msdc.c 109 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. #include "msdc.h"
  32. #if defined(MMC_MSDC_DRV_CTP)
  33. #include <common.h>
  34. #include "api.h" //For invocation cache_clean_invalidate()
  35. #include "cache_api.h" //For invocation cache_clean_invalidate()
  36. #endif
  37. #if defined(MMC_MSDC_DRV_LK)
  38. #include <kernel/event.h>
  39. #include <platform/mt_irq.h>
  40. #endif
  41. #if defined(MMC_MSDC_DRV_CTP)
  42. #include "gpio.h"
  43. #if defined(MSDC_USE_DCM)
  44. #include "dcm.h"
  45. #endif
  46. #if !defined(FPGA_PLATFORM)
  47. #include "pmic.h"
  48. #include "clock_manager.h"
  49. #endif
  50. #endif
  51. static int msdc_rsp[] = {
  52. 0, /* RESP_NONE */
  53. 1, /* RESP_R1 */
  54. 2, /* RESP_R2 */
  55. 3, /* RESP_R3 */
  56. 4, /* RESP_R4 */
  57. 1, /* RESP_R5 */
  58. 1, /* RESP_R6 */
  59. 1, /* RESP_R7 */
  60. 7, /* RESP_R1b */
  61. };
  62. static msdc_priv_t msdc_priv[MSDC_MAX_NUM];
  63. void msdc_dump_card_status(u32 card_status)
  64. {
  65. #if MSDC_DEBUG
  66. static char *state[] = {
  67. "Idle", /* 0 */
  68. "Ready", /* 1 */
  69. "Ident", /* 2 */
  70. "Stby", /* 3 */
  71. "Tran", /* 4 */
  72. "Data", /* 5 */
  73. "Rcv", /* 6 */
  74. "Prg", /* 7 */
  75. "Dis", /* 8 */
  76. "Ina", /* 9 */
  77. "Sleep", /* 10 */
  78. "Reserved", /* 11 */
  79. "Reserved", /* 12 */
  80. "Reserved", /* 13 */
  81. "Reserved", /* 14 */
  82. "I/O mode", /* 15 */
  83. };
  84. if (card_status & R1_OUT_OF_RANGE)
  85. MSG(INF, "\t[CARD_STATUS] Out of Range\n");
  86. if (card_status & R1_ADDRESS_ERROR)
  87. MSG(INF, "\t[CARD_STATUS] Address Error\n");
  88. if (card_status & R1_BLOCK_LEN_ERROR)
  89. MSG(INF, "\t[CARD_STATUS] Block Len Error\n");
  90. if (card_status & R1_ERASE_SEQ_ERROR)
  91. MSG(INF, "\t[CARD_STATUS] Erase Seq Error\n");
  92. if (card_status & R1_ERASE_PARAM)
  93. MSG(INF, "\t[CARD_STATUS] Erase Param\n");
  94. if (card_status & R1_WP_VIOLATION)
  95. MSG(INF, "\t[CARD_STATUS] WP Violation\n");
  96. if (card_status & R1_CARD_IS_LOCKED)
  97. MSG(INF, "\t[CARD_STATUS] Card is Locked\n");
  98. if (card_status & R1_LOCK_UNLOCK_FAILED)
  99. MSG(INF, "\t[CARD_STATUS] Lock/Unlock Failed\n");
  100. if (card_status & R1_COM_CRC_ERROR)
  101. MSG(INF, "\t[CARD_STATUS] Command CRC Error\n");
  102. if (card_status & R1_ILLEGAL_COMMAND)
  103. MSG(INF, "\t[CARD_STATUS] Illegal Command\n");
  104. if (card_status & R1_CARD_ECC_FAILED)
  105. MSG(INF, "\t[CARD_STATUS] Card ECC Failed\n");
  106. if (card_status & R1_CC_ERROR)
  107. MSG(INF, "\t[CARD_STATUS] CC Error\n");
  108. if (card_status & R1_ERROR)
  109. MSG(INF, "\t[CARD_STATUS] Error\n");
  110. if (card_status & R1_UNDERRUN)
  111. MSG(INF, "\t[CARD_STATUS] Underrun\n");
  112. if (card_status & R1_OVERRUN)
  113. MSG(INF, "\t[CARD_STATUS] Overrun\n");
  114. if (card_status & R1_CID_CSD_OVERWRITE)
  115. MSG(INF, "\t[CARD_STATUS] CID/CSD Overwrite\n");
  116. if (card_status & R1_WP_ERASE_SKIP)
  117. MSG(INF, "\t[CARD_STATUS] WP Eraser Skip\n");
  118. if (card_status & R1_CARD_ECC_DISABLED)
  119. MSG(INF, "\t[CARD_STATUS] Card ECC Disabled\n");
  120. if (card_status & R1_ERASE_RESET)
  121. MSG(INF, "\t[CARD_STATUS] Erase Reset\n");
  122. if (card_status & R1_READY_FOR_DATA)
  123. MSG(INF, "\t[CARD_STATUS] Ready for Data\n");
  124. if (card_status & R1_SWITCH_ERROR)
  125. MSG(INF, "\t[CARD_STATUS] Switch error\n");
  126. if (card_status & R1_URGENT_BKOPS)
  127. MSG(INF, "\t[CARD_STATUS] Urgent background operations\n");
  128. if (card_status & R1_APP_CMD)
  129. MSG(INF, "\t[CARD_STATUS] App Command\n");
  130. MSG(INF, "\t[CARD_STATUS] '%s' State\n",
  131. state[R1_CURRENT_STATE(card_status)]);
  132. #endif
  133. }
  134. void msdc_dump_ocr_reg(u32 resp)
  135. {
  136. #if MSDC_DEBUG
  137. if (resp & (1 << 7))
  138. MSG(INF, "\t[OCR] Low Voltage Range\n");
  139. if (resp & (1 << 15))
  140. MSG(INF, "\t[OCR] 2.7-2.8 volt\n");
  141. if (resp & (1 << 16))
  142. MSG(INF, "\t[OCR] 2.8-2.9 volt\n");
  143. if (resp & (1 << 17))
  144. MSG(INF, "\t[OCR] 2.9-3.0 volt\n");
  145. if (resp & (1 << 18))
  146. MSG(INF, "\t[OCR] 3.0-3.1 volt\n");
  147. if (resp & (1 << 19))
  148. MSG(INF, "\t[OCR] 3.1-3.2 volt\n");
  149. if (resp & (1 << 20))
  150. MSG(INF, "\t[OCR] 3.2-3.3 volt\n");
  151. if (resp & (1 << 21))
  152. MSG(INF, "\t[OCR] 3.3-3.4 volt\n");
  153. if (resp & (1 << 22))
  154. MSG(INF, "\t[OCR] 3.4-3.5 volt\n");
  155. if (resp & (1 << 23))
  156. MSG(INF, "\t[OCR] 3.5-3.6 volt\n");
  157. if (resp & (1 << 24))
  158. MSG(INF, "\t[OCR] Switching to 1.8V Accepted (S18A)\n");
  159. if (resp & (1 << 30))
  160. MSG(INF, "\t[OCR] Card Capacity Status (CCS)\n");
  161. if (resp & (1UL << 31))
  162. MSG(INF, "\t[OCR] Card Power Up Status (Idle)\n");
  163. else
  164. MSG(INF, "\t[OCR] Card Power Up Status (Busy)\n");
  165. #endif
  166. }
  167. void msdc_dump_io_resp(u32 resp)
  168. {
  169. #if MSDC_DEBUG
  170. u32 flags = (resp >> 8) & 0xFF;
  171. char *state[] = {"DIS", "CMD", "TRN", "RFU"};
  172. if (flags & (1 << 7))
  173. MSG(INF, "\t[IO] COM_CRC_ERR\n");
  174. if (flags & (1 << 6))
  175. MSG(INF, "\t[IO] Illgal command\n");
  176. if (flags & (1 << 3))
  177. MSG(INF, "\t[IO] Error\n");
  178. if (flags & (1 << 2))
  179. MSG(INF, "\t[IO] RFU\n");
  180. if (flags & (1 << 1))
  181. MSG(INF, "\t[IO] Function number error\n");
  182. if (flags & (1 << 0))
  183. MSG(INF, "\t[IO] Out of range\n");
  184. MSG(INF, "[IO] State: %s, Data:0x%x\n", state[(resp >> 12) & 0x3], resp & 0xFF);
  185. #endif
  186. }
  187. void msdc_dump_rca_resp(u32 resp)
  188. {
  189. #if MSDC_DEBUG
  190. u32 card_status = (((resp >> 15) & 0x1) << 23) |
  191. (((resp >> 14) & 0x1) << 22) |
  192. (((resp >> 13) & 0x1) << 19) |
  193. (resp & 0x1fff);
  194. MSG(INF, "\t[RCA] 0x%x\n", resp >> 16);
  195. msdc_dump_card_status(card_status);
  196. #endif
  197. }
  198. static void msdc_dump_dbg_register(struct mmc_host *host)
  199. {
  200. #if MSDC_DEBUG
  201. u32 base = host->base;
  202. u32 i;
  203. for (i = 0; i <= 0x3c; i++) {
  204. MSDC_WRITE32(MSDC_DBG_SEL, i);
  205. MSG(INF, "[SD%d]SW_DBG_SEL: write reg[%x] to 0x%x\n", host->id, OFFSET_MSDC_DBG_SEL, i);
  206. MSG(INF, "[SD%d]SW_DBG_OUT: read reg[%x] to 0x%x\n", host->id, OFFSET_MSDC_DBG_OUT, MSDC_READ32(MSDC_DBG_OUT));
  207. }
  208. MSDC_WRITE32(MSDC_DBG_SEL, 0);
  209. #endif
  210. }
  211. void msdc_dump_register(struct mmc_host *host)
  212. {
  213. #if MSDC_DEBUG
  214. u32 base = host->base;
  215. MSG(INF, "[SD%d] Reg[%x] MSDC_CFG = 0x%x\n", host->id, OFFSET_MSDC_CFG, MSDC_READ32(MSDC_CFG));
  216. MSG(INF, "[SD%d] Reg[%x] MSDC_IOCON = 0x%x\n", host->id, OFFSET_MSDC_IOCON, MSDC_READ32(MSDC_IOCON));
  217. MSG(INF, "[SD%d] Reg[%x] MSDC_PS = 0x%x\n", host->id, OFFSET_MSDC_PS, MSDC_READ32(MSDC_PS));
  218. MSG(INF, "[SD%d] Reg[%x] MSDC_INT = 0x%x\n", host->id, OFFSET_MSDC_INT, MSDC_READ32(MSDC_INT));
  219. MSG(INF, "[SD%d] Reg[%x] MSDC_INTEN = 0x%x\n", host->id, OFFSET_MSDC_INTEN, MSDC_READ32(MSDC_INTEN));
  220. MSG(INF, "[SD%d] Reg[%x] MSDC_FIFOCS = 0x%x\n", host->id, OFFSET_MSDC_FIFOCS, MSDC_READ32(MSDC_FIFOCS));
  221. MSG(INF, "[SD%d] Reg[%x] MSDC_TXDATA = not read\n", host->id, OFFSET_MSDC_TXDATA);
  222. MSG(INF, "[SD%d] Reg[%x] MSDC_RXDATA = not read\n", host->id, OFFSET_MSDC_RXDATA);
  223. MSG(INF, "[SD%d] Reg[%x] SDC_CFG = 0x%x\n", host->id, OFFSET_SDC_CFG, MSDC_READ32(SDC_CFG));
  224. MSG(INF, "[SD%d] Reg[%x] SDC_CMD = 0x%x\n", host->id, OFFSET_SDC_CMD, MSDC_READ32(SDC_CMD));
  225. MSG(INF, "[SD%d] Reg[%x] SDC_ARG = 0x%x\n", host->id, OFFSET_SDC_ARG, MSDC_READ32(SDC_ARG));
  226. MSG(INF, "[SD%d] Reg[%x] SDC_STS = 0x%x\n", host->id, OFFSET_SDC_STS, MSDC_READ32(SDC_STS));
  227. MSG(INF, "[SD%d] Reg[%x] SDC_RESP0 = 0x%x\n", host->id, OFFSET_SDC_RESP0, MSDC_READ32(SDC_RESP0));
  228. MSG(INF, "[SD%d] Reg[%x] SDC_RESP1 = 0x%x\n", host->id, OFFSET_SDC_RESP1, MSDC_READ32(SDC_RESP1));
  229. MSG(INF, "[SD%d] Reg[%x] SDC_RESP2 = 0x%x\n", host->id, OFFSET_SDC_RESP2, MSDC_READ32(SDC_RESP2));
  230. MSG(INF, "[SD%d] Reg[%x] SDC_RESP3 = 0x%x\n", host->id, OFFSET_SDC_RESP3, MSDC_READ32(SDC_RESP3));
  231. MSG(INF, "[SD%d] Reg[%x] SDC_BLK_NUM = 0x%x\n", host->id, OFFSET_SDC_BLK_NUM, MSDC_READ32(SDC_BLK_NUM));
  232. MSG(INF, "[SD%d] Reg[%x] SDC_VOL_CHG = 0x%x\n", host->id, OFFSET_SDC_VOL_CHG, MSDC_READ32(SDC_VOL_CHG));
  233. MSG(INF, "[SD%d] Reg[%x] SDC_CSTS = 0x%x\n", host->id, OFFSET_SDC_CSTS, MSDC_READ32(SDC_CSTS));
  234. MSG(INF, "[SD%d] Reg[%x] SDC_CSTS_EN = 0x%x\n", host->id, OFFSET_SDC_CSTS_EN, MSDC_READ32(SDC_CSTS_EN));
  235. MSG(INF, "[SD%d] Reg[%x] SDC_DATCRC_STS = 0x%x\n", host->id, OFFSET_SDC_DCRC_STS, MSDC_READ32(SDC_DCRC_STS));
  236. MSG(INF, "[SD%d] Reg[%x] EMMC_CFG0 = 0x%x\n", host->id, OFFSET_EMMC_CFG0, MSDC_READ32(EMMC_CFG0));
  237. MSG(INF, "[SD%d] Reg[%x] EMMC_CFG1 = 0x%x\n", host->id, OFFSET_EMMC_CFG1, MSDC_READ32(EMMC_CFG1));
  238. MSG(INF, "[SD%d] Reg[%x] EMMC_STS = 0x%x\n", host->id, OFFSET_EMMC_STS, MSDC_READ32(EMMC_STS));
  239. MSG(INF, "[SD%d] Reg[%x] EMMC_IOCON = 0x%x\n", host->id, OFFSET_EMMC_IOCON, MSDC_READ32(EMMC_IOCON));
  240. MSG(INF, "[SD%d] Reg[%x] SDC_ACMD_RESP = 0x%x\n", host->id, OFFSET_SDC_ACMD_RESP, MSDC_READ32(SDC_ACMD_RESP));
  241. MSG(INF, "[SD%d] Reg[%x] SDC_ACMD19_TRG = 0x%x\n", host->id, OFFSET_SDC_ACMD19_TRG, MSDC_READ32(SDC_ACMD19_TRG));
  242. MSG(INF, "[SD%d] Reg[%x] SDC_ACMD19_STS = 0x%x\n", host->id, OFFSET_SDC_ACMD19_STS, MSDC_READ32(SDC_ACMD19_STS));
  243. /* Cooment out reading this register since it cause system hang in CTP
  244. MSG(INF, "[SD%d] Reg[%x] DMA_SA_HIGH4BIT= 0x%x\n", host->id, OFFSET_MSDC_DMA_SA_HIGH, MSDC_READ32(OFFSET_MSDC_DMA_SA_HIGH));
  245. */
  246. MSG(INF, "[SD%d] Reg[%x] DMA_SA = 0x%x\n", host->id, OFFSET_MSDC_DMA_SA, MSDC_READ32(MSDC_DMA_SA));
  247. MSG(INF, "[SD%d] Reg[%x] DMA_CA = 0x%x\n", host->id, OFFSET_MSDC_DMA_CA, MSDC_READ32(MSDC_DMA_CA));
  248. MSG(INF, "[SD%d] Reg[%x] DMA_CTRL = 0x%x\n", host->id, OFFSET_MSDC_DMA_CTRL, MSDC_READ32(MSDC_DMA_CTRL));
  249. MSG(INF, "[SD%d] Reg[%x] DMA_CFG = 0x%x\n", host->id, OFFSET_MSDC_DMA_CFG, MSDC_READ32(MSDC_DMA_CFG));
  250. MSG(INF, "[SD%d] Reg[%x] SW_DBG_SEL = 0x%x\n", host->id, OFFSET_MSDC_DBG_SEL, MSDC_READ32(MSDC_DBG_SEL));
  251. MSG(INF, "[SD%d] Reg[%x] SW_DBG_OUT = 0x%x\n", host->id, OFFSET_MSDC_DBG_OUT, MSDC_READ32(MSDC_DBG_OUT));
  252. MSG(INF, "[SD%d] Reg[%x] PATCH_BIT0 = 0x%x\n", host->id, OFFSET_MSDC_PATCH_BIT0,MSDC_READ32(MSDC_PATCH_BIT0));
  253. MSG(INF, "[SD%d] Reg[%x] PATCH_BIT1 = 0x%x\n", host->id, OFFSET_MSDC_PATCH_BIT1,MSDC_READ32(MSDC_PATCH_BIT1));
  254. MSG(INF, "[SD%d] Reg[%x] PATCH_BIT2 = 0x%x\n", host->id, OFFSET_MSDC_PATCH_BIT2,MSDC_READ32(MSDC_PATCH_BIT2));
  255. MSG(INF, "[SD%d] Reg[%x] PAD_TUNE0 = 0x%x\n", host->id, OFFSET_MSDC_PAD_TUNE0, MSDC_READ32(MSDC_PAD_TUNE0));
  256. MSG(INF, "[SD%d] Reg[%x] PAD_TUNE1 = 0x%x\n", host->id, OFFSET_MSDC_PAD_TUNE1, MSDC_READ32(MSDC_PAD_TUNE1));
  257. MSG(INF, "[SD%d] Reg[%x] DAT_RD_DLY0 = 0x%x\n", host->id, OFFSET_MSDC_DAT_RDDLY0,MSDC_READ32(MSDC_DAT_RDDLY0));
  258. MSG(INF, "[SD%d] Reg[%x] DAT_RD_DLY1 = 0x%x\n", host->id, OFFSET_MSDC_DAT_RDDLY1,MSDC_READ32(MSDC_DAT_RDDLY1));
  259. MSG(INF, "[SD%d] Reg[%x] HW_DBG_SEL = 0x%x\n", host->id, OFFSET_MSDC_HW_DBG, MSDC_READ32(MSDC_HW_DBG));
  260. MSG(INF, "[SD%d] Reg[%x] MAIN_VER = 0x%x\n", host->id, OFFSET_MSDC_VERSION, MSDC_READ32(MSDC_VERSION));
  261. if (host->id == 0) {
  262. #if !defined(FPGA_PLATFORM)
  263. MSG(INF, "[SD%d] Reg[%x] EMMC_TOP_CONTROL = 0x%x\n", host->id, OFFSET_EMMC_TOP_CONTROL, MSDC_READ32(EMMC_TOP_CONTROL));
  264. MSG(INF, "[SD%d] Reg[%x] EMMC50_TOP_CMD = 0x%x\n", host->id, OFFSET_EMMC_TOP_CMD, MSDC_READ32(EMMC_TOP_CMD));
  265. MSG(INF, "[SD%d] Reg[%x] TOP_EMMC50_PAD_CTL0 = 0x%x\n", host->id, OFFSET_TOP_EMMC50_PAD_CTL0, MSDC_READ32(TOP_EMMC50_PAD_CTL0));
  266. MSG(INF, "[SD%d] Reg[%x] TOP_EMMC50_PAD_DS_TUNE = 0x%x\n", host->id, OFFSET_TOP_EMMC50_PAD_DS_TUNE, MSDC_READ32(TOP_EMMC50_PAD_DS_TUNE));
  267. MSG(INF, "[SD%d] Reg[%x] TOP_EMMC50_PAD_DAT0_TUNE = 0x%x\n", host->id, OFFSET_TOP_EMMC50_PAD_DAT0_TUNE, MSDC_READ32(TOP_EMMC50_PAD_DAT0_TUNE));
  268. MSG(INF, "[SD%d] Reg[%x] TOP_EMMC50_PAD_DAT1_TUNE = 0x%x\n", host->id, OFFSET_TOP_EMMC50_PAD_DAT1_TUNE, MSDC_READ32(TOP_EMMC50_PAD_DAT1_TUNE));
  269. MSG(INF, "[SD%d] Reg[%x] TOP_EMMC50_PAD_DAT2_TUNE = 0x%x\n", host->id, OFFSET_TOP_EMMC50_PAD_DAT2_TUNE, MSDC_READ32(TOP_EMMC50_PAD_DAT2_TUNE));
  270. MSG(INF, "[SD%d] Reg[%x] TOP_EMMC50_PAD_DAT3_TUNE = 0x%x\n", host->id, OFFSET_TOP_EMMC50_PAD_DAT3_TUNE, MSDC_READ32(TOP_EMMC50_PAD_DAT3_TUNE));
  271. MSG(INF, "[SD%d] Reg[%x] TOP_EMMC50_PAD_DAT4_TUNE = 0x%x\n", host->id, OFFSET_TOP_EMMC50_PAD_DAT4_TUNE, MSDC_READ32(TOP_EMMC50_PAD_DAT4_TUNE));
  272. MSG(INF, "[SD%d] Reg[%x] TOP_EMMC50_PAD_DAT5_TUNE = 0x%x\n", host->id, OFFSET_TOP_EMMC50_PAD_DAT5_TUNE, MSDC_READ32(TOP_EMMC50_PAD_DAT5_TUNE));
  273. MSG(INF, "[SD%d] Reg[%x] TOP_EMMC50_PAD_DAT6_TUNE = 0x%x\n", host->id, OFFSET_TOP_EMMC50_PAD_DAT6_TUNE, MSDC_READ32(TOP_EMMC50_PAD_DAT6_TUNE));
  274. MSG(INF, "[SD%d] Reg[%x] TOP_EMMC50_PAD_DAT7_TUNE = 0x%x\n", host->id, OFFSET_TOP_EMMC50_PAD_DAT7_TUNE, MSDC_READ32(TOP_EMMC50_PAD_DAT7_TUNE));
  275. #endif
  276. MSG(INF, "[SD%d] Reg[%x] EMMC51_CFG0 = 0x%x\n", host->id, OFFSET_EMMC51_CFG0, MSDC_READ32(EMMC51_CFG0));
  277. MSG(INF, "[SD%d] Reg[%x] EMMC50_CFG0 = 0x%x\n", host->id, OFFSET_EMMC50_CFG0, MSDC_READ32(EMMC50_CFG0));
  278. MSG(INF, "[SD%d] Reg[%x] EMMC50_CFG1 = 0x%x\n", host->id, OFFSET_EMMC50_CFG1, MSDC_READ32(EMMC50_CFG1));
  279. MSG(INF, "[SD%d] Reg[%x] EMMC50_CFG2 = 0x%x\n", host->id, OFFSET_EMMC50_CFG2, MSDC_READ32(EMMC50_CFG2));
  280. MSG(INF, "[SD%d] Reg[%x] EMMC50_CFG3 = 0x%x\n", host->id, OFFSET_EMMC50_CFG3, MSDC_READ32(EMMC50_CFG3));
  281. MSG(INF, "[SD%d] Reg[%x] EMMC50_CFG4 = 0x%x\n", host->id, OFFSET_EMMC50_CFG4, MSDC_READ32(EMMC50_CFG4));
  282. } else if (host->id == 3) {
  283. MSG(INF, "[SD%d] Reg[%x] EMMC50_PAD_CTL0 = 0x%x\n", host->id, OFFSET_EMMC50_PAD_CTL0, MSDC_READ32(EMMC50_PAD_CTL0));
  284. MSG(INF, "[SD%d] Reg[%x] EMMC50_PAD_DS_CTL0 = 0x%x\n", host->id, OFFSET_EMMC50_PAD_DS_CTL0, MSDC_READ32(EMMC50_PAD_DS_CTL0));
  285. MSG(INF, "[SD%d] Reg[%x] EMMC50_PAD_DS_TUNE = 0x%x\n", host->id, OFFSET_EMMC50_PAD_DS_TUNE, MSDC_READ32(EMMC50_PAD_DS_TUNE));
  286. MSG(INF, "[SD%d] Reg[%x] EMMC50_PAD_CMD_TUNE = 0x%x\n", host->id, OFFSET_EMMC50_PAD_CMD_TUNE, MSDC_READ32(EMMC50_PAD_CMD_TUNE));
  287. MSG(INF, "[SD%d] Reg[%x] EMMC50_PAD_DAT01_TUNE = 0x%x\n", host->id, OFFSET_EMMC50_PAD_DAT01_TUNE, MSDC_READ32(EMMC50_PAD_DAT01_TUNE));
  288. MSG(INF, "[SD%d] Reg[%x] EMMC50_PAD_DAT23_TUNE = 0x%x\n", host->id, OFFSET_EMMC50_PAD_DAT23_TUNE, MSDC_READ32(EMMC50_PAD_DAT23_TUNE));
  289. MSG(INF, "[SD%d] Reg[%x] EMMC50_PAD_DAT45_TUNE = 0x%x\n", host->id, OFFSET_EMMC50_PAD_DAT45_TUNE, MSDC_READ32(EMMC50_PAD_DAT45_TUNE));
  290. MSG(INF, "[SD%d] Reg[%x] EMMC50_PAD_DAT67_TUNE = 0x%x\n", host->id, OFFSET_EMMC50_PAD_DAT67_TUNE, MSDC_READ32(EMMC50_PAD_DAT67_TUNE));
  291. MSG(INF, "[SD%d] Reg[%x] EMMC51_CFG0 = 0x%x\n", host->id, OFFSET_EMMC51_CFG0, MSDC_READ32(EMMC51_CFG0));
  292. MSG(INF, "[SD%d] Reg[%x] EMMC50_CFG0 = 0x%x\n", host->id, OFFSET_EMMC50_CFG0, MSDC_READ32(EMMC50_CFG0));
  293. MSG(INF, "[SD%d] Reg[%x] EMMC50_CFG1 = 0x%x\n", host->id, OFFSET_EMMC50_CFG1, MSDC_READ32(EMMC50_CFG1));
  294. MSG(INF, "[SD%d] Reg[%x] EMMC50_CFG2 = 0x%x\n", host->id, OFFSET_EMMC50_CFG2, MSDC_READ32(EMMC50_CFG2));
  295. MSG(INF, "[SD%d] Reg[%x] EMMC50_CFG3 = 0x%x\n", host->id, OFFSET_EMMC50_CFG3, MSDC_READ32(EMMC50_CFG3));
  296. MSG(INF, "[SD%d] Reg[%x] EMMC50_CFG4 = 0x%x\n", host->id, OFFSET_EMMC50_CFG4, MSDC_READ32(EMMC50_CFG4));
  297. }
  298. MSG(INF, "[SD%d] Reg[%x] SDC_FIFO_CFG = 0x%x\n", host->id, OFFSET_SDC_FIFO_CFG, MSDC_READ32(SDC_FIFO_CFG));
  299. msdc_dump_dbg_register(host);
  300. #endif
  301. }
  302. #if defined(MMC_MSDC_DRV_CTP)
  303. #define HS400_BACKUP_REG_NUM (42)
  304. static struct msdc_reg_control hs400_backup_reg_list[HS400_BACKUP_REG_NUM] = {
  305. //{addr, mask, value, default value, func},
  306. {(MSDC0_BASE + OFFSET_MSDC_PATCH_BIT1), (MSDC_PB1_WRDAT_CRCS_TA_CNTR), 0x0, 0x1, NULL},//0xB4[2:0],
  307. {(MSDC0_BASE + OFFSET_MSDC_PATCH_BIT0), (MSDC_PB0_INT_DAT_LATCH_CK_SEL), 0x0, 0x0, NULL},//0xB0[9:7]
  308. {(MSDC0_BASE + OFFSET_MSDC_IOCON), (MSDC_IOCON_R_D_SMPL), 0x0, 0x0, NULL},//0x04[2:2]
  309. {(MSDC0_BASE + OFFSET_MSDC_PAD_TUNE0), (MSDC_PAD_TUNE0_DATRRDLY), 0x0, 0x0, NULL},//0xEC[12:8]
  310. {(MSDC0_BASE + OFFSET_MSDC_IOCON), (MSDC_IOCON_DDLSEL), 0x0, 0x0, NULL},//0x04[3:3]
  311. {(MSDC0_BASE + OFFSET_MSDC_DAT_RDDLY0), (MSDC_DAT_RDDLY0_D3), 0x0, 0x0, NULL},//0xF0[4:0]
  312. {(MSDC0_BASE + OFFSET_MSDC_DAT_RDDLY0), (MSDC_DAT_RDDLY0_D2), 0x0, 0x0, NULL},//0xF0[12:8]
  313. {(MSDC0_BASE + OFFSET_MSDC_DAT_RDDLY0), (MSDC_DAT_RDDLY0_D1), 0x0, 0x0, NULL},//0xF0[20:16]
  314. {(MSDC0_BASE + OFFSET_MSDC_DAT_RDDLY0), (MSDC_DAT_RDDLY0_D0), 0x0, 0x0, NULL},//0xF0[28:24]
  315. {(MSDC0_BASE + OFFSET_MSDC_DAT_RDDLY1), (MSDC_DAT_RDDLY1_D7), 0x0, 0x0, NULL},//0xF4[4:0]
  316. {(MSDC0_BASE + OFFSET_MSDC_DAT_RDDLY1), (MSDC_DAT_RDDLY1_D6), 0x0, 0x0, NULL},//0xF4[12:8]
  317. {(MSDC0_BASE + OFFSET_MSDC_DAT_RDDLY1), (MSDC_DAT_RDDLY1_D5), 0x0, 0x0, NULL},//0xF4[20:16]
  318. {(MSDC0_BASE + OFFSET_MSDC_DAT_RDDLY1), (MSDC_DAT_RDDLY1_D4), 0x0, 0x0, NULL},//0xF4[28:24]
  319. {(MSDC0_BASE + OFFSET_MSDC_IOCON), (MSDC_IOCON_R_D_SMPL_SEL), 0x0, 0x0, NULL},//0x04[5:5]
  320. {(MSDC0_BASE + OFFSET_MSDC_IOCON), (MSDC_IOCON_R_D0SPL), 0x0, 0x0, NULL},//0x04[16:16]
  321. {(MSDC0_BASE + OFFSET_MSDC_IOCON), (MSDC_IOCON_W_D_SMPL), 0x0, 0x0, NULL},//0x04[8:8]
  322. {(MSDC0_BASE + OFFSET_MSDC_PAD_TUNE0), (MSDC_PAD_TUNE0_DATWRDLY), 0x0, 0x0, NULL},//0xEC[4:0]
  323. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT01_TUNE), (MSDC_EMMC50_PAD_DAT0_RXDLY3SEL), 0x0, 0x0, NULL},//0x190[0:0]
  324. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT01_TUNE), (MSDC_EMMC50_PAD_DAT1_RXDLY3SEL), 0x0, 0x0, NULL},//0x190[16:16]
  325. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT23_TUNE), (MSDC_EMMC50_PAD_DAT2_RXDLY3SEL), 0x0, 0x0, NULL},//0x194[0:0]
  326. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT23_TUNE), (MSDC_EMMC50_PAD_DAT3_RXDLY3SEL), 0x0, 0x0, NULL},//0x194[16:16]
  327. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT45_TUNE), (MSDC_EMMC50_PAD_DAT4_RXDLY3SEL), 0x0, 0x0, NULL},//0x198[0:0]
  328. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT45_TUNE), (MSDC_EMMC50_PAD_DAT5_RXDLY3SEL), 0x0, 0x0, NULL},//0x198[16:16]
  329. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT67_TUNE), (MSDC_EMMC50_PAD_DAT6_RXDLY3SEL), 0x0, 0x0, NULL},//0x19C[0:0]
  330. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT67_TUNE), (MSDC_EMMC50_PAD_DAT7_RXDLY3SEL), 0x0, 0x0, NULL},//0x19C[16:16]
  331. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT01_TUNE), (MSDC_EMMC50_PAD_DAT0_RXDLY3), 0x0, 0x0, NULL},//0x190[5:1]
  332. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT01_TUNE), (MSDC_EMMC50_PAD_DAT1_RXDLY3), 0x0, 0x0, NULL},//0x190[21:17]
  333. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT23_TUNE), (MSDC_EMMC50_PAD_DAT2_RXDLY3), 0x0, 0x0, NULL},//0x194[5:1]
  334. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT23_TUNE), (MSDC_EMMC50_PAD_DAT3_RXDLY3), 0x0, 0x0, NULL},//0x194[21:17]
  335. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT45_TUNE), (MSDC_EMMC50_PAD_DAT4_RXDLY3), 0x0, 0x0, NULL},//0x198[5:1]
  336. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT45_TUNE), (MSDC_EMMC50_PAD_DAT5_RXDLY3), 0x0, 0x0, NULL},//0x198[21:17]
  337. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT67_TUNE), (MSDC_EMMC50_PAD_DAT6_RXDLY3), 0x0, 0x0, NULL},//0x19C[5:1]
  338. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT67_TUNE), (MSDC_EMMC50_PAD_DAT7_RXDLY3), 0x0, 0x0, NULL},//0x19C[21:17]
  339. /* _HQA asked cmd line delay 8 and dat line delay 4 under hs400 mode */
  340. {(MSDC0_BASE + OFFSET_EMMC50_PAD_CMD_TUNE), (MSDC_EMMC50_PAD_CMD_TUNE_TXDLY), 0x0, 0x8, NULL},//0x190[5:1]
  341. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT01_TUNE), (MSDC_EMMC50_PAD_DAT0_TXDLY), 0x0, 0x4, NULL},//0x190[5:1]
  342. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT01_TUNE), (MSDC_EMMC50_PAD_DAT1_TXDLY), 0x0, 0x4, NULL},//0x190[21:17]
  343. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT23_TUNE), (MSDC_EMMC50_PAD_DAT2_TXDLY), 0x0, 0x4, NULL},//0x194[5:1]
  344. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT23_TUNE), (MSDC_EMMC50_PAD_DAT3_TXDLY), 0x0, 0x4, NULL},//0x194[21:17]
  345. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT45_TUNE), (MSDC_EMMC50_PAD_DAT4_TXDLY), 0x0, 0x4, NULL},//0x198[5:1]
  346. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT45_TUNE), (MSDC_EMMC50_PAD_DAT5_TXDLY), 0x0, 0x4, NULL},//0x198[21:17]
  347. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT67_TUNE), (MSDC_EMMC50_PAD_DAT6_TXDLY), 0x0, 0x4, NULL},//0x19C[5:1]
  348. {(MSDC0_BASE + OFFSET_EMMC50_PAD_DAT67_TUNE), (MSDC_EMMC50_PAD_DAT7_TXDLY), 0x0, 0x4, NULL},//0x19C[21:17]
  349. };
  350. /* need reset some register while switch to hs400 mode with emmc50
  351. * do stress test need change mode from hs400 to others, so need backup if switched */
  352. int msdc_register_partial_backup_and_reset(struct mmc_host* host)
  353. {
  354. int i = 0, err = 0;
  355. for (i = 0; i < HS400_BACKUP_REG_NUM; i++) {
  356. MSDC_GET_FIELD(hs400_backup_reg_list[i].addr, hs400_backup_reg_list[i].mask, hs400_backup_reg_list[i].value);
  357. MSDC_SET_FIELD(hs400_backup_reg_list[i].addr, hs400_backup_reg_list[i].mask, hs400_backup_reg_list[i].default_value);
  358. if (hs400_backup_reg_list[i].restore_func) {
  359. err = hs400_backup_reg_list[i].restore_func(0);
  360. if (err) {
  361. msdc_pr_err("[%s]: failed to restore reg[0x%x][0x%x], expected value[0x%x], actual value[0x%x] err=0x%x",
  362. __func__, hs400_backup_reg_list[i].addr, hs400_backup_reg_list[i].mask, hs400_backup_reg_list[i].default_value, MSDC_READ32(hs400_backup_reg_list[i].addr), err);
  363. }
  364. }
  365. }
  366. return 0;
  367. }
  368. int msdc_register_partial_restore(struct mmc_host* host)
  369. {
  370. int i = 0, err = 0;
  371. for (i = 0; i < HS400_BACKUP_REG_NUM; i++) {
  372. MSDC_SET_FIELD(hs400_backup_reg_list[i].addr, hs400_backup_reg_list[i].mask, hs400_backup_reg_list[i].value);
  373. if (hs400_backup_reg_list[i].restore_func) {
  374. err = hs400_backup_reg_list[i].restore_func(1);
  375. if (err) {
  376. msdc_pr_err("[%s]:failed to restore reg[0x%x][0x%x], expected value[0x%x], actual value[0x%x] err=0x%x",
  377. __func__, hs400_backup_reg_list[i].addr, hs400_backup_reg_list[i].mask, hs400_backup_reg_list[i].value, MSDC_READ32(hs400_backup_reg_list[i].addr), err);
  378. }
  379. }
  380. }
  381. return 0;
  382. }
  383. #endif
  384. static void msdc_dump_info(struct mmc_host *host)
  385. {
  386. // 1: dump msdc hw register
  387. msdc_dump_register(host);
  388. // 2: For designer
  389. msdc_dump_dbg_register(host);
  390. // 3: check msdc clock gate and clock source
  391. msdc_dump_clock_sts(host);
  392. // 4: check msdc pmic ldo
  393. msdc_dump_ldo_sts(host);
  394. // 5: check msdc gpio
  395. msdc_dump_padctl_by_id(host->id);
  396. }
  397. void msdc_clr_fifo(struct mmc_host *host)
  398. {
  399. u32 base = host->base;
  400. MSDC_CLR_FIFO();
  401. }
  402. void msdc_reset(struct mmc_host *host)
  403. {
  404. u32 base = host->base;
  405. MSDC_RESET();
  406. }
  407. void msdc_abort(struct mmc_host *host)
  408. {
  409. u32 base = host->base;
  410. MSG(INF, "[SD%d] Abort: MSDC_FIFOCS=%xh MSDC_PS=%xh SDC_STS=%xh\n",
  411. host->id, MSDC_READ32(MSDC_FIFOCS), MSDC_READ32(MSDC_PS), MSDC_READ32(SDC_STS));
  412. /* reset controller */
  413. msdc_reset(host);
  414. /* clear fifo */
  415. msdc_clr_fifo(host);
  416. /* make sure txfifo and rxfifo are empty */
  417. if (MSDC_TXFIFOCNT() != 0 || MSDC_RXFIFOCNT() != 0) {
  418. MSG(INF, "[SD%d] Abort: TXFIFO(%d), RXFIFO(%d) != 0\n",
  419. host->id, MSDC_TXFIFOCNT(), MSDC_RXFIFOCNT());
  420. }
  421. /* clear all interrupts */
  422. MSDC_WRITE32(MSDC_INT, MSDC_READ32(MSDC_INT));
  423. }
  424. void msdc_set_signal_burst(struct mmc_host *host, int on)
  425. {
  426. u32 base = host->base;
  427. if (on)
  428. MSDC_SET_FIELD(MSDC_PATCH_BIT1, MSDC_PB1_SINGLE_BURST, 1);
  429. else
  430. MSDC_SET_FIELD(MSDC_PATCH_BIT1, MSDC_PB1_SINGLE_BURST, 0);
  431. }
  432. void msdc_enable_dcm(struct mmc_host *host, int on, u8 div1, u8 div2)
  433. {
  434. u32 base = host->base;
  435. /* Attention: write 0 is enable, write 1 is disable */
  436. MSDC_SET_FIELD(MSDC_PATCH_BIT1, MSDC_PB1_DCM_EN, !!on);
  437. }
  438. void msdc_set_axi_burst_len(struct mmc_host *host, u8 len)
  439. {
  440. u32 base = host->base;
  441. /* set axi burst len */
  442. MSDC_SET_FIELD(EMMC50_CFG2, MSDC_EMMC50_CFG2_AXI_SET_LEN, len);
  443. }
  444. void msdc_set_axi_outstanding(struct mmc_host *host, u8 rw, u8 num)
  445. {
  446. u32 base = host->base;
  447. /* set axi outstanding num */
  448. if (rw == 0) /* read */
  449. MSDC_SET_FIELD(EMMC50_CFG2, MSDC_EMMC50_CFG2_AXI_RD_OUTS_NUM, num);
  450. else /* write */
  451. MSDC_SET_FIELD(EMMC50_CFG3, MSDC_EMMC50_CFG3_OUTS_WR, num);
  452. }
  453. void msdc_set_startbit(struct mmc_host *host, u8 start_bit)
  454. {
  455. u32 base = host->base;
  456. msdc_priv_t *priv = (msdc_priv_t*)host->priv;
  457. /* set start bit */
  458. MSG(INF, "msdc_set_startbit %d\n", (int)start_bit);
  459. MSDC_SET_FIELD(MSDC_CFG, MSDC_CFG_START_BIT, start_bit);
  460. priv->start_bit = start_bit;
  461. }
  462. void msdc_set_smpl(struct mmc_host *host, u8 HS400, u8 mode, u8 type)
  463. {
  464. u32 base = host->base;
  465. msdc_priv_t *priv = (msdc_priv_t*)host->priv;
  466. if (type == TYPE_CMD_RESP_EDGE) {
  467. #if defined(MMC_MSDC_DRV_CTP) || defined(SLT)
  468. if (HS400) {
  469. // eMMC5.0 only output resp at CLK pin, so no need to select DS pin
  470. MSDC_SET_FIELD(EMMC50_CFG0, MSDC_EMMC50_CFG_PADCMD_LATCHCK, 0); //latch cmd resp at CLK pin
  471. MSDC_SET_FIELD(EMMC50_CFG0, MSDC_EMMC50_CFG_CMD_RESP_SEL, 0);//latch cmd resp
  472. // 0: from delay path for eMMC4.5
  473. // 1: from FIFO path for eMMC5.0
  474. }
  475. #endif
  476. if (mode == MSDC_SMPL_RISING || mode == MSDC_SMPL_FALLING) {
  477. #if 0 // HS400 tune MSDC_EMMC50_CFG_CMD_EDGE_SEL use DS latch, but now no DS latch
  478. if (HS400) {
  479. MSDC_SET_FIELD(EMMC50_CFG0, MSDC_EMMC50_CFG_CMD_EDGE_SEL, mode);
  480. } else {
  481. MSDC_SET_FIELD(MSDC_IOCON, MSDC_IOCON_RSPL, mode);
  482. }
  483. #else
  484. MSDC_SET_FIELD(MSDC_IOCON, MSDC_IOCON_RSPL, mode);
  485. #endif
  486. priv->rsmpl = mode;
  487. } else {
  488. msdc_pr_err("[%s]:SD%d err resp latch parm:HS400=%d,type=%d,mode=%d\n", __func__, host->id, HS400, type, mode);
  489. }
  490. } else if (type == TYPE_WRITE_CRC_EDGE) {
  491. /* FIX ME, test if always using DS pin can work */
  492. #if 1
  493. #if defined(MMC_MSDC_DRV_CTP) || defined(SLT)
  494. if (HS400)
  495. MSDC_SET_FIELD(EMMC50_CFG0, MSDC_EMMC50_CFG_CRC_STS_SEL, 1);//latch write crc status at DS pin
  496. else
  497. #endif
  498. MSDC_SET_FIELD(EMMC50_CFG0, MSDC_EMMC50_CFG_CRC_STS_SEL, 0);//latch write crc status at CLK pin
  499. #else
  500. MSDC_SET_FIELD(EMMC50_CFG0, MSDC_EMMC50_CFG_CRC_STS_SEL, 1);//latch write crc status at DS pin
  501. #endif
  502. if (mode == MSDC_SMPL_RISING || mode == MSDC_SMPL_FALLING) {
  503. #if defined(MMC_MSDC_DRV_CTP) || defined(SLT)
  504. if (HS400)
  505. MSDC_SET_FIELD(EMMC50_CFG0, MSDC_EMMC50_CFG_CRC_STS_EDGE, mode);
  506. else
  507. #endif
  508. MSDC_SET_FIELD(MSDC_PATCH_BIT2, MSDC_PB2_CFGCRCSTSEDGE, mode);
  509. } else {
  510. msdc_pr_err("[%s]:SD%d err wcrc latch parm:HS400=%d,type=%d,mode=%d\n", __func__, host->id, HS400, type, mode);
  511. }
  512. } else if (type == TYPE_READ_DATA_EDGE) {
  513. #if defined(MMC_MSDC_DRV_CTP) || defined(SLT)
  514. if (HS400) {
  515. //for HS400, start bit is output both on rising and falling edge
  516. msdc_set_startbit(host, START_AT_RISING_AND_FALLING);
  517. priv->start_bit = START_AT_RISING_AND_FALLING;
  518. } else
  519. #endif
  520. {
  521. //for the other mode, start bit is only output on rising edge. but DDR50 can try falling edge if error casued by pad delay
  522. if (host->card && mmc_card_ddr(host->card)) {
  523. msdc_set_startbit(host, mode);
  524. priv->start_bit = mode;
  525. } else {
  526. msdc_set_startbit(host, START_AT_RISING);
  527. priv->start_bit = START_AT_RISING;
  528. }
  529. }
  530. if (mode == MSDC_SMPL_RISING || mode == MSDC_SMPL_FALLING) {
  531. MSDC_SET_FIELD(MSDC_IOCON, MSDC_IOCON_R_D_SMPL_SEL, 0);
  532. MSDC_SET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_RD_DAT_SEL, mode);
  533. } else {
  534. msdc_pr_err("[%s]:SD%d err read latch parm:HS400=%d,type=%d,mode=%d\n", __func__, host->id, HS400, type, mode);
  535. }
  536. }
  537. }
  538. static u32 msdc_cal_timeout(struct mmc_host *host, u64 ns, u32 clks, u32 clkunit)
  539. {
  540. u32 timeout, clk_ns;
  541. clk_ns = 1000000000UL / host->cur_bus_clk;
  542. timeout = ns / clk_ns + clks;
  543. timeout = timeout / clkunit;
  544. return timeout;
  545. }
  546. void msdc_set_timeout(struct mmc_host *host, u64 ns, u32 clks)
  547. {
  548. u32 base = host->base;
  549. u32 timeout, clk_ns;
  550. u32 mode = 0;
  551. if (host->cur_bus_clk == 0) {
  552. timeout = 0;
  553. } else {
  554. clk_ns = 1000000000UL / host->cur_bus_clk;
  555. timeout = (ns + clk_ns - 1) / clk_ns + clks;
  556. timeout = (timeout + (1 << TMO_IN_CLK_2POWER) - 1) >> TMO_IN_CLK_2POWER; /* in 1048576 sclk cycle unit */
  557. MSDC_GET_FIELD(MSDC_CFG, MSDC_CFG_CKMOD, mode);
  558. timeout = mode >= 2 ? timeout * 2 : timeout; //DDR mode will double the clk cycles for data timeout
  559. timeout = timeout > 1 ? timeout - 1 : 0;
  560. timeout = timeout > 255 ? 255 : timeout;
  561. }
  562. MSDC_SET_FIELD(SDC_CFG, SDC_CFG_DTOC, timeout);
  563. MSG(OPS, "[SD%d] Set read data timeout: %dus %dclks -> %d x 1048576 cycles, mode:%d, clk_freq=%dKHz\n",
  564. host->id, (u32)(ns/1000), clks, timeout + 1, mode, (host->cur_bus_clk / 1000));
  565. }
  566. void msdc_set_blklen(struct mmc_host *host, u32 blklen)
  567. {
  568. msdc_priv_t *priv = (msdc_priv_t*)host->priv;
  569. host->blklen = blklen;
  570. priv->cfg.blklen = blklen;
  571. msdc_clr_fifo(host);
  572. }
  573. void msdc_set_blknum(struct mmc_host *host, u32 blknum)
  574. {
  575. u32 base = host->base;
  576. MSDC_WRITE32(SDC_BLK_NUM, blknum);
  577. }
  578. void msdc_set_dmode(struct mmc_host *host, int mode)
  579. {
  580. msdc_priv_t *priv = (msdc_priv_t*)host->priv;
  581. #if defined(MSDC_ENABLE_DMA_MODE)
  582. priv->cfg.mode = mode;
  583. #endif
  584. if (mode == MSDC_MODE_PIO) {
  585. host->blk_read = msdc_pio_bread;
  586. host->blk_write = msdc_pio_bwrite;
  587. #if defined(MSDC_ENABLE_DMA_MODE)
  588. } else {
  589. host->blk_read = msdc_dma_bread;
  590. host->blk_write = msdc_dma_bwrite;
  591. #endif
  592. }
  593. }
  594. int msdc_get_dmode(struct mmc_host *host)
  595. {
  596. msdc_priv_t *priv = (msdc_priv_t*)host->priv;
  597. int mode = priv->cfg.mode;
  598. return mode;
  599. }
  600. void msdc_set_pio_bits(struct mmc_host *host, int bits)
  601. {
  602. msdc_priv_t *priv = (msdc_priv_t*)host->priv;
  603. priv->pio_bits = bits;
  604. }
  605. void msdc_set_autocmd(struct mmc_host *host, int cmd, int on)
  606. {
  607. msdc_priv_t *priv = (msdc_priv_t*)host->priv;
  608. if (on) {
  609. priv->autocmd |= cmd;
  610. } else {
  611. priv->autocmd &= ~cmd;
  612. }
  613. }
  614. void msdc_set_reliable_write(struct mmc_host *host, int on)
  615. {
  616. msdc_priv_t *priv = (msdc_priv_t*)host->priv;
  617. if (on) {
  618. priv->cmd23_flags |= MSDC_RELIABLE_WRITE;
  619. } else {
  620. priv->cmd23_flags &= ~MSDC_RELIABLE_WRITE;
  621. }
  622. }
  623. void msdc_set_autocmd23_feature(struct mmc_host *host, int on)
  624. {
  625. u32 base = host->base;
  626. if (on) {
  627. MSDC_SET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_BLKNUM_SEL, 0);
  628. } else {
  629. MSDC_SET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_BLKNUM_SEL, 1);
  630. }
  631. }
  632. int msdc_send_cmd(struct mmc_host *host, struct mmc_command *cmd)
  633. {
  634. msdc_priv_t *priv = (msdc_priv_t*)host->priv;
  635. u32 base = host->base;
  636. u32 opcode = cmd->opcode;
  637. u32 rsptyp;
  638. u32 rawcmd;
  639. u32 timeout = cmd->timeout;
  640. u32 error = MMC_ERR_NONE;
  641. u32 blknum;
  642. #ifdef FEATURE_MMC_CMDQ
  643. u32 cmdq_reg_setting=0;
  644. if (opcode == MMC_SET_QUEUE_CONTEXT) {
  645. cmd->rsptyp = RESP_R1;
  646. cmdq_reg_setting=(MMC_SET_QUEUE_CONTEXT<<1)|1;
  647. } else if (opcode == MMC_SET_QUEUE_ADDRESS) {
  648. cmd->rsptyp = RESP_R1;
  649. cmdq_reg_setting=(MMC_SET_QUEUE_ADDRESS<<1)|1;
  650. } else if (opcode == MMC_WRITE_REQUESTED_QUEUE || opcode == MMC_READ_REQUESTED_QUEUE) {
  651. cmd->rsptyp = RESP_R1;
  652. } else if ( opcode==MMC_CMD_SEND_STATUS ) {
  653. cmd->rsptyp = RESP_R1;
  654. if ( MSDC_READ32(EMMC51_CFG0)&0x1 ) {
  655. cmdq_reg_setting=(MMC_CMD_SEND_STATUS<<1)|1;
  656. }
  657. } else if (opcode == 62) { //Light: To be clarified
  658. //Chiachun: for SS vendor command
  659. cmd->rsptyp = RESP_R1;
  660. }
  661. #if !defined(FEATURE_MMC_USE_EMMC51_CFG0_FOR_CMD44_45)
  662. cmdq_reg_setting=0;
  663. #endif
  664. #endif
  665. rsptyp=cmd->rsptyp;
  666. /* rawcmd :
  667. * vol_swt << 30 | auto_cmd << 28 | blklen << 16 | go_irq << 15 |
  668. * stop << 14 | rw << 13 | dtype << 11 | rsptyp << 7 | brk << 6 | opcode
  669. */
  670. rawcmd = (opcode & ~(SD_CMD_BIT | SD_CMD_APP_BIT)) |
  671. msdc_rsp[rsptyp] << 7 | host->blklen << 16;
  672. if (opcode == MMC_CMD_WRITE_MULTIPLE_BLOCK) {
  673. rawcmd |= ((2 << 11) | (1 << 13));
  674. if (priv->autocmd & MSDC_AUTOCMD12) {
  675. rawcmd |= (1 << 28);
  676. } else if (priv->autocmd & MSDC_AUTOCMD23) {
  677. rawcmd |= (2 << 28);
  678. }
  679. } else if (opcode == MMC_CMD_WRITE_BLOCK || opcode == MMC_CMD50) {
  680. rawcmd |= ((1 << 11) | (1 << 13));
  681. } else if (opcode == MMC_CMD_READ_MULTIPLE_BLOCK) {
  682. rawcmd |= (2 << 11);
  683. if (priv->autocmd & MSDC_AUTOCMD12) {
  684. rawcmd |= (1 << 28);
  685. } else if (priv->autocmd & MSDC_AUTOCMD23) {
  686. rawcmd |= (2 << 28);
  687. }
  688. } else if (opcode == MMC_CMD_READ_SINGLE_BLOCK ||
  689. opcode == SD_ACMD_SEND_SCR ||
  690. opcode == SD_CMD_SWITCH ||
  691. opcode == MMC_CMD_SEND_EXT_CSD ||
  692. opcode == MMC_CMD_SEND_WRITE_PROT ||
  693. opcode == MMC_CMD_SEND_WRITE_PROT_TYPE ||
  694. opcode == MMC_CMD21) {
  695. rawcmd |= (1 << 11);
  696. } else if (opcode == MMC_CMD_STOP_TRANSMISSION) {
  697. rawcmd |= (1 << 14);
  698. rawcmd &= ~(0x0FFF << 16);
  699. } else if (opcode == SD_IO_RW_EXTENDED) {
  700. if (cmd->arg & 0x80000000) /* R/W flag */
  701. rawcmd |= (1 << 13);
  702. if ((cmd->arg & 0x08000000) && ((cmd->arg & 0x1FF) > 1))
  703. rawcmd |= (2 << 11); /* multiple block mode */
  704. else
  705. rawcmd |= (1 << 11);
  706. } else if (opcode == SD_IO_RW_DIRECT) {
  707. if ((cmd->arg & 0x80000000) && ((cmd->arg >> 9) & 0x1FFFF))/* I/O abt */
  708. rawcmd |= (1 << 14);
  709. #if defined(FEATURE_MMC_SDCARD) || defined(FEATURE_MMC_SDIO)
  710. } else if (opcode == SD_CMD_VOL_SWITCH) {
  711. rawcmd |= (1 << 30);
  712. } else if (opcode == SD_CMD_SEND_TUNING_BLOCK) {
  713. rawcmd |= (1 << 11); /* CHECKME */
  714. if (priv->autocmd & MSDC_AUTOCMD19)
  715. rawcmd |= (3 << 28);
  716. } else if (opcode == MMC_CMD_GO_IRQ_STATE) {
  717. rawcmd |= (1 << 15);
  718. #endif
  719. #ifdef FEATURE_MMC_CMDQ
  720. } else if (opcode == MMC_READ_REQUESTED_QUEUE) {
  721. rawcmd |= (2 << 11);
  722. } else if (opcode == MMC_WRITE_REQUESTED_QUEUE) {
  723. rawcmd |= ((2 << 11) | (1 << 13));
  724. //} else if ( (opcode==MMC_CMD_SEND_STATUS) && (cmd->arg&SEND_QUEUE_STATUS_SQS_BIT_SHIFT) ) {
  725. #endif
  726. }
  727. /* autocmd23 with packed cmd, this feature is conflict with data tag, reliable write, and force flush cache */
  728. if (host->card && mmc_card_mmc(host->card)) {
  729. blknum = MSDC_READ32(SDC_BLK_NUM);
  730. if (priv->autocmd & MSDC_AUTOCMD23) {
  731. #if MSDC_USE_DATA_TAG
  732. blknum |= (1 << 29);
  733. blknum &= ~(1 << 30);
  734. #endif
  735. #if MSDC_USE_RELIABLE_WRITE
  736. if (opcode == MMC_CMD_WRITE_MULTIPLE_BLOCK) {
  737. blknum |= (1 << 31);
  738. blknum &= ~(1 << 30);
  739. } else {
  740. blknum &= ~(1 << 31);
  741. }
  742. #endif
  743. #if MSDC_USE_FORCE_FLUSH
  744. blknum |= (1 << 24);
  745. blknum &= ~(1 << 30);
  746. #endif
  747. #if MSDC_USE_PACKED_CMD
  748. blknum &= ~0xffff;
  749. blknum |= (1 << 30);
  750. #endif
  751. }
  752. if (priv->cmd23_flags & MSDC_RELIABLE_WRITE) {
  753. blknum |= (1 << 31);
  754. blknum &= ~(1 << 30);
  755. }
  756. MSDC_WRITE32(SDC_BLK_NUM, blknum);
  757. }
  758. MSG(CMD, "[SD%d] CMD(%d): ARG(0x%x), RAW(0x%x), BLK_NUM(0x%x) RSP(%d)\n",
  759. host->id, (opcode & ~(SD_CMD_BIT | SD_CMD_APP_BIT)), cmd->arg, rawcmd, MSDC_READ32(SDC_BLK_NUM), rsptyp);
  760. #ifdef FEATURE_MMC_CMDQ
  761. if ( cmdq_reg_setting ) {
  762. //cmdq_reg_setting|=(0x6a<<22)|(0x6a<<12)|(msdc_rsp[rsptyp]<<7);
  763. cmdq_reg_setting|=(msdc_rsp[rsptyp]<<7);
  764. //MSG(INF, "busy status: %x\n", MSDC_READ32(SDC_STS));
  765. if (SDC_IS_CMD_BUSY()) {
  766. WAIT_COND(!SDC_IS_CMD_BUSY(), cmd->timeout, timeout);
  767. if (timeout == 0) {
  768. error = MMC_ERR_TIMEOUT;
  769. msdc_pr_err("[SD%d] CMD(%d): SDC_IS_CMD_BUSY timeout\n",
  770. host->id, (opcode & ~(SD_CMD_BIT | SD_CMD_APP_BIT)));
  771. goto end;
  772. }
  773. }
  774. MSDC_SET_FIELD(EMMC51_CFG0, 0xfff, (cmdq_reg_setting));
  775. SDC_SEND_CMD(0, cmd->arg);
  776. goto end;
  777. }
  778. #endif
  779. if (opcode == MMC_CMD_SEND_STATUS) {
  780. if (SDC_IS_CMD_BUSY()) {
  781. WAIT_COND(!SDC_IS_CMD_BUSY(), cmd->timeout, timeout);
  782. if (timeout == 0) {
  783. error = MMC_ERR_TIMEOUT;
  784. msdc_pr_err("[SD%d] CMD(%d): SDC_IS_CMD_BUSY timeout\n",
  785. host->id, (opcode & ~(SD_CMD_BIT | SD_CMD_APP_BIT)));
  786. goto end;
  787. }
  788. }
  789. } else {
  790. if (SDC_IS_BUSY()) {
  791. WAIT_COND(!SDC_IS_BUSY(), 1000, timeout);
  792. if (timeout == 0) {
  793. error = MMC_ERR_TIMEOUT;
  794. msdc_pr_err("[SD%d] CMD(%d): SDC_IS_BUSY timeout\n",
  795. host->id, (opcode & ~(SD_CMD_BIT | SD_CMD_APP_BIT)));
  796. goto end;
  797. }
  798. }
  799. }
  800. #ifdef FEATURE_MMC_CMDQ
  801. MSDC_SET_FIELD(EMMC51_CFG0, 0xfff, 0);
  802. #endif
  803. SDC_SEND_CMD(rawcmd, cmd->arg);
  804. end:
  805. cmd->error = error;
  806. return error;
  807. }
  808. int msdc_wait_rsp(struct mmc_host *host, struct mmc_command *cmd)
  809. {
  810. u32 base = host->base;
  811. u32 rsptyp = cmd->rsptyp;
  812. u32 status;
  813. #if defined(FEATURE_MMC_CMDQ) || MSDC_DEBUG
  814. u32 opcode = (cmd->opcode & ~(SD_CMD_BIT | SD_CMD_APP_BIT));
  815. #endif
  816. u32 error = MMC_ERR_NONE;
  817. u32 wints = MSDC_INT_CMDTMO | MSDC_INT_CMDRDY | MSDC_INT_RSPCRCERR |
  818. MSDC_INT_ACMDRDY | MSDC_INT_ACMDCRCERR | MSDC_INT_ACMDTMO |
  819. MSDC_INT_ACMD19_DONE;
  820. #if defined(FEATURE_MMC_SDIO)
  821. wints |= MSDC_INT_SDIOIRQ;
  822. #endif
  823. if (cmd->opcode == MMC_CMD_GO_IRQ_STATE)
  824. wints |= MSDC_INT_MMCIRQ;
  825. status = msdc_intr_wait(host, wints);
  826. #if defined(FEATURE_MMC_SDIO)
  827. if (status & MSDC_INT_SDIOIRQ) {
  828. if (mmc_card_sdio(host->card)) {
  829. struct sdio_func *func = host->card->io_func[0];
  830. if (func->irq_handler)
  831. func->irq_handler(func);
  832. }
  833. }
  834. #endif
  835. if (status == 0) {
  836. error = MMC_ERR_TIMEOUT;
  837. goto end;
  838. }
  839. if ((status & MSDC_INT_RSPCRCERR) || (status & MSDC_INT_ACMDCRCERR)) {
  840. error = MMC_ERR_BADCRC;
  841. MSG(RSP, "[SD%d] CMD(%d): RSP(%d) ERR(BADCRC)\n",
  842. host->id, opcode, cmd->rsptyp);
  843. } else if ((status & MSDC_INT_CMDTMO) || (status & MSDC_INT_ACMDTMO)) {
  844. error = MMC_ERR_TIMEOUT;
  845. MSG(RSP, "[SD%d] CMD(%d): RSP(%d) ERR(CMDTO) AUTO(%d)\n",
  846. host->id, opcode, cmd->rsptyp, status & MSDC_INT_ACMDTMO ? 1: 0);
  847. } else if ((status & MSDC_INT_CMDRDY) || (status & MSDC_INT_ACMDRDY) ||
  848. (status & MSDC_INT_ACMD19_DONE)) {
  849. switch (rsptyp) {
  850. case RESP_NONE:
  851. MSG(RSP, "[SD%d] CMD(%d): RSP(%d)\n", host->id, opcode, rsptyp);
  852. break;
  853. case RESP_R2:
  854. {
  855. u32 *resp = &cmd->resp[0];
  856. *resp++ = MSDC_READ32(SDC_RESP3);
  857. *resp++ = MSDC_READ32(SDC_RESP2);
  858. *resp++ = MSDC_READ32(SDC_RESP1);
  859. *resp++ = MSDC_READ32(SDC_RESP0);
  860. MSG(RSP, "[SD%d] CMD(%d): RSP(%d) = 0x%x 0x%x 0x%x 0x%x\n",
  861. host->id, opcode, cmd->rsptyp, cmd->resp[0], cmd->resp[1], cmd->resp[2], cmd->resp[3]);
  862. break;
  863. }
  864. default: /* Response types 1, 3, 4, 5, 6, 7(1b) */
  865. if ((status & MSDC_INT_ACMDRDY) || (status & MSDC_INT_ACMD19_DONE))
  866. cmd->resp[0] = MSDC_READ32(SDC_ACMD_RESP);
  867. else
  868. cmd->resp[0] = MSDC_READ32(SDC_RESP0);
  869. MSG(RSP, "[SD%d] CMD(%d): RSP(%d) = 0x%x AUTO(%d)\n", host->id, opcode,
  870. cmd->rsptyp, cmd->resp[0],
  871. ((status & MSDC_INT_ACMDRDY) || (status & MSDC_INT_ACMD19_DONE)) ? 1 : 0);
  872. break;
  873. }
  874. } else {
  875. error = MMC_ERR_INVALID;
  876. MSG(INF, "[SD%d] CMD(%d): RSP(%d) ERR(INVALID), Status:%x\n",
  877. host->id, opcode, cmd->rsptyp, status);
  878. }
  879. end:
  880. if (rsptyp == RESP_R1B) {
  881. while ((MSDC_READ32(MSDC_PS) & 0x10000) != 0x10000);
  882. }
  883. #if MSDC_DEBUG
  884. if ((error == MMC_ERR_NONE) && (MSG_EVT_MASK & MSG_EVT_RSP)) {
  885. switch(cmd->rsptyp) {
  886. case RESP_R1:
  887. case RESP_R1B:
  888. msdc_dump_card_status(cmd->resp[0]);
  889. break;
  890. case RESP_R3:
  891. msdc_dump_ocr_reg(cmd->resp[0]);
  892. break;
  893. case RESP_R5:
  894. msdc_dump_io_resp(cmd->resp[0]);
  895. break;
  896. case RESP_R6:
  897. msdc_dump_rca_resp(cmd->resp[0]);
  898. break;
  899. }
  900. }
  901. #endif
  902. cmd->error = error;
  903. if (cmd->opcode == MMC_CMD_APP_CMD && error == MMC_ERR_NONE) {
  904. host->app_cmd = 1;
  905. host->app_cmd_arg = cmd->arg;
  906. } else {
  907. host->app_cmd = 0;
  908. }
  909. #ifdef FEATURE_MMC_CMDQ
  910. if ( (opcode == MMC_SET_QUEUE_CONTEXT) ||
  911. (opcode == MMC_SET_QUEUE_ADDRESS) ||
  912. (opcode == MMC_CMD_SEND_STATUS) ) {
  913. //MSDC_WRITE32(EMMC51_CFG0, 0);
  914. }
  915. #endif
  916. #ifdef FEATURE_MMC_CMDQ
  917. //MSDC_SET_FIELD(EMMC51_CFG0, 0xfff, 0);
  918. #endif
  919. return error;
  920. }
  921. int msdc_cmd(struct mmc_host *host, struct mmc_command *cmd)
  922. {
  923. int err;
  924. err = msdc_send_cmd(host, cmd);
  925. if (err != MMC_ERR_NONE)
  926. return err;
  927. err = msdc_wait_rsp(host, cmd);
  928. if (err == MMC_ERR_BADCRC) {
  929. u32 base = host->base;
  930. u32 tmp = MSDC_READ32(SDC_CMD);
  931. /* check if data is used by the command or not */
  932. if (tmp & SDC_CMD_DTYP) {
  933. msdc_abort_handler(host, 1);
  934. }
  935. #if defined(FEATURE_MMC_CM_TUNING)
  936. //Light: For CMD17/18/24/25, tuning may have been done by
  937. // msdc_abort_handler()->msdc_get_card_status()->msdc_cmd() for CMD13->msdc_tune_cmdrsp().
  938. // This means that 2nd invocation of msdc_tune_cmdrsp() occurs here!
  939. //--> To Do: consider if 2nd invocation can be avoid
  940. if ( host->app_cmd!=2 ) { //Light 20121225, to prevent recursive call path: msdc_tune_cmdrsp->msdc_app_cmd->msdc_cmd->msdc_tune_cmdrsp
  941. err = msdc_tune_cmdrsp(host, cmd);
  942. if (err != MMC_ERR_NONE) {
  943. msdc_pr_err("[%s:%d]tune cmd fail\n", __func__, __LINE__);
  944. }
  945. }
  946. /* After tuning, erase sequence will error */
  947. if ((cmd->opcode == MMC_CMD_ERASE_GROUP_START) || (cmd->opcode == MMC_CMD_ERASE_GROUP_END) ||
  948. (cmd->opcode == MMC_CMD_ERASE_WR_BLK_START) || (cmd->opcode == MMC_CMD_ERASE_WR_BLK_END)) {
  949. err = MMC_ERR_ERASE_SEQ;
  950. }
  951. #endif
  952. }
  953. return err;
  954. }
  955. int msdc_cmd_stop(struct mmc_host *host, struct mmc_command *cmd)
  956. {
  957. struct mmc_command stop;
  958. u32 err;
  959. if (mmc_card_mmc(host->card) && (cmd) && (cmd->opcode == 18))
  960. stop.rsptyp = RESP_R1;
  961. else
  962. stop.rsptyp = RESP_R1B;
  963. stop.opcode = MMC_CMD_STOP_TRANSMISSION;
  964. stop.arg = 0;
  965. stop.retries = CMD_RETRIES;
  966. stop.timeout = CMD_TIMEOUT;
  967. err = msdc_cmd(host, &stop);
  968. #if defined(FEATURE_MMC_POWER_ON_WP) || defined(MTK_EMMC_SUPPORT_OTP)
  969. if ((err == MMC_ERR_NONE) && (stop.resp[0] & R1_WP_VIOLATION)) {
  970. err = MMC_ERR_WP_VIOLATION;
  971. }
  972. #endif
  973. return err;
  974. }
  975. #if defined(FEATURE_MMC_SDIO)
  976. int msdc_cmd_io_abort(struct mmc_host *host)
  977. {
  978. struct mmc_command abort;
  979. memset(&abort, 0, sizeof(struct mmc_command));
  980. abort.opcode = SD_IO_RW_DIRECT;
  981. abort.arg = 0x80000000; /* write */
  982. abort.arg |= 0 << 28; /* function 0 */
  983. abort.arg |= SDIO_CCCR_ABORT << 9; /* address */
  984. abort.arg |= 0; /* abort function 0 */
  985. abort.rsptyp = RESP_R1B;
  986. abort.retries = CMD_RETRIES;
  987. abort.timeout = CMD_TIMEOUT;
  988. return msdc_cmd(host, &abort);
  989. }
  990. #endif
  991. static int msdc_get_card_status(struct mmc_host *host, u32 *status)
  992. {
  993. int err;
  994. struct mmc_command cmd;
  995. cmd.opcode = MMC_CMD_SEND_STATUS;
  996. cmd.arg = host->card->rca << 16;
  997. cmd.rsptyp = RESP_R1;
  998. cmd.retries = CMD_RETRIES;
  999. cmd.timeout = CMD_TIMEOUT;
  1000. err = msdc_cmd(host, &cmd);
  1001. if (err == MMC_ERR_NONE) {
  1002. *status = cmd.resp[0];
  1003. }
  1004. return err;
  1005. }
  1006. #if defined(FEATURE_MMC_POWER_ON_WP) || defined(MTK_EMMC_SUPPORT_OTP)
  1007. int msdc_get_wp_err(struct mmc_host *host)
  1008. {
  1009. u32 status;
  1010. int err = msdc_get_card_status(host, &status);
  1011. if (err == MMC_ERR_NONE) {
  1012. if (status & R1_WP_VIOLATION)
  1013. err = MMC_ERR_WP_VIOLATION;
  1014. }
  1015. return err;
  1016. }
  1017. #endif
  1018. int msdc_abort_handler(struct mmc_host *host, int abort_card)
  1019. {
  1020. u32 status = 0;
  1021. u32 state = 0;
  1022. u32 err;
  1023. if (!host->card)
  1024. return 0;
  1025. while (state != 4) { // until status to "tran"; //20130125 Comment out by Light
  1026. msdc_abort(host);
  1027. err=msdc_get_card_status(host, &status);
  1028. //To do: move the following 2 if clause into msdc_get_card_status() or write as a function
  1029. #if 0 //Light: turn if off before I verify it
  1030. //#if defined(MMC_MSDC_DRV_CTP)
  1031. if (err == MMC_ERR_BADCRC) {
  1032. msdc_pr_err("[%s:%d]cmd13 crc error\n", __func__, __LINE__);
  1033. msdc_tune_update_cmdrsp(host, count++);
  1034. if (count >= 512)
  1035. count = 0;
  1036. }
  1037. if (err == MMC_ERR_TIMEOUT) {
  1038. msdc_pr_err("[%s:%d]cmd13 timeout\n", __func__, __LINE__);
  1039. msdc_tune_update_cmdrsp(host, count++);
  1040. if (count >= 512)
  1041. count = 0;
  1042. }
  1043. #else
  1044. if (err != MMC_ERR_NONE) {
  1045. msdc_pr_err("[%s:%d]cmd13 fail\n", __func__, __LINE__);
  1046. goto out;
  1047. }
  1048. #endif
  1049. state = R1_CURRENT_STATE(status);
  1050. #if MMC_DEBUG
  1051. mmc_dump_card_status(status);
  1052. #endif
  1053. MSG(INF, "check card state<%d>\n", state);
  1054. if (state == 5 || state == 6) {
  1055. if (abort_card) {
  1056. MSG(INF, "state<%d> need cmd12 to stop\n", state);
  1057. err=msdc_cmd_stop(host, NULL);
  1058. //To do: move the following 2 if clause into msdc_cmd_stop() or write as a function
  1059. #if 0 //Light: turn if off before I verify it
  1060. //#if defined(MMC_MSDC_DRV_CTP)
  1061. if (err == MMC_ERR_BADCRC) {
  1062. msdc_pr_err("[%s:%d]cmd12 crc error\n", __func__, __LINE__);
  1063. msdc_tune_update_cmdrsp(host, count++);
  1064. if (count >= 512)
  1065. count = 0;
  1066. continue;
  1067. }
  1068. if (err == MMC_ERR_TIMEOUT) {
  1069. msdc_pr_err("[%s:%d]cmd12 timeout\n", __func__, __LINE__);
  1070. msdc_tune_update_cmdrsp(host, count++);
  1071. if (count >= 512)
  1072. count = 0;
  1073. continue;
  1074. }
  1075. #else
  1076. if (err != MMC_ERR_NONE) {
  1077. msdc_pr_err("[%s:%d]cmd12 fail\n", __func__, __LINE__);
  1078. goto out;
  1079. }
  1080. #endif
  1081. }
  1082. //break; //20130125 Light
  1083. } else if (state == 7) { // busy in programing
  1084. MSG(INF, "state<%d> card is busy\n", state);
  1085. mdelay(100);
  1086. } else if (state != 4) {
  1087. MSG(INF, "state<%d> ??? \n", state);
  1088. goto out;
  1089. }
  1090. }
  1091. msdc_abort(host);
  1092. return 0;
  1093. out:
  1094. msdc_pr_err("[SD%d] data abort failed\n",host->id);
  1095. return 1;
  1096. }
  1097. void msdc_intr_unmask(struct mmc_host *host, u32 bits)
  1098. {
  1099. u32 base = host->base;
  1100. u32 val;
  1101. val = MSDC_READ32(MSDC_INTEN);
  1102. val |= bits;
  1103. MSDC_WRITE32(MSDC_INTEN, val);
  1104. }
  1105. void msdc_intr_mask(struct mmc_host *host, u32 bits)
  1106. {
  1107. u32 base = host->base;
  1108. u32 val;
  1109. val = MSDC_READ32(MSDC_INTEN);
  1110. val &= ~bits;
  1111. MSDC_WRITE32(MSDC_INTEN, val);
  1112. }
  1113. static int msdc_app_cmd(struct mmc_host *host)
  1114. {
  1115. struct mmc_command appcmd;
  1116. int err = MMC_ERR_NONE;
  1117. int retries = 10;
  1118. appcmd.opcode = MMC_CMD_APP_CMD;
  1119. appcmd.arg = host->app_cmd_arg;
  1120. appcmd.rsptyp = RESP_R1;
  1121. appcmd.retries = CMD_RETRIES;
  1122. appcmd.timeout = CMD_TIMEOUT;
  1123. do {
  1124. err = msdc_cmd(host, &appcmd);
  1125. if (err == MMC_ERR_NONE)
  1126. break;
  1127. } while (retries--);
  1128. return err;
  1129. }
  1130. #if defined(MSDC_ENABLE_DMA_MODE)
  1131. int msdc_dma_send_sandisk_fwid(struct mmc_host *host, uchar *buf,u32 opcode, ulong nblks)
  1132. {
  1133. struct mmc_command cmd;
  1134. struct mmc_data data;
  1135. BUG_ON(nblks > host->max_phys_segs);
  1136. //MSG(OPS, "[SD%d] Read data %d blks from 0x%x\n", host->id, nblks, src);
  1137. /* send read command */
  1138. cmd.opcode = opcode;
  1139. cmd.rsptyp = RESP_R1;
  1140. cmd.arg = 0; //src;
  1141. cmd.retries = 0;
  1142. cmd.timeout = CMD_TIMEOUT;
  1143. data.blks = nblks;
  1144. data.buf = (u8*)buf;
  1145. data.timeout = 100; /* 100ms */
  1146. return msdc_dma_transfer(host, &cmd, &data);
  1147. }
  1148. #endif
  1149. int msdc_pio_read(struct mmc_host *host, u32 *ptr, u32 size)
  1150. {
  1151. int err = MMC_ERR_NONE;
  1152. #if defined(MMC_MSDC_DRV_CTP)
  1153. u8 *ptr8 = (u8 *)ptr;
  1154. u16 *ptr16 = (u16 *)ptr;
  1155. u32 pio_bits = ((msdc_priv_t*)host->priv)->pio_bits;
  1156. #else
  1157. u32 pio_bits = 32;
  1158. #endif
  1159. u32 base = host->base;
  1160. u32 ints = MSDC_INT_DATCRCERR | MSDC_INT_DATTMO | MSDC_INT_XFER_COMPL;
  1161. //u32 timeout = 100000;
  1162. u32 status;
  1163. u32 totalsz = size;
  1164. u8 done = 0;
  1165. u32 size_per_round;
  1166. u32 dcrc;
  1167. u8* u8ptr;
  1168. #if defined(FEATURE_MMC_SDIO)
  1169. ints |= MSDC_INT_SDIOIRQ;
  1170. #endif
  1171. while (1) {
  1172. #if defined(MSDC_USE_IRQ)
  1173. //For CTP only
  1174. DisableIRQ();
  1175. status = msdc_irq_sts[host->id];
  1176. msdc_irq_sts[host->id] &= ~ints;
  1177. EnableIRQ();
  1178. #else
  1179. status = MSDC_READ32(MSDC_INT);
  1180. MSDC_WRITE32(MSDC_INT, status);
  1181. #if defined(FEATURE_MMC_SDIO)
  1182. if (status & MSDC_INT_SDIOIRQ) {
  1183. MSG(INF, "(%s)INT status:0x%x\n", __func__, status);
  1184. if ( (host->id == 2) || (host->id == 3) ) {
  1185. mmc_sdio_proc_pending_irqs(host->card);
  1186. //sdio_read_pending_irq(host->card->io_func[0]);
  1187. }
  1188. }
  1189. #endif
  1190. #endif
  1191. if (status & ~ints) {
  1192. MSG(WRN, "[SD%d]<CHECKME> Unexpected INT(0x%x)\n",
  1193. host->id, status);
  1194. }
  1195. if (status & MSDC_INT_DATCRCERR) {
  1196. MSDC_GET_FIELD(SDC_DCRC_STS, SDC_DCRC_STS_POS|SDC_DCRC_STS_NEG, dcrc);
  1197. msdc_pr_err("[SD%d] DAT CRC error (0x%x), Left:%d/%d bytes, RXFIFO:%d,dcrc:0x%x\n",
  1198. host->id, status, size, totalsz, MSDC_RXFIFOCNT(),dcrc);
  1199. err = MMC_ERR_BADCRC;
  1200. break;
  1201. } else if (status & MSDC_INT_DATTMO) {
  1202. msdc_pr_err("[SD%d] DAT TMO error (0x%x), Left: %d/%d bytes, RXFIFO:%d\n",
  1203. host->id, status, size, totalsz, MSDC_RXFIFOCNT());
  1204. err = MMC_ERR_TIMEOUT;
  1205. break;
  1206. } else if (status & MSDC_INT_ACMDCRCERR) {
  1207. MSDC_GET_FIELD(SDC_DCRC_STS, SDC_DCRC_STS_POS|SDC_DCRC_STS_NEG, dcrc);
  1208. msdc_pr_err("[SD%d] AUTOCMD CRC error (0x%x), Left:%d/%d bytes, RXFIFO:%d,dcrc:0x%x\n",
  1209. host->id, status, size, totalsz, MSDC_RXFIFOCNT(),dcrc);
  1210. err = MMC_ERR_ACMD_RSPCRC;
  1211. break;
  1212. } else if (status & MSDC_INT_XFER_COMPL) {
  1213. done = 1;
  1214. }
  1215. if (size == 0 && done)
  1216. break;
  1217. /* Note. RXFIFO count would be aligned to 4-bytes alignment size */
  1218. //if ((size >= MSDC_FIFO_THD) && (MSDC_RXFIFOCNT() >= MSDC_FIFO_THD))
  1219. if (size > 0) {
  1220. int left;
  1221. if ( (size >= MSDC_FIFO_THD) && (MSDC_RXFIFOCNT() >= MSDC_FIFO_THD) )
  1222. left = MSDC_FIFO_THD;
  1223. else if ( (size < MSDC_FIFO_THD) && (MSDC_RXFIFOCNT() >= size) )
  1224. left = size;
  1225. else
  1226. continue;
  1227. size_per_round = left;
  1228. #if defined(MMC_MSDC_DRV_CTP)
  1229. if (pio_bits == 8) {
  1230. do {
  1231. #ifdef MTK_MSDC_DUMP_FIFO
  1232. MSG(INF, "0x%x ",MSDC_FIFO_READ8());
  1233. #else
  1234. *ptr8++ = MSDC_FIFO_READ8();
  1235. #endif
  1236. left--;
  1237. } while (left);
  1238. } else if (pio_bits == 16) {
  1239. do {
  1240. if (left > 1) {
  1241. #ifdef MTK_MSDC_DUMP_FIFO
  1242. MSG(INF, "0x%x ", MSDC_FIFO_READ16());
  1243. #else
  1244. *ptr16++ = MSDC_FIFO_READ16();
  1245. #endif
  1246. left-=2;
  1247. } else {
  1248. u8ptr = (u8*)ptr;
  1249. while (left--) {
  1250. #ifdef MTK_MSDC_DUMP_FIFO
  1251. MSG(INF, "0x%x ",MSDC_FIFO_READ8());
  1252. #else
  1253. *u8ptr++ = MSDC_FIFO_READ8();
  1254. #endif
  1255. }
  1256. }
  1257. } while (left);
  1258. } else
  1259. #endif
  1260. { //if (pio_bits==32 )
  1261. do {
  1262. if (left > 3) {
  1263. #ifdef MTK_MSDC_DUMP_FIFO
  1264. MSG(INF, "0x%x ", MSDC_FIFO_READ32());
  1265. #else
  1266. *ptr++ = MSDC_FIFO_READ32();
  1267. #endif
  1268. left-=4;
  1269. } else {
  1270. u8ptr = (u8*)ptr;
  1271. while (left--) {
  1272. #ifdef MTK_MSDC_DUMP_FIFO
  1273. MSG(INF, "0x%x ", MSDC_FIFO_READ8());
  1274. #else
  1275. *u8ptr++ = MSDC_FIFO_READ8();
  1276. #endif
  1277. }
  1278. }
  1279. } while (left);
  1280. }
  1281. size -= size_per_round;
  1282. //MSG(FIO, "[SD%d] Read %d bytes, RXFIFOCNT: %d, Left: %d/%d\n",
  1283. // host->id, size_per_round, MSDC_RXFIFOCNT(), size, totalsz);
  1284. }
  1285. }
  1286. if (err != MMC_ERR_NONE) {
  1287. msdc_abort(host); /* reset internal fifo and state machine */
  1288. msdc_pr_err("[SD%d] %d-bit PIO Read Error (%d)\n", host->id,
  1289. pio_bits, err);
  1290. }
  1291. return err;
  1292. }
  1293. int msdc_pio_write(struct mmc_host *host, u32 *ptr, u32 size)
  1294. {
  1295. int err = MMC_ERR_NONE;
  1296. u8 *ptr8=(u8 *)ptr;
  1297. u32 base = host->base;
  1298. u32 ints = MSDC_INT_DATCRCERR | MSDC_INT_DATTMO | MSDC_INT_XFER_COMPL;
  1299. //u32 timeout = 250000;
  1300. u32 status;
  1301. #if defined(MMC_MSDC_DRV_CTP) || MSDC_DEBUG
  1302. u32 pio_bits = ((msdc_priv_t*)host->priv)->pio_bits;
  1303. #endif
  1304. u32 size_per_round;
  1305. #if defined(FEATURE_MMC_SDIO)
  1306. ints |= MSDC_INT_SDIOIRQ;
  1307. #endif
  1308. while (1) {
  1309. #if defined(MSDC_USE_IRQ)
  1310. //For CTP only
  1311. DisableIRQ();
  1312. status = msdc_irq_sts[host->id];
  1313. msdc_irq_sts[host->id] &= ~ints;
  1314. EnableIRQ();
  1315. #else
  1316. status = MSDC_READ32(MSDC_INT);
  1317. MSDC_WRITE32(MSDC_INT, status);
  1318. #if defined(FEATURE_MMC_SDIO)
  1319. if (status & MSDC_INT_SDIOIRQ) {
  1320. MSG(INF, "(%s)INT status:0x%x\n", __func__, status);
  1321. if ( (host->id == 2) || (host->id == 3) ) {
  1322. mmc_sdio_proc_pending_irqs(host->card);
  1323. //sdio_read_pending_irq(host->card->io_func[0]);
  1324. }
  1325. }
  1326. #endif
  1327. #endif
  1328. if (status & ~ints) {
  1329. MSG(WRN, "[SD%d]<CHECKME> Unexpected INT(0x%x)\n",
  1330. host->id, status);
  1331. }
  1332. if (status & MSDC_INT_DATCRCERR) {
  1333. msdc_pr_err("[SD%d] DAT CRC error (0x%x), Left DAT: %d bytes\n",
  1334. host->id, status, size);
  1335. err = MMC_ERR_BADCRC;
  1336. break;
  1337. } else if (status & MSDC_INT_DATTMO) {
  1338. msdc_pr_err("[SD%d] DAT TMO error (0x%x), Left DAT: %d bytes, MSDC_FIFOCS=%xh\n",
  1339. host->id, status, size, MSDC_READ32(MSDC_FIFOCS));
  1340. err = MMC_ERR_TIMEOUT;
  1341. break;
  1342. } else if (status & MSDC_INT_ACMDCRCERR) {
  1343. msdc_pr_err("[SD%d] AUTO CMD CRC error (0x%x), Left DAT: %d bytes\n",
  1344. host->id, status, size);
  1345. err = MMC_ERR_ACMD_RSPCRC;
  1346. break;
  1347. } else if (status & MSDC_INT_XFER_COMPL) {
  1348. if (size == 0) {
  1349. MSG(OPS, "[SD%d] all data flushed to card\n", host->id);
  1350. break;
  1351. } else {
  1352. MSG(WRN, "[SD%d]<CHECKME> XFER_COMPL before all data written\n",
  1353. host->id);
  1354. }
  1355. }
  1356. if (size == 0)
  1357. continue;
  1358. if (MSDC_TXFIFOCNT() == 0) {
  1359. int left;
  1360. #if defined(MMC_MSDC_DRV_CTP)
  1361. if ( pio_bits==32 ) {
  1362. if ( size >= MSDC_FIFO_THD )
  1363. left = MSDC_FIFO_THD;
  1364. else
  1365. left = size;
  1366. } else
  1367. #endif
  1368. {
  1369. if ( size >= MSDC_FIFO_SZ )
  1370. left = MSDC_FIFO_SZ;
  1371. else
  1372. left = size;
  1373. }
  1374. size_per_round = left;
  1375. #if defined(MMC_MSDC_DRV_CTP)
  1376. if (pio_bits == 8) {
  1377. do {
  1378. MSDC_FIFO_WRITE8(*ptr8);
  1379. ptr8++;
  1380. left--;
  1381. } while (left);
  1382. } else if (pio_bits == 16) {
  1383. do {
  1384. if (left > 1) {
  1385. MSDC_FIFO_WRITE16(*(u16*)ptr8);
  1386. ptr8+=2;
  1387. left-=2;
  1388. } else {
  1389. while (left--) {
  1390. MSDC_FIFO_WRITE8(*ptr8);
  1391. ptr8++;
  1392. }
  1393. }
  1394. } while (left);
  1395. } else
  1396. #endif
  1397. { //if ( write_unit==4 )
  1398. do {
  1399. if (left > 3) {
  1400. MSDC_FIFO_WRITE32(*(u32*)ptr8);
  1401. ptr8+=4;
  1402. left-=4;
  1403. } else {
  1404. while (left--) {
  1405. MSDC_FIFO_WRITE8(*ptr8);
  1406. ptr8++;
  1407. }
  1408. }
  1409. } while (left);
  1410. }
  1411. size -= size_per_round;
  1412. }
  1413. }
  1414. if (err != MMC_ERR_NONE) {
  1415. msdc_abort(host); /* reset internal fifo and state machine */
  1416. MSG(OPS, "[SD%d] %d-bit PIO Write Error (%d)\n", host->id,
  1417. pio_bits, err);
  1418. }
  1419. return err;
  1420. }
  1421. #if defined(FEATURE_EMCP)
  1422. int msdc_pio_get_sandisk_fwid(struct mmc_host *host, uchar *dst)
  1423. {
  1424. u32 blksz = host->blklen;
  1425. int err = MMC_ERR_NONE, derr = MMC_ERR_NONE;
  1426. struct mmc_command cmd;
  1427. ulong *ptr = (ulong *)dst;
  1428. //MSG(OPS, "[SD%d] Read data %d bytes from 0x%x\n", host->id, nblks * blksz, src);
  1429. msdc_clr_fifo(host);
  1430. msdc_set_blknum(host, 1);
  1431. msdc_set_blklen(host, blksz);
  1432. msdc_set_timeout(host, 100000000, 0);
  1433. /* send read command */
  1434. cmd.opcode = MMC_CMD21;
  1435. cmd.rsptyp = RESP_R1;
  1436. cmd.arg = 0;
  1437. cmd.retries = 0;
  1438. cmd.timeout = CMD_TIMEOUT;
  1439. err = msdc_cmd(host, &cmd);
  1440. if (err != MMC_ERR_NONE)
  1441. goto done;
  1442. err = derr = msdc_pio_read(host, (u32*)ptr, 1 * blksz);
  1443. done:
  1444. if (err != MMC_ERR_NONE) {
  1445. msdc_pr_err("[SD%d] Read data error (%d)(%d)\n", host->id, derr, err);
  1446. if (derr != MMC_ERR_NONE)
  1447. msdc_abort_handler(host, 1);
  1448. }
  1449. return (derr == MMC_ERR_NONE) ? err : derr;
  1450. }
  1451. int msdc_pio_send_sandisk_fwid(struct mmc_host *host,uchar *src)
  1452. {
  1453. int err = MMC_ERR_NONE, derr = MMC_ERR_NONE;
  1454. u32 blksz = host->blklen;
  1455. struct mmc_command cmd;
  1456. ulong *ptr = (ulong *)src;
  1457. //MSG(OPS, "[SD%d] Write data %d bytes to 0x%x\n", host->id, nblks * blksz, dst);
  1458. msdc_clr_fifo(host);
  1459. msdc_set_blknum(host, 1);
  1460. msdc_set_blklen(host, blksz);
  1461. /* No need since MSDC always waits 8 cycles for write data timeout */
  1462. /* send write command */
  1463. cmd.opcode = MMC_CMD50;
  1464. cmd.rsptyp = RESP_R1;
  1465. cmd.arg = 0;
  1466. cmd.retries = 0;
  1467. cmd.timeout = CMD_TIMEOUT;
  1468. err = msdc_cmd(host, &cmd);
  1469. if (err != MMC_ERR_NONE)
  1470. goto done;
  1471. err = derr = msdc_pio_write(host, (u32*)ptr, 1 * blksz);
  1472. done:
  1473. if (err != MMC_ERR_NONE) {
  1474. msdc_pr_err("[SD%d] Write data error (%d)(%d)\n", host->id, derr, err);
  1475. if (derr != MMC_ERR_NONE)
  1476. msdc_abort_handler(host, 1);
  1477. }
  1478. return (derr == MMC_ERR_NONE) ? err : derr;
  1479. }
  1480. #endif
  1481. int msdc_pio_bread(struct mmc_host *host, uchar *dst, ulong src, ulong nblks)
  1482. {
  1483. msdc_priv_t *priv = (msdc_priv_t*)host->priv;
  1484. u32 blksz = host->blklen;
  1485. int err = MMC_ERR_NONE, derr = MMC_ERR_NONE, cmd_err = MMC_ERR_NONE;
  1486. int multi;
  1487. struct mmc_command cmd;
  1488. ulong *ptr = (ulong *)dst;
  1489. MSG(OPS, "[SD%d] Read data %d bytes from 0x%x\n", host->id, (unsigned int)nblks * blksz, src);
  1490. multi = nblks > 1 ? 1 : 0;
  1491. msdc_clr_fifo(host);
  1492. msdc_set_blknum(host, nblks);
  1493. msdc_set_blklen(host, blksz);
  1494. msdc_set_timeout(host, 100000000, 0);
  1495. /* send read command */
  1496. cmd.opcode = multi ? MMC_CMD_READ_MULTIPLE_BLOCK : MMC_CMD_READ_SINGLE_BLOCK;
  1497. /* CMD23 with length only 1 */
  1498. if (priv->autocmd & MSDC_AUTOCMD23)
  1499. cmd.opcode = MMC_CMD_READ_MULTIPLE_BLOCK;
  1500. cmd.rsptyp = RESP_R1;
  1501. cmd.arg = src;
  1502. cmd.retries = 0;
  1503. cmd.timeout = CMD_TIMEOUT;
  1504. host->cmd = &cmd;
  1505. err = msdc_cmd(host, &cmd);
  1506. if (err != MMC_ERR_NONE)
  1507. goto done;
  1508. derr = msdc_pio_read(host, (u32*)ptr, nblks * blksz);
  1509. if (derr != MMC_ERR_NONE)
  1510. goto done;
  1511. if (multi && (priv->autocmd == 0)) {
  1512. cmd_err = msdc_cmd_stop(host, &cmd);
  1513. }
  1514. done:
  1515. if (err != MMC_ERR_NONE) {
  1516. /* msdc_cmd will do cmd tuning flow, so if enter here, cmd maybe timeout.
  1517. * need reset host */
  1518. //Light: msdc_abort_handler() combined from preloader/LK and CTP can not meet this purpose,
  1519. // so call msdc_abort() directly
  1520. //msdc_abort_handler(host, 0);
  1521. msdc_abort(host);
  1522. return err; // high level will retry
  1523. }
  1524. if (derr != MMC_ERR_NONE) {
  1525. /* crc error find in data transfer. need reset host & send cmd12 */
  1526. /* if autocmd crc occur, will enter here too */
  1527. msdc_abort_handler(host, 1);
  1528. return derr;
  1529. }
  1530. if (cmd_err != MMC_ERR_NONE) {
  1531. /* msdc_cmd will do cmd tuning flow, so if enter here, cmd maybe timeout
  1532. * need reset host */
  1533. //Light: msdc_abort_handler() combined from preloader/LK and CTP can not meet this purpose,
  1534. // so call msdc_abort() directly
  1535. //msdc_abort_handler(host, 0);
  1536. msdc_abort(host);
  1537. }
  1538. return MMC_ERR_NONE;
  1539. }
  1540. int msdc_pio_bwrite(struct mmc_host *host, ulong dst, uchar *src, ulong nblks)
  1541. {
  1542. msdc_priv_t *priv = (msdc_priv_t*)host->priv;
  1543. u32 base = host->base;
  1544. int err = MMC_ERR_NONE, derr = MMC_ERR_NONE, cmd_err = MMC_ERR_NONE;
  1545. int multi;
  1546. u32 blksz = host->blklen;
  1547. struct mmc_command cmd;
  1548. ulong *ptr = (ulong *)src;
  1549. MSG(OPS, "[SD%d] Write data %d bytes to 0x%x\n", host->id, (unsigned int)nblks * blksz, dst);
  1550. multi = nblks > 1 ? 1 : 0;
  1551. msdc_clr_fifo(host);
  1552. msdc_set_blknum(host, nblks);
  1553. msdc_set_blklen(host, blksz);
  1554. /* send write command */
  1555. cmd.opcode = multi ? MMC_CMD_WRITE_MULTIPLE_BLOCK : MMC_CMD_WRITE_BLOCK;
  1556. /* CMD23 with length only 1 */
  1557. if (priv->autocmd & MSDC_AUTOCMD23)
  1558. cmd.opcode = MMC_CMD_WRITE_MULTIPLE_BLOCK;
  1559. cmd.rsptyp = RESP_R1;
  1560. cmd.arg = dst;
  1561. cmd.retries = 0;
  1562. cmd.timeout = CMD_TIMEOUT;
  1563. err = msdc_cmd(host, &cmd);
  1564. if (err != MMC_ERR_NONE)
  1565. goto done;
  1566. host->cmd = &cmd;
  1567. derr = msdc_pio_write(host, (u32*)ptr, nblks * blksz);
  1568. if (multi && (priv->autocmd == 0)) {
  1569. cmd_err = msdc_cmd_stop(host, &cmd);
  1570. #if defined(FEATURE_MMC_POWER_ON_WP) || defined(MTK_EMMC_SUPPORT_OTP)
  1571. if (cmd.error == MMC_ERR_WP_VIOLATION) {
  1572. return MMC_ERR_WP_VIOLATION;
  1573. }
  1574. #endif
  1575. }
  1576. #if defined(FEATURE_MMC_POWER_ON_WP) || defined(MTK_EMMC_SUPPORT_OTP)
  1577. else if (multi && (priv->autocmd & MSDC_AUTOCMD12)) {
  1578. if (MSDC_READ32(SDC_ACMD_RESP) & R1_WP_VIOLATION) {
  1579. err = MMC_ERR_WP_VIOLATION;
  1580. goto done;
  1581. }
  1582. }
  1583. err = msdc_get_wp_err(host);
  1584. #endif
  1585. done:
  1586. if (err != MMC_ERR_NONE) {
  1587. /* msdc_cmd will do cmd tuning flow, so if enter here, cmd maybe timeout.
  1588. * need reset host */
  1589. //Light: msdc_abort_handler() combined from preloader/LK and CTP can not meet this purpose,
  1590. // so call msdc_abort() directly
  1591. //msdc_abort_handler(host, 0);
  1592. msdc_abort(host);
  1593. return err; // high level will retry
  1594. }
  1595. if (derr != MMC_ERR_NONE) {
  1596. /* crc error find in data transfer. need reset host & send cmd12 */
  1597. /* if autocmd crc occur, will enter here too */
  1598. msdc_abort_handler(host, 1);
  1599. return derr;
  1600. }
  1601. if (cmd_err != MMC_ERR_NONE) {
  1602. /* msdc_cmd will do cmd tuning flow, so if enter here, cmd maybe timeout
  1603. * need reset host */
  1604. //Light: msdc_abort_handler() combined from preloader/LK and CTP can not meet this purpose,
  1605. // so call msdc_abort() directly
  1606. //msdc_abort_handler(host, 0);
  1607. msdc_abort(host);
  1608. return MMC_ERR_FAILED; // high level will retry
  1609. }
  1610. return MMC_ERR_NONE;
  1611. }
  1612. void msdc_reset_timing_register(struct mmc_host *host)
  1613. {
  1614. u32 base = host->base;
  1615. MSDC_WRITE32(MSDC_IOCON, 0x00000000);
  1616. MSDC_WRITE32(MSDC_DAT_RDDLY0, 0x00000000);
  1617. MSDC_WRITE32(MSDC_DAT_RDDLY1, 0x00000000);
  1618. MSDC_WRITE32(MSDC_DAT_RDDLY2, 0x00000000);
  1619. MSDC_WRITE32(MSDC_DAT_RDDLY3, 0x00000000);
  1620. MSDC_WRITE32(MSDC_PATCH_BIT0, 0x403C0006);
  1621. MSDC_WRITE32(MSDC_PATCH_BIT1, 0xFFE20349);
  1622. MSDC_WRITE32(MSDC_PATCH_BIT2, 0x14801803);
  1623. MSDC_WRITE32(MSDC_PAD_TUNE0, 0);
  1624. MSDC_WRITE32(MSDC_PAD_TUNE1, 0);
  1625. }
  1626. void msdc_init_tune_path(struct mmc_host *host, unsigned int path, int hs400)
  1627. {
  1628. u32 base = host->base;
  1629. msdc_priv_t *priv = host->priv;
  1630. priv->tuning_mode = path;
  1631. MSDC_SET_FIELD(MSDC_PATCH_BIT2, MSDC_PB2_RESPWAITCNT, 3);
  1632. if (path==MSDC_PATH_USE_ASYNC_FIFO) {
  1633. MSDC_CLR_BIT32(MSDC_PAD_TUNE0, MSDC_PAD_TUNE0_RXDLYSEL);
  1634. MSDC_CLR_BIT32(MSDC_IOCON, MSDC_IOCON_DDLSEL);
  1635. MSDC_CLR_BIT32(MSDC_IOCON, MSDC_IOCON_R_D_SMPL_SEL);
  1636. #if !defined(FPGA_PLATFORM)
  1637. MSDC_CLR_BIT32(MSDC_IOCON, MSDC_IOCON_R_D_SMPL);
  1638. MSDC_CLR_BIT32(MSDC_IOCON, MSDC_IOCON_R_D_SMPL_SEL);
  1639. #else
  1640. MSDC_SET_BIT32(MSDC_IOCON, MSDC_IOCON_R_D_SMPL);
  1641. MSDC_CLR_BIT32(MSDC_PATCH_BIT0, MSDC_PB0_RD_DAT_SEL);
  1642. #endif
  1643. if (hs400) {
  1644. MSDC_CLR_BIT32(MSDC_PAD_TUNE0, MSDC_PAD_TUNE0_DATRRDLYSEL);
  1645. MSDC_CLR_BIT32(MSDC_PAD_TUNE1, MSDC_PAD_TUNE1_DATRRDLY2SEL);
  1646. } else {
  1647. MSDC_SET_BIT32(MSDC_PAD_TUNE0, MSDC_PAD_TUNE0_DATRRDLYSEL);
  1648. MSDC_CLR_BIT32(MSDC_PAD_TUNE1, MSDC_PAD_TUNE1_DATRRDLY2SEL);
  1649. }
  1650. if (hs400)
  1651. MSDC_CLR_BIT32(MSDC_PATCH_BIT2, MSDC_PB2_CFGCRCSTS);
  1652. else
  1653. MSDC_SET_BIT32(MSDC_PATCH_BIT2, MSDC_PB2_CFGCRCSTS);
  1654. MSDC_CLR_BIT32(MSDC_IOCON, MSDC_IOCON_W_D_SMPL_SEL);
  1655. MSDC_CLR_BIT32(MSDC_PATCH_BIT2, MSDC_PB2_CFGRESP);
  1656. MSDC_SET_BIT32(MSDC_PAD_TUNE0, MSDC_PAD_TUNE0_CMDRRDLYSEL);
  1657. MSDC_CLR_BIT32(MSDC_PAD_TUNE1, MSDC_PAD_TUNE1_CMDRRDLY2SEL);
  1658. if (host->id != 1)
  1659. MSDC_CLR_BIT32(EMMC50_CFG0, MSDC_EMMC50_CFG_CMD_RESP_SEL);
  1660. MSDC_SET_FIELD(MSDC_PATCH_BIT1, MSDC_PB0_CKGEN_MSDC_DLY_SEL, 0);
  1661. MSDC_SET_FIELD(MSDC_PATCH_BIT1, MSDC_PB1_CMD_RSP_TA_CNTR, 0);
  1662. MSDC_SET_FIELD(MSDC_PATCH_BIT1, MSDC_PB1_WRDAT_CRCS_TA_CNTR, 0);
  1663. MSDC_SET_FIELD(MSDC_PATCH_BIT1, MSDC_PB1_GET_BUSY_MA, 1);
  1664. #if !defined(FPGA_PLATFORM)
  1665. if (hs400) {
  1666. MSDC_SET_FIELD(MSDC_PATCH_BIT2, MSDC_PB2_CRCSTSENSEL, 3);
  1667. MSDC_SET_FIELD(MSDC_PATCH_BIT2, MSDC_PB2_RESPSTENSEL, 3);
  1668. } else {
  1669. MSDC_SET_FIELD(MSDC_PATCH_BIT2, MSDC_PB2_CRCSTSENSEL, 1);
  1670. MSDC_SET_FIELD(MSDC_PATCH_BIT2, MSDC_PB2_RESPSTENSEL, 1);
  1671. }
  1672. #endif
  1673. MSDC_SET_BIT32(MSDC_PATCH_BIT1, MSDC_PB1_DDR_CMD_FIX_SEL);
  1674. /* DDR50 mode */
  1675. MSDC_SET_BIT32(MSDC_PATCH_BIT2, MSDC_PB2_DDR50_SEL);
  1676. } else {
  1677. /* disable async fifo use interl delay*/
  1678. MSDC_SET_BIT32(MSDC_PAD_TUNE0, MSDC_PAD_TUNE0_RXDLYSEL);
  1679. MSDC_CLR_BIT32(MSDC_PAD_TUNE0, MSDC_PAD_TUNE0_DATRRDLYSEL);
  1680. MSDC_CLR_BIT32(MSDC_PAD_TUNE1, MSDC_PAD_TUNE1_DATRRDLY2SEL);
  1681. MSDC_CLR_BIT32(MSDC_PAD_TUNE0, MSDC_PAD_TUNE0_CMDRRDLYSEL);
  1682. MSDC_CLR_BIT32(MSDC_PAD_TUNE1, MSDC_PAD_TUNE1_CMDRRDLY2SEL);
  1683. MSDC_CLR_BIT32(MSDC_PATCH_BIT2, MSDC_PB2_CFGCRCSTS);
  1684. MSDC_SET_BIT32(MSDC_PATCH_BIT2, MSDC_PB2_CFGRESP);
  1685. MSDC_SET_FIELD(MSDC_IOCON, MSDC_IOCON_DDLSEL, 1);
  1686. #if defined(FPGA_PLATFORM)
  1687. MSDC_CLR_BIT32(MSDC_PATCH_BIT0, MSDC_PB0_RD_DAT_SEL);
  1688. #endif
  1689. }
  1690. }
  1691. void msdc_config_clock(struct mmc_host *host, int ddr, u32 hz, u32 hs_timing)
  1692. {
  1693. msdc_priv_t *priv = host->priv;
  1694. u32 base = host->base;
  1695. u32 mode, hs400_div_dis = 0;
  1696. u32 div;
  1697. u32 sclk;
  1698. u32 orig_clksrc = host->pll_mux_clk;
  1699. if (hz >= host->f_max) {
  1700. hz = host->f_max;
  1701. } else if (hz < host->f_min) {
  1702. hz = host->f_min;
  1703. }
  1704. if (hs_timing & EXT_CSD_HS_TIMEING_HS400) {
  1705. mode = 0x3; /* HS400 mode */
  1706. host->pll_mux_clk = MSDC0_CLKSRC_DEFAULT;
  1707. host->src_clk = msdc_get_hclk(host->id, MSDC0_CLKSRC_DEFAULT);
  1708. if (hz >= host->src_clk / 2) {
  1709. hs400_div_dis = 1;
  1710. div = 0;
  1711. sclk = host->src_clk >> 1; // use 400Mhz source
  1712. } else {
  1713. hs400_div_dis = 0;
  1714. if (hz >= (host->src_clk >> 2)) {
  1715. div = 0; /* mean div = 1/2 */
  1716. sclk = host->src_clk >> 2; /* sclk = clk/div/2. 2: internal divisor */
  1717. } else {
  1718. div = (host->src_clk + ((hz << 2) - 1)) / (hz << 2);
  1719. sclk = (host->src_clk >> 2) / div;
  1720. div = (div >> 1); /* since there is 1/2 internal divisor */
  1721. }
  1722. }
  1723. } else if (ddr) {
  1724. mode = 0x2; /* ddr mode and use divisor */
  1725. if (hz >= (host->src_clk >> 2)) {
  1726. div = 0; /* mean div = 1/2 */
  1727. sclk = host->src_clk >> 2; /* sclk = clk/div/2. 2: internal divisor */
  1728. } else {
  1729. div = (host->src_clk + ((hz << 2) - 1)) / (hz << 2);
  1730. sclk = (host->src_clk >> 2) / div;
  1731. div = (div >> 1); /* since there is 1/2 internal divisor */
  1732. }
  1733. #if !defined(FPGA_PLATFORM)
  1734. } else if (hz >= host->src_clk) {
  1735. mode = 0x1; /* no divisor and divisor is ignored */
  1736. div = 0;
  1737. sclk = host->src_clk;
  1738. #endif
  1739. } else {
  1740. mode = 0x0; /* use divisor */
  1741. if (hz >= (host->src_clk >> 1)) {
  1742. div = 0; /* mean div = 1/2 */
  1743. sclk = host->src_clk >> 1; /* sclk = clk / 2 */
  1744. } else {
  1745. div = (host->src_clk + ((hz << 2) - 1)) / (hz << 2);
  1746. sclk = (host->src_clk >> 2) / div;
  1747. }
  1748. }
  1749. host->cur_bus_clk = sclk;
  1750. /* set clock mode and divisor */
  1751. MSDC_SET_FIELD(MSDC_CFG, MSDC_CFG_CKMOD_HS400 | MSDC_CFG_CKMOD | MSDC_CFG_CKDIV,
  1752. (hs400_div_dis << (MSDC_CFG_CKMOD_BITS + MSDC_CFG_CKDIV_BITS)) |
  1753. (mode << MSDC_CFG_CKDIV_BITS) | div);
  1754. msdc_config_clksrc(host, orig_clksrc);
  1755. /* wait clock stable */
  1756. while (!(MSDC_READ32(MSDC_CFG) & MSDC_CFG_CKSTB));
  1757. if (hs_timing & EXT_CSD_HS_TIMEING_HS400) {
  1758. msdc_set_smpl(host, 1, priv->rsmpl, TYPE_CMD_RESP_EDGE);
  1759. msdc_set_smpl(host, 1, priv->rdsmpl, TYPE_READ_DATA_EDGE);
  1760. msdc_set_smpl(host, 1, priv->wdsmpl, TYPE_WRITE_CRC_EDGE);
  1761. } else {
  1762. #if !defined(FPGA_PLATFORM)
  1763. msdc_set_smpl(host, 0, priv->rsmpl, TYPE_CMD_RESP_EDGE);
  1764. #else /* for FPGA */
  1765. if (hz < 1000000)
  1766. msdc_set_smpl(host, 0, MSDC_SMPL_FALLING, TYPE_CMD_RESP_EDGE);
  1767. else
  1768. msdc_set_smpl(host, 0, priv->rsmpl, TYPE_CMD_RESP_EDGE);
  1769. #endif
  1770. #if !defined(FPGA_PLATFORM)
  1771. msdc_set_smpl(host, 0, priv->rdsmpl, TYPE_READ_DATA_EDGE);
  1772. #else /* for FPGA */
  1773. if (hz < 1000000)
  1774. msdc_set_smpl(host, 0, MSDC_SMPL_RISING, TYPE_READ_DATA_EDGE);
  1775. else
  1776. msdc_set_smpl(host, 0, MSDC_SMPL_RISING, TYPE_READ_DATA_EDGE);
  1777. #endif
  1778. msdc_set_smpl(host, 0, priv->wdsmpl, TYPE_WRITE_CRC_EDGE);
  1779. }
  1780. if (mode==2 || mode==3) {
  1781. MSDC_CLR_BIT32(MSDC_PATCH_BIT0, MSDC_PB0_RD_DAT_SEL);
  1782. } else {
  1783. MSDC_SET_BIT32(MSDC_PATCH_BIT0, MSDC_PB0_RD_DAT_SEL);
  1784. }
  1785. if (mode == 2) {
  1786. MSDC_SET_BIT32(MSDC_IOCON, MSDC_IOCON_DDR50CKD);
  1787. } else {
  1788. MSDC_CLR_BIT32(MSDC_IOCON, MSDC_IOCON_DDR50CKD);
  1789. }
  1790. msdc_init_tune_path(host, priv->tuning_mode, (mode ==3) ? 1 : 0);
  1791. msdc_pr_err("[SD%d] SET_CLK(%dkHz): SCLK(%dkHz) MODE(%d) DDR(%d) DIV(%d) DS(%d) RS(%d)\n",
  1792. host->id, hz/1000, sclk/1000, mode, ddr > 0 ? 1 : 0, div,
  1793. msdc_cap[host->id].data_edge, msdc_cap[host->id].cmd_edge);
  1794. }
  1795. void msdc_config_bus(struct mmc_host *host, u32 width)
  1796. {
  1797. u32 base = host->base;
  1798. u32 val = MSDC_READ32(SDC_CFG);
  1799. val &= ~SDC_CFG_BUSWIDTH;
  1800. switch (width) {
  1801. case HOST_BUS_WIDTH_1:
  1802. val |= (MSDC_BUS_1BITS << 16);
  1803. break;
  1804. case HOST_BUS_WIDTH_4:
  1805. val |= (MSDC_BUS_4BITS << 16);
  1806. break;
  1807. case HOST_BUS_WIDTH_8:
  1808. val |= (MSDC_BUS_8BITS << 16);
  1809. break;
  1810. default:
  1811. val |= (MSDC_BUS_1BITS << 16);
  1812. break;
  1813. }
  1814. MSDC_WRITE32(SDC_CFG, val);
  1815. MSG(INF, "[SD%d] Bus Width: %d\n", host->id, width);
  1816. }
  1817. #if defined(FEATURE_MMC_UHS1)
  1818. int msdc_switch_volt(struct mmc_host *host, int volt)
  1819. {
  1820. u32 base = host->base;
  1821. int err = MMC_ERR_FAILED;
  1822. u32 timeout = 1000;
  1823. u32 status;
  1824. u32 bus_clk = host->cur_bus_clk;
  1825. /* make sure SDC is not busy (TBC) */
  1826. WAIT_COND(!SDC_IS_BUSY(), timeout, timeout);
  1827. if (timeout == 0) {
  1828. err = MMC_ERR_TIMEOUT;
  1829. goto out;
  1830. }
  1831. /* check if CMD/DATA lines both 0 */
  1832. if ((MSDC_READ32(MSDC_PS) & ((1 << 24) | (0xF << 16))) == 0) {
  1833. /* pull up disabled in CMD and DAT[3:0] */
  1834. msdc_pin_config(host, MSDC_PIN_PULL_NONE);
  1835. /* change signal from 3.3v to 1.8v */
  1836. msdc_host_power(host, 1, VOL_1800);
  1837. /* wait at least 5ms for 1.8v signal switching in card */
  1838. mdelay(10);
  1839. /* config clock to 10~12MHz mode for volt switch detection by host. */
  1840. msdc_config_clock(host, 0, 260000, 0);
  1841. /* pull up enabled in CMD and DAT[3:0] */
  1842. msdc_pin_config(host, MSDC_PIN_PULL_UP);
  1843. mdelay(5);
  1844. /* start to detect volt change by providing 1.8v signal to card */
  1845. MSDC_SET_BIT32(MSDC_CFG, MSDC_CFG_BV18SDT);
  1846. /* wait at max. 1ms */
  1847. mdelay(1);
  1848. while ((status = MSDC_READ32(MSDC_CFG)) & MSDC_CFG_BV18SDT);
  1849. if (status & MSDC_CFG_BV18PSS)
  1850. err = MMC_ERR_NONE;
  1851. else
  1852. msdc_pr_err("[%s] sd%d v18 switch failed, MSDC_CFG=0x%x\n", __func__, host->id, status);
  1853. /* config clock back to init clk freq. */
  1854. msdc_config_clock(host, 0, bus_clk, 0);
  1855. }
  1856. out:
  1857. return err;
  1858. }
  1859. #endif
  1860. void msdc_reset_tune_counter(struct mmc_host *host)
  1861. {
  1862. host->time_read = 0;
  1863. }
  1864. #if defined(FEATURE_ASYNC_PATH_ENABLE)
  1865. #include "msdc_tune_async.c"
  1866. #endif
  1867. #if defined(FEATURE_MMC_CM_TUNING)
  1868. #if defined(FEATURE_ASYNC_PATH_ENABLE)
  1869. int msdc_tune_cmdrsp(struct mmc_host *host, struct mmc_command *cmd)
  1870. {
  1871. return msdc_async_tune_cmd(host, cmd);
  1872. }
  1873. #else //else part for if defined(FEATURE_ASYNC_PATH_ENABLE)
  1874. int msdc_tune_cmdrsp(struct mmc_host *host, struct mmc_command *cmd)
  1875. {
  1876. u32 base = host->base;
  1877. u32 sel = 0;
  1878. u32 rsmpl,cur_rsmpl, orig_rsmpl;
  1879. u32 rrdly,cur_rrdly, orig_rrdly;
  1880. u32 cntr,cur_cntr,orig_cmdrtc;
  1881. u32 dl_cksel, cur_dl_cksel, orig_dl_cksel;
  1882. u32 times = 0;
  1883. int result = MMC_ERR_CMDTUNEFAIL;
  1884. u8 hs400 = 0, orig_clkmode;
  1885. if (host->cur_bus_clk > 100000000) {
  1886. sel = 1;
  1887. }
  1888. MSDC_GET_FIELD(MSDC_IOCON, MSDC_IOCON_RSPL, orig_rsmpl);
  1889. MSDC_GET_FIELD(MSDC_PAD_TUNE0, MSDC_PAD_TUNE0_CMDRRDLY, orig_rrdly);
  1890. MSDC_GET_FIELD(MSDC_PATCH_BIT1, MSDC_PB1_CMD_RSP_TA_CNTR, orig_cmdrtc);
  1891. MSDC_GET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_INT_DAT_LATCH_CK_SEL, orig_dl_cksel);
  1892. MSDC_GET_FIELD(MSDC_CFG, MSDC_CFG_CKMOD, orig_clkmode);
  1893. hs400 = (orig_clkmode == 3) ? 1 : 0;
  1894. dl_cksel = 0;
  1895. do {
  1896. cntr = 0;
  1897. do {
  1898. rrdly = 0;
  1899. do {
  1900. for (rsmpl = 0; rsmpl < 2; rsmpl++) {
  1901. cur_rsmpl = (orig_rsmpl + rsmpl) % 2;
  1902. msdc_set_smpl(host, hs400, cur_rsmpl, TYPE_CMD_RESP_EDGE);
  1903. if (host->cur_bus_clk <= 400000) {
  1904. MSDC_SET_FIELD(MSDC_IOCON, MSDC_IOCON_RSPL, 0);
  1905. }
  1906. if (cmd->opcode != MMC_CMD_STOP_TRANSMISSION) {
  1907. if (host->app_cmd) {
  1908. host->app_cmd = false;
  1909. result = msdc_app_cmd(host);
  1910. host->app_cmd = true;
  1911. if (result != MMC_ERR_NONE)
  1912. return MMC_ERR_CMDTUNEFAIL;
  1913. }
  1914. result = msdc_send_cmd(host, cmd);
  1915. if (result == MMC_ERR_TIMEOUT)
  1916. rsmpl--;
  1917. if (result != MMC_ERR_NONE && cmd->opcode != MMC_CMD_STOP_TRANSMISSION) {
  1918. if (cmd->opcode == MMC_CMD_READ_MULTIPLE_BLOCK || cmd->opcode == MMC_CMD_WRITE_MULTIPLE_BLOCK ||
  1919. cmd->opcode == MMC_CMD_READ_SINGLE_BLOCK ||cmd->opcode == MMC_CMD_WRITE_BLOCK ||
  1920. cmd->opcode == MMC_CMD_SEND_WRITE_PROT_TYPE)
  1921. msdc_abort_handler(host,1);
  1922. continue;
  1923. }
  1924. result = msdc_wait_rsp(host, cmd);
  1925. } else if (cmd->opcode == MMC_CMD_STOP_TRANSMISSION) {
  1926. result = MMC_ERR_NONE;
  1927. goto done;
  1928. } else
  1929. result = MMC_ERR_BADCRC;
  1930. #if MSDC_TUNE_LOG
  1931. /* for debugging */
  1932. {
  1933. u32 t_rrdly, t_rsmpl, t_dl_cksel, t_cmdrtc;
  1934. MSDC_GET_FIELD(MSDC_IOCON, MSDC_IOCON_RSPL, t_rsmpl);
  1935. MSDC_GET_FIELD(MSDC_PAD_TUNE0, MSDC_PAD_TUNE0_CMDRRDLY, t_rrdly);
  1936. MSDC_GET_FIELD(MSDC_PATCH_BIT1, MSDC_PB1_CMD_RSP_TA_CNTR, t_cmdrtc);
  1937. MSDC_GET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_INT_DAT_LATCH_CK_SEL, t_dl_cksel);
  1938. times++;
  1939. MSG(INF, "[SD%d] <TUNE_CMD%d><%d><%s> CMDRRDLY=%d, RSPL=%dh\n",
  1940. host->id, (cmd->opcode & (~(SD_CMD_BIT | SD_CMD_APP_BIT))), times, (result == MMC_ERR_NONE) ?
  1941. "PASS" : "FAIL", t_rrdly, t_rsmpl);
  1942. MSG(INF, "[SD%d] <TUNE_CMD><%d><%s> CMD_RSP_TA_CNTR=%xh\n",
  1943. host->id, times, (result == MMC_ERR_NONE) ?
  1944. "PASS" : "FAIL", t_cmdrtc);
  1945. if (host->cur_bus_clk > 100000000) {
  1946. MSG(INF, "[SD%d] <TUNE_CMD%d><%d><%s> CMD_RSP_TA_CNTR=%xh, INT_DAT_LATCH_CK_SEL=%xh\n",
  1947. host->id, (cmd->opcode & (~(SD_CMD_BIT | SD_CMD_APP_BIT))), times, (result == MMC_ERR_NONE) ?
  1948. "PASS" : "FAIL", t_cmdrtc, t_dl_cksel);
  1949. }
  1950. }
  1951. #endif
  1952. if (result == MMC_ERR_NONE) {
  1953. host->app_cmd = false;
  1954. goto done;
  1955. }
  1956. if (cmd->opcode == MMC_CMD_READ_MULTIPLE_BLOCK || cmd->opcode == MMC_CMD_WRITE_MULTIPLE_BLOCK || cmd->opcode == MMC_CMD_READ_SINGLE_BLOCK ||cmd->opcode == MMC_CMD_WRITE_BLOCK)
  1957. msdc_abort_handler(host,1);
  1958. }
  1959. cur_rrdly = (orig_rrdly + rrdly + 1) % 32;
  1960. MSDC_SET_FIELD(MSDC_PAD_TUNE0, MSDC_PAD_TUNE0_CMDRRDLY, cur_rrdly);
  1961. } while (++rrdly < 32);
  1962. if (!sel)
  1963. break;
  1964. cur_cntr = (orig_cmdrtc + cntr + 1) % 8;
  1965. MSDC_SET_FIELD(MSDC_PATCH_BIT1, MSDC_PB1_CMD_RSP_TA_CNTR, cur_cntr);
  1966. } while (++cntr < 8);
  1967. /* no need to update data ck sel */
  1968. if (!sel)
  1969. break;
  1970. cur_dl_cksel = (orig_dl_cksel +dl_cksel+1) % 8;
  1971. MSDC_SET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_INT_DAT_LATCH_CK_SEL, cur_dl_cksel);
  1972. dl_cksel++;
  1973. } while (dl_cksel < 8);
  1974. /* no need to update ck sel */
  1975. if (result != MMC_ERR_NONE)
  1976. result = MMC_ERR_CMDTUNEFAIL;
  1977. done:
  1978. return result;
  1979. }
  1980. #endif
  1981. #endif
  1982. #if defined(MMC_MSDC_DRV_CTP)
  1983. void msdc_tune_update_cmdrsp(struct mmc_host *host, u32 count)
  1984. {
  1985. u32 base = host->base;
  1986. u32 sel = 0;
  1987. u32 rsmpl,cur_rsmpl, orig_rsmpl;
  1988. u32 rrdly,cur_rrdly, orig_rrdly;
  1989. u32 cntr,cur_cntr,orig_cmdrtc;
  1990. u32 dl_cksel, cur_dl_cksel, orig_dl_cksel;
  1991. u32 times = 0;
  1992. u8 hs400 = 0, orig_clkmode;
  1993. MSG(INF, "cur_bus_clk = %d\n", host->cur_bus_clk);
  1994. if (host->cur_bus_clk > 100000000) {
  1995. sel = 1;
  1996. }
  1997. MSDC_GET_FIELD(MSDC_IOCON, MSDC_IOCON_RSPL, orig_rsmpl);
  1998. MSDC_GET_FIELD(MSDC_PAD_TUNE0, MSDC_PAD_TUNE0_CMDRRDLY, orig_rrdly);
  1999. MSDC_GET_FIELD(MSDC_PATCH_BIT1, MSDC_PB1_CMD_RSP_TA_CNTR, orig_cmdrtc);
  2000. MSDC_GET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_INT_DAT_LATCH_CK_SEL, orig_dl_cksel);
  2001. MSDC_GET_FIELD(MSDC_CFG, MSDC_CFG_CKMOD, orig_clkmode);
  2002. hs400 = (orig_clkmode == 3) ? 1 : 0;
  2003. dl_cksel = 0;
  2004. cntr = 0;
  2005. rrdly = 0;
  2006. if (sel == 1) {
  2007. if (count >= 8 * 64 && count < 8 * 8 * 64) {
  2008. dl_cksel = count % 8;
  2009. cur_dl_cksel = (orig_dl_cksel + dl_cksel + 1) % 8;
  2010. MSDC_SET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_INT_DAT_LATCH_CK_SEL, cur_dl_cksel);
  2011. count = count % (8 * 64);
  2012. }
  2013. if (count >= 64 && count < 8 * 64) {
  2014. cntr = count % 8;
  2015. cur_cntr = (orig_cmdrtc + cntr + 1) % 8;
  2016. MSDC_SET_FIELD(MSDC_PATCH_BIT1, MSDC_PB1_CMD_RSP_TA_CNTR, cur_cntr);
  2017. count = count % 64;
  2018. }
  2019. }
  2020. if (count >= 2 && count < 64) {
  2021. rrdly = count % 32;
  2022. cur_rrdly = (orig_rrdly + rrdly + 1) % 32;
  2023. MSDC_SET_FIELD(MSDC_PAD_TUNE0, MSDC_PAD_TUNE0_CMDRRDLY, cur_rrdly);
  2024. count = (count > 32 ? 1 : 0);
  2025. }
  2026. if (count < 2) {
  2027. cur_rsmpl = (orig_rsmpl + count) % 2;
  2028. msdc_set_smpl(host, hs400, cur_rsmpl, TYPE_CMD_RESP_EDGE);
  2029. }
  2030. }
  2031. #endif
  2032. #if defined(FEATURE_MMC_RD_TUNING)
  2033. #if defined(FEATURE_ASYNC_PATH_ENABLE)
  2034. int msdc_tune_bread(struct mmc_host *host, uchar *dst, ulong src, ulong nblks)
  2035. {
  2036. //Let mmc_core to invoke tuning function by using old name - msdc_tune_bread
  2037. return msdc_async_tune_bread(host, dst, src ,nblks);
  2038. }
  2039. int msdc_tune_read(struct mmc_host *host)
  2040. {
  2041. return msdc_async_tune_read(host);
  2042. }
  2043. #else //else part for if defined(FEATURE_ASYNC_PATH_ENABLE)
  2044. int msdc_tune_bread(struct mmc_host *host, uchar *dst, ulong src, ulong nblks)
  2045. {
  2046. u32 base = host->base;
  2047. u32 dcrc, ddr = 0, sel = 0;
  2048. u32 cur_rxdly0, cur_rxdly1;
  2049. u32 rdsmpl, cur_rdsmpl, orig_rdsmpl;
  2050. u32 dsel,cur_dsel,orig_dsel;
  2051. u32 dl_cksel,cur_dl_cksel,orig_dl_cksel;
  2052. u32 rxdly;
  2053. u32 cur_dat0, cur_dat1, cur_dat2, cur_dat3, cur_dat4, cur_dat5,
  2054. cur_dat6, cur_dat7;
  2055. u32 orig_dat0, orig_dat1, orig_dat2, orig_dat3, orig_dat4, orig_dat5,
  2056. orig_dat6, orig_dat7;
  2057. u32 orig_clkmode;
  2058. u32 times = 0;
  2059. int result = MMC_ERR_READTUNEFAIL;
  2060. u8 hs400 = 0;
  2061. if (host->cur_bus_clk > 100000000)
  2062. sel = 1;
  2063. MSDC_GET_FIELD(MSDC_CFG, MSDC_CFG_CKMOD, orig_clkmode);
  2064. ddr = (orig_clkmode == 2) ? 1 : 0;
  2065. hs400 = (orig_clkmode == 3) ? 1 : 0;
  2066. MSDC_GET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_CKGEN_MSDC_DLY_SEL, orig_dsel);
  2067. MSDC_GET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_INT_DAT_LATCH_CK_SEL, orig_dl_cksel);
  2068. MSDC_GET_FIELD(MSDC_IOCON, MSDC_IOCON_R_D_SMPL, orig_rdsmpl);
  2069. /* Tune Method 2. delay each data line */
  2070. MSDC_SET_FIELD(MSDC_IOCON, MSDC_IOCON_DDLSEL, 1);
  2071. dl_cksel = 0;
  2072. do {
  2073. dsel = 0;
  2074. do {
  2075. rxdly = 0;
  2076. do {
  2077. for (rdsmpl = 0; rdsmpl < 2; rdsmpl++) {
  2078. cur_rdsmpl = (orig_rdsmpl + rdsmpl) % 2;
  2079. msdc_set_smpl(host, hs400, cur_rdsmpl, TYPE_READ_DATA_EDGE);
  2080. result = host->blk_read(host, dst, src, nblks);
  2081. if (result == MMC_ERR_CMDTUNEFAIL || result == MMC_ERR_CMD_RSPCRC || result == MMC_ERR_ACMD_RSPCRC)
  2082. goto done;
  2083. MSDC_GET_FIELD(SDC_DCRC_STS, SDC_DCRC_STS_POS|SDC_DCRC_STS_NEG, dcrc);
  2084. if (!ddr) dcrc &= ~SDC_DCRC_STS_NEG;
  2085. #if MSDC_TUNE_LOG
  2086. /* for debugging */
  2087. {
  2088. u32 t_dspl, t_ckgen_dsel, t_int_cksel;
  2089. MSDC_GET_FIELD(MSDC_IOCON, MSDC_IOCON_R_D_SMPL, t_dspl);
  2090. MSDC_GET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_CKGEN_MSDC_DLY_SEL, t_ckgen_dsel);
  2091. MSDC_GET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_INT_DAT_LATCH_CK_SEL, t_int_cksel);
  2092. times++;
  2093. MSG(INF, "[SD%d] <TUNE_BREAD_%d><%s><cmd%d:0x%x> DCRC=%xh, ret=%d\n",
  2094. host->id, times, (result == MMC_ERR_NONE && dcrc == 0) ?
  2095. "PASS" : "FAIL", (nblks == 1 ? 17 : 18), src, dcrc, result);
  2096. MSG(INF, "[SD%d] <TUNE_BREAD_%d><%s><cmd%d:0x%x> DATRDDLY0=%xh, DATRDDLY1=%xh, DSMPL=%xh\n",
  2097. host->id, times, (result == MMC_ERR_NONE && dcrc == 0) ?
  2098. "PASS" : "FAIL", (nblks == 1 ? 17 : 18), src, MSDC_READ32(MSDC_DAT_RDDLY0), MSDC_READ32(MSDC_DAT_RDDLY1), t_dspl);
  2099. if (host->cur_bus_clk >= 100000000) {
  2100. MSG(INF, "[SD%d] <TUNE_BREAD_%d><%s><cmd%d:0x%x> CKGEN_MSDC_DLY_SEL=%xh, INT_DAT_LATCH_CK_SEL=%xh\n",
  2101. host->id, times, (result == MMC_ERR_NONE && dcrc == 0) ?
  2102. "PASS" : "FAIL", (nblks == 1 ? 17 : 18), src, t_ckgen_dsel, t_int_cksel);
  2103. }
  2104. }
  2105. #endif
  2106. /* no crc error in this data line */
  2107. if (result == MMC_ERR_NONE && dcrc == 0) {
  2108. goto done;
  2109. } else {
  2110. result = MMC_ERR_BADCRC;
  2111. }
  2112. }
  2113. cur_rxdly0 = MSDC_READ32(MSDC_DAT_RDDLY0);
  2114. cur_rxdly1 = MSDC_READ32(MSDC_DAT_RDDLY1);
  2115. orig_dat0 = (cur_rxdly0 >> 24) & 0x1F;
  2116. orig_dat1 = (cur_rxdly0 >> 16) & 0x1F;
  2117. orig_dat2 = (cur_rxdly0 >> 8) & 0x1F;
  2118. orig_dat3 = (cur_rxdly0 >> 0) & 0x1F;
  2119. orig_dat4 = (cur_rxdly1 >> 24) & 0x1F;
  2120. orig_dat5 = (cur_rxdly1 >> 16) & 0x1F;
  2121. orig_dat6 = (cur_rxdly1 >> 8) & 0x1F;
  2122. orig_dat7 = (cur_rxdly1 >> 0) & 0x1F;
  2123. // Bits8~15 of dcrc have been masked for non-ddr case,
  2124. // so we can process ddr and non-ddr cases with the same code
  2125. cur_dat0 = (dcrc & ((1 << 0) | (1 << 8)) ) ? (orig_dat0 + 1) : orig_dat0;
  2126. cur_dat1 = (dcrc & ((1 << 1) | (1 << 9)) ) ? (orig_dat1 + 1) : orig_dat1;
  2127. cur_dat2 = (dcrc & ((1 << 2) | (1 << 10)) ) ? (orig_dat2 + 1) : orig_dat2;
  2128. cur_dat3 = (dcrc & ((1 << 3) | (1 << 11)) ) ? (orig_dat3 + 1) : orig_dat3;
  2129. cur_dat4 = (dcrc & ((1 << 4) | (1 << 12)) ) ? (orig_dat4 + 1) : orig_dat4;
  2130. cur_dat5 = (dcrc & ((1 << 5) | (1 << 13)) ) ? (orig_dat5 + 1) : orig_dat5;
  2131. cur_dat6 = (dcrc & ((1 << 6) | (1 << 14)) ) ? (orig_dat6 + 1) : orig_dat6;
  2132. cur_dat7 = (dcrc & ((1 << 7) | (1 << 15)) ) ? (orig_dat7 + 1) : orig_dat7;
  2133. cur_rxdly0 = ((cur_dat0 & 0x1F) << 24) | ((cur_dat1 & 0x1F) << 16) |
  2134. ((cur_dat2 & 0x1F)<< 8) | ((cur_dat3 & 0x1F) << 0);
  2135. cur_rxdly1 = ((cur_dat4 & 0x1F) << 24) | ((cur_dat5 & 0x1F) << 16) |
  2136. ((cur_dat6 & 0x1F) << 8) | ((cur_dat7 & 0x1F) << 0);
  2137. MSDC_WRITE32(MSDC_DAT_RDDLY0, cur_rxdly0);
  2138. MSDC_WRITE32(MSDC_DAT_RDDLY1, cur_rxdly1);
  2139. } while (++rxdly < 32);
  2140. if (!sel)
  2141. break;
  2142. cur_dsel = (orig_dsel + dsel + 1) % 32;
  2143. MSDC_SET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_CKGEN_MSDC_DLY_SEL, cur_dsel);
  2144. } while (++dsel < 32);
  2145. /* no need to update data ck sel */
  2146. if (orig_clkmode != 1)
  2147. break;
  2148. cur_dl_cksel = (orig_dl_cksel + dl_cksel + 1) % 8;
  2149. MSDC_SET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_INT_DAT_LATCH_CK_SEL, cur_dl_cksel);
  2150. dl_cksel++;
  2151. } while (dl_cksel < 8);
  2152. done:
  2153. return result;
  2154. }
  2155. #define READ_TUNING_MAX_HS (2 * 32)
  2156. #define READ_TUNING_MAX_UHS (2 * 32 * 32)
  2157. #define READ_TUNING_MAX_UHS_CLKMOD1 (2 * 32 * 32 *8)
  2158. int msdc_tune_read(struct mmc_host *host)
  2159. {
  2160. u32 base = host->base;
  2161. u32 dcrc, ddr = 0, sel = 0;
  2162. u32 cur_rxdly0 = 0 , cur_rxdly1 = 0;
  2163. u32 cur_dsmpl = 0, orig_dsmpl;
  2164. u32 cur_dsel = 0,orig_dsel;
  2165. u32 cur_dl_cksel = 0,orig_dl_cksel;
  2166. u32 cur_dat0 = 0, cur_dat1 = 0, cur_dat2 = 0, cur_dat3 = 0, cur_dat4 = 0, cur_dat5 = 0,
  2167. cur_dat6 = 0, cur_dat7 = 0;
  2168. u32 orig_dat0, orig_dat1, orig_dat2, orig_dat3, orig_dat4, orig_dat5,
  2169. orig_dat6, orig_dat7;
  2170. u32 orig_clkmode;
  2171. int result = MMC_ERR_NONE;
  2172. u8 hs400 = 0;
  2173. if (host->cur_bus_clk > 100000000)
  2174. sel = 1;
  2175. if (host->card) {
  2176. ddr = mmc_card_ddr(host->card);
  2177. }
  2178. MSDC_GET_FIELD(MSDC_CFG,MSDC_CFG_CKMOD,orig_clkmode);
  2179. hs400 = (orig_clkmode == 3) ? 1 : 0;
  2180. //if (orig_clkmode == 1)
  2181. //MSDC_SET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_CKGEN_RX_SDCLKO_SEL, 0);
  2182. MSDC_GET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_CKGEN_MSDC_DLY_SEL, orig_dsel);
  2183. MSDC_GET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_INT_DAT_LATCH_CK_SEL, orig_dl_cksel);
  2184. MSDC_GET_FIELD(MSDC_IOCON, MSDC_IOCON_R_D_SMPL, orig_dsmpl);
  2185. /* Tune Method 2. delay each data line */
  2186. MSDC_SET_FIELD(MSDC_IOCON, MSDC_IOCON_DDLSEL, 1);
  2187. cur_dsmpl = (orig_dsmpl + 1) ;
  2188. msdc_set_smpl(host, hs400, (cur_dsmpl % 2), TYPE_READ_DATA_EDGE);
  2189. if (cur_dsmpl >= 2) {
  2190. MSDC_GET_FIELD(SDC_DCRC_STS, SDC_DCRC_STS_POS|SDC_DCRC_STS_NEG, dcrc);
  2191. if (!ddr) dcrc &= ~SDC_DCRC_STS_NEG;
  2192. cur_rxdly0 = MSDC_READ32(MSDC_DAT_RDDLY0);
  2193. cur_rxdly1 = MSDC_READ32(MSDC_DAT_RDDLY1);
  2194. orig_dat0 = (cur_rxdly0 >> 24) & 0x1F;
  2195. orig_dat1 = (cur_rxdly0 >> 16) & 0x1F;
  2196. orig_dat2 = (cur_rxdly0 >> 8) & 0x1F;
  2197. orig_dat3 = (cur_rxdly0 >> 0) & 0x1F;
  2198. orig_dat4 = (cur_rxdly1 >> 24) & 0x1F;
  2199. orig_dat5 = (cur_rxdly1 >> 16) & 0x1F;
  2200. orig_dat6 = (cur_rxdly1 >> 8) & 0x1F;
  2201. orig_dat7 = (cur_rxdly1 >> 0) & 0x1F;
  2202. // Bits8~15 of dcrc have been masked for non-ddr case,
  2203. // so we can process ddr and non-ddr cases with the same code
  2204. cur_dat0 = (dcrc & ((1 << 0) | (1 << 8)) ) ? (orig_dat0 + 1) : orig_dat0;
  2205. cur_dat1 = (dcrc & ((1 << 1) | (1 << 9)) ) ? (orig_dat1 + 1) : orig_dat1;
  2206. cur_dat2 = (dcrc & ((1 << 2) | (1 << 10)) ) ? (orig_dat2 + 1) : orig_dat2;
  2207. cur_dat3 = (dcrc & ((1 << 3) | (1 << 11)) ) ? (orig_dat3 + 1) : orig_dat3;
  2208. cur_dat4 = (dcrc & ((1 << 4) | (1 << 12)) ) ? (orig_dat4 + 1) : orig_dat4;
  2209. cur_dat5 = (dcrc & ((1 << 5) | (1 << 13)) ) ? (orig_dat5 + 1) : orig_dat5;
  2210. cur_dat6 = (dcrc & ((1 << 6) | (1 << 14)) ) ? (orig_dat6 + 1) : orig_dat6;
  2211. cur_dat7 = (dcrc & ((1 << 7) | (1 << 15)) ) ? (orig_dat7 + 1) : orig_dat7;
  2212. cur_rxdly0 = ((cur_dat0 & 0x1F) << 24) | ((cur_dat1 & 0x1F) << 16) |
  2213. ((cur_dat2 & 0x1F) << 8) | ((cur_dat3 & 0x1F) << 0);
  2214. cur_rxdly1 = ((cur_dat4 & 0x1F) << 24) | ((cur_dat5 & 0x1F)<< 16) |
  2215. ((cur_dat6 & 0x1F) << 8) | ((cur_dat7 & 0x1F) << 0);
  2216. MSDC_WRITE32(MSDC_DAT_RDDLY0, cur_rxdly0);
  2217. MSDC_WRITE32(MSDC_DAT_RDDLY1, cur_rxdly1);
  2218. }
  2219. if (cur_dat0 >= 32 || cur_dat1 >= 32 || cur_dat2 >= 32 || cur_dat3 >= 32 ||
  2220. cur_dat4 >= 32 || cur_dat5 >= 32 || cur_dat6 >= 32 || cur_dat7 >= 32) {
  2221. if (sel) {
  2222. cur_dsel = (orig_dsel + 1);
  2223. MSDC_SET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_CKGEN_MSDC_DLY_SEL, cur_dsel % 32);
  2224. }
  2225. }
  2226. if (cur_dsel >= 32) {
  2227. if (orig_clkmode == 1 && sel) {
  2228. cur_dl_cksel = (orig_dl_cksel + 1);
  2229. MSDC_SET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_INT_DAT_LATCH_CK_SEL, cur_dl_cksel % 8);
  2230. }
  2231. }
  2232. ++(host->time_read);
  2233. if ((sel == 1 && orig_clkmode == 1 && host->time_read == READ_TUNING_MAX_UHS_CLKMOD1)||
  2234. (sel == 1 && orig_clkmode != 1 && host->time_read == READ_TUNING_MAX_UHS)||
  2235. (sel == 0 && orig_clkmode != 1 && host->time_read == READ_TUNING_MAX_HS)) {
  2236. result = MMC_ERR_READTUNEFAIL;
  2237. }
  2238. return result;
  2239. }
  2240. #endif
  2241. #endif /* end of FEATURE_MMC_RD_TUNING */
  2242. int msdc_tune_rw_hs400(struct mmc_host *host, uchar *dst, ulong src, ulong nblks, unsigned int rw)
  2243. {
  2244. u32 ds_dly1 = 0, ds_dly3 = 0, orig_ds_dly1 = 0, orig_ds_dly3 = 0;
  2245. u32 ds_dly1_count, ds_dly3_count = 0;
  2246. int result = MMC_ERR_READTUNEFAIL;
  2247. #if MSDC_TUNE_LOG
  2248. u32 times = 0;
  2249. #endif
  2250. u32 base = host->base;
  2251. if (host->id != 0) {
  2252. return result;
  2253. }
  2254. MSG(INF, "[tune][%s:%d] start hs400 read tune\n", __func__, __LINE__);
  2255. MSDC_GET_FIELD(EMMC50_PAD_DS_TUNE, MSDC_EMMC50_PAD_DS_TUNE_DLY1, orig_ds_dly1);
  2256. MSDC_GET_FIELD(EMMC50_PAD_DS_TUNE, MSDC_EMMC50_PAD_DS_TUNE_DLY3, orig_ds_dly3);
  2257. ds_dly3 = orig_ds_dly3;
  2258. ds_dly1 = orig_ds_dly1;
  2259. do {
  2260. if (ds_dly3 >= 31) {
  2261. ds_dly3 = 0;
  2262. } else {
  2263. ds_dly3 += 1;
  2264. }
  2265. MSDC_SET_FIELD(EMMC50_PAD_DS_TUNE, MSDC_EMMC50_PAD_DS_TUNE_DLY3, ds_dly3);
  2266. ds_dly1_count = 0;
  2267. do {
  2268. if (ds_dly1 == 0) {
  2269. ds_dly1 = 31;
  2270. } else {
  2271. ds_dly1 -= 1;
  2272. }
  2273. MSDC_SET_FIELD(EMMC50_PAD_DS_TUNE, MSDC_EMMC50_PAD_DS_TUNE_DLY1, ds_dly1);
  2274. /* resend the r/w command */
  2275. if (rw == 0) {
  2276. result = host->blk_read(host, dst, src, nblks);
  2277. } else if (rw == 1) {
  2278. result = host->blk_write(host, (ulong) dst, (uchar *) src, nblks);
  2279. }
  2280. #if MSDC_TUNE_LOG
  2281. /* for debugging */
  2282. {
  2283. times++;
  2284. if (rw == 0) {
  2285. MSG(INF, "[SD%d] <TUNE_BREAD_%d><%s><cmd%d:0x%x> ret=%d, DS_DLY1=%d, DS_DLY3=%d\n",
  2286. host->id, times, result == MMC_ERR_NONE ? "PASS" : "FAIL", (nblks == 1 ? 17 : 18), (unsigned int)dst,
  2287. result, ds_dly1, ds_dly3);
  2288. } else if (rw == 1) {
  2289. MSG(INF, "[SD%d] <TUNE_BEWRITE_%d><%s><cmd%d:0x%x> ret=%d, DS_DLY1=%d, DS_DLY3=%d\n",
  2290. host->id, times, result == MMC_ERR_NONE ? "PASS" : "FAIL", (nblks == 1 ? 24 : 25), (unsigned int)dst,
  2291. result, ds_dly1, ds_dly3);
  2292. }
  2293. }
  2294. #endif
  2295. if (result == MMC_ERR_CMDTUNEFAIL || result == MMC_ERR_CMD_RSPCRC)
  2296. goto done;
  2297. if (result == MMC_ERR_NONE) {
  2298. goto done;
  2299. }
  2300. } while (++ds_dly1_count < 32);
  2301. } while (++ds_dly3_count < 32);
  2302. done:
  2303. return result;
  2304. }
  2305. #if defined(FEATURE_MMC_WR_TUNING)
  2306. #if defined(FEATURE_ASYNC_PATH_ENABLE)
  2307. int msdc_tune_bwrite(struct mmc_host *host, ulong dst, uchar *src, ulong nblks)
  2308. {
  2309. return msdc_async_tune_bwrite(host, dst, src, nblks);
  2310. }
  2311. #else //else part for if defined(FEATURE_ASYNC_PATH_ENABLE)
  2312. int msdc_tune_bwrite(struct mmc_host *host, ulong dst, uchar *src, ulong nblks)
  2313. {
  2314. u32 base = host->base;
  2315. u32 orig_clkmode;
  2316. u32 sel = 0;
  2317. //u32 ddrckdly = 0;
  2318. u32 wrrdly, cur_wrrdly, orig_wrrdly;
  2319. u32 wdsmpl, cur_wdsmpl, orig_wdsmpl;
  2320. u32 d_cntr,orig_d_cntr,cur_d_cntr;
  2321. u32 rxdly, cur_rxdly0;
  2322. u32 orig_dat0, orig_dat1, orig_dat2, orig_dat3;
  2323. u32 cur_dat0, cur_dat1, cur_dat2, cur_dat3;
  2324. #if MSDC_TUNE_LOG
  2325. u32 times = 0;
  2326. #endif
  2327. //u32 status;
  2328. int result = MMC_ERR_WRITETUNEFAIL;
  2329. u8 hs400 = 0;
  2330. if (host->cur_bus_clk > 100000000)
  2331. sel = 1;
  2332. //if (mmc_card_ddr(host->card)) ddrckdly = 1;
  2333. MSDC_GET_FIELD(MSDC_CFG,MSDC_CFG_CKMOD,orig_clkmode);
  2334. hs400 = (orig_clkmode == 3) ? 1 : 0;
  2335. MSDC_GET_FIELD(MSDC_PAD_TUNE0, MSDC_PAD_TUNE0_DATWRDLY, orig_wrrdly);
  2336. MSDC_GET_FIELD(MSDC_IOCON, MSDC_IOCON_W_D_SMPL, orig_wdsmpl);
  2337. MSDC_GET_FIELD(MSDC_PATCH_BIT1, MSDC_PB1_WRDAT_CRCS_TA_CNTR, orig_d_cntr);
  2338. /* Tune Method 2. delay data0 line */
  2339. MSDC_SET_FIELD(MSDC_IOCON, MSDC_IOCON_DDLSEL, 1);
  2340. cur_rxdly0 = MSDC_READ32(MSDC_DAT_RDDLY0);
  2341. orig_dat0 = (cur_rxdly0 >> 24) & 0x1F;
  2342. orig_dat1 = (cur_rxdly0 >> 16) & 0x1F;
  2343. orig_dat2 = (cur_rxdly0 >> 8) & 0x1F;
  2344. orig_dat3 = (cur_rxdly0 >> 0) & 0x1F;
  2345. d_cntr = 0;
  2346. do {
  2347. rxdly = 0;
  2348. do {
  2349. wrrdly = 0;
  2350. do {
  2351. for (wdsmpl = 0; wdsmpl < 2; wdsmpl++) {
  2352. cur_wdsmpl = (orig_wdsmpl + wdsmpl) % 2;
  2353. msdc_set_smpl(host, hs400, cur_wdsmpl, TYPE_WRITE_CRC_EDGE);
  2354. result = host->blk_write(host, dst, src, nblks);
  2355. if (result == MMC_ERR_CMDTUNEFAIL || result == MMC_ERR_CMD_RSPCRC || result == MMC_ERR_ACMD_RSPCRC)
  2356. goto done;
  2357. #if MSDC_TUNE_LOG
  2358. /* for debugging */
  2359. {
  2360. u32 t_dspl, t_wrrdly, t_d_cntr;// t_dl_cksel, t_ddrdly, t_cksel;
  2361. MSDC_GET_FIELD(MSDC_PAD_TUNE0, MSDC_PAD_TUNE0_DATWRDLY, t_wrrdly);
  2362. MSDC_GET_FIELD(MSDC_IOCON, MSDC_IOCON_W_D_SMPL, t_dspl);
  2363. MSDC_GET_FIELD(MSDC_PATCH_BIT1, MSDC_PB1_WRDAT_CRCS_TA_CNTR, t_d_cntr);
  2364. times++;
  2365. MSG(INF, "[SD%d] <TUNE_BWRITE_%d><%s><cmd%d:0x%x> ret=%d, DSPL=%d, WRRDLY=%d, MSDC_DAT_RDDLY0=%xh\n",
  2366. host->id, times, result == MMC_ERR_NONE ? "PASS" : "FAIL", (nblks == 1 ? 24 : 25), (unsigned int)dst,
  2367. result, t_dspl, t_wrrdly, MSDC_READ32(MSDC_DAT_RDDLY0));
  2368. if (host->cur_bus_clk >= 100000000) {
  2369. MSG(INF, "[SD%d] <TUNE_BWRITE_%d><%s><cmd%d:0x%x> MSDC_PB1_WRDAT_CRCS_TA_CNTR=%xh\n",
  2370. host->id, times, (result == MMC_ERR_NONE) ? "PASS" : "FAIL", (nblks == 1 ? 24 : 25), (unsigned int)dst,
  2371. t_d_cntr);
  2372. }
  2373. }
  2374. #endif
  2375. if (result == MMC_ERR_NONE) {
  2376. goto done;
  2377. }
  2378. }
  2379. cur_wrrdly = ++orig_wrrdly % 32;
  2380. MSDC_SET_FIELD(MSDC_PAD_TUNE0, MSDC_PAD_TUNE0_DATWRDLY, cur_wrrdly);
  2381. } while (++wrrdly < 32);
  2382. cur_dat0 = ++orig_dat0 % 32; /* only adjust bit-1 for crc */
  2383. cur_dat1 = orig_dat1;
  2384. cur_dat2 = orig_dat2;
  2385. cur_dat3 = orig_dat3;
  2386. cur_rxdly0 = (cur_dat0 << 24) | (cur_dat1 << 16) | (cur_dat2 << 8) | (cur_dat3 << 0);
  2387. MSDC_WRITE32(MSDC_DAT_RDDLY0, cur_rxdly0);
  2388. } while (++rxdly < 32);
  2389. /* no need to update data ck sel */
  2390. if (!sel)
  2391. break;
  2392. cur_d_cntr= (orig_d_cntr + d_cntr +1 )% 8;
  2393. MSDC_SET_FIELD(MSDC_PATCH_BIT1, MSDC_PB1_WRDAT_CRCS_TA_CNTR, cur_d_cntr);
  2394. d_cntr++;
  2395. } while (d_cntr < 8);
  2396. done:
  2397. return result;
  2398. }
  2399. #endif
  2400. #endif /* end of FEATURE_MMC_WR_TUNING */
  2401. #if defined(FEATURE_MMC_UHS1)
  2402. int msdc_tune_uhs1(struct mmc_host *host, struct mmc_card *card)
  2403. {
  2404. u32 base = host->base;
  2405. u32 status;
  2406. int i;
  2407. int err = MMC_ERR_FAILED;
  2408. struct mmc_command cmd;
  2409. cmd.opcode = SD_CMD_SEND_TUNING_BLOCK;
  2410. cmd.arg = 0;
  2411. cmd.rsptyp = RESP_R1;
  2412. cmd.retries = CMD_RETRIES;
  2413. cmd.timeout = 0xFFFFFFFF;
  2414. msdc_set_timeout(host, 100000000, 0);
  2415. msdc_set_autocmd(host, MSDC_AUTOCMD19, 1);
  2416. for (i = 0; i < 13; i++) {
  2417. /* Note. select a pad to be tuned. msdc only tries 32 times to tune the
  2418. * pad since there is only 32 tuning steps for a pad.
  2419. */
  2420. MSDC_SET_FIELD(SDC_ACMD19_TRG, SDC_ACMD19_TRG_TUNESEL, i);
  2421. /* Note. autocmd19 will only trigger done interrupt and won't trigger
  2422. * autocmd timeout and crc error interrupt. (autocmd19 is a special command
  2423. * and is different from autocmd12 and autocmd23.
  2424. */
  2425. err = msdc_cmd(host, &cmd);
  2426. if (err != MMC_ERR_NONE)
  2427. goto out;
  2428. /* read and check acmd19 sts. bit-1: success, bit-0: fail */
  2429. status = MSDC_READ32(SDC_ACMD19_STS);
  2430. if (!status) {
  2431. msdc_pr_err("[SD%d] ACMD19_TRG(%d), STS(0x%x) Failed\n", host->id, i,
  2432. status);
  2433. err = MMC_ERR_FAILED;
  2434. goto out;
  2435. }
  2436. }
  2437. err = MMC_ERR_NONE;
  2438. out:
  2439. msdc_set_autocmd(host, MSDC_AUTOCMD19, 0);
  2440. return err;
  2441. }
  2442. int msdc_tune_hs200(struct mmc_host *host, struct mmc_card *card)
  2443. {
  2444. return 0;
  2445. }
  2446. int msdc_tune_hs400(struct mmc_host *host, struct mmc_card *card)
  2447. {
  2448. return 0;
  2449. }
  2450. #endif
  2451. #if defined(FEATURE_MMC_CARD_DETECT)
  2452. void msdc_card_detect(struct mmc_host *host, int on)
  2453. {
  2454. u32 base = host->base;
  2455. if ((msdc_cap[host->id].flags & MSDC_CD_PIN_EN) == 0) {
  2456. MSDC_CARD_DETECTION_OFF();
  2457. return;
  2458. }
  2459. if (on) {
  2460. MSDC_SET_FIELD(MSDC_PS, MSDC_PS_CDDEBOUNCE, DEFAULT_DEBOUNCE);
  2461. MSDC_CARD_DETECTION_ON();
  2462. } else {
  2463. MSDC_CARD_DETECTION_OFF();
  2464. MSDC_SET_FIELD(MSDC_PS, MSDC_PS_CDDEBOUNCE, 0);
  2465. }
  2466. }
  2467. int msdc_card_avail(struct mmc_host *host)
  2468. {
  2469. u32 base = host->base;
  2470. u32 sts, avail = 0;
  2471. if ((msdc_cap[host->id].flags & MSDC_REMOVABLE) == 0)
  2472. return 1;
  2473. if (msdc_cap[host->id].flags & MSDC_CD_PIN_EN) {
  2474. MSDC_GET_FIELD(MSDC_PS, MSDC_PS_CDSTS, sts);
  2475. avail = sts == 0 ? 1 : 0;
  2476. }
  2477. return avail;
  2478. }
  2479. #endif
  2480. #if defined(MMC_MSDC_DRV_CTP)
  2481. int msdc_card_protected(struct mmc_host *host)
  2482. {
  2483. u32 base = host->base;
  2484. u32 prot;
  2485. if (msdc_cap[host->id].flags & MSDC_WP_PIN_EN) {
  2486. MSDC_GET_FIELD(MSDC_PS, MSDC_PS_WP, prot);
  2487. } else {
  2488. prot = 0;
  2489. }
  2490. return prot;
  2491. }
  2492. #endif
  2493. #if defined(MMC_MSDC_DRV_CTP) || defined(MMC_MSDC_DRV_LK)
  2494. void msdc_hard_reset(struct mmc_host *host)
  2495. {
  2496. msdc_card_power(host, 0);
  2497. mdelay(10);
  2498. msdc_card_power(host, 1);
  2499. mdelay(10);
  2500. }
  2501. void msdc_soft_reset(struct mmc_host *host)
  2502. {
  2503. u32 base = host->base;
  2504. u32 tmo = 0x0000ffff;
  2505. MSDC_RESET();
  2506. MSDC_SET_FIELD(MSDC_DMA_CTRL, MSDC_DMA_CTRL_STOP, 1);
  2507. WAIT_COND((MSDC_READ32(MSDC_DMA_CFG) & MSDC_DMA_CFG_STS) == 0, 0xFFFF, tmo);
  2508. if (tmo == 0) {
  2509. MSG(DMA, "[SD%d] MSDC_DMA_CFG_STS != inactive\n", host->id);
  2510. }
  2511. MSDC_CLR_FIFO();
  2512. }
  2513. #endif
  2514. void msdc_emmc_hard_reset(struct mmc_host *host)
  2515. {
  2516. u32 base = host->base;
  2517. MSDC_SET_BIT32(EMMC_IOCON, EMMC_IOCON_BOOTRST);
  2518. //mt_set_gpio_out(PAD_MSDC0_RSTB,GPIO_OUT_ZERO);
  2519. mdelay(10);
  2520. MSDC_CLR_BIT32(EMMC_IOCON, EMMC_IOCON_BOOTRST);
  2521. //mt_set_gpio_out(PAD_MSDC0_RSTB,GPIO_OUT_ONE);
  2522. }
  2523. #ifdef FEATURE_MMC_BOOT_MODE
  2524. int msdc_emmc_boot_start(struct mmc_host *host, u32 hz, int ddr, int mode, int ackdis, u8 hostbuswidth, u64 size)
  2525. {
  2526. int err = MMC_ERR_NONE;
  2527. u32 sts;
  2528. u32 base = host->base;
  2529. u32 tmo = 0xFFFFFFFF;
  2530. u32 acktmo, dattmo;
  2531. u64 acktime, dattime;
  2532. u64 expect_dattime;
  2533. u32 test_timer1;
  2534. u32 test_timer2;
  2535. MSDC_RESET();
  2536. MSDC_CLR_FIFO();
  2537. msdc_set_blklen(host, 512);
  2538. msdc_set_blknum(host, size/512);
  2539. msdc_config_bus(host, hostbuswidth);
  2540. msdc_config_clksrc(host, MSDC0_CLKSRC_26MHZ);
  2541. msdc_config_clock(host, (ddr ? MMC_STATE_DDR : 0), hz, 0);
  2542. //MSDC_SET_FIELD(MSDC_DMA_CFG,3 << 12,0x2);
  2543. //MSDC_SET_FIELD(MSDC_DMA_CFG,3 << 8,0x1);
  2544. /* requires 74 clocks/1ms before CMD0 */
  2545. MSDC_SET_BIT32(MSDC_CFG, MSDC_CFG_CKPDN);
  2546. mdelay(2);
  2547. MSDC_CLR_BIT32(MSDC_CFG, MSDC_CFG_CKPDN);
  2548. /* configure boot timeout value */
  2549. WAIT_COND(SDC_IS_BUSY() == 0, tmo, tmo);
  2550. acktime = 50 * 1000 * 1000ULL;
  2551. dattime = 1000 * 1000 * 1000ULL;
  2552. acktmo = msdc_cal_timeout(host, acktime, 0, 1<<EMMC_BOOT_TMO_IN_CLK_2POWER); /* 50ms MT6583 MSDC IP eMMC boot timeout unit change to 2^16*/
  2553. expect_dattime = size * 8 / hostbuswidth;
  2554. if (ddr)
  2555. expect_dattime /= 2;
  2556. expect_dattime *= (1000 * 1000 * 1000ULL) / hz;
  2557. if (expect_dattime > dattime)
  2558. dattime = expect_dattime * 2;
  2559. dattmo = msdc_cal_timeout(host, dattime, 0, 1<<EMMC_BOOT_TMO_IN_CLK_2POWER); /* 1sec */
  2560. if (acktmo == 0) acktmo = 1;
  2561. if (dattmo == 0) dattmo = 1;
  2562. acktmo = acktmo > 0xFFE ? 0xFFE : acktmo;
  2563. dattmo = dattmo > 0xFFFFE ? 0xFFFFE : dattmo;
  2564. MSG(INF, "[SD%d] EMMC BOOT ACK timeout: %d ms (clkcnt: %d)(host->cur_bus_clk = %d)\n", host->id,
  2565. (acktmo * 65536) / (host->cur_bus_clk / 1000), acktmo, host->cur_bus_clk);
  2566. MSG(INF, "[SD%d] EMMC BOOT DAT timeout: %d ms (clkcnt: %d)\n", host->id,
  2567. (dattmo * 65536) / (host->cur_bus_clk / 1000), dattmo);
  2568. MSG(INF, "[SD%d] EMMC BOOT ACK %s on host\n", host->id, (ackdis ? "disabled" : "enabled"));
  2569. MSDC_SET_BIT32(EMMC_CFG0, EMMC_CFG0_BOOTSUPP);
  2570. MSDC_SET_FIELD(EMMC_CFG0, EMMC_CFG0_BOOTACKDIS, ackdis);
  2571. MSDC_SET_FIELD(EMMC_CFG0, EMMC_CFG0_BOOTMODE, mode);
  2572. MSDC_SET_FIELD(EMMC_CFG1, EMMC_CFG1_BOOTACKTMC, acktmo);
  2573. MSDC_SET_FIELD(EMMC_CFG1, EMMC_CFG1_BOOTDATTMC, dattmo);
  2574. if (mode == EMMC_BOOT_RST_CMD_MODE) {
  2575. MSDC_WRITE32(SDC_ARG, 0xFFFFFFFA);
  2576. } else {
  2577. MSDC_WRITE32(SDC_ARG, 0);
  2578. }
  2579. MSDC_WRITE32(SDC_CMD, 0x02001000); /* bit[12]: 1 multiple block read, 0: single block read */
  2580. #if 0 //init timer to test MT6583 ACK/DAT timeour modification test case
  2581. MSDC_WRITE32(0x10008040,0x31);
  2582. MSDC_WRITE32(0x10008044,0x0);
  2583. test_timer1 = MSDC_READ32(0x10008048);//init timer to test MT6583 ACK/DAT timeour modification test case
  2584. #endif
  2585. MSDC_SET_BIT32(EMMC_CFG0, EMMC_CFG0_BOOTSTART);
  2586. WAIT_COND((MSDC_READ32(EMMC_STS) & EMMC_STS_BOOTUPSTATE) == EMMC_STS_BOOTUPSTATE, tmo, tmo);
  2587. if (!ackdis) {
  2588. do {
  2589. sts = MSDC_READ32(EMMC_STS);
  2590. if (sts == 0)
  2591. continue;
  2592. MSDC_WRITE32(EMMC_STS, sts); /* write 1 to clear */
  2593. /* if ack is error, hw will first set bootackrcv bit, then set bootackerr bit
  2594. * so the best way is check EMMC_STS_BOOTACKERR bit after EMMC_STS_BOOTACKRCV bit set*/
  2595. if (sts & EMMC_STS_BOOTACKERR) {
  2596. msdc_pr_err("[%s]: [SD%d] EMMC_STS(0x%x): boot up ack error\n", __func__, host->id, sts);
  2597. err = MMC_ERR_BADCRC;
  2598. goto out;
  2599. } else if (sts & EMMC_STS_BOOTACKRCV) {
  2600. MSG(INF, "[%s]: [SD%d] EMMC_STS(0x%x): boot ack received\n", __func__,host->id, sts);
  2601. break;
  2602. } else if (sts & EMMC_STS_BOOTACKTMO) {
  2603. #if 0
  2604. test_timer2 = MSDC_READ32(0x10008048);
  2605. test_timer1 = (test_timer2 - test_timer1) /6000;
  2606. msdc_pr_err("[SD%d] EMMC_STS(%x): boot up ack timeout(%d ms)\n", host->id, sts,test_timer1);
  2607. //test MT6583 ACK/DAT timeour modification test case
  2608. #endif
  2609. msdc_pr_err("[%s]: [SD%d] EMMC_STS(0x%x): boot up ack timeout\n", __func__,host->id, sts);
  2610. err = MMC_ERR_TIMEOUT;
  2611. goto out;
  2612. } else if (sts & EMMC_STS_BOOTUPSTATE) {
  2613. //msdc_pr_info("[%s]: [SD%d] EMMC_STS(%x): boot up mode state\n", __func__, host->id, sts);
  2614. } else {
  2615. msdc_pr_err("[%s]: [SD%d] EMMC_STS(0x%x): boot up unexpected\n", __func__,host->id, sts);
  2616. }
  2617. } while (1);
  2618. }
  2619. //MSG(INF, "ackdis(%d) err(%d)\n",ackdis,err);
  2620. /* check if data received */
  2621. do {
  2622. sts = MSDC_READ32(EMMC_STS);
  2623. if (sts == 0)
  2624. continue;
  2625. if (sts & EMMC_STS_BOOTDATRCV) {
  2626. MSG(INF, "[%s]: [SD%d] EMMC_STS(0x%x): boot dat received\n", __func__,host->id, sts);
  2627. break;
  2628. }
  2629. if (sts & EMMC_STS_BOOTCRCERR) {
  2630. msdc_pr_err("[%s]: [SD%d] EMMC_STS(0x%x): boot up data crc error\n", __func__,host->id, sts);
  2631. err = MMC_ERR_BADCRC;
  2632. goto out;
  2633. } else if (sts & EMMC_STS_BOOTDATTMO) {
  2634. #if 0
  2635. test_timer2 = MSDC_READ32(0x10008048);
  2636. test_timer1 = (test_timer2 - test_timer1) /6000;
  2637. msdc_pr_err("[%s]: [SD%d] EMMC_STS(%x): boot up data timeout(%d s)\n", __func__,host->id, sts,test_timer1);
  2638. //test MT6583 ACK/DAT timeour modification test case
  2639. #endif
  2640. msdc_pr_err("[%s]: [SD%d] EMMC_STS(0x%x): boot up data timeout\n", __func__,host->id, sts);
  2641. err = MMC_ERR_TIMEOUT;
  2642. goto out;
  2643. }
  2644. } while (1);
  2645. out:
  2646. return err;
  2647. }
  2648. void msdc_emmc_boot_stop(struct mmc_host *host)
  2649. {
  2650. u32 base = host->base;
  2651. u32 tmo = 0xFFFFFFFF;
  2652. /* Step5. stop the boot mode */
  2653. MSDC_WRITE32(SDC_ARG, 0x00000000);
  2654. MSDC_WRITE32(SDC_CMD, 0x00001000);
  2655. MSDC_SET_FIELD(EMMC_CFG0, EMMC_CFG0_BOOTWDLY, 2);
  2656. MSDC_SET_BIT32(EMMC_CFG0, EMMC_CFG0_BOOTSTOP);
  2657. WAIT_COND((MSDC_READ32(EMMC_STS) & EMMC_STS_BOOTUPSTATE) == 0, tmo, tmo);
  2658. /* Step6. */
  2659. MSDC_CLR_BIT32(EMMC_CFG0, EMMC_CFG0_BOOTSUPP);
  2660. /* Step7. clear EMMC_STS bits */
  2661. MSDC_WRITE32(EMMC_STS, MSDC_READ32(EMMC_STS));
  2662. }
  2663. int msdc_emmc_boot_read(struct mmc_host *host, u64 size, u32 *to, int read_mode)
  2664. {
  2665. int err = MMC_ERR_NONE;
  2666. int derr = MMC_ERR_NONE;
  2667. u32 sts;
  2668. u64 totalsz = size;
  2669. u32 base = host->base;
  2670. u64 left_sz, xfer_sz;
  2671. msdc_priv_t *priv = (msdc_priv_t*)host->priv;
  2672. struct dma_config *cfg = &priv->cfg;
  2673. BUG_ON((read_mode < MSDC_MODE_PIO) && (read_mode > MSDC_MODE_DMA_DESC));
  2674. if (read_mode == MSDC_MODE_PIO) {
  2675. MSDC_SET_BIT32(MSDC_CFG, MSDC_CFG_PIO);
  2676. while (size) {
  2677. sts = MSDC_READ32(EMMC_STS);
  2678. if (sts & EMMC_STS_BOOTCRCERR) {
  2679. msdc_pr_err("[SD%d] EMMC_STS(0x%x): boot up data crc error\n", host->id, sts);
  2680. err = MMC_ERR_BADCRC;
  2681. goto out;
  2682. } else if (sts & EMMC_STS_BOOTDATTMO) {
  2683. msdc_pr_err("[SD%d] EMMC_STS(0x%x): boot up data timeout error\n", host->id, sts);
  2684. err = MMC_ERR_TIMEOUT;
  2685. goto out;
  2686. }
  2687. /* Note. RXFIFO count would be aligned to 4-bytes alignment size */
  2688. if ((size >= MSDC_FIFO_THD) && (MSDC_RXFIFOCNT() >= MSDC_FIFO_THD)) {
  2689. int left = MSDC_FIFO_THD >> 2;
  2690. do {
  2691. #ifdef MTK_MSDC_DUMP_FIFO
  2692. MSG(FIO, "0x%x ",MSDC_FIFO_READ32());
  2693. #else
  2694. *to++ = MSDC_FIFO_READ32();
  2695. #endif
  2696. } while (--left);
  2697. size -= MSDC_FIFO_THD;
  2698. MSG(FIO, "[SD%d] Read %d bytes, RXFIFOCNT: %d, Left: %d/%d\n",
  2699. host->id, MSDC_FIFO_THD, MSDC_RXFIFOCNT(), size, totalsz);
  2700. } else if ((size < MSDC_FIFO_THD) && MSDC_RXFIFOCNT() >= size) {
  2701. while (size) {
  2702. if (size > 3) {
  2703. #ifdef MTK_MSDC_DUMP_FIFO
  2704. MSG(FIO, "0x%x ", MSDC_FIFO_READ32());
  2705. #else
  2706. *to++ = MSDC_FIFO_READ32();
  2707. #endif
  2708. size -= 4;
  2709. } else {
  2710. #ifdef MTK_MSDC_DUMP_FIFO
  2711. MSG(FIO, "0x%x ", MSDC_FIFO_READ32());
  2712. #else
  2713. u32 val = MSDC_FIFO_READ32();
  2714. memcpy(to, &val, size);
  2715. #endif
  2716. size = 0;
  2717. }
  2718. }
  2719. MSG(FIO, "[SD%d] Read left bytes, RXFIFOCNT: %d, Left: %d/%d\n",
  2720. host->id, MSDC_RXFIFOCNT(), (u32)size, totalsz);
  2721. }
  2722. }
  2723. out:
  2724. if (err) {
  2725. msdc_pr_err("[SD%d] EMMC_BOOT: read boot code fail(%d), FIFOCNT=%d\n",
  2726. host->id, err, MSDC_RXFIFOCNT());
  2727. }
  2728. } else {
  2729. //MSDC_CLR_BIT32(MSDC_CFG, MSDC_CFG_PIO);
  2730. cfg->mode = read_mode;
  2731. left_sz = size;
  2732. if (read_mode == MSDC_MODE_DMA_BASIC) {
  2733. cfg->inboot = 1;
  2734. xfer_sz = left_sz > MAX_DMA_CNT ? MAX_DMA_CNT : left_sz;
  2735. //msdc_set_blknum(host, xfer_sz/512);
  2736. } else {
  2737. xfer_sz = left_sz;
  2738. }
  2739. while (left_sz) {
  2740. u32 base = host->base;
  2741. cfg->xfersz = xfer_sz;
  2742. //MSG(FIO, "to (0x%x) xfer_sz(0x%x)\n",to,xfer_sz);
  2743. if (cfg->mode == MSDC_MODE_DMA_BASIC) {
  2744. cfg->sglen = 1;
  2745. cfg->sg[0].addr = (u32)to;
  2746. cfg->sg[0].len = xfer_sz;
  2747. msdc_flush_membuf(to, xfer_sz);
  2748. } else {
  2749. cfg->sglen = msdc_sg_init(cfg->sg, to, xfer_sz);
  2750. cfg->flags |= DMA_FLAG_EN_CHKSUM;
  2751. }
  2752. MSDC_DMA_ON();
  2753. //MSG(FIO, "xfer_sz(%d),left_sz(%d)\n", (u32)xfer_sz, (u32)left_sz);*/
  2754. msdc_dma_config(host, cfg);
  2755. if (left_sz - xfer_sz != 0)
  2756. MSDC_SET_FIELD(MSDC_DMA_CTRL, MSDC_DMA_CTRL_LASTBUF, 0);
  2757. msdc_dma_start(host);
  2758. err = derr = msdc_dma_wait_done(host, 0xFFFFFFFF);
  2759. msdc_dma_stop(host);
  2760. msdc_flush_membuf(to, xfer_sz);
  2761. if (err != MMC_ERR_NONE)
  2762. goto done;
  2763. to = (u32 *)((u8 *)to + xfer_sz);
  2764. left_sz -= xfer_sz;
  2765. /* left_sz > 0 only when in basic dma mode */
  2766. if (left_sz) {
  2767. xfer_sz = (xfer_sz > left_sz) ? left_sz : xfer_sz;
  2768. }
  2769. }
  2770. done:
  2771. if (derr != MMC_ERR_NONE) {
  2772. msdc_pr_err("[SD%d] EMMC boot read error(%d)\n", host->id,derr);
  2773. msdc_abort_handler(host, 1);
  2774. }
  2775. }
  2776. return err;
  2777. }
  2778. void msdc_emmc_boot_reset(struct mmc_host *host, int reset)
  2779. {
  2780. u32 base = host->base;
  2781. u32 wints = MSDC_INT_CMDRDY | MSDC_INT_CMDTMO;
  2782. u32 l_arg, l_cmd, status;
  2783. u32 tmo = 0xffffffff;
  2784. switch (reset) {
  2785. case EMMC_BOOT_PWR_RESET:
  2786. msdc_hard_reset(host);
  2787. break;
  2788. case EMMC_BOOT_RST_N_SIG:
  2789. if (msdc_cap[host->id].flags & MSDC_RST_PIN_EN) {
  2790. /* set n_reset pin to low */
  2791. MSDC_SET_BIT32(EMMC_IOCON, EMMC_IOCON_BOOTRST);
  2792. /* tRSTW (RST_n pulse width) at least 1us */
  2793. mdelay(1);
  2794. /* set n_reset pin to high, mark this line if do boot ACK & boot DAT timeout test */
  2795. MSDC_CLR_BIT32(EMMC_IOCON, EMMC_IOCON_BOOTRST);
  2796. /* tRSCA (RST_n to command time) at least 200us,
  2797. tRSTH (RST_n high period) at least 1us */
  2798. MSDC_SET_BIT32(MSDC_CFG, MSDC_CFG_CKPDN);
  2799. mdelay(1);
  2800. MSDC_CLR_BIT32(MSDC_CFG, MSDC_CFG_CKPDN);
  2801. }
  2802. break;
  2803. case EMMC_BOOT_PRE_IDLE_CMD:
  2804. /* bring emmc to pre-idle mode by software reset command. (MMCv4.41)*/
  2805. SDC_SEND_CMD(0x0, 0xF0F0F0F0);
  2806. /* read SDC_ARG & SDC_CMD for avoid buffered register */
  2807. l_arg = MSDC_READ32(SDC_ARG);
  2808. l_cmd = MSDC_READ32(SDC_CMD);
  2809. /* check cmd0 is send */
  2810. status = msdc_intr_wait(host, wints);
  2811. if (status & MSDC_INT_CMDTMO) {
  2812. msdc_pr_err("[SD%d] CMD0:ERR(CMDTO)\n", host->id);
  2813. }
  2814. mdelay(1); //need delay to make sure pre-idle
  2815. break;
  2816. }
  2817. }
  2818. #endif
  2819. int msdc_init(int id, struct mmc_host *host, int clksrc, int mode)
  2820. {
  2821. u32 baddr[] = {MSDC0_BASE, MSDC1_BASE};
  2822. u32 top_baddr[] = {MSDC0_TOP_BASE, MSDC1_TOP_BASE};
  2823. u32 base;
  2824. u32 top_base;
  2825. msdc_priv_t *priv;
  2826. struct dma_config *cfg;
  2827. if ((id >= MSDC_MAX_NUM) || (id < 0)) {
  2828. msdc_pr_err("[SD%d] Host index error\n", id);
  2829. return -1;
  2830. }
  2831. base = baddr[id];
  2832. top_base = top_baddr[id];
  2833. msdc_pr_err("[SD%d] Host controller intialization start [%x]\n", id, msdc_cap[id].flags);
  2834. clksrc = (clksrc == -1) ? msdc_cap[id].clk_src : clksrc;
  2835. priv = &msdc_priv[id];
  2836. cfg = &priv->cfg;
  2837. memset(priv, 0, sizeof(msdc_priv_t));
  2838. host->id = id;
  2839. host->base = base;
  2840. host->base_top = top_base;
  2841. msdc_config_clksrc(host, clksrc);
  2842. host->f_max = MSDC_MAX_SCLK;;
  2843. host->f_min = MSDC_MIN_SCLK;
  2844. host->blkbits= MMC_BLOCK_BITS;
  2845. host->blklen = 0;
  2846. host->priv = (void*)priv;
  2847. host->caps = MMC_CAP_MULTIWRITE;
  2848. if (msdc_cap[id].flags & MSDC_HIGHSPEED)
  2849. host->caps |= (MMC_CAP_MMC_HIGHSPEED | MMC_CAP_SD_HIGHSPEED);
  2850. #if defined(FEATURE_MMC_UHS1)
  2851. if (msdc_cap[id].flags & MSDC_UHS1)
  2852. host->caps |= MMC_CAP_SD_UHS1;
  2853. #endif
  2854. if (msdc_cap[id].flags & MSDC_DDR)
  2855. host->caps |= MMC_CAP_DDR;
  2856. if (msdc_cap[id].data_pins == 4)
  2857. host->caps |= MMC_CAP_4_BIT_DATA;
  2858. if (msdc_cap[id].data_pins == 8)
  2859. host->caps |= MMC_CAP_8_BIT_DATA | MMC_CAP_4_BIT_DATA;
  2860. if (msdc_cap[id].flags & MSDC_HS200)
  2861. host->caps |= MMC_CAP_EMMC_HS200;
  2862. if (msdc_cap[id].flags & MSDC_HS400)
  2863. host->caps |= MMC_CAP_EMMC_HS400;
  2864. host->ocr_avail = MMC_VDD_27_36;
  2865. /* msdc0 only support 1.8 IO */
  2866. if (host->caps & (MMC_CAP_EMMC_HS200 | MMC_CAP_EMMC_HS400))
  2867. host->ocr_avail |= MMC_VDD_165_195;
  2868. host->max_hw_segs = MAX_DMA_TRAN_SIZE / 512;
  2869. host->max_phys_segs = MAX_DMA_TRAN_SIZE / 512;
  2870. host->max_seg_size = MAX_DMA_TRAN_SIZE;
  2871. host->max_blk_size = 2048;
  2872. host->max_blk_count = 65535;
  2873. host->app_cmd = 0;
  2874. host->app_cmd_arg = 0;
  2875. priv->rdsmpl = msdc_cap[id].data_edge;
  2876. priv->wdsmpl = msdc_cap[id].data_edge;
  2877. priv->rsmpl = msdc_cap[id].cmd_edge;
  2878. #if defined(MSDC_ENABLE_DMA_MODE)
  2879. cfg->sg = &priv->sg[0];
  2880. cfg->burstsz = MSDC_BRUST_64B;
  2881. cfg->flags = DMA_FLAG_NONE;
  2882. cfg->mode = mode;
  2883. cfg->inboot = 0;
  2884. msdc_init_gpd_bd(host);
  2885. priv->alloc_bd = 0;
  2886. priv->alloc_gpd = 0;
  2887. priv->active_head = NULL;
  2888. priv->active_tail = NULL;
  2889. #endif
  2890. // set current power level: VOL_1800 or VOL_3300
  2891. #if defined(USE_SDIO_1V8)
  2892. if (host->id != 0) {
  2893. host->cur_pwr = VOL_1800;
  2894. } else
  2895. #endif
  2896. {
  2897. #if defined(FPGA_PLATFORM)
  2898. #if MSDC_USE_EMMC45_POWER
  2899. host->cur_pwr = VOL_1800;
  2900. #else
  2901. host->cur_pwr = VOL_3300;
  2902. #endif
  2903. #else
  2904. if ( host->id==0 )
  2905. host->cur_pwr = VOL_1800;
  2906. else
  2907. host->cur_pwr = VOL_3300;
  2908. #endif
  2909. }
  2910. msdc_clock(host, 1);
  2911. /* Turn on to match sw status and hw status
  2912. since VEMC/VMC/VMCH are default on */
  2913. msdc_power(host, MMC_POWER_ON);
  2914. msdc_power(host, MMC_POWER_OFF);
  2915. msdc_power(host, MMC_POWER_ON);
  2916. #if defined(MMC_MSDC_DRV_PRELOADER)
  2917. /* reset eMMC after power on */
  2918. if (host->id == 0)
  2919. msdc_emmc_hard_reset(host);
  2920. #endif
  2921. /* set to SD/MMC mode */
  2922. MSDC_SET_FIELD(MSDC_CFG, MSDC_CFG_MODE, MSDC_SDMMC);
  2923. MSDC_SET_BIT32(MSDC_CFG, MSDC_CFG_PIO);
  2924. MSDC_RESET();
  2925. MSDC_CLR_FIFO();
  2926. MSDC_CLR_INT();
  2927. /* Disable async fifo use internal delay*/
  2928. /* Commentted out and-then moved into msdc_init_tune_path
  2929. MSDC_CLR_BIT32(MSDC_PATCH_BIT2, MSDC_PB2_CFGCRCSTS);
  2930. MSDC_SET_BIT32(MSDC_PATCH_BIT2, MSDC_PB2_CFGRESP);
  2931. */
  2932. /* enable SDIO mode. it's must otherwise sdio command failed */
  2933. MSDC_SET_BIT32(SDC_CFG, SDC_CFG_SDIO);
  2934. /* disable detect SDIO device interupt function */
  2935. MSDC_CLR_BIT32(SDC_CFG, SDC_CFG_SDIOIDE);
  2936. /* enable wake up events */
  2937. #if defined(MMC_MSDC_DRV_CTP)
  2938. MSDC_SET_BIT32(SDC_CFG, SDC_CFG_INSWKUP);
  2939. #endif
  2940. /* reset tuning parameter */
  2941. msdc_reset_timing_register(host);
  2942. #if defined(FEATURE_ASYNC_PATH_ENABLE)
  2943. msdc_init_tune_path(host, MSDC_PATH_USE_ASYNC_FIFO, 0);
  2944. #else
  2945. msdc_init_tune_path(host, MSDC_PATH_USE_DELAY_LINE, 0);
  2946. #endif
  2947. /* Disable support 64G */
  2948. MSDC_CLR_BIT32(MSDC_PATCH_BIT2, MSDC_PB2_SUPPORT64G);
  2949. #if !defined(FPGA_PLATFORM)
  2950. msdc_gpio_and_pad_init(host);
  2951. #endif
  2952. /* disable boot function, else eMMC intialization may be failed after BROM ops. */
  2953. MSDC_CLR_BIT32(EMMC_CFG0, EMMC_CFG0_BOOTSUPP);
  2954. /* set sampling edge */
  2955. MSDC_SET_FIELD(MSDC_IOCON, MSDC_IOCON_RSPL, msdc_cap[host->id].cmd_edge);
  2956. MSDC_SET_FIELD(MSDC_IOCON, MSDC_IOCON_R_D_SMPL, msdc_cap[host->id].data_edge);
  2957. /* write crc timeout detection */
  2958. MSDC_SET_FIELD(MSDC_PATCH_BIT0, 1 << 30, 1);
  2959. #if defined(MMC_MSDC_DRV_CTP)
  2960. #if (MSDC_USE_FORCE_FLUSH || MSDC_USE_RELIABLE_WRITE || MSDC_USE_DATA_TAG || MSDC_USE_PACKED_CMD)
  2961. MSDC_SET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_BLKNUM_SEL, 0);
  2962. #else
  2963. MSDC_SET_FIELD(MSDC_PATCH_BIT0, MSDC_PB0_BLKNUM_SEL, 1);
  2964. #endif
  2965. #endif
  2966. msdc_set_startbit(host, START_AT_RISING);
  2967. msdc_config_clksrc(host, clksrc);
  2968. msdc_config_bus(host, HOST_BUS_WIDTH_1);
  2969. msdc_config_clock(host, 0, MSDC_MIN_SCLK, 0);
  2970. msdc_set_dmode(host, mode);
  2971. msdc_set_pio_bits(host, 32);
  2972. /* disable sdio interrupt by default. sdio interrupt enable upon request */
  2973. msdc_intr_unmask(host, 0x0001FF7B);
  2974. msdc_irq_init(host);
  2975. msdc_set_timeout(host, 100000000UL, 0);
  2976. #if defined(FEATURE_MMC_CARD_DETECT)
  2977. msdc_card_detect(host, 1);
  2978. #endif
  2979. #if defined(MSDC_USE_DCM) && defined(MMC_MSDC_DRV_CTP)
  2980. #if !defined(MTKDRV_DCM)
  2981. #error please turn on DCM driver before enable MSDC DCM
  2982. #endif
  2983. dcm_disable(ALL_DCM);
  2984. dcm_enable(MSDC_DCM);
  2985. #endif
  2986. if ((host->id == 0) || (host->id == 1)) {
  2987. /* disable SDIO func */
  2988. MSDC_SET_FIELD(SDC_CFG, SDC_CFG_SDIO, 0);
  2989. MSDC_SET_FIELD(SDC_CFG, SDC_CFG_SDIOIDE, 0);
  2990. MSDC_SET_FIELD(SDC_CFG, SDC_CFG_INSWKUP, 0);
  2991. }
  2992. msdc_pr_info("[SD%d] Host controller intialization done\n", id);
  2993. return 0;
  2994. }
  2995. #if defined(MSDC_WITH_DEINIT)
  2996. int msdc_deinit(struct mmc_host *host)
  2997. {
  2998. u32 base = host->base;
  2999. #if defined(FEATURE_MMC_CARD_DETECT)
  3000. msdc_card_detect(host, 0);
  3001. #endif
  3002. msdc_intr_mask(host, 0x0001FFFB);
  3003. msdc_irq_deinit(host);
  3004. MSDC_RESET();
  3005. MSDC_CLR_FIFO();
  3006. MSDC_CLR_INT();
  3007. msdc_power(host, MMC_POWER_OFF);
  3008. return 0;
  3009. }
  3010. #endif
  3011. int msdc_polling_CD_interrupt(struct mmc_host *host)
  3012. {
  3013. u32 base = host->base;
  3014. u32 intsts;
  3015. intsts = MSDC_READ32(MSDC_INT);
  3016. MSDC_WRITE32(MSDC_INT, intsts);
  3017. //msdc_pr_info("SDIO INT(0x%x)\n",intsts);
  3018. if (intsts & MSDC_INT_CDSC)
  3019. return 1;
  3020. else
  3021. return 0;
  3022. }