dummy_ap.c 65 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) 2016. 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. /* Note: Pleae enable DUMMY_AP option at rule.mk if hope to use this function */
  32. #include <platform/boot_mode.h>
  33. #include <debug.h>
  34. #include <dev/uart.h>
  35. #include <platform/mtk_key.h>
  36. #include <target/cust_key.h>
  37. #include <platform/mt_gpio.h>
  38. #include <sys/types.h>
  39. #include <debug.h>
  40. #include <err.h>
  41. #include <reg.h>
  42. #include <string.h>
  43. #include <platform/mt_typedefs.h>
  44. #include <platform/mt_reg_base.h>
  45. #include <platform/mt_irq.h>
  46. #include <platform/mt_pmic.h>
  47. #include <platform/timer.h>
  48. #include <sys/types.h>
  49. #include <arch/ops.h>
  50. #include <platform/mt_pmic.h>
  51. #include <platform/upmu_common.h>
  52. #include <platform/upmu_hw.h>
  53. //#include <platform/pmic_wrap_init.h>
  54. #include <platform/spm.h>
  55. //=====================================================================
  56. // Feature option switch part
  57. //=====================================================================
  58. //#define THIS_IS_EVB
  59. #define BOTH_MD_ON
  60. //#define DEFAULT_META
  61. //#define THIS_IS_PHONE
  62. //#define ENABLE_MD_RESET_SPM
  63. //#define ENABLE_MD_RESET_RGU
  64. #define IGNORE_MD_WDT
  65. //#define IGNORE_MD1_WDT
  66. //#define IGNORE_MD2_WDT
  67. //#define ALWAYS_META
  68. #define AP_MD_SAME_UART
  69. #ifdef ENABLE_MD_RESET_SPM
  70. #include <platform/spm.h>
  71. #endif
  72. enum {
  73. MD_SYS1 = 0,
  74. MD_SYS2,
  75. MD_SYS3,
  76. MD_SYS4,
  77. };
  78. enum {
  79. AP_ONLY = -1,
  80. MD1_ONLY = 0,
  81. MD2_ONLY,
  82. MD1_MD2,
  83. };
  84. //------- IRQ ID part ---------------------------------------
  85. #define GIC_PRIVATE_SIGNALS (32)
  86. #define MT_MD_WDT1_IRQ_ID (252+GIC_PRIVATE_SIGNALS)
  87. #define MT_MD_WDT2_IRQ_ID (249+GIC_PRIVATE_SIGNALS)
  88. // C2K_CONFIG (0x10001360)
  89. #define AP_C2K_CONFIG (0x10001360)
  90. #define MD1_BUS_PROTECT_EN (0x10001250)
  91. #define MD1_BUS_PROTECT_STA (0x10001258)
  92. // AP RGU
  93. #define TOP_RGU_WDT_MODE (TOPRGU_BASE+0x0)
  94. #define TOP_RGU_WDT_SWRST (TOPRGU_BASE+0x14)
  95. #define TOP_RGU_WDT_SWSYSRST (TOPRGU_BASE+0x18)
  96. #define TOP_RGU_WDT_NONRST_REG (TOPRGU_BASE+0x20)
  97. #define MD_BOOT_VECTOR_EN 0x20000024
  98. // MD RGU PCore
  99. #define BASE_ADDR_MDRSTCTL 0x200f0000 /* From md, no use by AP directly */
  100. #define L1_BASE_ADDR_L1RGU 0x26010000 /* From md, no use by AP directly */
  101. #define MD_RGU_BASE (BASE_ADDR_MDRSTCTL + 0x100) /* AP use */
  102. #define L1_RGU_BASE L1_BASE_ADDR_L1RGU /* AP use */
  103. #define REG_MDRSTCTL_WDTCR (0x0000) /*WDT_MODE*/
  104. #define WDT_MD_MODE REG_MDRSTCTL_WDTCR
  105. #define REG_L1RSTCTL_WDT_MODE (0x0000)
  106. #define WDT_MD_MODE_KEY (0x55000008)
  107. #define L1_WDT_MD_MODE_KEY (0x00002200)
  108. /* MD1 PLL */
  109. #define PLL_TYPE (volatile unsigned int *)
  110. #define MD_CLKSW_BASE (0x20150000)
  111. #define MD_GLOBAL_CON_DCM_BASE (0x20130000)
  112. #define PSMCU_MISC_BASE (0x20200000)
  113. #define MD_PERI_MISC_BASE (0x20060000)
  114. #define MDL1A0_BASE (0x260F0000)
  115. #define MDTOP_PLLMIXED_BASE (0x20140000)
  116. #define MDSYS_CLKCTL_BASE (0x20120000)
  117. #define L1_BASE_MADDR_MDL1_CONF (0x260F0000)
  118. #define R_CLKSEL_CTL (PLL_TYPE(MD_CLKSW_BASE+0x0024))
  119. #define R_FLEXCKGEN_SEL0 (PLL_TYPE(MD_CLKSW_BASE+0x0028))
  120. #define R_FLEXCKGEN_SEL1 (PLL_TYPE(MD_CLKSW_BASE+0x002C))
  121. #define R_FLEXCKGEN_SEL2 (PLL_TYPE(MD_CLKSW_BASE+0x0044))
  122. #define R_PLL_STS (PLL_TYPE(MD_CLKSW_BASE+0x0040))
  123. #define R_FLEXCKGEN_STS0 (PLL_TYPE(MD_CLKSW_BASE+0x0030))
  124. #define R_FLEXCKGEN_STS1 (PLL_TYPE(MD_CLKSW_BASE+0x0034))
  125. #define R_FLEXCKGEN_STS2 (PLL_TYPE(MD_CLKSW_BASE+0x0048))
  126. /*PSMCU DCM*/
  127. #define R_PSMCU_DCM_CTL0 (PLL_TYPE(MD_GLOBAL_CON_DCM_BASE+0x0010))
  128. #define R_PSMCU_DCM_CTL1 (PLL_TYPE(MD_GLOBAL_CON_DCM_BASE+0x0014))
  129. #define R_ARM7_DCM_CTL0 (PLL_TYPE(MD_GLOBAL_CON_DCM_BASE+0x0020))
  130. #define R_ARM7_DCM_CTL1 (PLL_TYPE(MD_GLOBAL_CON_DCM_BASE+0x0024))
  131. #define MD_GLOBAL_CON_DUMMY (PLL_TYPE(MD_GLOBAL_CON_DCM_BASE+0x1000))
  132. #define MD_PLL_MAGIC_NUM (0x67550000)
  133. #define R_DCM_SHR_SET_CTL (PLL_TYPE(MDSYS_CLKCTL_BASE+0x0004))
  134. #define R_LTEL2_BUS_DCM_CTL (PLL_TYPE(MDSYS_CLKCTL_BASE+0x0010))
  135. #define R_MDDMA_BUS_DCM_CTL (PLL_TYPE(MDSYS_CLKCTL_BASE+0x0014))
  136. #define R_MDREG_BUS_DCM_CTL (PLL_TYPE(MDSYS_CLKCTL_BASE+0x0018))
  137. #define R_MODULE_BUS2X_DCM_CTL (PLL_TYPE(MDSYS_CLKCTL_BASE+0x001C))
  138. #define R_MODULE_BUS1X_DCM_CTL (PLL_TYPE(MDSYS_CLKCTL_BASE+0x0020))
  139. #define R_MDINFRA_CKEN (PLL_TYPE(MDSYS_CLKCTL_BASE+0x0044))
  140. #define R_MDPERI_CKEN (PLL_TYPE(MDSYS_CLKCTL_BASE+0x0048))
  141. #define R_MDPERI_DCM_MASK (PLL_TYPE(MDSYS_CLKCTL_BASE+0x0064))
  142. #define R_PSMCU_AO_CLK_CTL (PLL_TYPE(MDSYS_CLKCTL_BASE+0x00C0))
  143. #define R_L1_PMS (PLL_TYPE(MD_PERI_MISC_BASE+0x00C4))
  144. #define R_PD_PSMCU_SRAM_PMS (0x0094) /*Bit 13: 1 allow to access 0x200D0000 region*/
  145. #define REG_DCM_PLLCK_SEL (PLL_TYPE(MDL1A0_BASE+0x0188))
  146. #define R_L1MCU_PWR_AWARE (PLL_TYPE(MDL1A0_BASE+0x0190))
  147. #define R_L1AO_PWR_AWARE (PLL_TYPE(MDL1A0_BASE+0x0194))
  148. #define R_BUSL2DCM_CON3 (PLL_TYPE(MDL1A0_BASE+0x0198))
  149. #define R_L1MCU_DCM_CON2 (PLL_TYPE(MDL1A0_BASE+0x0184))
  150. #define R_L1MCU_DCM_CON (PLL_TYPE(MDL1A0_BASE+0x0180))
  151. /*MD PCore SRAM register*/
  152. #define MD_SRAM_PMS_BASE (0x20060000)
  153. #define MD_SRAM_PMS_LEN (0xD0)
  154. #define MD_SRAM_MDSYS_MD_PMS (0x80)
  155. #define MD_SRAM_MDPERISYS1_MD_PMS (0x84)
  156. #define MD_SRAM_MDPERISYS2_MD_PMS (0x88)
  157. #define MD_SRAM_PSMCUAPB_MD_PMS (0x8C)
  158. #define MD_SRAM_MDSYS_AP_PMS (0x90)
  159. #define MD_SRAM_MDPERISYS1_AP_PMS (0x94)
  160. #define MD_SRAM_MDPERISYS2_AP_PMS (0x98)
  161. #define MD_SRAM_PSMCUAPB_AP_PMS (0x9C)
  162. #define MD_SRAM_MDSYS_TZ_PMS (0xA0)
  163. #define MD_SRAM_MDPERISYS1_TZ_PMS (0xA4)
  164. #define MD_SRAM_MDPERISYS2_TZ_PMS (0xA8)
  165. #define MD_SRAM_PSMCUAPB_TZ_PMS (0xAC)
  166. #define MD_SRAM_MDSYS_L1_PMS (0xB0)
  167. #define MD_SRAM_MDPERISYS1_L1_PMS (0xB4)
  168. #define MD_SRAM_MDPERISYS2_L1_PMS (0xB8)
  169. #define MD_SRAM_PSMCUAPB_L1_PMS (0xBC)
  170. #define MD_SRAM_L1SYS_PMS (0xC4)
  171. #define MD_SRAM_PD_PSMCUSYS_SRAM_BASE (0x200D0100)
  172. #define MD_SRAM_PD_PSMCUSYS_SRAM_LEN (0x30)
  173. #define MD_SRAM_PD_PSMCUSYS_SRAM_1 (0x14)
  174. #define MD_SRAM_PD_PSMCUSYS_SRAM_2 (0x18)
  175. #define MD_SRAM_PD_PSMCUSYS_SRAM_3 (0x1C)
  176. #define MD_SRAM_PD_PSMCUSYS_SRAM_4 (0x20)
  177. // C2K boot
  178. #define UINT32P (volatile unsigned int *)
  179. #define SLEEP_BASE (0x10006000)
  180. #define APMIXED_BASE (0x1000C000)
  181. #define TOPRGU_BASE (0x10007000)
  182. #define INFRACFG_AO_BASE (0x10001000)
  183. #define C2KSYS_BASE (0x38000000)
  184. #define C2K_CGBR1 (UINT32P (C2KSYS_BASE+0x0200B004))
  185. #define MDPLL1_CON0 (UINT32P (APMIXED_BASE+0x02C8))
  186. #define WDT_SWSYSRST (UINT32P (TOPRGU_BASE+0x018))
  187. #define INFRA_TOPAXI_PROTECTEN_1 (UINT32P (INFRACFG_AO_BASE+0x250))
  188. #define INFRA_TOPAXI_PROTECTSTA1_1 (UINT32P (INFRACFG_AO_BASE+0x258))
  189. #define INFRA_TOPAXI_PROTECTEN1 ((UINT32P)(INFRACFG_AO_BASE+0x234))
  190. #define C2K_HANDSHAKE ((UINT32P)(INFRACFG_AO_BASE+0x368))
  191. #define C2K_SPM_CTRL (UINT32P (INFRACFG_AO_BASE+0x368))
  192. #define C2K_STATUS (UINT32P (INFRACFG_AO_BASE+0x364))
  193. #define C2K_CONFIG (UINT32P (INFRACFG_AO_BASE+0x360))
  194. #define C2K_POWERON_CONFIG_EN (UINT32P (SLEEP_BASE+0x000))
  195. #define C2K_PWR_CON (UINT32P (SLEEP_BASE+0x328))
  196. #define C2K_PWR_STATUS (UINT32P (SLEEP_BASE+0x180))
  197. #define C2K_PWR_STATUS_2ND (UINT32P (SLEEP_BASE+0x184))
  198. #define INFRA_MISC2 (UINT32P (INFRACFG_AO_BASE+0xF0C))
  199. #define AP_PLL_CON0 (UINT32P (APMIXED_BASE+0x0))
  200. #define PWR_RST_B (0x1 << 0)
  201. #define PWR_ISO (0x1 << 1)
  202. #define PWR_ON (0x1 << 2)
  203. #define PWR_ON_2ND (0x1 << 3)
  204. #define PWR_CLK_DIS (0x1 << 4)
  205. #define C2K_PWR_STA_MASK (0x1 << 28)
  206. #define C2K_PROT_MASK (0x7 << 22)
  207. #define C2K 28
  208. #define C2K_MAGIC_NUM 0xC275
  209. #define INFRACFG_AO_BASE (0x10001000)
  210. #define UINT16P volatile unsigned short *
  211. #define UINT32P (volatile unsigned int *)
  212. #define C2KSYS_BASE (0x38000000)
  213. #define C2K_SBC_KEY0 (UINT32P(INFRACFG_AO_BASE+0x8B0))
  214. #define C2K_SBC_KEY1 (UINT32P(INFRACFG_AO_BASE+0x8B4))
  215. #define C2K_SBC_KEY2 (UINT32P(INFRACFG_AO_BASE+0x8B8))
  216. #define C2K_SBC_KEY3 (UINT32P(INFRACFG_AO_BASE+0x8BC))
  217. #define C2K_SBC_KEY4 (UINT32P(INFRACFG_AO_BASE+0x8C0))
  218. #define C2K_SBC_KEY5 (UINT32P(INFRACFG_AO_BASE+0x8C4))
  219. #define C2K_SBC_KEY6 (UINT32P(INFRACFG_AO_BASE+0x8C8))
  220. #define C2K_SBC_KEY7 (UINT32P(INFRACFG_AO_BASE+0x8CC))
  221. #define C2K_SBC_KEY_LOCK (UINT32P(INFRACFG_AO_BASE+0x8D0))
  222. #define C2K_C2K_PLL_CON3 (UINT32P(C2KSYS_BASE+0x02013008))
  223. #define C2K_C2K_PLL_CON2 (UINT32P(C2KSYS_BASE+0x02013004))
  224. #define C2K_C2K_PLLTD_CON0 (UINT32P(C2KSYS_BASE+0x02013074))
  225. #define C2K_CLK_CTRL9 (UINT32P(C2KSYS_BASE+0x0200029C))
  226. #define C2K_CLK_CTRL4 (UINT32P(C2KSYS_BASE+0x02000010))
  227. #define C2K_CG_ARM_AMBA_CLKSEL (UINT32P(C2KSYS_BASE+0x02000234))
  228. #define C2K_C2K_C2KPLL1_CON0 (UINT32P(C2KSYS_BASE+0x02013018))
  229. #define C2K_C2K_CPPLL_CON0 (UINT32P(C2KSYS_BASE+0x02013040))
  230. #define C2K_C2K_DSPPLL_CON0 (UINT32P(C2KSYS_BASE+0x02013050))
  231. /* C2K end */
  232. #define L1_C2K_CCIRQ_BASE 0x10211400
  233. #define C2K_L1_CCIRQ_BASE 0x10213400
  234. #define PS_C2K_CCIRQ_BASE 0x10211000
  235. #define C2K_PS_CCIRQ_BASE 0x10213000
  236. #define INFRA_AO_MD_SRCCLKENA (UINT32P (INFRACFG_AO_BASE+0xF0C))
  237. // SIM GPIO setcion
  238. // -- SIM1
  239. #define SIM1_SIO_GPIO_ID (41)
  240. #define SIM1_SRST_GPIO_ID (40)
  241. #define SIM1_SCLK_GPIO_ID (39)
  242. #define SIM1_HOT_PLUG_GPIO_ID (46)
  243. // -- SIM2
  244. #define SIM2_SIO_GPIO_ID (36)
  245. #define SIM2_SRST_GPIO_ID (37)
  246. #define SIM2_SCLK_GPIO_ID (38)
  247. #define SIM2_HOT_PLUG_GPIO_ID (45)
  248. // -- Connection
  249. #define ccci_write32(b, a, v) DRV_WriteReg32((b)+(a), v)
  250. #define ccci_read32(b, a) DRV_Reg32((b)+(a))
  251. extern BOOT_ARGUMENT *g_boot_arg;
  252. static unsigned int img_load_flag = 0;
  253. static int meta_detection(void)
  254. {
  255. int boot_mode;
  256. #ifdef DEFAULT_META
  257. boot_mode = 1;
  258. return boot_mode;
  259. #endif
  260. boot_mode = 0;
  261. if (g_boot_arg->boot_mode != NORMAL_BOOT)
  262. boot_mode = 1;
  263. dprintf(CRITICAL, "Meta mode: %d, boot_mode: %d\n", boot_mode, g_boot_arg->boot_mode);
  264. return boot_mode;
  265. }
  266. static void md_gpio_get(GPIO_PIN pin, char *tag)
  267. {
  268. dprintf(CRITICAL, "GPIO(%X)(%s): mode=%d,dir=%d,in=%d,out=%d,pull_en=%d,pull_sel=%d,smt=%d\n",
  269. pin, tag,
  270. mt_get_gpio_mode(pin),
  271. mt_get_gpio_dir(pin),
  272. mt_get_gpio_in(pin),
  273. mt_get_gpio_out(pin),
  274. mt_get_gpio_pull_enable(pin),
  275. mt_get_gpio_pull_select(pin),
  276. mt_get_gpio_smt(pin));
  277. }
  278. static void md_gpio_set(GPIO_PIN pin, GPIO_MODE mode, GPIO_DIR dir, GPIO_OUT out, GPIO_PULL_EN pull_en, GPIO_PULL pull, GPIO_SMT smt)
  279. {
  280. mt_set_gpio_mode(pin, mode);
  281. if (dir != GPIO_DIR_UNSUPPORTED)
  282. mt_set_gpio_dir(pin, dir);
  283. if (dir == GPIO_DIR_OUT) {
  284. mt_set_gpio_out(pin, out);
  285. }
  286. if (dir == GPIO_DIR_IN) {
  287. mt_set_gpio_smt(pin, smt);
  288. }
  289. if (pull_en != GPIO_PULL_EN_UNSUPPORTED) {
  290. mt_set_gpio_pull_enable(pin, pull_en);
  291. mt_set_gpio_pull_select(pin, pull);
  292. }
  293. md_gpio_get(pin, "-");
  294. }
  295. static void md_gpio_config(unsigned int boot_mode_case)
  296. {
  297. // init sim1
  298. mt_set_gpio_dir(SIM1_SCLK_GPIO_ID, GPIO_DIR_OUT);
  299. mt_set_gpio_dir(SIM1_SRST_GPIO_ID, GPIO_DIR_OUT);
  300. mt_set_gpio_pull_enable(SIM1_SIO_GPIO_ID, GPIO_PULL_ENABLE);
  301. mt_set_gpio_pull_select(SIM1_SIO_GPIO_ID, GPIO_PULL_UP);
  302. mt_set_gpio_dir(SIM1_SIO_GPIO_ID, GPIO_DIR_IN);
  303. mt_set_gpio_pull_enable(SIM1_HOT_PLUG_GPIO_ID, GPIO_PULL_ENABLE);
  304. mt_set_gpio_pull_select(SIM1_HOT_PLUG_GPIO_ID, GPIO_PULL_UP);
  305. mt_set_gpio_dir(SIM1_HOT_PLUG_GPIO_ID, GPIO_DIR_IN);
  306. // init sim2
  307. mt_set_gpio_dir(SIM2_SCLK_GPIO_ID, GPIO_DIR_OUT);
  308. mt_set_gpio_dir(SIM2_SRST_GPIO_ID, GPIO_DIR_OUT);
  309. mt_set_gpio_pull_enable(SIM2_SIO_GPIO_ID, GPIO_PULL_ENABLE);
  310. mt_set_gpio_pull_select(SIM2_SIO_GPIO_ID, GPIO_PULL_UP);
  311. mt_set_gpio_dir(SIM2_SIO_GPIO_ID, GPIO_DIR_IN);
  312. mt_set_gpio_pull_enable(SIM2_HOT_PLUG_GPIO_ID, GPIO_PULL_ENABLE);
  313. mt_set_gpio_pull_select(SIM2_HOT_PLUG_GPIO_ID, GPIO_PULL_UP);
  314. mt_set_gpio_dir(SIM2_HOT_PLUG_GPIO_ID, GPIO_DIR_IN);
  315. // md_gpio_set(GPIO96, GPIO_MODE_05, GPIO_DIR_OUT, GPIO_OUT_ZERO, GPIO_PULL_EN_UNSUPPORTED, GPIO_PULL_UNSUPPORTED, GPIO_SMT_UNSUPPORTED);
  316. /* ?duplicated configure to C2K SIM ?*/
  317. md_gpio_set(GPIO39, GPIO_MODE_05, GPIO_DIR_OUT, GPIO_OUT_ZERO, GPIO_PULL_ENABLE, GPIO_PULL_DOWN, GPIO_SMT_UNSUPPORTED);
  318. md_gpio_set(GPIO40, GPIO_MODE_05, GPIO_DIR_OUT, GPIO_OUT_ZERO, GPIO_PULL_ENABLE, GPIO_PULL_DOWN, GPIO_SMT_UNSUPPORTED);
  319. md_gpio_set(GPIO41, GPIO_MODE_05, GPIO_DIR_IN, GPIO_OUT_ZERO, GPIO_PULL_ENABLE, GPIO_PULL_UP, GPIO_SMT_UNSUPPORTED);
  320. md_gpio_set(GPIO38, GPIO_MODE_06, GPIO_DIR_OUT, GPIO_OUT_ZERO, GPIO_PULL_ENABLE, GPIO_PULL_DOWN, GPIO_SMT_UNSUPPORTED);
  321. md_gpio_set(GPIO37, GPIO_MODE_06, GPIO_DIR_OUT, GPIO_OUT_ZERO, GPIO_PULL_ENABLE, GPIO_PULL_DOWN, GPIO_SMT_UNSUPPORTED);
  322. md_gpio_set(GPIO36, GPIO_MODE_06, GPIO_DIR_IN, GPIO_OUT_ZERO, GPIO_PULL_ENABLE, GPIO_PULL_UP, GPIO_SMT_UNSUPPORTED);
  323. md_gpio_set(GPIO46, GPIO_MODE_01, GPIO_DIR_IN, GPIO_OUT_ZERO, GPIO_PULL_ENABLE, GPIO_PULL_UP, GPIO_SMT_UNSUPPORTED);
  324. md_gpio_set(GPIO45, GPIO_MODE_01, GPIO_DIR_IN, GPIO_OUT_ZERO, GPIO_PULL_ENABLE, GPIO_PULL_UP, GPIO_SMT_UNSUPPORTED);
  325. /*
  326. md_gpio_set(GPIO13, GPIO_MODE_05, GPIO_DIR_OUT, GPIO_OUT_ZERO, GPIO_PULL_EN_UNSUPPORTED, GPIO_PULL_UNSUPPORTED, GPIO_SMT_UNSUPPORTED);
  327. md_gpio_set(GPIO14, GPIO_MODE_05, GPIO_DIR_OUT, GPIO_OUT_ZERO, GPIO_PULL_EN_UNSUPPORTED, GPIO_PULL_UNSUPPORTED, GPIO_SMT_UNSUPPORTED);
  328. md_gpio_set(GPIO15, GPIO_MODE_05, GPIO_DIR_OUT, GPIO_OUT_ZERO, GPIO_PULL_EN_UNSUPPORTED, GPIO_PULL_UNSUPPORTED, GPIO_SMT_UNSUPPORTED);
  329. md_gpio_set(GPIO16, GPIO_MODE_05, GPIO_DIR_OUT, GPIO_OUT_ZERO, GPIO_PULL_EN_UNSUPPORTED, GPIO_PULL_UNSUPPORTED, GPIO_SMT_UNSUPPORTED);
  330. md_gpio_set(GPIO27, GPIO_MODE_05, GPIO_DIR_OUT, GPIO_OUT_ZERO, GPIO_PULL_EN_UNSUPPORTED, GPIO_PULL_UNSUPPORTED, GPIO_SMT_UNSUPPORTED);
  331. md_gpio_set(GPIO28, GPIO_MODE_05, GPIO_DIR_OUT, GPIO_OUT_ZERO, GPIO_PULL_EN_UNSUPPORTED, GPIO_PULL_UNSUPPORTED, GPIO_SMT_UNSUPPORTED);
  332. */
  333. /*for c2k*/
  334. md_gpio_set(GPIO34, GPIO_MODE_06, GPIO_DIR_IN, GPIO_OUT_ZERO, GPIO_PULL_ENABLE, GPIO_PULL_DOWN, GPIO_SMT_UNSUPPORTED);
  335. md_gpio_set(GPIO30, GPIO_MODE_06, GPIO_DIR_IN, GPIO_OUT_ZERO, GPIO_PULL_ENABLE, GPIO_PULL_DOWN, GPIO_SMT_UNSUPPORTED);
  336. md_gpio_set(GPIO33, GPIO_MODE_06, GPIO_DIR_IN, GPIO_OUT_ZERO, GPIO_PULL_ENABLE, GPIO_PULL_UP, GPIO_SMT_UNSUPPORTED);
  337. md_gpio_set(GPIO32, GPIO_MODE_06, GPIO_DIR_IN, GPIO_OUT_ZERO, GPIO_PULL_ENABLE, GPIO_PULL_UP, GPIO_SMT_UNSUPPORTED);
  338. md_gpio_set(GPIO35, GPIO_MODE_06, GPIO_DIR_OUT, GPIO_OUT_ZERO, GPIO_PULL_EN_UNSUPPORTED, GPIO_PULL_UNSUPPORTED, GPIO_SMT_UNSUPPORTED);
  339. md_gpio_set(GPIO31, GPIO_MODE_06, GPIO_DIR_OUT, GPIO_OUT_ZERO, GPIO_PULL_EN_UNSUPPORTED, GPIO_PULL_UNSUPPORTED, GPIO_SMT_UNSUPPORTED);
  340. md_gpio_set(GPIO110, GPIO_MODE_05, GPIO_DIR_IN, GPIO_OUT_ZERO, GPIO_PULL_ENABLE, GPIO_PULL_DOWN, GPIO_SMT_UNSUPPORTED);
  341. md_gpio_set(GPIO108, GPIO_MODE_05, GPIO_DIR_IN, GPIO_OUT_ZERO, GPIO_PULL_ENABLE, GPIO_PULL_UP, GPIO_SMT_UNSUPPORTED);
  342. md_gpio_set(GPIO111, GPIO_MODE_05, GPIO_DIR_IN, GPIO_OUT_ZERO, GPIO_PULL_ENABLE, GPIO_PULL_UP, GPIO_SMT_UNSUPPORTED);
  343. md_gpio_set(GPIO107, GPIO_MODE_05, GPIO_DIR_OUT, GPIO_OUT_ZERO, GPIO_PULL_EN_UNSUPPORTED, GPIO_PULL_UNSUPPORTED, GPIO_SMT_UNSUPPORTED);
  344. md_gpio_set(GPIO8, GPIO_MODE_05, GPIO_DIR_OUT, GPIO_OUT_ZERO, GPIO_PULL_EN_UNSUPPORTED, GPIO_PULL_UNSUPPORTED, GPIO_SMT_UNSUPPORTED);
  345. md_gpio_set(GPIO18, GPIO_MODE_05, GPIO_DIR_OUT, GPIO_OUT_ONE, GPIO_PULL_ENABLE, GPIO_PULL_DOWN, GPIO_SMT_UNSUPPORTED);
  346. md_gpio_set(GPIO17, GPIO_MODE_05, GPIO_DIR_IN, GPIO_OUT_ZERO, GPIO_PULL_ENABLE, GPIO_PULL_UP, GPIO_SMT_UNSUPPORTED);
  347. switch (boot_mode_case) {
  348. case MD1_ONLY:
  349. //SIM1=> MD1 SIM1IF
  350. mt_set_gpio_mode(SIM1_SCLK_GPIO_ID, GPIO_MODE_01);
  351. mt_set_gpio_mode(SIM1_SRST_GPIO_ID, GPIO_MODE_01);
  352. mt_set_gpio_mode(SIM1_SIO_GPIO_ID, GPIO_MODE_01);
  353. mt_set_gpio_mode(SIM1_HOT_PLUG_GPIO_ID, GPIO_MODE_01);
  354. //SIM2=> MD1 SIM2IF
  355. mt_set_gpio_mode(SIM2_SCLK_GPIO_ID, GPIO_MODE_01);
  356. mt_set_gpio_mode(SIM2_SRST_GPIO_ID, GPIO_MODE_01);
  357. mt_set_gpio_mode(SIM2_SIO_GPIO_ID, GPIO_MODE_01);
  358. mt_set_gpio_mode(SIM2_HOT_PLUG_GPIO_ID, GPIO_MODE_01);
  359. break;
  360. case MD2_ONLY:
  361. //SIM1=> MD2 UIM0IF
  362. mt_set_gpio_mode(SIM1_SCLK_GPIO_ID, GPIO_MODE_05);
  363. mt_set_gpio_mode(SIM1_SRST_GPIO_ID, GPIO_MODE_05);
  364. mt_set_gpio_mode(SIM1_SIO_GPIO_ID, GPIO_MODE_05);
  365. mt_set_gpio_mode(SIM1_HOT_PLUG_GPIO_ID, GPIO_MODE_01);
  366. //SIM2=> MD2 UIM1IF
  367. mt_set_gpio_mode(SIM2_SCLK_GPIO_ID, GPIO_MODE_06);
  368. mt_set_gpio_mode(SIM2_SRST_GPIO_ID, GPIO_MODE_06);
  369. mt_set_gpio_mode(SIM2_SIO_GPIO_ID, GPIO_MODE_06);
  370. mt_set_gpio_mode(SIM2_HOT_PLUG_GPIO_ID, GPIO_MODE_01);
  371. break;
  372. case MD1_MD2:
  373. //SIM1=> MD2 UIM0IF: SIM1 is for C2K!!
  374. mt_set_gpio_mode(SIM1_SCLK_GPIO_ID, GPIO_MODE_05);
  375. mt_set_gpio_mode(SIM1_SRST_GPIO_ID, GPIO_MODE_05);
  376. mt_set_gpio_mode(SIM1_SIO_GPIO_ID, GPIO_MODE_05);
  377. mt_set_gpio_mode(SIM1_HOT_PLUG_GPIO_ID, GPIO_MODE_01);
  378. //SIM2=> MD1 SIM1IF
  379. mt_set_gpio_mode(SIM2_SCLK_GPIO_ID, GPIO_MODE_03);
  380. mt_set_gpio_mode(SIM2_SRST_GPIO_ID, GPIO_MODE_03);
  381. mt_set_gpio_mode(SIM2_SIO_GPIO_ID, GPIO_MODE_03);
  382. mt_set_gpio_mode(SIM2_HOT_PLUG_GPIO_ID, GPIO_MODE_01);
  383. break;
  384. default:
  385. break;
  386. }
  387. md_gpio_get(SIM1_SCLK_GPIO_ID, "sclk");
  388. md_gpio_get(SIM1_SRST_GPIO_ID, "srst");
  389. md_gpio_get(SIM1_SIO_GPIO_ID, "sio");
  390. md_gpio_get(SIM1_HOT_PLUG_GPIO_ID, "hp");
  391. md_gpio_get(SIM2_SCLK_GPIO_ID, "sclk2");
  392. md_gpio_get(SIM2_SRST_GPIO_ID, "srst2");
  393. md_gpio_get(SIM2_SIO_GPIO_ID, "sio2");
  394. md_gpio_get(SIM2_HOT_PLUG_GPIO_ID, "hp2");
  395. }
  396. void md_uart_config(int type_id, int boot_mode)
  397. {
  398. switch (type_id) {
  399. case AP_ONLY: // for AP only
  400. dprintf(CRITICAL, "md_uart_config:%d, UART1->[AP], UART2->AP1(rework), UART3->NA, UART4->C2K\n", type_id);
  401. mt_set_gpio_mode(GPIO105, GPIO_MODE_01); //URXD0 / MD_URXD0
  402. mt_set_gpio_mode(GPIO106, GPIO_MODE_01); //UTXD0 / MD_UTXD0
  403. mt_set_gpio_mode(GPIO19, GPIO_MODE_02); //URXD1
  404. mt_set_gpio_mode(GPIO20, GPIO_MODE_02); //UTXD1
  405. //mt_set_gpio_mode(GPIO17, GPIO_MODE_05); //C2K_URXD0
  406. //mt_set_gpio_mode(GPIO18, GPIO_MODE_05); //C2K_UTXD0
  407. //mt_set_gpio_mode(GPIO15, GPIO_MODE_04); //MD_URXD1
  408. //mt_set_gpio_mode(GPIO16, GPIO_MODE_04); //MD_UTXD1
  409. break;
  410. case MD1_ONLY: // for AP & MD1
  411. dprintf(CRITICAL, "md_uart_config:%d, UART1->[MD1], UART2->NA, UART3->NA, UART4->C2K\n", type_id);
  412. mt_set_gpio_mode(GPIO105, GPIO_MODE_03);//MD_URXD0
  413. mt_set_gpio_mode(GPIO106, GPIO_MODE_03);//MD_UTXD0
  414. break;
  415. case MD2_ONLY: // for AP & C2K
  416. dprintf(CRITICAL, "md_uart_config:%d, UART1->[AP0], UART2->NA, UART3->NA, UART4->C2K\n", type_id);
  417. mt_set_gpio_mode(GPIO105, GPIO_MODE_01);//URXD0
  418. mt_set_gpio_mode(GPIO106, GPIO_MODE_01);//UTXD0
  419. mt_set_gpio_mode(GPIO17, GPIO_MODE_05); //C2K_URXD0
  420. mt_set_gpio_mode(GPIO18, GPIO_MODE_05); //C2K_UTXD0
  421. break;
  422. case MD1_MD2: // for both MD1 and MD2
  423. dprintf(CRITICAL, "md_uart_config:%d, UART1->[MD1], UART2->AP1, UART3->XXX, UART4->C2K\n", type_id);
  424. mt_set_gpio_mode(GPIO105, GPIO_MODE_03); //URXD0 / MD_URXD0
  425. mt_set_gpio_mode(GPIO106, GPIO_MODE_03); //UTXD0 / MD_UTXD0
  426. mt_set_gpio_mode(GPIO17, GPIO_MODE_05); //C2K_URXD0
  427. mt_set_gpio_mode(GPIO18, GPIO_MODE_05); //C2K_UTXD0
  428. default:
  429. break;
  430. }
  431. }
  432. void bus_protection_en(int md_id)
  433. {
  434. if (md_id == MD_SYS1) {
  435. /* enable protection for MD1 */
  436. dprintf(CRITICAL, "enable protection for md\n");
  437. DRV_WriteReg32(MD1_BUS_PROTECT_EN, 0x003F0000);
  438. /* Polling protection ready */
  439. dprintf(CRITICAL, "wait protection ....\n");
  440. while ((DRV_Reg32(MD1_BUS_PROTECT_STA)&0x003F0000) != 0x003F0000);
  441. dprintf(CRITICAL, "protection done\n");
  442. return;
  443. }
  444. }
  445. void bus_protection_diable(int md_id)
  446. {
  447. if (md_id == MD_SYS1) {
  448. /* enable protection for MD1 */
  449. dprintf(CRITICAL, "disable protection for md\n");
  450. DRV_WriteReg32(MD1_BUS_PROTECT_EN, 0x00000000);
  451. /* Polling protection ready */
  452. dprintf(CRITICAL, "wait protection disable....\n");
  453. while ((DRV_Reg32(MD1_BUS_PROTECT_STA)&0x003F0000) != 0x00000000);
  454. dprintf(CRITICAL, "protection disable done\n");
  455. return;
  456. }
  457. }
  458. void md_wdt_init(void)
  459. {
  460. if (img_load_flag &(1<<MD_SYS1)) {
  461. mt_irq_set_sens(MT_MD_WDT1_IRQ_ID, MT65xx_EDGE_SENSITIVE);
  462. mt_irq_set_polarity(MT_MD_WDT1_IRQ_ID, MT65xx_POLARITY_LOW);
  463. mt_irq_unmask(MT_MD_WDT1_IRQ_ID);
  464. }
  465. if (img_load_flag &(1<<MD_SYS3)) {
  466. mt_irq_set_sens(MT_MD_WDT2_IRQ_ID, MT65xx_EDGE_SENSITIVE);
  467. mt_irq_set_polarity(MT_MD_WDT2_IRQ_ID, MT65xx_POLARITY_LOW);
  468. mt_irq_unmask(MT_MD_WDT2_IRQ_ID);
  469. }
  470. }
  471. void pmic_init_sequence(void)
  472. {
  473. // Copy from Jade kernel code: alps\kernel-3.18\drivers\misc\mediatek\power\mt6757 =====
  474. unsigned int ret;
  475. pmic_config_interface(0x8,0x1,0x1,0);
  476. pmic_config_interface(0xA,0x1,0x1,1);
  477. pmic_config_interface(0xA,0x1,0x1,2);
  478. pmic_config_interface(0xA,0x1,0x1,3);
  479. pmic_config_interface(0xA,0x1,0x1,4);
  480. pmic_config_interface(0xA,0x1,0x1,5);
  481. pmic_config_interface(0xA,0x1,0x1,7);
  482. pmic_config_interface(0xA,0x1,0x1,8);
  483. pmic_config_interface(0xA,0x1,0x1,10);
  484. pmic_config_interface(0xA,0x1,0x1,11);
  485. pmic_config_interface(0xA,0x1,0x1,12);
  486. pmic_config_interface(0xA,0x1,0x1,13);
  487. pmic_config_interface(0xA,0x1,0x1,14);
  488. pmic_config_interface(0xA,0x1,0x1,15);
  489. pmic_config_interface(0x12,0x1,0x1,9);
  490. pmic_config_interface(0x12,0x1,0x1,10);
  491. pmic_config_interface(0x12,0x1,0x1,12);
  492. pmic_config_interface(0x12,0x1,0x1,13);
  493. pmic_config_interface(0x12,0x1,0x1,14);
  494. pmic_config_interface(0x18,0x1,0x1,5);
  495. pmic_config_interface(0x1C,0x1,0x1,7);
  496. pmic_config_interface(0x1E,0x1,0x1,0);
  497. pmic_config_interface(0x1E,0x1,0x1,1);
  498. pmic_config_interface(0x2C,0x1,0x1,15);
  499. pmic_config_interface(0x32,0x1,0x1,2);
  500. ret = pmic_config_interface(0x32,0x1,0x1,3); // [3:3]: RG_RST_DRVSEL; 6/1,Seven,
  501. ret = pmic_config_interface(0x204,0x1,0x1,4); // [4:4]: RG_SRCLKEN_IN0_HW_MODE; Juinn-Ting
  502. ret = pmic_config_interface(0x204,0x1,0x1,5); // [5:5]: RG_SRCLKEN_IN1_HW_MODE; Juinn-Ting
  503. ret = pmic_config_interface(0x204,0x1,0x1,6); // [6:6]: RG_OSC_SEL_HW_MODE; Juinn-Ting
  504. ret = pmic_config_interface(0x226,0x1,0x1,0); // [0:0]: RG_SMT_WDTRSTB_IN; 6/1,Seven
  505. ret = pmic_config_interface(0x228,0x1,0x1,0); // [0:0]: RG_SMT_SPI_CLK; 6/1,Check with Juinn-Ting
  506. ret = pmic_config_interface(0x228,0x1,0x1,1); // [1:1]: RG_SMT_SPI_CSN; 6/1,Check with Juinn-Ting
  507. ret = pmic_config_interface(0x228,0x1,0x1,2); // [2:2]: RG_SMT_SPI_MOSI; 6/1,Check with Juinn-Ting
  508. ret = pmic_config_interface(0x228,0x1,0x1,3); // [3:3]: RG_SMT_SPI_MISO; 6/1,Check with Juinn-Ting
  509. ret = pmic_config_interface(0x23A,0x0,0x1,9); // [9:9]: RG_AUXADC_SMPS_CK_PDN; 9/7 Peter SW,for AUXADC need always on
  510. ret = pmic_config_interface(0x23A,0x1,0x1,11); // [11:11]: RG_AUXADC_26M_CK_PDN;
  511. ret = pmic_config_interface(0x240,0x1,0x1,2); // [2:2]: RG_RTC_75K_CK_PDN; Juinn-Ting
  512. ret = pmic_config_interface(0x240,0x1,0x1,3); // [3:3]: RG_RTCDET_CK_PDN; Juinn-Ting
  513. ret = pmic_config_interface(0x240,0x0,0x1,10); // [10:10]: RG_AUXADC_CK_PDN;
  514. ret = pmic_config_interface(0x246,0x1,0x1,13); // [13:13]: RG_RTC_EOSC32_CK_PDN; Juinn-Ting(if 32 less keep default Value)
  515. ret = pmic_config_interface(0x246,0x1,0x1,14); // [14:14]: RG_TRIM_75K_CK_PDN; Juinn-Ting
  516. ret = pmic_config_interface(0x24C,0x0,0x1,2); // [2:2]: RG_EFUSE_CK_PDN;
  517. ret = pmic_config_interface(0x258,0x0,0x1,5); // [5:5]: RG_BUCK_VSRAM_MD_9M_CK_PDN;
  518. ret = pmic_config_interface(0x258,0x1,0x1,8); // [8:8]: RG_AUD18M_CK_PDN;
  519. ret = pmic_config_interface(0x258,0x0,0x1,14); // [14:14]: RG_BUCK_AUD_1M_CK_PDN;
  520. ret = pmic_config_interface(0x25E,0x1,0x1,9); // [9:9]: RG_75K_32K_SEL; Angela
  521. ret = pmic_config_interface(0x25E,0x0,0x1,10); // [10:10]: RG_AUXADC_CK_CKSEL;
  522. ret = pmic_config_interface(0x282,0x0,0x1,3); // [3:3]: RG_AUXADC_CK_PDN_HWEN; 9/7,Peter SW,For Auxadc need always on
  523. ret = pmic_config_interface(0x282,0x0,0x1,4); // [4:4]: RG_AUXADC_SMPS_CK_PDN_HWEN; 9/7,Peter SW,For Auxadc need always on
  524. ret = pmic_config_interface(0x282,0x0,0x1,10); // [10:10]: RG_AUXADC_26M_CK_PDN_HWEN; ZF
  525. ret = pmic_config_interface(0x282,0x0,0x1,11); // [11:11]: RG_AUXADC_CK_CKSEL_HWEN; ZF
  526. ret = pmic_config_interface(0x28E,0x0,0x1,4); // [4:4]: RG_AUD18M_CK_PDN_HWEN;
  527. ret = pmic_config_interface(0x410,0x8,0x3F,8); // [13:8]: BUCK_VPA_VOSEL_DLC001; 6/24,Paul
  528. ret = pmic_config_interface(0x414,0x3,0x3,4); // [5:4]: BUCK_VPA_DVS_TRANS_CTRL; 6/24,Paul
  529. ret = pmic_config_interface(0x422,0x1,0x1,0); // [0:0]: BUCK_VCORE_EN_OC_SDN_SEL; 12/16,Stephen VCORE OC Shutdown by test issue need disable
  530. ret = pmic_config_interface(0x422,0x1,0x1,1); // [1:1]: BUCK_VGPU_EN_OC_SDN_SEL; 1/6,Stephen VGPU OC Shutdown by test issue need disable
  531. ret = pmic_config_interface(0x422,0x1,0x1,2); // [2:2]: BUCK_VMODEM_EN_OC_SDN_SEL; 12/9,Stephen VMODEM OC Shutdown by test issue need disable
  532. ret = pmic_config_interface(0x422,0x1,0x1,3); // [3:3]: BUCK_VMD1_EN_OC_SDN_SEL; 12/16,Stephen VMD1 OC Shutdown by test issue need disable
  533. ret = pmic_config_interface(0x422,0x1,0x1,4); // [4:4]: BUCK_VSRAM_MD_EN_OC_SDN_SEL; 12/16,Stephen VSRAM_MD OC Shutdown by test issue need disable
  534. ret = pmic_config_interface(0x422,0x1,0x1,7); // [7:7]: BUCK_VPA_EN_OC_SDN_SEL; 9/14,Stephen PA OC Shutdown by Filed Test need disable
  535. ret = pmic_config_interface(0x436,0x0,0x3,2); // [3:2]: BUCK_VPA_OC_WND; 6/1 Paul
  536. ret = pmic_config_interface(0x44A,0x2,0x3,8); // [9:8]: RG_VCORE_VSLEEP_SEL; 3/21,TzuHeng Sleep mode voltage 0.65V
  537. ret = pmic_config_interface(0x44A,0x3,0x3,10); // [11:10]: RG_VGPU_VSLEEP_SEL; 3/21,TzuHeng Sleep mode voltage 0.6V
  538. ret = pmic_config_interface(0x44A,0x3,0x3,12); // [13:12]: RG_VSRAM_MD_VSLEEP_SEL; 3/21,TzuHeng Sleep mode voltage 0.6V
  539. ret = pmic_config_interface(0x44A,0x3,0x3,14); // [15:14]: RG_VMODEM_VSLEEP_SEL; 3/21,TzuHeng Sleep mode voltage 0.6V
  540. ret = pmic_config_interface(0x44C,0x3,0x3,0); // [1:0]: RG_VMD1_VSLEEP_SEL; 3/21,TzuHeng Sleep mode voltage 0.6V
  541. ret = pmic_config_interface(0x450,0xF,0xF,11); // [14:11]: RG_VCORE_CSL; 6/1,Tim,OC Level Adjust
  542. ret = pmic_config_interface(0x452,0x1,0x1,3); // [3:3]: RG_VCORE_ADRC_FEN; 6/1,Tim,Bandwidth Extend
  543. ret = pmic_config_interface(0x456,0x1,0x1,7); // [7:7]: RG_VCORE_NLIM_GATING; 8/17,Tim
  544. ret = pmic_config_interface(0x45C,0x1,0x1,1); // [1:1]: RG_VCORE_VDIFF_ENLOWIQ; 6/1,Tim,Ultra Low Iq
  545. ret = pmic_config_interface(0x45E,0x400,0xFFFF,0); // [15:0]: RG_VCORE_RSV; 6/1,Tim,Enable Pre-OC
  546. ret = pmic_config_interface(0x464,0xF,0xF,11); // [14:11]: RG_VGPU_CSL; 6/1,Tim,OC Level Adjust
  547. ret = pmic_config_interface(0x466,0x1,0x1,3); // [3:3]: RG_VGPU_ADRC_FEN; 6/1,Tim,Bandwidth Extend
  548. ret = pmic_config_interface(0x466,0x5,0x7,9); // [11:9]: RG_VGPU_PFMOC; 8/24,Tim PFM OC Adjust for DVS Performance
  549. ret = pmic_config_interface(0x46A,0x1,0x1,7); // [7:7]: RG_VGPU_NLIM_GATING; 8/17,Tim
  550. ret = pmic_config_interface(0x470,0x1,0x1,1); // [1:1]: RG_VGPU_VDIFF_ENLOWIQ; 6/1,Tim,Ultra Low Iq
  551. ret = pmic_config_interface(0x472,0x400,0xFFFF,0); // [15:0]: RG_VGPU_RSV; 6/1,Tim,Enable Pre-OC
  552. ret = pmic_config_interface(0x478,0x0,0x7,0); // [2:0]: RG_VSRAM_MD_RZSEL0; 2/5,Johnson Load Transient performance fine tune
  553. ret = pmic_config_interface(0x478,0xF,0xF,11); // [14:11]: RG_VSRAM_MD_CSL; 6/1, Johnson, OC performance fine tune
  554. ret = pmic_config_interface(0x47A,0x2,0x7,6); // [8:6]: RG_VSRAM_MD_PFMOC; 6/1, Johnson, PFM ripple performance fine tune
  555. ret = pmic_config_interface(0x47E,0x1,0x1,1); // [1:1]: RG_VSRAM_MD_NLIM_GATING; 6/24,Johnson,for transient mode transition Vo ringing, performance concern.
  556. ret = pmic_config_interface(0x480,0x1,0x7,4); // [6:4]: RG_VSRAM_MD_PFM_RIP; 6/1, Johnson, performance fine tune.(PFM ripple)
  557. ret = pmic_config_interface(0x484,0x1,0x1,1); // [1:1]: RG_VSRAM_MD_VDIFF_ENLOWIQ; 6/1, Johnson, performance improvement. (iq, mode transition and pfm ripple H/L
  558. ret = pmic_config_interface(0x48C,0x0,0x7,0); // [2:0]: RG_VMODEM_RZSEL0; 2/5,Johnson Load Transient performance fine tune
  559. ret = pmic_config_interface(0x48C,0xF,0xF,11); // [14:11]: RG_VMODEM_CSL; 6/1, Johnson, OC performance fine tune
  560. ret = pmic_config_interface(0x48E,0x2,0x7,6); // [8:6]: RG_VMODEM_PFMOC; 6/1, Johnson, PFM ripple performance fine tune
  561. ret = pmic_config_interface(0x492,0x1,0x1,1); // [1:1]: RG_VMODEM_NLIM_GATING; 6/24,Johnson,for transient mode transition Vo ringing, performance concern.
  562. ret = pmic_config_interface(0x494,0x1,0x7,4); // [6:4]: RG_VMODEM_PFM_RIP; 6/1, Johnson, performance fine tune.(PFM ripple)
  563. ret = pmic_config_interface(0x498,0x1,0x1,1); // [1:1]: RG_VMODEM_VDIFF_ENLOWIQ; 6/1, Johnson, performance improvement. (iq, mode transition and pfm ripple H/L
  564. ret = pmic_config_interface(0x4A0,0x0,0x7,0); // [2:0]: RG_VMD1_RZSEL0; 2/5,Johnson Load Transient performance fine tune
  565. ret = pmic_config_interface(0x4A0,0xF,0xF,11); // [14:11]: RG_VMD1_CSL; 6/1, Johnson, OC performance fine tune
  566. ret = pmic_config_interface(0x4A2,0x2,0x7,6); // [8:6]: RG_VMD1_PFMOC; 6/1, Johnson, PFM ripple performance fine tune
  567. ret = pmic_config_interface(0x4A6,0x1,0x1,1); // [1:1]: RG_VMD1_NLIM_GATING; 6/24,Johnson,for transient mode transition Vo ringing, performance concern.
  568. ret = pmic_config_interface(0x4A8,0x1,0x7,4); // [6:4]: RG_VMD1_PFM_RIP; 6/1, Johnson, performance fine tune.(PFM ripple)
  569. ret = pmic_config_interface(0x4AC,0x1,0x1,1); // [1:1]: RG_VMD1_VDIFF_ENLOWIQ; 6/1, Johnson, performance improvement. (iq, mode transition and pfm ripple H/L
  570. ret = pmic_config_interface(0x4B6,0x6,0x7,6); // [8:6]: RG_VS1_PFMOC; 7/15,Lan improve ZXOS Detect
  571. ret = pmic_config_interface(0x4C2,0x10,0xFFFF,0); // [15:0]: RG_VS1_RSV; 6/2, Hung Mu Chou,
  572. ret = pmic_config_interface(0x4C8,0xF,0xF,11); // [14:11]: RG_VS2_CSL; 7/15,Lan improve ZXOS Detect
  573. ret = pmic_config_interface(0x4CA,0x5,0x7,6); // [8:6]: RG_VS2_PFMOC; 7/15,Lan improve ZXOS Detect
  574. ret = pmic_config_interface(0x4CE,0x1,0x1,1); // [1:1]: RG_VS2_NLIM_GATING; 6/1 Lan
  575. ret = pmic_config_interface(0x4D0,0x1,0x7,4); // [6:4]: RG_VS2_PFM_RIP; 6/1 Lan
  576. ret = pmic_config_interface(0x4DC,0x3,0x3,0); // [1:0]: RG_VPA_CC; 6/24 Paul
  577. ret = pmic_config_interface(0x4DC,0x2,0x3,4); // [5:4]: RG_VPA_CSMIR; 8/27,Paul reduce 20% Current sensing ratio
  578. ret = pmic_config_interface(0x4DC,0x0,0x1,10); // [10:10]: RG_VPA_AZC_EN; 6/3,Paul
  579. ret = pmic_config_interface(0x4DC,0x1,0x3,14); // [15:14]: RG_VPA_RZSEL; 8/27,Paul Compensation resistance 310k>210K
  580. ret = pmic_config_interface(0x4E0,0x0,0x3,14); // [15:14]: RG_VPA_MIN_PK; 6/1 Paul
  581. ret = pmic_config_interface(0x4E2,0x88,0xFF,8); // [15:8]: RG_VPA_RSV2; 8/10,Paul, Auto Change Slope compensation
  582. ret = pmic_config_interface(0x600,0x1,0x1,1); // [1:1]: BUCK_VCORE_VOSEL_CTRL; 6/1,Tim,Sleep mode by HW Control
  583. ret = pmic_config_interface(0x606,0x11,0x7F,0); // [6:0]: BUCK_VCORE_SFCHG_FRATE; 6/1,Tim,DVS Falling Slew Rate
  584. ret = pmic_config_interface(0x606,0xB,0x7F,8); // [14:8]: BUCK_VCORE_SFCHG_RRATE; 16 2/26,Evan Wang,for Olympus DRAM Request
  585. ret = pmic_config_interface(0x60A,0x20,0x7F,0); // [6:0]: BUCK_VCORE_VOSEL_ON; 1/15,Tzu Heng Normal mode voltage for Olympus(0.8V)
  586. ret = pmic_config_interface(0x60C,0x8,0x7F,0); // [6:0]: BUCK_VCORE_VOSEL_SLEEP; 1/6,Tzu Heng Sleep mode voltage for Olympus(0.65V)
  587. ret = pmic_config_interface(0x612,0x3,0x3,0); // [1:0]: BUCK_VCORE_TRANS_TD; 6/1,Tim
  588. ret = pmic_config_interface(0x612,0x1,0x1,8); // [8:8]: BUCK_VCORE_VSLEEP_EN; 6/1,Tim,Sleep mode by HW Control
  589. ret = pmic_config_interface(0x61A,0x11,0x7F,0); // [6:0]: BUCK_VGPU_SFCHG_FRATE; 6/1,Tim,DVS Falling Slew Rate
  590. ret = pmic_config_interface(0x61A,0x4,0x7F,8); // [14:8]: BUCK_VGPU_SFCHG_RRATE; 6/1,Tim,DVS Rising Slew Rate
  591. ret = pmic_config_interface(0x620,0x0,0x7F,0); // [6:0]: BUCK_VGPU_VOSEL_SLEEP; 1/6,Tzu Heng Sleep mode voltage for Olympus(0.6V)
  592. ret = pmic_config_interface(0x626,0x3,0x3,0); // [1:0]: BUCK_VGPU_TRANS_TD; 6/1,Tim
  593. ret = pmic_config_interface(0x626,0x1,0x3,4); // [5:4]: BUCK_VGPU_TRANS_CTRL; 8/17,Tim
  594. ret = pmic_config_interface(0x62E,0x11,0x7F,0); // [6:0]: BUCK_VMODEM_SFCHG_FRATE; 6/1, Johnson,softchange for DVS/DVFS slew rate falling 2.0us/step
  595. ret = pmic_config_interface(0x62E,0x4,0x7F,8); // [14:8]: BUCK_VMODEM_SFCHG_RRATE; 6/1, Johnson,softchange for DVS/DVFS slew rate rising 0.5us/step
  596. ret = pmic_config_interface(0x634,0x0,0x7F,0); // [6:0]: BUCK_VMODEM_VOSEL_SLEEP; 1/6,Tzu Heng Sleep mode voltage for Olympus(0.6V)
  597. ret = pmic_config_interface(0x63A,0x3,0x3,0); // [1:0]: BUCK_VMODEM_TRANS_TD; 6/1, Johnson, falling for DVFS/DVS discharge extension time control
  598. ret = pmic_config_interface(0x63A,0x1,0x3,4); // [5:4]: BUCK_VMODEM_TRANS_CTRL; 6/1, Johnson, falling for DVFS/DVS discharge slew rate control
  599. ret = pmic_config_interface(0x63A,0x1,0x1,8); // [8:8]: BUCK_VMODEM_VSLEEP_EN; 6/1, Johnson, r2r power down with srclken sleep hw mode
  600. ret = pmic_config_interface(0x642,0x11,0x7F,0); // [6:0]: BUCK_VMD1_SFCHG_FRATE; 6/1, Johnson,softchange for DVS/DVFS slew rate falling 2.0us/step
  601. ret = pmic_config_interface(0x642,0x4,0x7F,8); // [14:8]: BUCK_VMD1_SFCHG_RRATE; 6/1, Johnson,softchange for DVS/DVFS slew rate rising 0.5us/step
  602. ret = pmic_config_interface(0x648,0x0,0x7F,0); // [6:0]: BUCK_VMD1_VOSEL_SLEEP; 1/6,Tzu Heng Sleep mode voltage for Olympus(0.6V)
  603. ret = pmic_config_interface(0x64E,0x3,0x3,0); // [1:0]: BUCK_VMD1_TRANS_TD; 6/1, Johnson, falling for DVFS/DVS discharge extension time control
  604. ret = pmic_config_interface(0x64E,0x1,0x3,4); // [5:4]: BUCK_VMD1_TRANS_CTRL; 6/1, Johnson, falling for DVFS/DVS discharge slew rate control
  605. ret = pmic_config_interface(0x64E,0x1,0x1,8); // [8:8]: BUCK_VMD1_VSLEEP_EN; 6/1, Johnson, r2r power down with srclken sleep hw mode, after vo sel
  606. ret = pmic_config_interface(0x656,0x11,0x7F,0); // [6:0]: BUCK_VSRAM_MD_SFCHG_FRATE; 6/1, Johnson,softchange for DVS/DVFS slew rate falling 2.0us/step
  607. ret = pmic_config_interface(0x656,0x4,0x7F,8); // [14:8]: BUCK_VSRAM_MD_SFCHG_RRATE; 6/1, Johnson,softchange for DVS/DVFS slew rate rising 0.5us/step
  608. ret = pmic_config_interface(0x65A,0x30,0x7F,0); // [6:0]: BUCK_VSRAM_MD_VOSEL_ON; 1/6,Tzu Heng Normal mode voltage for Olympus(0.9V)
  609. ret = pmic_config_interface(0x65C,0x0,0x7F,0); // [6:0]: BUCK_VSRAM_MD_VOSEL_SLEEP; 1/6,Tzu Heng Sleep mode voltage for Olympus(0.6V)
  610. ret = pmic_config_interface(0x662,0x3,0x3,0); // [1:0]: BUCK_VSRAM_MD_TRANS_TD; 6/1, Johnson, falling for DVFS/DVS discharge extension time control
  611. ret = pmic_config_interface(0x662,0x1,0x3,4); // [5:4]: BUCK_VSRAM_MD_TRANS_CTRL; 6/1, Johnson, falling for DVFS/DVS discharge slew rate control
  612. ret = pmic_config_interface(0x662,0x1,0x1,8); // [8:8]: BUCK_VSRAM_MD_VSLEEP_EN; 6/1, Johnson, r2r power down with srclken sleep hw mode, after vo sel
  613. ret = pmic_config_interface(0x676,0x1,0x1,8); // [8:8]: BUCK_VS1_VSLEEP_EN; 6/1,Lan,r2r power down with srclken sleep hw mode
  614. ret = pmic_config_interface(0x68A,0x1,0x1,8); // [8:8]: BUCK_VS2_VSLEEP_EN; 6/1,Lan,r2r power down with srclken sleep hw mode
  615. ret = pmic_config_interface(0x692,0x0,0x7F,0); // [6:0]: BUCK_VPA_SFCHG_FRATE; 6/3,Paul
  616. ret = pmic_config_interface(0x692,0x1,0x7F,8); // [14:8]: BUCK_VPA_SFCHG_RRATE; 6/3,Paul
  617. ret = pmic_config_interface(0x69E,0x0,0x3,0); // [1:0]: BUCK_VPA_TRANS_TD; 624,Paul
  618. ret = pmic_config_interface(0x6A0,0x1,0x1,1); // [1:1]: BUCK_VSRAM_PROC_VOSEL_CTRL; 6/5,Chia Lin
  619. ret = pmic_config_interface(0x6A6,0x11,0x7F,0); // [6:0]: BUCK_VSRAM_PROC_SFCHG_FRATE; 6/5,Chia Lin
  620. ret = pmic_config_interface(0x6A6,0x4,0x7F,8); // [14:8]: BUCK_VSRAM_PROC_SFCHG_RRATE; 6/5,Chia Lin
  621. ret = pmic_config_interface(0x6AC,0x0,0x7F,0); // [6:0]: BUCK_VSRAM_PROC_VOSEL_SLEEP; 1/6,Tzu Heng Sleep mode voltage for Olympus(0.6V)
  622. ret = pmic_config_interface(0x6B2,0x3,0x3,0); // [1:0]: BUCK_VSRAM_PROC_TRANS_TD; 6/5,Chia Lin
  623. ret = pmic_config_interface(0x6B2,0x1,0x3,4); // [5:4]: BUCK_VSRAM_PROC_TRANS_CTRL; 6/5,Chia Lin
  624. ret = pmic_config_interface(0xA00,0x1,0x1,2); // [2:2]: RG_VA18_MODE_CTRL; 7/28 Chia Lin
  625. ret = pmic_config_interface(0xA00,0x0,0x7,5); // [7:5]: RG_VA18_SRCLK_MODE_SEL; 7/28 Chia Lin
  626. ret = pmic_config_interface(0xA02,0x1,0x1,9); // [9:9]: RG_VA18_OCFB_EN; 6/1 Fandy
  627. ret = pmic_config_interface(0xA04,0x1,0x1,3); // [3:3]: RG_VTCXO24_ON_CTRL; 6/2,CW
  628. ret = pmic_config_interface(0xA04,0x0,0x7,11); // [13:11]: RG_VTCXO24_SRCLK_EN_SEL; 6/2,CW,RF Power Control request
  629. ret = pmic_config_interface(0xA06,0x1,0x1,9); // [9:9]: RG_VTCXO24_OCFB_EN; 6/1 Fandy
  630. ret = pmic_config_interface(0xA08,0x1,0x1,3); // [3:3]: RG_VTCXO28_ON_CTRL; 6/2,CW
  631. ret = pmic_config_interface(0xA08,0x1,0x7,11); // [13:11]: RG_VTCXO28_SRCLK_EN_SEL; 6/2,CW,RF Power Control request
  632. ret = pmic_config_interface(0xA0A,0x1,0x1,9); // [9:9]: RG_VTCXO28_OCFB_EN; 6/1 Fandy
  633. ret = pmic_config_interface(0xA0E,0x1,0x1,9); // [9:9]: RG_VCN28_OCFB_EN; 6/1 Fandy
  634. ret = pmic_config_interface(0xA14,0x1,0x1,9); // [9:9]: RG_VCAMA_OCFB_EN; 6/1 Fandy
  635. ret = pmic_config_interface(0xA16,0x1,0x1,2); // [2:2]: RG_VUSB33_MODE_CTRL; 7/28 Chia Lin
  636. ret = pmic_config_interface(0xA16,0x0,0x7,5); // [7:5]: RG_VUSB33_SRCLK_MODE_SEL; 7/28 Chia Lin
  637. ret = pmic_config_interface(0xA18,0x1,0x1,9); // [9:9]: RG_VUSB33_OCFB_EN; 6/1 Fandy
  638. ret = pmic_config_interface(0xA1E,0x1,0x1,9); // [9:9]: RG_VSIM1_OCFB_EN; 6/1 Fandy
  639. ret = pmic_config_interface(0xA24,0x1,0x1,9); // [9:9]: RG_VSIM2_OCFB_EN; 6/1 Fandy
  640. ret = pmic_config_interface(0xA2A,0x1,0x1,9); // [9:9]: RG_VEMC_OCFB_EN; 6/1 Fandy
  641. ret = pmic_config_interface(0xA30,0x1,0x1,9); // [9:9]: RG_VMCH_OCFB_EN; 6/1 Fandy
  642. ret = pmic_config_interface(0xA34,0x1,0x1,2); // [2:2]: RG_VIO28_MODE_CTRL; 7/28 Chia Lin
  643. ret = pmic_config_interface(0xA34,0x0,0x7,5); // [7:5]: RG_VIO28_SRCLK_MODE_SEL; 7/28 Chia Lin
  644. ret = pmic_config_interface(0xA36,0x1,0x1,9); // [9:9]: RG_VIO28_OCFB_EN; 6/1 Fandy
  645. ret = pmic_config_interface(0xA3C,0x1,0x1,9); // [9:9]: RG_VIBR_OCFB_EN; 6/1 Fandy
  646. ret = pmic_config_interface(0xA46,0x1,0x1,3); // [3:3]: RG_VRF18_ON_CTRL; 6/2,CW
  647. ret = pmic_config_interface(0xA46,0x1,0x7,11); // [13:11]: RG_VRF18_SRCLK_EN_SEL; 6/2,CW,RF Power Control request
  648. ret = pmic_config_interface(0xA48,0x1,0x1,9); // [9:9]: RG_VRF18_OCFB_EN; 6/1 Fandy
  649. ret = pmic_config_interface(0xA4C,0x1,0x1,2); // [2:2]: RG_VIO18_MODE_CTRL; 7/28 Chia Lin
  650. ret = pmic_config_interface(0xA4C,0x0,0x7,5); // [7:5]: RG_VIO18_SRCLK_MODE_SEL; 7/28 Chia Lin
  651. ret = pmic_config_interface(0xA4E,0x1,0x1,9); // [9:9]: RG_VIO18_OCFB_EN; 6/1 Fandy
  652. ret = pmic_config_interface(0xA54,0x1,0x1,9); // [9:9]: RG_VCN18_OCFB_EN; 6/1 Fandy
  653. ret = pmic_config_interface(0xA5A,0x1,0x1,9); // [9:9]: RG_VCAMIO_OCFB_EN; 6/1 Fandy
  654. ret = pmic_config_interface(0xA66,0x1,0x1,9); // [9:9]: RG_VXO22_OCFB_EN; 6/1 Fandy
  655. ret = pmic_config_interface(0xA68,0x1,0x1,3); // [3:3]: RG_VRF12_ON_CTRL; 6/2,CW
  656. ret = pmic_config_interface(0xA68,0x1,0x7,11); // [13:11]: RG_VRF12_SRCLK_EN_SEL; 6/2,CW,RF Power Control request
  657. ret = pmic_config_interface(0xA6E,0x1,0x1,2); // [2:2]: RG_VA10_MODE_CTRL; 7/28 Chia Lin
  658. ret = pmic_config_interface(0xA6E,0x0,0x7,5); // [7:5]: RG_VA10_SRCLK_MODE_SEL; 7/28 Chia Lin
  659. ret = pmic_config_interface(0xA74,0x1,0x1,1); // [1:1]: RG_VDRAM_EN; 6/5,Chia Lin Same as Fly suspend mode
  660. ret = pmic_config_interface(0xA74,0x1,0x1,2); // [2:2]: RG_VDRAM_MODE_CTRL; 6/5,Chia Lin Same as Fly suspend mode
  661. ret = pmic_config_interface(0xA74,0x0,0x1,3); // [3:3]: RG_VDRAM_ON_CTRL; 6/5,Chia Lin Same as Fly suspend mode
  662. ret = pmic_config_interface(0xA74,0x0,0x7,5); // [7:5]: RG_VDRAM_SRCLK_MODE_SEL; 6/5,Chia Lin Same as Fly suspend mode
  663. ret = pmic_config_interface(0xA7C,0x1,0x1,9); // [9:9]: RG_VMIPI_OCFB_EN; 6/1 Fandy
  664. ret = pmic_config_interface(0xA82,0x1,0x1,9); // [9:9]: RG_VGP3_OCFB_EN; 6/1 Fandy
  665. ret = pmic_config_interface(0xA86,0x0,0x1,3); // [3:3]: RG_VBIF28_ON_CTRL; 6/1,Seven,
  666. ret = pmic_config_interface(0xA88,0x1,0x1,9); // [9:9]: RG_VBIF28_OCFB_EN; 6/1 Fandy
  667. ret = pmic_config_interface(0xA8E,0x1,0x1,9); // [9:9]: RG_VEFUSE_OCFB_EN; 6/1 Fandy
  668. ret = pmic_config_interface(0xA94,0x1,0x1,9); // [9:9]: RG_VCN33_OCFB_EN; 6/1 Fandy
  669. ret = pmic_config_interface(0xA9C,0x1,0x1,2); // [2:2]: RG_VLDO28_MODE_CTRL; 7/28 Chia Lin
  670. ret = pmic_config_interface(0xA9C,0x0,0x7,5); // [7:5]: RG_VLDO28_SRCLK_MODE_SEL; 7/28 Chia Lin
  671. ret = pmic_config_interface(0xA9E,0x1,0x1,9); // [9:9]: RG_VLDO28_OCFB_EN; 6/1 Fandy
  672. ret = pmic_config_interface(0xAAC,0x1,0x1,9); // [9:9]: RG_VMC_OCFB_EN; 6/1 Fandy
  673. ret = pmic_config_interface(0xB10,0x2,0x7,8); // [10:8]: RG_VA10_VOSEL; 6/8,KH for JADE VA10=1V
  674. ret = pmic_config_interface(0xCC4,0x1,0x1,8); // [8:8]: FG_SLP_EN; 6/1,Filby
  675. ret = pmic_config_interface(0xCC4,0x1,0x1,9); // [9:9]: FG_ZCV_DET_EN; 6/1,Filby
  676. ret = pmic_config_interface(0xCC8,0x1F,0xFFFF,0); // [15:0]: FG_SLP_CUR_TH; 6/1,Filby
  677. ret = pmic_config_interface(0xCCA,0x14,0xFF,0); // [7:0]: FG_SLP_TIME; 6/1,Filby
  678. ret = pmic_config_interface(0xCCC,0xFF,0xFF,8); // [15:8]: FG_DET_TIME; 6/1,Filby
  679. ret = pmic_config_interface(0xCE2,0x1,0x7FFF,0); // [14:0]: FG_ZCV_CAR_TH_33_19; 6/1,Filby
  680. ret = pmic_config_interface(0xCE4,0xBCAC,0xFFFF,0); // [15:0]: FG_ZCV_CAR_TH_18_03; 6/1,Filby
  681. ret = pmic_config_interface(0xEA2,0x0,0x1,13); // [13:13]: AUXADC_CK_AON_GPS; Check with Peter
  682. ret = pmic_config_interface(0xEA2,0x0,0x1,14); // [14:14]: AUXADC_CK_AON_MD; Check with Peter
  683. ret = pmic_config_interface(0xEA2,0x0,0x1,15); // [15:15]: AUXADC_CK_AON; Check with Peter
  684. ret = pmic_config_interface(0xEAA,0x83,0xFFF,0); // [11:0]: AUXADC_AVG_NUM_SEL; 6/1,Filby,Resolution Adjust
  685. ret = pmic_config_interface(0xEAA,0x0,0x1,13); // [13:13]: AUXADC_AVG_NUM_SEL_LBAT; 8/3,Filby,Resolution Adjust
  686. ret = pmic_config_interface(0xEAA,0x1,0x1,15); // [15:15]: AUXADC_AVG_NUM_SEL_WAKEUP; 6/1,Filby,Resolution Adjust
  687. ret = pmic_config_interface(0xEB2,0x1,0x3,4); // [5:4]: AUXADC_TRIM_CH2_SEL; 6/1,Filby
  688. ret = pmic_config_interface(0xEB2,0x3,0x3,6); // [7:6]: AUXADC_TRIM_CH3_SEL; 6/1,Filby
  689. ret = pmic_config_interface(0xEB2,0x1,0x3,8); // [9:8]: AUXADC_TRIM_CH4_SEL; 6/1,Filby
  690. ret = pmic_config_interface(0xEB2,0x1,0x3,10); // [11:10]: AUXADC_TRIM_CH5_SEL; 6/1,Filby
  691. ret = pmic_config_interface(0xEB2,0x1,0x3,12); // [13:12]: AUXADC_TRIM_CH6_SEL; 6/1,Filby
  692. ret = pmic_config_interface(0xEB2,0x2,0x3,14); // [15:14]: AUXADC_TRIM_CH7_SEL; 6/1,Filby
  693. ret = pmic_config_interface(0xEB4,0x1,0x3,0); // [1:0]: AUXADC_TRIM_CH8_SEL; 6/1,Filby
  694. ret = pmic_config_interface(0xEB4,0x1,0x3,2); // [3:2]: AUXADC_TRIM_CH9_SEL; 6/1,Filby
  695. ret = pmic_config_interface(0xEB4,0x1,0x3,4); // [5:4]: AUXADC_TRIM_CH10_SEL; 6/1,Filby
  696. ret = pmic_config_interface(0xEB4,0x3,0x3,6); // [7:6]: AUXADC_TRIM_CH11_SEL; 6/1,Filby
  697. ret = pmic_config_interface(0xEC6,0x1,0x1,14); // [14:14]: AUXADC_START_SHADE_EN; TBD(Wei-Lin)
  698. ret = pmic_config_interface(0xF16,0xC,0x3FF,0); // [9:0]: AUXADC_MDBG_DET_PRD; 10/30, sw.huang
  699. ret = pmic_config_interface(0xF16,0x0,0x1,15); // [15:15]: AUXADC_MDBG_DET_EN; 10/30, sw.huang
  700. ret = pmic_config_interface(0xF1C,0xC,0x3FF,0); // [9:0]: AUXADC_MDRT_DET_PRD; 10/30, sw.huang
  701. ret = pmic_config_interface(0xF1C,0x1,0x1,15); // [15:15]: AUXADC_MDRT_DET_EN; 10/30, sw.huang
  702. ret = pmic_config_interface(0xF20,0x1,0x1,2); // [2:2]: AUXADC_MDRT_DET_WKUP_EN; 6/2,Dennis
  703. ret = pmic_config_interface(0xF7A,0xB,0xF,4); // [7:4]: RG_VCDT_HV_VTH; Zax: VCDT_HV_th=7V
  704. ret = pmic_config_interface(0xF84,0x4,0xF,1); // [4:1]: RG_VBAT_OV_VTH; Zax: 4.45V for 4.35v battery
  705. ret = pmic_config_interface(0xF92,0x3,0xF,0); // [3:0]: RG_CHRWDT_TD; Zax:WDT=32s
  706. ret = pmic_config_interface(0xFA0,0x1,0x1,1); // [1:1]: RG_BC11_RST; Zax:Disable BC1.1 timer
  707. ret = pmic_config_interface(0xFA4,0x0,0x7,4); // [6:4]: RG_CSDAC_STP_DEC; Zax:Reduce ICHG current ripple
  708. ret = pmic_config_interface(0xFAA,0x1,0x1,2); // [2:2]: RG_CSDAC_MODE; Zax:Align 6323
  709. ret = pmic_config_interface(0xFAA,0x1,0x1,6); // [6:6]: RG_HWCV_EN; Zax:Align 6323
  710. ret = pmic_config_interface(0xFAA,0x1,0x1,7); // [7:7]: RG_ULC_DET_EN; Zax: need to enable for supporting bad TA
  711. dprintf(CRITICAL, "pmic init ret = %u\n", ret);
  712. }
  713. //=============================================
  714. // MD1 PMIC setting
  715. // porting from vmd1_pmic_setting_on(void) in drivers/misc/mediatek/power/mt6757/pmic.c
  716. static void md1_pmic_setting(void)
  717. {
  718. /*---Configure Modem Related Buck ---*/
  719. /*---Configure V_MD1 as 0.7V and HW mode ---*/
  720. pmic_set_register_value(MT6351_PMIC_BUCK_VMD1_VOSEL_CTRL, 1);
  721. pmic_set_register_value(MT6351_PMIC_BUCK_VMD1_EN, 1);
  722. pmic_set_register_value(MT6351_PMIC_BUCK_VMD1_VOSEL_ON, 0x10);
  723. pmic_set_register_value(MT6351_PMIC_BUCK_VMD1_VSLEEP_EN, 1);
  724. /*---configure V_MODEM as 0.8V and HW mode---*/
  725. pmic_set_register_value(MT6351_PMIC_BUCK_VMODEM_VOSEL_CTRL, 1);
  726. pmic_set_register_value(MT6351_PMIC_BUCK_VMODEM_EN, 1);
  727. pmic_set_register_value(MT6351_PMIC_BUCK_VMODEM_VOSEL_ON, 0x20);
  728. pmic_set_register_value(MT6351_PMIC_BUCK_VMODEM_VSLEEP_EN, 1);
  729. }
  730. static void md_power_up_mtcmos(unsigned int boot_md_id)
  731. {
  732. volatile unsigned int loop = 10000;
  733. loop =10000;
  734. while (loop-->0);
  735. switch (boot_md_id) {
  736. case MD_SYS1:
  737. #ifdef ENABLE_MD_RESET_SPM
  738. spm_mtcmos_ctrl_md1(STA_POWER_ON);
  739. #else
  740. // default on
  741. #endif
  742. break;
  743. case MD_SYS3:// MD2
  744. #ifdef ENABLE_MD_RESET_SPM
  745. spm_mtcmos_ctrl_c2k(STA_POWER_ON);
  746. #else
  747. // YP Lin will power it on in preloader
  748. #endif
  749. break;
  750. default:
  751. break;
  752. }
  753. }
  754. int md_common_setting(int boot_md_comb)
  755. {
  756. unsigned int reg_value;
  757. // step 3: MD srcclkena setting
  758. reg_value = *INFRA_AO_MD_SRCCLKENA;
  759. if ((boot_md_comb&((1<<MD_SYS1)|(1<<MD_SYS3)))==(1<<MD_SYS1)) {
  760. reg_value &= 0xFF;
  761. reg_value |= 0x29;
  762. } else {
  763. reg_value &= 0x92;
  764. reg_value |= 0x29;
  765. }
  766. *INFRA_AO_MD_SRCCLKENA = reg_value;
  767. dprintf(CRITICAL, "MD srcclkena setting:0x%x\n", *INFRA_AO_MD_SRCCLKENA);
  768. return 0;
  769. }
  770. //=============================================
  771. // MD pll init
  772. static void md_pll_on_1()
  773. {
  774. dprintf(CRITICAL, "MD PLL on 1\n");
  775. /* Make md1 208M CG off, switch to software mode */
  776. *((volatile unsigned int *)0x20150020) |= (0x1<<26); /* turn off mdpll1 cg */
  777. *((volatile unsigned int *)0x20140010) |= (0x1<<16); /* let mdpll on ctrl into software mode */
  778. *((volatile unsigned int *)0x20140014) |= (0x1<<16); /* let mdpll enable into software mode */
  779. }
  780. static void md_pll_on_2()
  781. {
  782. dprintf(CRITICAL, "MD PLL on 2\n");
  783. *((volatile unsigned int *)0x20140010) &= ~(0x1<<16); /* let mdpll on ctrl into hardware mode */
  784. *((volatile unsigned int *)0x20140014) &= ~(0x1<<16); /* let mdpll enable into hardware mode */
  785. *((volatile unsigned int *)0x20150020) &= ~(0x1<<26); /* turn on mdpll1 cg */
  786. }
  787. static void md1_pll_on()
  788. {
  789. /* reset MDPLL1_CON0 to default value */
  790. *MDPLL1_CON0 = 0x446D12E0; //Jade 0x2EE8;
  791. md_pll_on_1();
  792. /* Turn on 208M */
  793. *MDPLL1_CON0 |= 0x00000001;
  794. DRV_WriteReg32(AP_PLL_CON0, (DRV_Reg32(AP_PLL_CON0)|(0x1<<1)));
  795. udelay(200);
  796. /* close 208M and autoK */
  797. *MDPLL1_CON0 &= ~(0x1);
  798. /* *MDPLL1_CON0 &= ~(0x1<<7); */
  799. md_pll_on_2();
  800. /* If MD3 only, do nothing */
  801. /* set mdpll control by md1 and c2k */
  802. *MDPLL1_CON0 &= ~(0x1<<9);
  803. }
  804. void md1_pll_init(void)
  805. {
  806. md1_pll_on();
  807. //enable L1 permission
  808. *R_L1_PMS |= 0x7;
  809. // modify PSMCU2EMI bus divider from 3 to 4.
  810. *R_PSMCU_AO_CLK_CTL |= 0x82; //jade :0x83;
  811. *R_L1MCU_PWR_AWARE |= (1<<16); //lock dcm bus
  812. *R_L1AO_PWR_AWARE |= (1<<16); //lock dcm bus
  813. *R_BUSL2DCM_CON3 = 0x0000FDE7; //L2DCM L1BUS div 16
  814. *R_BUSL2DCM_CON3 = 0x1000FDE7; //toggle setting
  815. *R_L1MCU_DCM_CON = 0x0001FDE7; // DCM div 8/normal div 1/clkslow_en/ clock from PLL / dcm enable /debounce enable /debounce time 15T
  816. *R_L1MCU_DCM_CON2 = 0x00000000; //DCM config toggle = 0
  817. *R_L1MCU_DCM_CON2 = 0x80000000; //DCM config toggle = 1 / old
  818. /*Wait PSMCU PLL ready*/
  819. dprintf(CRITICAL, "Wait PSMCU PLL ready\n");
  820. while ((*R_PLL_STS & 0x1) !=0x1); // Bit 0: PSMCUPLL_RDY
  821. dprintf(CRITICAL, "Got it\n");
  822. /*Switch clock, 0: 26MHz, 1: PLL*/
  823. *R_CLKSEL_CTL |= 0x2;
  824. /*Wait L1MCU PLL ready*/
  825. dprintf(CRITICAL, "Wait L1MCU PLL ready\n");
  826. while ((*R_PLL_STS & 0x2) != 0x2); // Bit 1: L1MCUPLL_RDY
  827. dprintf(CRITICAL, "Got it\n");
  828. *R_CLKSEL_CTL |= 0x100; // Bit 8: L1MCU_CK = L1MCUPLL
  829. /*DFE/CMP/ICC/IMC clock src select*/
  830. *R_FLEXCKGEN_SEL1 = 0x30302020; // Bit 29-28 DFE_CLK src = DFEPLL
  831. // Bit 21-20 CMP_CLK src = DFEPLL
  832. // Bit 13-12 ICC_CLK src = IMCPLL
  833. // Bit 5-4 IMC_CLK src = IMCPLL
  834. /*IMC/MD2G clock src select */
  835. *R_FLEXCKGEN_SEL2 = 0x00002030; // Bit 13-12 INTF_CLK src = IMCPLL
  836. // Bit 5-4 MD2G_CLK src = DFEPLL
  837. /*Wait DFE/IMC PLL ready*/
  838. dprintf(CRITICAL, "Wait DFE/IMC PLL ready\n");
  839. while ((*R_PLL_STS & 0x90) !=0x90); // Bit 7: DFEPLL_RDY
  840. // Bit 4: IMCPLL_RDY
  841. dprintf(CRITICAL, "done\n");
  842. /*Wait L1SYS clock ready*/
  843. dprintf(CRITICAL, "Wait L1SYS clock ready\n");
  844. while ((*R_FLEXCKGEN_STS0 & 0x80800000) != 0x80800000); // Bit 31: EQ_CK_RDY
  845. // Bit 23: BRP_CK_RDY
  846. dprintf(CRITICAL, "Done\n");
  847. dprintf(CRITICAL, "Wait R_FLEXCKGEN_STS1 & 0x80808080 ready\n");
  848. while ((*R_FLEXCKGEN_STS1 & 0x80808080) != 0x80808080); // Bit 31: DFE_CK_RDY
  849. // Bit 23: CMP_CK_RDY
  850. // Bit 15: ICC_CK_RDY
  851. // Bit 7: IMC_CK_RDY
  852. dprintf(CRITICAL, "Done\n");
  853. dprintf(CRITICAL, "Wait R_FLEXCKGEN_STS2 & 0x8080 ready\n");
  854. while ((*R_FLEXCKGEN_STS2 & 0x8080) != 0x8080); // Bit 15: INTF_CK_RDY
  855. // Bit 23: MD2G_CK_RDY
  856. dprintf(CRITICAL, "Done\n");
  857. /*Switch L1SYS clock to PLL clock*/
  858. *R_CLKSEL_CTL |=0x3fe00;
  859. /*MD BUS/ARM7 clock src select */
  860. *R_FLEXCKGEN_SEL0 = 0x30203031; // Bit 29-28: EQ_CLK src = EQPLL
  861. // Bit 26-24: EQ+DIVSEL, divided-by bit[2:0]+1
  862. // Bit 21-20: BRP_CLK src = IMCPLL
  863. // Bit 13-12: ARM7_CLK src = DFEPLL
  864. // Bit 5-4: BUS_CLK src = EQPLL
  865. // Bit 2-0: BUS_DIVSEL, divided-by bit[2:0]+1
  866. *MD_GLOBAL_CON_DUMMY = MD_PLL_MAGIC_NUM;
  867. *REG_DCM_PLLCK_SEL |= (1<<7); // Bit 7: 0: clock do not from PLL, 1: clock from PLL
  868. // wait DCM config done, then switch BUS clock src to PLL
  869. dprintf(CRITICAL, "wait DCM config done\n");
  870. while ((*R_FLEXCKGEN_STS0 & 0x80) !=0x80); // Bit 7: BUS_CK_RDY
  871. dprintf(CRITICAL, "done\n");
  872. *R_CLKSEL_CTL |=0x1; // Bit 1: BUS_CLK = EQPLL/2
  873. }
  874. /*Turn on MD pcore SRAM access permission for AP*/
  875. static void md1_pcore_sram_pms_turn_on(void)
  876. {
  877. unsigned int val = 0;
  878. unsigned int base = MD_SRAM_PMS_BASE;
  879. ccci_write32(base, MD_SRAM_MDSYS_MD_PMS, 0xFFFF);
  880. ccci_write32(base, MD_SRAM_MDPERISYS1_MD_PMS, 0xFFFF);
  881. ccci_write32(base, MD_SRAM_MDPERISYS2_MD_PMS, 0xFFFF);
  882. ccci_write32(base, MD_SRAM_PSMCUAPB_MD_PMS, 0xFFFF);
  883. ccci_write32(base, MD_SRAM_MDSYS_AP_PMS, 0xFFFF);
  884. ccci_write32(base, MD_SRAM_MDPERISYS1_AP_PMS, 0xFFFF);
  885. ccci_write32(base, MD_SRAM_MDPERISYS2_AP_PMS, 0xFFFF);
  886. ccci_write32(base, MD_SRAM_PSMCUAPB_AP_PMS, 0xFFFF);
  887. ccci_write32(base, MD_SRAM_MDSYS_TZ_PMS, 0xFFFF);
  888. ccci_write32(base, MD_SRAM_MDPERISYS1_TZ_PMS, 0xFFFF);
  889. ccci_write32(base, MD_SRAM_MDPERISYS2_TZ_PMS, 0xFFFF);
  890. ccci_write32(base, MD_SRAM_PSMCUAPB_TZ_PMS, 0xFFFF);
  891. ccci_write32(base, MD_SRAM_MDSYS_L1_PMS, 0xFFFF);
  892. ccci_write32(base, MD_SRAM_MDPERISYS1_L1_PMS, 0xFFFF);
  893. ccci_write32(base, MD_SRAM_MDPERISYS2_L1_PMS, 0xFFFF);
  894. ccci_write32(base, MD_SRAM_PSMCUAPB_L1_PMS, 0xFFFF);
  895. ccci_write32(base, MD_SRAM_L1SYS_PMS, 0xFFFF);
  896. dprintf(CRITICAL, "Enable R_PD_PSMCU_SRAM_PMS(0x%x) access\n",
  897. ccci_read32(MD_PERI_MISC_BASE, R_PD_PSMCU_SRAM_PMS));
  898. }
  899. static void md1_pcore_sram_pms_turn_off(void)
  900. {
  901. unsigned int val = 0;
  902. unsigned int base = MD_SRAM_PMS_BASE;
  903. ccci_write32(base, MD_SRAM_MDSYS_MD_PMS, 0xFFFF);
  904. ccci_write32(base, MD_SRAM_MDPERISYS1_MD_PMS, 0xFFFF);
  905. ccci_write32(base, MD_SRAM_MDPERISYS2_MD_PMS, 0xFFFF);
  906. ccci_write32(base, MD_SRAM_PSMCUAPB_MD_PMS, 0xFFFF);
  907. ccci_write32(base, MD_SRAM_MDSYS_AP_PMS, 0x0008);
  908. ccci_write32(base, MD_SRAM_MDPERISYS1_AP_PMS, 0x0745);
  909. ccci_write32(base, MD_SRAM_MDPERISYS2_AP_PMS, 0x003C);
  910. ccci_write32(base, MD_SRAM_PSMCUAPB_AP_PMS, 0x0064);
  911. ccci_write32(base, MD_SRAM_MDSYS_TZ_PMS, 0x0008);
  912. ccci_write32(base, MD_SRAM_MDPERISYS1_TZ_PMS, 0x0745);
  913. ccci_write32(base, MD_SRAM_MDPERISYS2_TZ_PMS, 0x003C);
  914. ccci_write32(base, MD_SRAM_PSMCUAPB_TZ_PMS, 0x0064);
  915. ccci_write32(base, MD_SRAM_MDSYS_L1_PMS, 0xFFFF);
  916. ccci_write32(base, MD_SRAM_MDPERISYS1_L1_PMS, 0xFFFF);
  917. ccci_write32(base, MD_SRAM_MDPERISYS2_L1_PMS, 0xFFFF);
  918. ccci_write32(base, MD_SRAM_PSMCUAPB_L1_PMS, 0xFFFF);
  919. ccci_write32(base, MD_SRAM_L1SYS_PMS, 0x0001);
  920. dprintf(CRITICAL, "disable R_PD_PSMCU_SRAM_PMS(0x%x) access\n",
  921. ccci_read32(MD_PERI_MISC_BASE, R_PD_PSMCU_SRAM_PMS));
  922. }
  923. static void md1_pcore_sram_turn_on(void)
  924. {
  925. int i;
  926. unsigned int val, golden_val;
  927. unsigned int base = MD_SRAM_PD_PSMCUSYS_SRAM_BASE;
  928. /*Turn on MD pcore SRAM_1(0x200D0114)*/
  929. golden_val = 0xFFFFFFFF;
  930. for (i = 31; i >= 0; i--) {
  931. val = (0xFFFFFFFF >> i) & golden_val;
  932. ccci_write32(base, MD_SRAM_PD_PSMCUSYS_SRAM_1, val);
  933. }
  934. val = ccci_read32(base, MD_SRAM_PD_PSMCUSYS_SRAM_1);
  935. if (val != golden_val)
  936. dprintf(CRITICAL, "MD_SRAM_PD_PSMCUSYS_SRAM_1 = 0x%X!= 0xFFFFFFFF\n", val);
  937. /*Turn on MD pcore SRAM_2(0x200D0118)*/
  938. golden_val = 0xFFFFFFFF;
  939. for (i = 31; i >= 0; i--) {
  940. val = (0xFFFFFFFF >> i) & golden_val;
  941. ccci_write32(base, MD_SRAM_PD_PSMCUSYS_SRAM_2, val);
  942. }
  943. val = ccci_read32(base, MD_SRAM_PD_PSMCUSYS_SRAM_2);
  944. if (val != golden_val)
  945. dprintf(CRITICAL, "MD_SRAM_PD_PSMCUSYS_SRAM_2 = 0x%X!= 0xFFFFFFFF\n", val);
  946. /*Turn on MD pcore SRAM_3(0x200D011C)*/
  947. golden_val = 0xFFFFFFFF;
  948. for (i = 31; i >= 0; i--) {
  949. val = (0xFFFFFFFF >> i) & golden_val;
  950. ccci_write32(base, MD_SRAM_PD_PSMCUSYS_SRAM_3, val);
  951. }
  952. val = ccci_read32(base, MD_SRAM_PD_PSMCUSYS_SRAM_3);
  953. if (val != golden_val)
  954. dprintf(CRITICAL, "MD_SRAM_PD_PSMCUSYS_SRAM_3 = 0x%X!= 0xFFFFFFFF\n", val);
  955. /*Turn on MD pcore SRAM_4(0x200D0120)*/
  956. golden_val = 0xFFFFFFFA;
  957. for (i = 31; i >= 0; i--) {
  958. val = (0xFFFFFFFF >> i) & golden_val;
  959. ccci_write32(base, MD_SRAM_PD_PSMCUSYS_SRAM_4, val);
  960. }
  961. val = ccci_read32(base, MD_SRAM_PD_PSMCUSYS_SRAM_4);
  962. if (val != golden_val)
  963. dprintf(CRITICAL, "MD_SRAM_PD_PSMCUSYS_SRAM_4 = 0x%X!= 0xFFFFFFFA\n", val);
  964. }
  965. static void md1_pcore_sram_on(void)
  966. {
  967. dprintf(CRITICAL, "md1_pcore_sram_on enter\n");
  968. /*Turn on MD pcore SRAM access permission for AP*/
  969. md1_pcore_sram_pms_turn_on();
  970. /*Turn on md pcore sram by AP*/
  971. md1_pcore_sram_turn_on();
  972. /*Turn off MD pcore SRAM access permission for AP*/
  973. md1_pcore_sram_pms_turn_off();
  974. dprintf(CRITICAL, "md1_pcore_sram_on exit\n");
  975. }
  976. void md1_boot(int boot_mode)
  977. {
  978. unsigned int reg_value;
  979. // step 0: PMIC setting
  980. md1_pmic_setting();
  981. dprintf(CRITICAL, "md1_pmic_setting done!\n");
  982. // step 1: Power on MTCMOS
  983. md_power_up_mtcmos(MD_SYS1);
  984. dprintf(CRITICAL, "md_power_up_mtcmos done!\n");
  985. // step 2: RF power,force SRCLKEN_O1 on, request by Yuyang Hsiao
  986. DRV_WriteReg32(0x10006008, 0x215830);
  987. // step 3: pll init for both MD, should be after MD1 power on and before MD3 boot
  988. md1_pll_init();
  989. // step 4: set META Register
  990. if (boot_mode) {
  991. reg_value = DRV_Reg32(0x20000010);
  992. DRV_WriteReg32(0x20000010, (reg_value |0x1)); // Bit0, Meta mode flag, this need sync with MD init owner
  993. }
  994. // step 5: Disabel MD WDT
  995. #if !defined(ENABLE_MD_RESET_SPM) && !defined(ENABLE_MD_RESET_RGU)
  996. ccci_write32(MD_RGU_BASE, WDT_MD_MODE, WDT_MD_MODE_KEY); // disable P core watchdog
  997. ccci_write32(L1_RGU_BASE, REG_L1RSTCTL_WDT_MODE,L1_WDT_MD_MODE_KEY); // disable L1 core watchdog
  998. #endif
  999. //step6: pcore sram on
  1000. md1_pcore_sram_on();
  1001. }
  1002. //===========================================================
  1003. void c2k_boot(int boot_mode)
  1004. {
  1005. unsigned int reg_value;
  1006. #if 1
  1007. /* C2K CONFIG addr: 0x10001360 , Make C2K boot from 0 address at DRAM*/
  1008. reg_value =*C2K_CONFIG;
  1009. reg_value &= (~(7<<8));
  1010. reg_value |= (5<<8);
  1011. *C2K_CONFIG = reg_value;
  1012. dprintf(CRITICAL, "C2K[0x10001360]%x\n", *C2K_CONFIG);
  1013. #endif
  1014. /* Power on C2K MTCMOS */
  1015. /* Turn On SPM Reg Key*/
  1016. spm_write(C2K_POWERON_CONFIG_EN, (SPM_PROJECT_CODE << 16) | (0x1 << 0));
  1017. spm_write(C2K_PWR_CON, spm_read(C2K_PWR_CON) | PWR_ON);
  1018. spm_write(C2K_PWR_CON, spm_read(C2K_PWR_CON) | PWR_ON_2ND);
  1019. dprintf(CRITICAL, "C2K, wait PWR_SATUS and PWR_STATUS_2ND\n");
  1020. while (!(spm_read(C2K_PWR_STATUS) & C2K_PWR_STA_MASK)
  1021. || !(spm_read(C2K_PWR_STATUS_2ND) & C2K_PWR_STA_MASK)
  1022. ); // waiting for power ready
  1023. dprintf(CRITICAL, "wait PWR_SATUS and PWR_STATUS_2ND done\n");
  1024. spm_write(C2K_PWR_CON, spm_read(C2K_PWR_CON) & ~PWR_CLK_DIS);
  1025. spm_write(C2K_PWR_CON, spm_read(C2K_PWR_CON) & ~PWR_ISO);
  1026. spm_write(C2K_PWR_CON, spm_read(C2K_PWR_CON) | PWR_RST_B);
  1027. // release bus protect
  1028. spm_write(INFRA_TOPAXI_PROTECTEN_1, spm_read(INFRA_TOPAXI_PROTECTEN_1) & ~C2K_PROT_MASK);
  1029. while (spm_read(INFRA_TOPAXI_PROTECTSTA1_1) & C2K_PROT_MASK);
  1030. /* AP config srcclkena selection mask (INFRA_AO, SLEEP_CON register) */
  1031. /* INFRA_MISC2 0x10001F0C */
  1032. *INFRA_MISC2 |= 0x44;
  1033. /* AP config ClkSQ register (APMixedsys register) */
  1034. /* CLKSQ_LPF_EN (AP_PLL_CON0[1]) set to 1, @ 0x1000C000*/
  1035. *AP_PLL_CON0 |= (0x1 << 1);
  1036. /* AP Hold C2K ARM core */
  1037. *C2K_CONFIG |= 0x1 << 1;
  1038. /* AP_REQ_C2K, AP wakeup C2k */
  1039. /* Enable C2K to Control MDPLL1 */
  1040. *MDPLL1_CON0 &= 0XFFFFFDFF;
  1041. /* Make sure release C2KSYS Reset */
  1042. reg_value = *WDT_SWSYSRST;
  1043. reg_value |= 0x88000000;
  1044. reg_value &= ~(0x1<<15);
  1045. *WDT_SWSYSRST = reg_value;
  1046. /* AP Wakeup C2KSYS */
  1047. *C2K_SPM_CTRL |= 0x1 << 1;
  1048. dprintf(CRITICAL, "Wait C2K_STATUS\n");
  1049. while (((*C2K_STATUS >> 1) & 0x1) == 0);
  1050. dprintf(CRITICAL, "done\n");
  1051. *C2K_SPM_CTRL &= ~(0x1 << 1);
  1052. *INFRA_TOPAXI_PROTECTEN_1 &= 0xFE3FFFFF;
  1053. /* Waiting for C2KSYS Bus ready for operation */
  1054. dprintf(CRITICAL, "Waiting for C2KSYS Bus ready for operation\n");
  1055. do {
  1056. reg_value = *C2K_CGBR1;
  1057. } while (reg_value != 0xFE8);
  1058. dprintf(CRITICAL, "Done\n");
  1059. /* C2K PLL init */
  1060. *(UINT16P)C2K_C2K_PLL_CON3 = 0x8805; // CPPLL/DSPPLL ISO_EN -> hw mode
  1061. *(UINT16P)C2K_C2K_PLL_CON3 = 0x0005; // CPPLL/DSPPLL PWR_ON -> hw mode
  1062. *(UINT16P)C2K_C2K_PLL_CON3 = 0x0001; // MDPLL1 EN -> hw mode
  1063. *(UINT16P)C2K_C2K_PLL_CON2 = 0x0000; // CPPLL/DSPPLL/C2KPLL_SUBPLL1/2 EN -> hw mode
  1064. *(UINT16P)C2K_C2K_PLLTD_CON0 = 0x0010;// bp_pll_dly -> 0
  1065. *(UINT16P)C2K_C2K_CPPLL_CON0 |= 1 << 15;
  1066. *(UINT16P)C2K_C2K_DSPPLL_CON0 |= 1 << 15;
  1067. /* *(UINT16P)C2K_C2K_C2KPLL1_CON0 |= 1 << 15; */
  1068. /* Wait 20us */
  1069. udelay(20);
  1070. *(UINT16P)C2K_CG_ARM_AMBA_CLKSEL = 0xC124;
  1071. *(UINT16P)C2K_CLK_CTRL4 = 0x8e43;
  1072. *(UINT16P)C2K_CLK_CTRL9 = 0xA207;
  1073. }
  1074. static void config_md_boot_env(int md_id, int boot_mode)
  1075. {
  1076. pmic_init_sequence();
  1077. dprintf(CRITICAL, "pmic_init_sequence done!\n");
  1078. switch (md_id) {
  1079. case MD_SYS1:
  1080. md1_boot(boot_mode);
  1081. break;
  1082. case MD_SYS3:
  1083. c2k_boot(boot_mode);
  1084. break;
  1085. default:
  1086. break;
  1087. }
  1088. // Configure DAP for ICE to connect to MD
  1089. dprintf(CRITICAL, "Configure DAP for ICE to connect to MD!\n");
  1090. }
  1091. static void let_md_go(int md_id)
  1092. {
  1093. unsigned int reg_val;
  1094. switch (md_id) {
  1095. case MD_SYS1:
  1096. // Trigger MD run
  1097. DRV_WriteReg32(MD_BOOT_VECTOR_EN, 1);
  1098. break;
  1099. case MD_SYS3:
  1100. DRV_WriteReg32(AP_C2K_CONFIG, DRV_Reg32(AP_C2K_CONFIG)|(1<<3));
  1101. /* AP release C2K ARM core to let C2K go */
  1102. reg_val = DRV_Reg32(C2K_CONFIG);
  1103. reg_val &= ~(0x1 << 1);
  1104. DRV_WriteReg32(C2K_CONFIG, reg_val);
  1105. break;
  1106. default:
  1107. break;
  1108. }
  1109. }
  1110. static void reset_ccirq_reg(void)
  1111. {
  1112. int i;
  1113. unsigned int ccirq_base[4];
  1114. dprintf(CRITICAL, "reset CCIRQ\n");
  1115. ccirq_base[0] = L1_C2K_CCIRQ_BASE;
  1116. ccirq_base[1] = C2K_L1_CCIRQ_BASE;
  1117. ccirq_base[2] = PS_C2K_CCIRQ_BASE;
  1118. ccirq_base[3] = C2K_PS_CCIRQ_BASE;
  1119. for (i = 0; i < 2; i++) {
  1120. DRV_WriteReg32(ccirq_base[i] + 0x4, 0xA00000FF);
  1121. DRV_WriteReg32(ccirq_base[i] + 0xC, 0xA00000FF);
  1122. }
  1123. for (i = 2; i < 4; i++) {
  1124. DRV_WriteReg32(ccirq_base[i] + 0x4, 0xA00000FF);
  1125. DRV_WriteReg32(ccirq_base[i] + 0xC, 0xA00000FF);
  1126. }
  1127. for (i = 0; i < 4; i++) {
  1128. DRV_WriteReg32(ccirq_base[i] + 0x40, 0x0);
  1129. DRV_WriteReg32(ccirq_base[i] + 0x44, 0x0);
  1130. DRV_WriteReg32(ccirq_base[i] + 0x48, 0x0);
  1131. DRV_WriteReg32(ccirq_base[i] + 0x4C, 0x0);
  1132. }
  1133. }
  1134. void md_wdt_irq_handler(unsigned int irq)
  1135. {
  1136. #if defined(ENABLE_MD_RESET_SPM) || defined(ENABLE_MD_RESET_RGU)
  1137. // update counter
  1138. unsigned int reg_value = 0;
  1139. unsigned int cnt = *(volatile unsigned int *)(TOP_RGU_WDT_NONRST_REG);
  1140. *(volatile unsigned int *)(TOP_RGU_WDT_NONRST_REG) = cnt+1;
  1141. // reset UART config
  1142. md_uart_config(-1, 0);
  1143. dprintf(CRITICAL, "\n\n\n\nCurrent wdt cnt:%d\n", cnt+1);
  1144. if (irq == MT_MD_WDT1_IRQ_ID) {
  1145. #ifdef ENABLE_MD_RESET_SPM
  1146. dprintf(CRITICAL, "MD1 power off\n");
  1147. spm_mtcmos_ctrl_md1(STA_POWER_DOWN);
  1148. mdelay(5);
  1149. #endif
  1150. #ifdef ENABLE_MD_RESET_RGU
  1151. dprintf(CRITICAL, "MD1 reset\n");
  1152. bus_protection_en(0);
  1153. reg_value = *((volatile unsigned int*)TOP_RGU_WDT_SWSYSRST);
  1154. *((volatile unsigned int*)TOP_RGU_WDT_SWSYSRST) = reg_value|0x88000000|(0x1<<7);
  1155. mdelay(5);
  1156. reg_value = *((volatile unsigned int*)TOP_RGU_WDT_SWSYSRST);
  1157. *((volatile unsigned int*)TOP_RGU_WDT_SWSYSRST) = (reg_value|0x88000000)&(~(0x1<<7));
  1158. bus_protection_diable(0);
  1159. #endif
  1160. config_md_boot_env(MD_SYS1, 0);
  1161. let_md_go(MD_SYS1);
  1162. }
  1163. if (irq == MT_MD_WDT2_IRQ_ID) {
  1164. #ifdef ENABLE_MD_RESET_SPM
  1165. dprintf(CRITICAL, "MD2 power off\n");
  1166. spm_mtcmos_ctrl_c2k(STA_POWER_DOWN);
  1167. mdelay(5);
  1168. reset_ccirq_reg();
  1169. #endif
  1170. #ifdef ENABLE_MD_RESET_RGU
  1171. dprintf(CRITICAL, "MD2 reset\n");
  1172. reg_value = *((volatile unsigned int*)TOP_RGU_WDT_SWSYSRST);
  1173. *((volatile unsigned int*)TOP_RGU_WDT_SWSYSRST) = reg_value|0x88000000|(0x1<<15);
  1174. mdelay(5);
  1175. reg_value = *((volatile unsigned int*)TOP_RGU_WDT_SWSYSRST);
  1176. *((volatile unsigned int*)TOP_RGU_WDT_SWSYSRST) = (reg_value|0x88000000)&(~(0x1<<15));
  1177. #endif
  1178. config_md_boot_env(MD_SYS3, 0);
  1179. let_md_go(MD_SYS3);
  1180. }
  1181. #if 1
  1182. dprintf(CRITICAL, "Config UART after MD WDT! %d\n", cnt+1);
  1183. if ((img_load_flag&((1<<MD_SYS1)|(1<<MD_SYS3))) == ((1<<MD_SYS1)|(1<<MD_SYS3))) {
  1184. md_uart_config(2, 0);
  1185. } else if (img_load_flag & (1<<MD_SYS1)) {
  1186. md_uart_config(0, 0);
  1187. } else if (img_load_flag & (1<<MD_SYS3)) {
  1188. md_uart_config(2, 0);
  1189. }
  1190. #endif
  1191. #else
  1192. md_uart_config(-1, 0);
  1193. dprintf(CRITICAL, "Get MD WDT irq, STA:%x!!\n", ccci_read32(MD_RGU_BASE, 0xC));
  1194. #ifdef IGNORE_MD_WDT
  1195. dprintf(CRITICAL, "ignore MD WDT\n");
  1196. #else
  1197. dprintf(CRITICAL, "whole system reboot\n");
  1198. *(volatile unsigned int *)(TOP_RGU_WDT_MODE) = 0x22000000;
  1199. *(volatile unsigned int *)(TOP_RGU_WDT_SWRST) = 0x1209;
  1200. while (1);
  1201. #endif
  1202. #endif
  1203. }
  1204. int dummy_ap_irq_helper(unsigned int irq)
  1205. {
  1206. switch (irq) {
  1207. case MT_MD_WDT1_IRQ_ID:
  1208. if (img_load_flag &(1<<MD_SYS1)) {
  1209. #ifndef IGNORE_MD1_WDT
  1210. md_wdt_irq_handler(MT_MD_WDT1_IRQ_ID);
  1211. #else
  1212. dprintf(CRITICAL, "ignore MD1 WDT\n");
  1213. #endif
  1214. }
  1215. return 1;
  1216. case MT_MD_WDT2_IRQ_ID:
  1217. if (img_load_flag &(1<<MD_SYS3)) {
  1218. #ifndef IGNORE_MD2_WDT
  1219. md_wdt_irq_handler(MT_MD_WDT2_IRQ_ID);
  1220. #else
  1221. dprintf(CRITICAL, "ignore MD2 WDT\n");
  1222. #endif
  1223. }
  1224. return 1;
  1225. default:
  1226. break;
  1227. }
  1228. return 0;
  1229. }
  1230. void dummy_ap_boot_up_md(int md_ld_flag)
  1231. {
  1232. int boot_mode;
  1233. int i;
  1234. img_load_flag = (unsigned int)md_ld_flag;
  1235. // reinit UART, overwrite DWS setting
  1236. md_uart_config(AP_ONLY, 0);
  1237. // Disable AP WDT
  1238. *(volatile unsigned int *)(TOPRGU_BASE) = 0x22000000;
  1239. dprintf(CRITICAL, "Welcome to use dummy AP!\n");
  1240. // 1, Setup special GPIO request (RF/SIM/UART ... etc)
  1241. dprintf(CRITICAL, "Configure GPIO!\n");
  1242. if ((img_load_flag&((1<<MD_SYS1)|(1<<MD_SYS3))) == ((1<<MD_SYS1)|(1<<MD_SYS3))) {
  1243. md_gpio_config(MD1_MD2);
  1244. } else if (img_load_flag & (1<<MD_SYS1)) {
  1245. md_gpio_config(MD1_ONLY);
  1246. } else if (img_load_flag & (1<<MD_SYS3)) {
  1247. md_gpio_config(MD2_ONLY);
  1248. }
  1249. // 2, Check boot Mode
  1250. boot_mode = meta_detection();
  1251. dprintf(CRITICAL, "Get boot mode is %d\n", boot_mode);
  1252. // 3, MD WDT ISR init
  1253. dprintf(CRITICAL, "Init MD WDT\n");
  1254. md_wdt_init();
  1255. // 4. Common Env setting, srcclk
  1256. md_common_setting(img_load_flag);
  1257. // 5. Setup per-MD env before boot up MD
  1258. for (i=0; i<3; i++) {
  1259. if (img_load_flag & (1<<i)) {
  1260. dprintf(CRITICAL, "MD%d Enabled\n", i+1);
  1261. config_md_boot_env(i, boot_mode);
  1262. }
  1263. }
  1264. // 6, Switch UART
  1265. dprintf(CRITICAL, "Switch UART!\n");
  1266. if ((img_load_flag&((1<<MD_SYS1)|(1<<MD_SYS3))) == ((1<<MD_SYS1)|(1<<MD_SYS3))) {
  1267. md_uart_config(MD1_MD2, boot_mode);
  1268. } else if (img_load_flag & (1<<MD_SYS1)) {
  1269. md_uart_config(MD1_ONLY, boot_mode);
  1270. } else if (img_load_flag & (1<<MD_SYS3)) {
  1271. md_uart_config(MD2_ONLY, boot_mode);
  1272. }
  1273. for (i=0; i<3; i++) {
  1274. if (img_load_flag & (1<<i)) {
  1275. dprintf(CRITICAL, "Trigger MD%d run\n", i+1);
  1276. let_md_go(i);
  1277. }
  1278. }
  1279. dprintf(CRITICAL, "enter while(1), ^O^!!!!!!!!!\n");
  1280. while (1);
  1281. }