GK SDK 源码库: XMIPCLinuxV100R005C00SPC030 (kernel/tools/open_source excluded)
This commit is contained in:
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/*
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* Copyright (c) 2013-2022, Arm Limited and Contributors. All rights reserved.
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*
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* SPDX-License-Identifier: BSD-3-Clause
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*/
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#include <assert.h>
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#include <common/debug.h>
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#include <drivers/arm/cci.h>
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#include <drivers/arm/ccn.h>
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#include <drivers/arm/gicv2.h>
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#include <drivers/arm/sp804_delay_timer.h>
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#include <drivers/generic_delay_timer.h>
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#include <lib/mmio.h>
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#include <lib/smccc.h>
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#include <lib/xlat_tables/xlat_tables_compat.h>
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#include <platform_def.h>
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#include <services/arm_arch_svc.h>
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#if ENABLE_RME
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#include <services/rmm_core_manifest.h>
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#endif
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#if SPM_MM
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#include <services/spm_mm_partition.h>
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#endif
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#include <plat/arm/common/arm_config.h>
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#include <plat/arm/common/plat_arm.h>
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#include <plat/common/platform.h>
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#include "fvp_private.h"
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/* Defines for GIC Driver build time selection */
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#define FVP_GICV2 1
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#define FVP_GICV3 2
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/*******************************************************************************
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* arm_config holds the characteristics of the differences between the three FVP
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* platforms (Base, A53_A57 & Foundation). It will be populated during cold boot
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* at each boot stage by the primary before enabling the MMU (to allow
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* interconnect configuration) & used thereafter. Each BL will have its own copy
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* to allow independent operation.
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******************************************************************************/
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arm_config_t arm_config;
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#define MAP_DEVICE0 MAP_REGION_FLAT(DEVICE0_BASE, \
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DEVICE0_SIZE, \
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MT_DEVICE | MT_RW | MT_SECURE)
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#define MAP_DEVICE1 MAP_REGION_FLAT(DEVICE1_BASE, \
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DEVICE1_SIZE, \
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MT_DEVICE | MT_RW | MT_SECURE)
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#if FVP_GICR_REGION_PROTECTION
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#define MAP_GICD_MEM MAP_REGION_FLAT(BASE_GICD_BASE, \
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BASE_GICD_SIZE, \
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MT_DEVICE | MT_RW | MT_SECURE)
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/* Map all core's redistributor memory as read-only. After boots up,
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* per-core map its redistributor memory as read-write */
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#define MAP_GICR_MEM MAP_REGION_FLAT(BASE_GICR_BASE, \
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(BASE_GICR_SIZE * PLATFORM_CORE_COUNT),\
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MT_DEVICE | MT_RO | MT_SECURE)
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#endif /* FVP_GICR_REGION_PROTECTION */
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/*
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* Need to be mapped with write permissions in order to set a new non-volatile
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* counter value.
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*/
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#define MAP_DEVICE2 MAP_REGION_FLAT(DEVICE2_BASE, \
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DEVICE2_SIZE, \
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MT_DEVICE | MT_RW | MT_SECURE)
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/*
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* Table of memory regions for various BL stages to map using the MMU.
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* This doesn't include Trusted SRAM as setup_page_tables() already takes care
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* of mapping it.
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*/
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#ifdef IMAGE_BL1
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const mmap_region_t plat_arm_mmap[] = {
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ARM_MAP_SHARED_RAM,
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V2M_MAP_FLASH0_RO,
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V2M_MAP_IOFPGA,
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MAP_DEVICE0,
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#if FVP_INTERCONNECT_DRIVER == FVP_CCN
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MAP_DEVICE1,
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#endif
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#if TRUSTED_BOARD_BOOT
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/* To access the Root of Trust Public Key registers. */
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MAP_DEVICE2,
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/* Map DRAM to authenticate NS_BL2U image. */
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ARM_MAP_NS_DRAM1,
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#endif
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{0}
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};
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#endif
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#ifdef IMAGE_BL2
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const mmap_region_t plat_arm_mmap[] = {
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ARM_MAP_SHARED_RAM,
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V2M_MAP_FLASH0_RW,
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V2M_MAP_IOFPGA,
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MAP_DEVICE0,
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#if FVP_INTERCONNECT_DRIVER == FVP_CCN
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MAP_DEVICE1,
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#endif
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ARM_MAP_NS_DRAM1,
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#ifdef __aarch64__
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ARM_MAP_DRAM2,
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#endif
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/*
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* Required to load HW_CONFIG, SPMC and SPs to trusted DRAM.
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*/
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ARM_MAP_TRUSTED_DRAM,
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#if ENABLE_RME
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ARM_MAP_RMM_DRAM,
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ARM_MAP_GPT_L1_DRAM,
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#endif /* ENABLE_RME */
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#ifdef SPD_tspd
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ARM_MAP_TSP_SEC_MEM,
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#endif
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#if TRUSTED_BOARD_BOOT
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/* To access the Root of Trust Public Key registers. */
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MAP_DEVICE2,
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#endif /* TRUSTED_BOARD_BOOT */
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#if CRYPTO_SUPPORT && !BL2_AT_EL3
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/*
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* To access shared the Mbed TLS heap while booting the
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* system with Crypto support
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*/
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ARM_MAP_BL1_RW,
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#endif /* CRYPTO_SUPPORT && !BL2_AT_EL3 */
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#if SPM_MM || SPMC_AT_EL3
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ARM_SP_IMAGE_MMAP,
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#endif
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#if ARM_BL31_IN_DRAM
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ARM_MAP_BL31_SEC_DRAM,
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#endif
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#ifdef SPD_opteed
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ARM_MAP_OPTEE_CORE_MEM,
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ARM_OPTEE_PAGEABLE_LOAD_MEM,
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#endif
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{0}
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};
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#endif
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#ifdef IMAGE_BL2U
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const mmap_region_t plat_arm_mmap[] = {
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MAP_DEVICE0,
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V2M_MAP_IOFPGA,
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{0}
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};
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#endif
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#ifdef IMAGE_BL31
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const mmap_region_t plat_arm_mmap[] = {
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ARM_MAP_SHARED_RAM,
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#if USE_DEBUGFS
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/* Required by devfip, can be removed if devfip is not used */
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V2M_MAP_FLASH0_RW,
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#endif /* USE_DEBUGFS */
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ARM_MAP_EL3_TZC_DRAM,
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V2M_MAP_IOFPGA,
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MAP_DEVICE0,
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#if FVP_GICR_REGION_PROTECTION
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MAP_GICD_MEM,
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MAP_GICR_MEM,
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#else
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MAP_DEVICE1,
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#endif /* FVP_GICR_REGION_PROTECTION */
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ARM_V2M_MAP_MEM_PROTECT,
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#if SPM_MM
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ARM_SPM_BUF_EL3_MMAP,
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#endif
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#if ENABLE_RME
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ARM_MAP_GPT_L1_DRAM,
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ARM_MAP_EL3_RMM_SHARED_MEM,
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#endif
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{0}
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};
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#if defined(IMAGE_BL31) && SPM_MM
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const mmap_region_t plat_arm_secure_partition_mmap[] = {
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V2M_MAP_IOFPGA_EL0, /* for the UART */
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MAP_REGION_FLAT(DEVICE0_BASE, \
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DEVICE0_SIZE, \
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MT_DEVICE | MT_RO | MT_SECURE | MT_USER),
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ARM_SP_IMAGE_MMAP,
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ARM_SP_IMAGE_NS_BUF_MMAP,
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ARM_SP_IMAGE_RW_MMAP,
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ARM_SPM_BUF_EL0_MMAP,
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{0}
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};
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#endif
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#endif
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#ifdef IMAGE_BL32
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const mmap_region_t plat_arm_mmap[] = {
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#ifndef __aarch64__
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ARM_MAP_SHARED_RAM,
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ARM_V2M_MAP_MEM_PROTECT,
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#endif
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V2M_MAP_IOFPGA,
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MAP_DEVICE0,
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MAP_DEVICE1,
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{0}
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};
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#endif
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#ifdef IMAGE_RMM
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const mmap_region_t plat_arm_mmap[] = {
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V2M_MAP_IOFPGA,
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MAP_DEVICE0,
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MAP_DEVICE1,
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{0}
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};
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#endif
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ARM_CASSERT_MMAP
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#if FVP_INTERCONNECT_DRIVER != FVP_CCN
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static const int fvp_cci400_map[] = {
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PLAT_FVP_CCI400_CLUS0_SL_PORT,
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PLAT_FVP_CCI400_CLUS1_SL_PORT,
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};
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static const int fvp_cci5xx_map[] = {
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PLAT_FVP_CCI5XX_CLUS0_SL_PORT,
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PLAT_FVP_CCI5XX_CLUS1_SL_PORT,
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};
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static unsigned int get_interconnect_master(void)
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{
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unsigned int master;
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u_register_t mpidr;
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mpidr = read_mpidr_el1();
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master = ((arm_config.flags & ARM_CONFIG_FVP_SHIFTED_AFF) != 0U) ?
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MPIDR_AFFLVL2_VAL(mpidr) : MPIDR_AFFLVL1_VAL(mpidr);
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assert(master < FVP_CLUSTER_COUNT);
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return master;
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}
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#endif
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#if defined(IMAGE_BL31) && SPM_MM
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/*
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* Boot information passed to a secure partition during initialisation. Linear
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* indices in MP information will be filled at runtime.
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*/
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static spm_mm_mp_info_t sp_mp_info[] = {
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[0] = {0x80000000, 0},
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[1] = {0x80000001, 0},
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[2] = {0x80000002, 0},
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[3] = {0x80000003, 0},
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[4] = {0x80000100, 0},
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[5] = {0x80000101, 0},
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[6] = {0x80000102, 0},
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[7] = {0x80000103, 0},
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};
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const spm_mm_boot_info_t plat_arm_secure_partition_boot_info = {
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.h.type = PARAM_SP_IMAGE_BOOT_INFO,
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.h.version = VERSION_1,
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.h.size = sizeof(spm_mm_boot_info_t),
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.h.attr = 0,
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.sp_mem_base = ARM_SP_IMAGE_BASE,
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.sp_mem_limit = ARM_SP_IMAGE_LIMIT,
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.sp_image_base = ARM_SP_IMAGE_BASE,
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.sp_stack_base = PLAT_SP_IMAGE_STACK_BASE,
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.sp_heap_base = ARM_SP_IMAGE_HEAP_BASE,
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.sp_ns_comm_buf_base = PLAT_SP_IMAGE_NS_BUF_BASE,
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.sp_shared_buf_base = PLAT_SPM_BUF_BASE,
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.sp_image_size = ARM_SP_IMAGE_SIZE,
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.sp_pcpu_stack_size = PLAT_SP_IMAGE_STACK_PCPU_SIZE,
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.sp_heap_size = ARM_SP_IMAGE_HEAP_SIZE,
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.sp_ns_comm_buf_size = PLAT_SP_IMAGE_NS_BUF_SIZE,
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.sp_shared_buf_size = PLAT_SPM_BUF_SIZE,
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.num_sp_mem_regions = ARM_SP_IMAGE_NUM_MEM_REGIONS,
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.num_cpus = PLATFORM_CORE_COUNT,
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.mp_info = &sp_mp_info[0],
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};
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const struct mmap_region *plat_get_secure_partition_mmap(void *cookie)
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{
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return plat_arm_secure_partition_mmap;
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}
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const struct spm_mm_boot_info *plat_get_secure_partition_boot_info(
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void *cookie)
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{
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return &plat_arm_secure_partition_boot_info;
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}
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#endif
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/*******************************************************************************
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* A single boot loader stack is expected to work on both the Foundation FVP
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* models and the two flavours of the Base FVP models (AEMv8 & Cortex). The
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* SYS_ID register provides a mechanism for detecting the differences between
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* these platforms. This information is stored in a per-BL array to allow the
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* code to take the correct path.Per BL platform configuration.
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******************************************************************************/
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void __init fvp_config_setup(void)
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{
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unsigned int rev, hbi, bld, arch, sys_id;
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sys_id = mmio_read_32(V2M_SYSREGS_BASE + V2M_SYS_ID);
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rev = (sys_id >> V2M_SYS_ID_REV_SHIFT) & V2M_SYS_ID_REV_MASK;
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hbi = (sys_id >> V2M_SYS_ID_HBI_SHIFT) & V2M_SYS_ID_HBI_MASK;
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bld = (sys_id >> V2M_SYS_ID_BLD_SHIFT) & V2M_SYS_ID_BLD_MASK;
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arch = (sys_id >> V2M_SYS_ID_ARCH_SHIFT) & V2M_SYS_ID_ARCH_MASK;
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if (arch != ARCH_MODEL) {
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ERROR("This firmware is for FVP models\n");
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panic();
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}
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/*
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* The build field in the SYS_ID tells which variant of the GIC
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* memory is implemented by the model.
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*/
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switch (bld) {
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case BLD_GIC_VE_MMAP:
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ERROR("Legacy Versatile Express memory map for GIC peripheral"
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" is not supported\n");
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panic();
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break;
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case BLD_GIC_A53A57_MMAP:
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break;
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default:
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ERROR("Unsupported board build %x\n", bld);
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panic();
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}
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/*
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* The hbi field in the SYS_ID is 0x020 for the Base FVP & 0x010
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* for the Foundation FVP.
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*/
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switch (hbi) {
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case HBI_FOUNDATION_FVP:
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arm_config.flags = 0;
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/*
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* Check for supported revisions of Foundation FVP
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* Allow future revisions to run but emit warning diagnostic
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*/
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switch (rev) {
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case REV_FOUNDATION_FVP_V2_0:
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case REV_FOUNDATION_FVP_V2_1:
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case REV_FOUNDATION_FVP_v9_1:
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case REV_FOUNDATION_FVP_v9_6:
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break;
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default:
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WARN("Unrecognized Foundation FVP revision %x\n", rev);
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break;
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}
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break;
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case HBI_BASE_FVP:
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arm_config.flags |= (ARM_CONFIG_BASE_MMAP | ARM_CONFIG_HAS_TZC);
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/*
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* Check for supported revisions
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* Allow future revisions to run but emit warning diagnostic
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*/
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switch (rev) {
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case REV_BASE_FVP_V0:
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arm_config.flags |= ARM_CONFIG_FVP_HAS_CCI400;
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break;
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case REV_BASE_FVP_REVC:
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arm_config.flags |= (ARM_CONFIG_FVP_HAS_SMMUV3 |
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ARM_CONFIG_FVP_HAS_CCI5XX);
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break;
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default:
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WARN("Unrecognized Base FVP revision %x\n", rev);
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break;
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}
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break;
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default:
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ERROR("Unsupported board HBI number 0x%x\n", hbi);
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panic();
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}
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/*
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* We assume that the presence of MT bit, and therefore shifted
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* affinities, is uniform across the platform: either all CPUs, or no
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* CPUs implement it.
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*/
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if ((read_mpidr_el1() & MPIDR_MT_MASK) != 0U)
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arm_config.flags |= ARM_CONFIG_FVP_SHIFTED_AFF;
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}
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void __init fvp_interconnect_init(void)
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{
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#if FVP_INTERCONNECT_DRIVER == FVP_CCN
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if (ccn_get_part0_id(PLAT_ARM_CCN_BASE) != CCN_502_PART0_ID) {
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ERROR("Unrecognized CCN variant detected. Only CCN-502 is supported");
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panic();
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}
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plat_arm_interconnect_init();
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#else
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uintptr_t cci_base = 0U;
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const int *cci_map = NULL;
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unsigned int map_size = 0U;
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/* Initialize the right interconnect */
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if ((arm_config.flags & ARM_CONFIG_FVP_HAS_CCI5XX) != 0U) {
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cci_base = PLAT_FVP_CCI5XX_BASE;
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cci_map = fvp_cci5xx_map;
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map_size = ARRAY_SIZE(fvp_cci5xx_map);
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} else if ((arm_config.flags & ARM_CONFIG_FVP_HAS_CCI400) != 0U) {
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cci_base = PLAT_FVP_CCI400_BASE;
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cci_map = fvp_cci400_map;
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map_size = ARRAY_SIZE(fvp_cci400_map);
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} else {
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return;
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}
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assert(cci_base != 0U);
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assert(cci_map != NULL);
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cci_init(cci_base, cci_map, map_size);
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#endif
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}
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void fvp_interconnect_enable(void)
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{
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#if FVP_INTERCONNECT_DRIVER == FVP_CCN
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plat_arm_interconnect_enter_coherency();
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#else
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unsigned int master;
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if ((arm_config.flags & (ARM_CONFIG_FVP_HAS_CCI400 |
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ARM_CONFIG_FVP_HAS_CCI5XX)) != 0U) {
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master = get_interconnect_master();
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cci_enable_snoop_dvm_reqs(master);
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}
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#endif
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}
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||||
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void fvp_interconnect_disable(void)
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{
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#if FVP_INTERCONNECT_DRIVER == FVP_CCN
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plat_arm_interconnect_exit_coherency();
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||||
#else
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||||
unsigned int master;
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||||
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if ((arm_config.flags & (ARM_CONFIG_FVP_HAS_CCI400 |
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ARM_CONFIG_FVP_HAS_CCI5XX)) != 0U) {
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||||
master = get_interconnect_master();
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||||
cci_disable_snoop_dvm_reqs(master);
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||||
}
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||||
#endif
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||||
}
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||||
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||||
#if CRYPTO_SUPPORT
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||||
int plat_get_mbedtls_heap(void **heap_addr, size_t *heap_size)
|
||||
{
|
||||
assert(heap_addr != NULL);
|
||||
assert(heap_size != NULL);
|
||||
|
||||
return arm_get_mbedtls_heap(heap_addr, heap_size);
|
||||
}
|
||||
#endif /* CRYPTO_SUPPORT */
|
||||
|
||||
void fvp_timer_init(void)
|
||||
{
|
||||
#if USE_SP804_TIMER
|
||||
/* Enable the clock override for SP804 timer 0, which means that no
|
||||
* clock dividers are applied and the raw (35MHz) clock will be used.
|
||||
*/
|
||||
mmio_write_32(V2M_SP810_BASE, FVP_SP810_CTRL_TIM0_OV);
|
||||
|
||||
/* Initialize delay timer driver using SP804 dual timer 0 */
|
||||
sp804_timer_init(V2M_SP804_TIMER0_BASE,
|
||||
SP804_TIMER_CLKMULT, SP804_TIMER_CLKDIV);
|
||||
#else
|
||||
generic_delay_timer_init();
|
||||
|
||||
/* Enable System level generic timer */
|
||||
mmio_write_32(ARM_SYS_CNTCTL_BASE + CNTCR_OFF,
|
||||
CNTCR_FCREQ(0U) | CNTCR_EN);
|
||||
#endif /* USE_SP804_TIMER */
|
||||
}
|
||||
|
||||
/*****************************************************************************
|
||||
* plat_is_smccc_feature_available() - This function checks whether SMCCC
|
||||
* feature is availabile for platform.
|
||||
* @fid: SMCCC function id
|
||||
*
|
||||
* Return SMC_ARCH_CALL_SUCCESS if SMCCC feature is available and
|
||||
* SMC_ARCH_CALL_NOT_SUPPORTED otherwise.
|
||||
*****************************************************************************/
|
||||
int32_t plat_is_smccc_feature_available(u_register_t fid)
|
||||
{
|
||||
switch (fid) {
|
||||
case SMCCC_ARCH_SOC_ID:
|
||||
return SMC_ARCH_CALL_SUCCESS;
|
||||
default:
|
||||
return SMC_ARCH_CALL_NOT_SUPPORTED;
|
||||
}
|
||||
}
|
||||
|
||||
/* Get SOC version */
|
||||
int32_t plat_get_soc_version(void)
|
||||
{
|
||||
return (int32_t)
|
||||
(SOC_ID_SET_JEP_106(ARM_SOC_CONTINUATION_CODE,
|
||||
ARM_SOC_IDENTIFICATION_CODE) |
|
||||
(FVP_SOC_ID & SOC_ID_IMPL_DEF_MASK));
|
||||
}
|
||||
|
||||
/* Get SOC revision */
|
||||
int32_t plat_get_soc_revision(void)
|
||||
{
|
||||
unsigned int sys_id;
|
||||
|
||||
sys_id = mmio_read_32(V2M_SYSREGS_BASE + V2M_SYS_ID);
|
||||
return (int32_t)(((sys_id >> V2M_SYS_ID_REV_SHIFT) &
|
||||
V2M_SYS_ID_REV_MASK) & SOC_ID_REV_MASK);
|
||||
}
|
||||
|
||||
#if ENABLE_RME
|
||||
/*
|
||||
* Get a pointer to the RMM-EL3 Shared buffer and return it
|
||||
* through the pointer passed as parameter.
|
||||
*
|
||||
* This function returns the size of the shared buffer.
|
||||
*/
|
||||
size_t plat_rmmd_get_el3_rmm_shared_mem(uintptr_t *shared)
|
||||
{
|
||||
*shared = (uintptr_t)RMM_SHARED_BASE;
|
||||
|
||||
return (size_t)RMM_SHARED_SIZE;
|
||||
}
|
||||
|
||||
int plat_rmmd_load_manifest(rmm_manifest_t *manifest)
|
||||
{
|
||||
assert(manifest != NULL);
|
||||
|
||||
manifest->version = RMMD_MANIFEST_VERSION;
|
||||
manifest->plat_data = (uintptr_t)NULL;
|
||||
|
||||
return 0;
|
||||
}
|
||||
|
||||
#endif
|
||||
Reference in New Issue
Block a user