP_MODULE_ENUM module)
  543. {
  544. unsigned int idx = (module==DISP_MODULE_RDMA0)?0:1;
  545. DDPMSG("==DISP RDMA%d ANALYSIS==\n", idx);
  546. DDPMSG("rdma%d: en=%d, w=%d, h=%d, pitch=%d, addr=0x%x, fmt=%s, fifo_min=%d, \
  547. in_p_cnt=%d, in_l_cnt=%d, out_p_cnt=%d, out_l_cnt=%d \n",
  548. idx,
  549. DISP_REG_GET(DISP_REG_RDMA_GLOBAL_CON+DISP_RDMA_INDEX_OFFSET*idx)&0x1,
  550. DISP_REG_GET(DISP_REG_RDMA_SIZE_CON_0+DISP_RDMA_INDEX_OFFSET*idx)&0xfff,
  551. DISP_REG_GET(DISP_REG_RDMA_SIZE_CON_1+DISP_RDMA_INDEX_OFFSET*idx)&0xfffff,
  552. DISP_REG_GET(DISP_REG_RDMA_MEM_SRC_PITCH+DISP_RDMA_INDEX_OFFSET*idx),
  553. DISP_REG_GET(DISP_REG_RDMA_MEM_START_ADDR+DISP_RDMA_INDEX_OFFSET*idx),
  554. rdma_intput_format_name((DISP_REG_GET(DISP_REG_RDMA_MEM_CON+DISP_RDMA_INDEX_OFFSET*idx)>>4)&0xf),
  555. DISP_REG_GET(DISP_REG_RDMA_FIFO_LOG+DISP_RDMA_INDEX_OFFSET*idx),
  556. DISP_REG_GET(DISP_REG_RDMA_IN_P_CNT+DISP_RDMA_INDEX_OFFSET*idx),
  557. DISP_REG_GET(DISP_REG_RDMA_IN_LINE_CNT+DISP_RDMA_INDEX_OFFSET*idx),
  558. DISP_REG_GET(DISP_REG_RDMA_OUT_P_CNT+DISP_RDMA_INDEX_OFFSET*idx),
  559. DISP_REG_GET(DISP_REG_RDMA_OUT_LINE_CNT+DISP_RDMA_INDEX_OFFSET*idx)
  560. );
  561. return ;
  562. }
  563. static int RDMAConfig_l(DISP_MODULE_ENUM module, disp_ddp_path_config* pConfig, void* handle)
  564. {
  565. RDMA_CONFIG_STRUCT * rdma_config = & pConfig->rdma_config;
  566. enum RDMA_MODE mode = rdma_config->address ? RDMA_MODE_MEMORY : RDMA_MODE_DIRECT_LINK;
  567. LCM_DSI_PARAMS *lcm_config = &(pConfig->dsi_config);
  568. if (pConfig->dst_dirty) {
  569. //config to direct link mode
  570. RDMAConfig(module,
  571. RDMA_MODE_DIRECT_LINK, // link mode
  572. 0, // address
  573. eRGB888, // inputFormat
  574. 0, // pitch
  575. pConfig->dst_w, // width
  576. pConfig->dst_h, // height
  577. lcm_config->ufoe_enable,
  578. handle);
  579. } else if (pConfig->rdma_dirty) {
  580. // decouple mode may use
  581. RDMAConfig(module,
  582. mode, // link mode
  583. (mode == RDMA_MODE_DIRECT_LINK) ? 0 : rdma_config->address, // address
  584. (mode == RDMA_MODE_DIRECT_LINK) ? eRGB888 : rdma_config->inputFormat, // inputFormat
  585. (mode == RDMA_MODE_DIRECT_LINK) ? 0 : rdma_config->pitch, // pitch
  586. rdma_config->width, // width
  587. rdma_config->height, // height
  588. lcm_config->ufoe_enable,
  589. handle);
  590. }
  591. return 0;
  592. }
  593. void rdma_enable_color_transform(DISP_MODULE_ENUM module)
  594. {
  595. unsigned int idx = rdma_index(module);
  596. UINT32 value = DISP_REG_GET(DISP_REG_RDMA_SIZE_CON_0 + DISP_RDMA_INDEX_OFFSET * idx);
  597. value = value | REG_FLD_VAL((SIZE_CON_0_FLD_MATRIX_EXT_MTX_EN), 1) |
  598. REG_FLD_VAL((SIZE_CON_0_FLD_MATRIX_ENABLE), 1);
  599. DISP_REG_SET(NULL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_SIZE_CON_0, value);
  600. }
  601. void rdma_disable_color_transform(DISP_MODULE_ENUM module)
  602. {
  603. unsigned int idx = rdma_index(module);
  604. UINT32 value = DISP_REG_GET(DISP_REG_RDMA_SIZE_CON_0 + DISP_RDMA_INDEX_OFFSET * idx);
  605. value = value | REG_FLD_VAL((SIZE_CON_0_FLD_MATRIX_EXT_MTX_EN), 0) |
  606. REG_FLD_VAL((SIZE_CON_0_FLD_MATRIX_ENABLE), 0);
  607. DISP_REG_SET(NULL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_SIZE_CON_0, value);
  608. }
  609. void rdma_set_color_matrix(DISP_MODULE_ENUM module,
  610. rdma_color_matrix *matrix,
  611. rdma_color_pre *pre,
  612. rdma_color_post *post)
  613. {
  614. unsigned int idx = rdma_index(module);
  615. DISP_REG_SET(NULL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_C00, matrix->C00);
  616. DISP_REG_SET(NULL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_C01, matrix->C01);
  617. DISP_REG_SET(NULL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_C02, matrix->C02);
  618. DISP_REG_SET(NULL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_C10, matrix->C10);
  619. DISP_REG_SET(NULL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_C11, matrix->C11);
  620. DISP_REG_SET(NULL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_C12, matrix->C12);
  621. DISP_REG_SET(NULL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_C20, matrix->C20);
  622. DISP_REG_SET(NULL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_C21, matrix->C21);
  623. DISP_REG_SET(NULL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_C22, matrix->C22);
  624. DISP_REG_SET(NULL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_PRE_ADD_0, pre->ADD0);
  625. DISP_REG_SET(NULL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_PRE_ADD_1, pre->ADD1);
  626. DISP_REG_SET(NULL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_PRE_ADD_2, pre->ADD2);
  627. DISP_REG_SET(NULL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_POST_ADD_0, post->ADD0);
  628. DISP_REG_SET(NULL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_POST_ADD_1, post->ADD1);
  629. DISP_REG_SET(NULL, idx * DISP_RDMA_INDEX_OFFSET + DISP_REG_RDMA_POST_ADD_2, post->ADD2);
  630. }
  631. DDP_MODULE_DRIVER ddp_driver_rdma = {
  632. .module = DISP_MODULE_RDMA0,
  633. .init = RDMAInit,
  634. .deinit = RDMADeInit,
  635. .config = RDMAConfig_l,
  636. .start = RDMAStart,
  637. .trigger = NULL,
  638. .stop = RDMAStop,
  639. .reset = RDMAReset,
  640. .power_on = RDMAClockOn,
  641. .power_off = RDMAClockOff,
  642. .is_idle = NULL,
  643. .is_busy = NULL,
  644. .dump_info = NULL,
  645. .bypass = NULL,
  646. .build_cmdq = NULL,
  647. .set_lcm_utils = NULL,
  648. .polling_irq = RDMAPollingInterrupt,
  649. };