/* Copyright Statement: * * This software/firmware and related documentation ("MediaTek Software") are * protected under relevant copyright laws. The information contained herein * is confidential and proprietary to MediaTek Inc. and/or its licensors. * Without the prior written permission of MediaTek inc. and/or its licensors, * any reproduction, modification, use or disclosure of MediaTek Software, * and information contained herein, in whole or in part, shall be strictly prohibited. */ /* MediaTek Inc. (C) 2015. All rights reserved. * * BY OPENING THIS FILE, RECEIVER HEREBY UNEQUIVOCALLY ACKNOWLEDGES AND AGREES * THAT THE SOFTWARE/FIRMWARE AND ITS DOCUMENTATIONS ("MEDIATEK SOFTWARE") * RECEIVED FROM MEDIATEK AND/OR ITS REPRESENTATIVES ARE PROVIDED TO RECEIVER ON * AN "AS-IS" BASIS ONLY. MEDIATEK EXPRESSLY DISCLAIMS ANY AND ALL WARRANTIES, * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE IMPLIED WARRANTIES OF * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE OR NONINFRINGEMENT. * NEITHER DOES MEDIATEK PROVIDE ANY WARRANTY WHATSOEVER WITH RESPECT TO THE * SOFTWARE OF ANY THIRD PARTY WHICH MAY BE USED BY, INCORPORATED IN, OR * SUPPLIED WITH THE MEDIATEK SOFTWARE, AND RECEIVER AGREES TO LOOK ONLY TO SUCH * THIRD PARTY FOR ANY WARRANTY CLAIM RELATING THERETO. RECEIVER EXPRESSLY ACKNOWLEDGES * THAT IT IS RECEIVER'S SOLE RESPONSIBILITY TO OBTAIN FROM ANY THIRD PARTY ALL PROPER LICENSES * CONTAINED IN MEDIATEK SOFTWARE. MEDIATEK SHALL ALSO NOT BE RESPONSIBLE FOR ANY MEDIATEK * SOFTWARE RELEASES MADE TO RECEIVER'S SPECIFICATION OR TO CONFORM TO A PARTICULAR * STANDARD OR OPEN FORUM. RECEIVER'S SOLE AND EXCLUSIVE REMEDY AND MEDIATEK'S ENTIRE AND * CUMULATIVE LIABILITY WITH RESPECT TO THE MEDIATEK SOFTWARE RELEASED HEREUNDER WILL BE, * AT MEDIATEK'S OPTION, TO REVISE OR REPLACE THE MEDIATEK SOFTWARE AT ISSUE, * OR REFUND ANY SOFTWARE LICENSE FEES OR SERVICE CHARGE PAID BY RECEIVER TO * MEDIATEK FOR SUCH MEDIATEK SOFTWARE AT ISSUE. */ #include /* for atoi() */ #include #include #include #include // for get_timer() #include // for arch_sync_cache_range() #include #include #include #include #include #include #include #ifdef DEVICE_TREE_SUPPORT #include #include #endif #include #include #if ENABLE_SCP_EMI_PROTECTION #include #endif #include #ifdef MTK_AB_OTA_UPDATER #include "bootctrl.h" #endif // #define SCP_SRAM_LOCK_REG (*(volatile unsigned int *)(SCP_CFG_BASE + 0x0010)) // #define SCP_SRAM_LOCK_UNIT 12 // #define SCP_SRAM_LOCK_SHIFT 8 #define SCP_JTAG_REG (*(volatile unsigned int *)(SCP_CFG_BASE + 0x00A0)) #define SCP_JTAG_EN 0x0000003C // #define SCP_SRAM_EN_LOCK_REG (*(volatile unsigned int *)(SCP_CFG_BASE + 0x00DC)) // #define SCP_SRAM_EN_REG (*(volatile unsigned int *)(SCP_CFG_BASE + 0x00E0)) // #define SCP_SRAM_EN_BIT (1 << 20) #define SCP_SRAM_PWR_REG (*(volatile unsigned int *)(SCP_CFG_BASE + 0x402C)) // #define SCP_SET_CLK_CG (*(volatile unsigned int *)(SCP_CFG_BASE + 0x4030)) // #define SCP_EFUSE_DIS_INDEX 88 // #define SCP_ROM_SIZE 88 extern void dsb(void); extern unsigned int get_devinfo_with_index(unsigned int index); extern u64 physical_memory_size(void); extern int mboot_common_load_part(char *part_name, char *img_name, unsigned long addr); extern void mtk_wdt_restart(void); unsigned int get_scp_status(void); static int verify_load_scp_image(char *part_name, void *addr); int platform_scp_set_sram_region(int scp_A_sram_size); #ifdef MT_DO_SUPPORT static int load_do(char *part_name, void *do_addr); static void save_do_addr(void *do_addr_A, void *do_addr_B); #endif #if defined(DEVICE_TREE_SUPPORT) unsigned int get_scp_status(void); unsigned int set_scp_status(unsigned int en); int platform_fdt_scp_get_sram_size(void); int platform_fdt_scp(void *fdt); #else unsigned int get_scp_status(void) { return 0; } /* return 0, if scp disable */ unsigned int set_scp_status(unsigned int en) { return 1; } /* return 1, if fail */ int platform_fdt_scp_get_sram_size(void) { return -1; } /* return -1, if fail */ int platform_fdt_scp(void *fdt) { return 0; } /* return 0, if success */ #endif extern BOOT_ARGUMENT *g_boot_arg; #if defined(DEVICE_TREE_SUPPORT) /*dts header*/ #endif static int load_scp_status = 0; static void *dram_addr; static char *scp_part_name[] = {"scp1", "scp2"}; static int load_scp_image(char *part_name, char *img_name, void *addr) { uint32_t sec_ret; uint32_t scp_vfy_time; int ret; #ifdef MTK_SECURITY_SW_SUPPORT unsigned int policy_entry_idx = 0; unsigned int img_auth_required = 0; policy_entry_idx = get_policy_entry_idx(part_name); img_auth_required = get_vfy_policy(policy_entry_idx); /* verify cert chain of boot img */ if (img_auth_required) { scp_vfy_time = get_timer(0); sec_ret = sec_img_auth_init(part_name, img_name, 0); if (sec_ret) return -1; dprintf(CRITICAL, "[SBC] image %s cert vfy pass(%d ms)\n", img_name, (unsigned int)get_timer(scp_vfy_time)); #ifdef MTK_SECURITY_ANTI_ROLLBACK sec_ret = sec_rollback_check(1); if (sec_ret) { dprintf(CRITICAL, "[SBC] image %s ver check fail...(0x%x)\n", img_name, sec_ret); return -1; } #endif } #endif ret = mboot_common_load_part(part_name, img_name, (unsigned long)addr); dprintf(INFO, "%s(): load %s ret=%d\n", __func__, img_name, ret); if (ret <= 0) return -1; #ifdef MTK_SECURITY_SW_SUPPORT if (img_auth_required) { scp_vfy_time = get_timer(0); sec_ret = sec_img_auth(addr, ret); if (sec_ret) return -1; dprintf(CRITICAL, "[SBC] %s vfy pass(%d ms)\n", img_name, (unsigned int)get_timer(scp_vfy_time)); } #endif return ret; } static char *scp_partition_name(void) { int array_size = (int)(sizeof(scp_part_name) / sizeof(scp_part_name[0])); int i; for (i = 0; i < array_size; i++) { /* * >0: partition active * 0: partition inactive * -1: partition doesn't exist */ if (partition_get_active_bit_by_name(scp_part_name[i]) > 0) return scp_part_name[i]; } dprintf(CRITICAL, "no scp partition with active bit marked, load %s\n", scp_part_name[0]); return scp_part_name[0]; } /****************************************************************************** * This function is used to change SRAM DELSEL for MT6761, and it will make the * system more stable. It should be called before SCP is used. ******************************************************************************/ static void change_sram_delsel(void) { DRV_WriteReg32(MBIST_AO_BASE + 0x24, 0x24F3001B); DRV_WriteReg32(MBIST_AO_BASE + 0x28, 0x001B24F3); DRV_WriteReg32(MBIST_AO_BASE + 0x2C, 0x24F324F3); } /****************************************************************************** ******************************************************************************/ int load_scp(void) { int ret; int scp_A_sram_size = 0; #ifdef MTK_AB_OTA_UPDATER #define SCP_PARTITION_NAME_SIZE 10 char part_name[SCP_PARTITION_NAME_SIZE]; #else char *part_name; #endif change_sram_delsel(); /* check if scp is turned off manually*/ if (get_scp_status() == 0) { dprintf(CRITICAL, "[SCP] get_scp_status disabled\n"); goto error; } dram_addr = (void *)(unsigned int)mblock_reserve_ext(&g_boot_arg->mblock_info, SCP_DRAM_SIZE, SCP_DRAM_ALIGN, DRAM_ADDR_MAX, 0, "SCP-reserved"); dprintf(INFO, "[SCP] %s: dram_addr=%p\n", __func__, dram_addr); if (dram_addr == ((void *) 0)) { dprintf(CRITICAL, "[SCP] mblock_reserve fail\n"); goto error; } #ifdef MTK_AB_OTA_UPDATER /* Compose the partition name for A/B systems. */ strcpy (part_name,"scp"); char *p_AB_suffix; int part_name_len = strlen(part_name); p_AB_suffix = get_suffix(); if (p_AB_suffix) { strncpy((void*)&part_name[part_name_len], (void*)p_AB_suffix, sizeof(part_name) - part_name_len); } part_name[sizeof(part_name) - 1] = '\0'; #else part_name = scp_partition_name(); #endif /* MTK_AB_OTA_UPDATER*/ if (!part_name) { dprintf(CRITICAL, "[SCP]get partition failed\n"); goto error; } scp_A_sram_size = platform_fdt_scp_get_sram_size(); dprintf(INFO, "[SCP] part_name=%s, scp_A_sram_size=%d\n", part_name, scp_A_sram_size); if (scp_A_sram_size < 0) { goto error; } ret = verify_load_scp_image(part_name, dram_addr); if (ret < 0) { goto error; } #ifdef MT_DO_SUPPORT int fw_size; // FIXME: fw_size is not initialized!!! /* load DO bin from partition to the end of scp images */ ret = load_do(part_name, dram_addr + (size_t)fw_size); if (ret < 0) { dprintf(CRITICAL, "[DO] load DO failed\n"); goto error; } else { dprintf(CRITICAL, "[DO] load DO done, A + B size = %d\n", ret); } /* verify DO img size*/ if ((ret + fw_size) > SCP_DRAM_SIZE) { dprintf(CRITICAL, "[DO] image + DO size > reserved, size = %d\n", ret + fw_size); goto error; } #endif /*clean dcache & icache before set up EMI MPU*/ arch_sync_cache_range((addr_t)dram_addr, SCP_DRAM_SIZE); /* * setup EMI MPU * domain 0: AP * domain 3: SCP */ #if ENABLE_SCP_EMI_PROTECTION struct emi_region_info_t region_info; region_info.start = (unsigned long long)(unsigned int)dram_addr; region_info.end = (unsigned long long)(unsigned int)(dram_addr + SCP_DRAM_SIZE - 1); region_info.region = SCP_EMI_REGION; SET_ACCESS_PERMISSION(region_info.apc, UNLOCK, FORBIDDEN, FORBIDDEN, FORBIDDEN, FORBIDDEN, FORBIDDEN, FORBIDDEN, FORBIDDEN, FORBIDDEN, FORBIDDEN, FORBIDDEN, FORBIDDEN, FORBIDDEN, NO_PROTECTION, FORBIDDEN, FORBIDDEN, NO_PROTECTION); emi_mpu_set_protection(®ion_info); #endif dprintf(INFO, "%s(): done\n", __func__); load_scp_status = 1; return 0; error: /* * @ret = 0, malloc() error * @ret < 0, error code from load_scp_image() */ load_scp_status = -1; return -1; } #ifdef MT_DO_SUPPORT #define NEXT_DO_OFFSET 8 /* to prevent scp A parsing the DOs of scp B */ /* * Load Dynamic Object from partition to DRAM * @ret: > 0 : load success, return size of total loaded DO * = 0 : no DO image in partition or DO DRAM addr invalid */ static int load_do(char *part_name, void *do_addr) { int ret, total_loaded = 0; void *tmp; void *addr_A = 0; void *addr_B = 0; dprintf(CRITICAL, "[DO] try to load scp A DO to 0x%p\n", do_addr); ret = mboot_common_load_part(part_name, DO_NAME_SCP_A, (unsigned long)do_addr); if (ret >= 0) { addr_A = do_addr; total_loaded += ret; } else if (ret == -EINVAL) { dprintf(CRITICAL, "[DO] mboot_common_load_part: cannot find scp A DO\n"); } else { dprintf(CRITICAL, "[DO] mboot_common_load_part: load scp A error: %d\n", ret); } tmp = do_addr + (size_t)total_loaded + NEXT_DO_OFFSET; dprintf(CRITICAL, "[DO] try to load scp B DO to 0x%p\n", tmp); ret = mboot_common_load_part(part_name, DO_NAME_SCP_B, (unsigned long)tmp); if (ret >= 0) { addr_B = tmp; total_loaded += ret; } else if (ret == -EINVAL) { dprintf(CRITICAL, "[DO] mboot_common_load_part: cannot find scp B DO\n"); } else { dprintf(CRITICAL, "[DO] mboot_common_load_part: load scp B error: %d\n", ret); } /* save DO head addresses to device tree */ /* NOTE: address will be 0 if the DO bin does not exist */ save_do_addr(addr_A, addr_B); return total_loaded; } #endif #if defined(DEVICE_TREE_SUPPORT) int platform_fdt_scp(void *fdt) { int nodeoffset; char *ret; nodeoffset = fdt_node_offset_by_compatible(fdt, -1, "mediatek,scp"); if (nodeoffset < 0) { dprintf(CRITICAL, "[SCP] %s: getting node from dtb fails\n", __func__); return 1; /* return 1, if fail */ } if (load_scp_status <= 0) ret = "disabled"; else ret = "okay"; if (fdt_setprop(fdt, nodeoffset, "status", ret, strlen(ret)) < 0) { dprintf(CRITICAL, "[SCP] %s: set status fails\n", __func__); return 1; /* return 1, if fail */ } dprintf(CRITICAL, "[SCP] set core status=%s\n", ret); return 0; /* return 0, if success */ } /* Load SCP sram size from dts */ int platform_fdt_scp_get_sram_size(void) { int nodeoffset; unsigned int *data = NULL; int len = 0; dprintf(INFO, "%s()\n", __func__); nodeoffset = fdt_node_offset_by_compatible(get_kernel_fdt(), -1, "mediatek,scp"); if (nodeoffset < 0) { dprintf(CRITICAL, "[SCP] mediatek,scp not found!\n"); return -1; /* return -1, if fail */ } data = (unsigned int *) fdt_getprop(get_kernel_fdt(), nodeoffset, "scp_sramSize", &len); if (data == NULL) { dprintf(CRITICAL, "[SCP] get scp_sramSize info fail\n"); return -1; /* return -1, if fail */ } dprintf(INFO, "scp sram_size=%d, len=%d\n", fdt32_to_cpu(*(unsigned int *)data), len); return fdt32_to_cpu(*(unsigned int *)data); } unsigned int get_scp_status(void) { int scp_status; int nodeoffset; char *data = NULL; int len = 0; nodeoffset = fdt_node_offset_by_compatible(get_kernel_fdt(), -1, "mediatek,scp"); if (nodeoffset < 0) { dprintf(CRITICAL, "scp get node from dtb fail\n"); return 0; } data = (char*)fdt_getprop(get_kernel_fdt(), nodeoffset, "status", &len); if (data == NULL) { dprintf(CRITICAL, "scp get status from dtb fail\n"); return 0; } if (strncmp(data, "okay", len) == 0) scp_status = 1; /* 1 goes for "enabled" */ else scp_status = 0; /* 0 goes for "disabled" */ char *scp_env = get_env("scp"); scp_status = (scp_env == NULL) ? scp_status : atoi(scp_env); dprintf(CRITICAL,"[SCP] current setting is %d.\n", scp_status); return scp_status; } unsigned int set_scp_status(unsigned int en) { char *SCP_STATUS[2] = {"0","1"}; if (set_env("scp", SCP_STATUS[en]) == 0) { dprintf(CRITICAL,"[SCP]set SCP %s success. Plz reboot to make it applied.\n",SCP_STATUS[en]); return 0; /* return 0, if success*/ } else { dprintf(CRITICAL,"[SCP]set SCP %s fail.\n",SCP_STATUS[en]); return 1; /* return 1, if fail */ } } #endif #ifdef MT_DO_SUPPORT void save_do_addr(void *do_addr_A, void *do_addr_B) { int offset; u32 addr[2]; dprintf(INFO, "%s()\n", __func__); offset = fdt_node_offset_by_compatible(get_kernel_fdt(), -1, "mediatek,scp"); if (offset >= 0) { addr[0] = (u32)cpu_to_fdt32((u64)do_addr_A >> 32); addr[1] = (u32)cpu_to_fdt32(do_addr_A); fdt_setprop(get_kernel_fdt(), offset, "do_addr_A", addr, sizeof(u32)*2); addr[0] = (u32)cpu_to_fdt32((u64)do_addr_B >> 32); addr[1] = (u32)cpu_to_fdt32(do_addr_B); fdt_setprop(get_kernel_fdt(), offset, "do_addr_B", addr, sizeof(u32)*2); dprintf(CRITICAL, "[DO] save DO addrs to DT, A: 0x%x, B: 0x%x\n", (u32)do_addr_A, (u32)do_addr_B); } else { dprintf(CRITICAL, "[DO]ERR: DT mediatek,scp not found %s\n", offset); } } #endif /****************************************************************************** ******************************************************************************/ unsigned int get_scp_log_thru_ap_uart(void) { unsigned int enable = 0; char *env = get_env("scp_ap_uart"); if (env == NULL) { dprintf(CRITICAL, "[SCP] Get SCP log thru AP UART: 0 (default)\n"); } else { enable = atoi(env); dprintf(CRITICAL, "[SCP] Get SCP log thru AP UART: %d\n", enable); } return enable; } /****************************************************************************** * Caller must make sure that the argument "en" is less than 2. ******************************************************************************/ void set_scp_log_thru_ap_uart(unsigned int en) { char *en_array[2] = {"0", "1"}; if (set_env("scp_ap_uart", en_array[en]) == 0) { dprintf(CRITICAL, "[SCP] Set SCP log thru AP UART: %s\n", en_array[en]); } else { dprintf(CRITICAL, "[SCP] Failed to set SCP log thru AP UART to %s!\n", en_array[en]); } } static int verify_load_scp_image(char *part_name, void *addr) { int scp_dram_use_size = 0; void *ld_ptr, *fw_ptr; uint32_t reg_temp; int ld_size, fw_size; int l1c_size; void *l1c_ptr, *l1c_backup_ptr = NULL; int scp_sram_size; struct scp_region_info_st *scp_region_info; // step 0: enable sram, enable 1 block per time for (reg_temp = 0xffffffff; reg_temp != 0;) { reg_temp = reg_temp >> 1; SCP_SRAM_PWR_REG = reg_temp; } /* * l1c sram, 64K / tail sram, +32k * L1_SRAM_PD / d_l1c_SRAM_PD / d_l1c_tag_SRAM_PD / p_l1c_SRAM_PD / p_l1c_tag_SRAM_PD */ DRV_WriteReg32(CLK_CTRL_L1_SRAM_PD, 0); /* TCM_TAIL_SRAM_PD */ DRV_WriteReg32(CLK_CTRL_TCM_TAIL_SRAM_PD, 0); // step 1: load/verify loader ld_ptr = addr; ld_size = load_scp_image(part_name, LOADER_NAME_SCP_A, ld_ptr); if (ld_size <= 0) { dprintf(CRITICAL, "[SCP] load_scp_image fail %s\n", LOADER_NAME_SCP_A); return -1; } // step 2: load/verify firmware fw_ptr = addr + SCP_FW_OFFSET; fw_size = load_scp_image(part_name, FIRMWARE_NAME_SCP_A, fw_ptr); if (fw_size <= 0) { dprintf(CRITICAL, "[SCP] load_scp_image fail %s\n", FIRMWARE_NAME_SCP_A); return -1; } // step 3: load/verify l1c code (optional) l1c_ptr = addr + SCP_L1C_OFFSET; l1c_size = load_scp_image(part_name, L1C_NAME_SCP_A, l1c_ptr); if (l1c_size > 0) { dprintf(INFO, "[SCP] load_scp_image %s %d bytes\n", L1C_NAME_SCP_A, l1c_size); // step 3.1 backup l1c code l1c_backup_ptr = addr + SCP_L1C_BACKUO_OFFSET; memcpy(l1c_backup_ptr, l1c_ptr, l1c_size); /* Disable scp bus wt buffer */ DRV_WriteReg32(SCP_SYS_CTRL, DRV_Reg32(SCP_SYS_CTRL)|(0x1 << AHB_SLICE_POST_WT)); #if CFG_SCP_ULTRA_SUPPORT DRV_WriteReg32(BUS_QOS, (0x2 << AXI_AWULTRA) | (0x2 << AXI_ARULTRA)); #endif /* Read the l1c setting from image in dram */ scp_region_info = (struct scp_region_info_st*)(ld_ptr + SCP_LOADER_SIZE); scp_l1c_init(scp_region_info->Il1c_con, scp_region_info->Dl1c_con); } else { DRV_WriteReg32(SCP_SYS_CTRL, DRV_Reg32(SCP_SYS_CTRL)|(0x3 << BYPASS_P_L1C)); /* scp clk gates: l1c controller */ DRV_WriteReg32(SCP_CLR_CLK_CG, (1 << L1C_I_CTRL_CG) | (1 << L1C_D_CTRL_CG)); dprintf(INFO, "[SCP] no l1c support\n"); } // SCP DRAM layout /*********************** * SCP loader * ************************ * SCP Firmware * ************************ * SCP L1C * ************************ * SCP DRAM backup * ************************/ // step 6: copy loader to sram memcpy((void *) SCP_SRAM_BASE, ld_ptr, ld_size); // step 7: save firmware/cache info to sram scp_region_info = (struct scp_region_info_st*)(SCP_SRAM_BASE + SCP_LOADER_SIZE); scp_region_info->ap_loader_start = (uint32_t)ld_ptr; scp_region_info->ap_loader_size = (uint32_t)ld_size; scp_region_info->ap_firmware_start = (uint32_t)fw_ptr; #if defined(DEVICE_TREE_SUPPORT) scp_sram_size = platform_fdt_scp_get_sram_size(); #else scp_sram_size = SCP_SRAM_SIZE; #endif dprintf(INFO, "[SCP]sram size=%u bytes\n", scp_sram_size); if ( fw_size > (scp_sram_size - SCP_FW_OFFSET) ) { scp_region_info->ap_firmware_size = (scp_sram_size - SCP_FW_OFFSET - L1C_SIZE(scp_region_info->Il1c_con) - L1C_SIZE(scp_region_info->Dl1c_con)); dprintf(INFO, "[SCP](overlay)firmware size %d bytes\n", scp_region_info->ap_firmware_size); } else { scp_region_info->ap_firmware_size = (uint32_t)fw_size; } scp_region_info->ap_dram_start = (uint32_t)l1c_ptr; scp_region_info->ap_dram_size = (uint32_t)l1c_size; scp_region_info->ap_dram_backup_start = (uint32_t)l1c_backup_ptr; scp_region_info->Il1c_con = (uint32_t)L1C_SEL(L1C_IL1C)->L1C_CON; scp_region_info->Dl1c_con = (uint32_t)L1C_SEL(L1C_DL1C)->L1C_CON; dprintf(INFO, "scp_region_info->ap_loader_start 0x%x\n", scp_region_info->ap_loader_start); dprintf(INFO, "scp_region_info->ap_loader_size 0x%x\n", scp_region_info->ap_loader_size); dprintf(INFO, "scp_region_info->ap_firmware_start 0x%x\n", scp_region_info->ap_firmware_start); dprintf(INFO, "scp_region_info->ap_firmware_size 0x%x\n", scp_region_info->ap_firmware_size); dprintf(INFO, "scp_region_info->ap_dram_start 0x%x\n", scp_region_info->ap_dram_start); dprintf(INFO, "scp_region_info->ap_dram_size 0x%x\n", scp_region_info->ap_dram_size); dprintf(INFO, "scp_region_info->ap_dram_backup_start 0x%x\n", scp_region_info->ap_dram_backup_start); dprintf(INFO, "scp_region_info->Il1c_con 0x%x\n", scp_region_info->Il1c_con); dprintf(INFO, "scp_region_info->Dl1c_con 0x%x\n", scp_region_info->Dl1c_con); dsb(); SCP_JTAG_REG |= SCP_JTAG_EN; dsb(); return scp_dram_use_size; } void disable_scp_hw(void) { /* turn off SCP related module *PDEF_SCP_SRAM_PDN = #0xffffff *PDEF_SCP_CLK_SEL = #0x1 *PDEF_SCP_CLK_EN = #0x0 *PDEF_SCP_CFGREG_SW_RSTN = #0x0 */ DRV_WriteReg32(SCP_CFGREG_SW_RSTN, 0x0); DRV_WriteReg32(SCP_SRAM_PDN, 0xFFFFFFFF); /*turn off scp sram*/ DRV_WriteReg32(SCP_CLK_SEL, 0x1); /*turn off scp clock*/ DRV_WriteReg32(SCP_CLK_EN, 0x0); DRV_WriteReg32(CLK_CTRL_L1_SRAM_PD, 0xFFFFFFFF); DRV_WriteReg32(CLK_CTRL_TCM_TAIL_SRAM_PD, 0xFFFFFFFF); dprintf(CRITICAL, "DISABLE SCP\n"); }