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Refactor console_flush() and console_switch_state(CONSOLE_FLAG_RUNTIME) to bl31_main(). This has been done per the recommendation in TF-A mailing list. These calls need to be the last calls, after any runtime initialization has been done, before BL31 exits. All platforms that override the generic implementation of bl31_plat_runtime_setup() have been refactored. The console_flush() and console_switch_state() calls have been removed as they become part of bl31_main() function. Any platform that don't need to make any change to the generic (weak) implementation of bl31_plat_runtime_setup() don't need to override it in their platforms. Change-Id: I6d04d6daa9353daeaa7e3df9e9adf6f322a917b8 Signed-off-by: Salman Nabi <salman.nabi@arm.com>
224 lines
5.7 KiB
C
224 lines
5.7 KiB
C
/*
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* Copyright (c) 2013-2024, Arm Limited and Contributors. All rights reserved.
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* Copyright (c) 2023, Advanced Micro Devices, Inc. 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 <errno.h>
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#include <bl31/bl31.h>
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#include <common/bl_common.h>
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#include <common/debug.h>
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#include <common/fdt_fixup.h>
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#include <common/fdt_wrappers.h>
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#include <lib/mmio.h>
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#include <libfdt.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 <plat_console.h>
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#include <custom_svc.h>
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#include <plat_fdt.h>
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#include <plat_private.h>
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#include <plat_startup.h>
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#include <zynqmp_def.h>
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static entry_point_info_t bl32_image_ep_info;
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static entry_point_info_t bl33_image_ep_info;
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/*
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* Return a pointer to the 'entry_point_info' structure of the next image for
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* the security state specified. BL33 corresponds to the non-secure image type
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* while BL32 corresponds to the secure image type. A NULL pointer is returned
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* if the image does not exist.
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*/
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struct entry_point_info *bl31_plat_get_next_image_ep_info(uint32_t type)
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{
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entry_point_info_t *next_image_info;
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assert(sec_state_is_valid(type));
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if (type == NON_SECURE) {
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next_image_info = &bl33_image_ep_info;
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} else {
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next_image_info = &bl32_image_ep_info;
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}
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return next_image_info;
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}
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/*
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* Set the build time defaults. We want to do this when doing a JTAG boot
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* or if we can't find any other config data.
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*/
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static inline void bl31_set_default_config(void)
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{
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bl32_image_ep_info.pc = BL32_BASE;
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bl32_image_ep_info.spsr = arm_get_spsr_for_bl32_entry();
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bl33_image_ep_info.pc = plat_get_ns_image_entrypoint();
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bl33_image_ep_info.spsr = SPSR_64(MODE_EL2, MODE_SP_ELX,
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DISABLE_ALL_EXCEPTIONS);
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}
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/*
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* Perform any BL31 specific platform actions. Here is an opportunity to copy
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* parameters passed by the calling EL (S-EL1 in BL2 & EL3 in BL1) before they
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* are lost (potentially). This needs to be done before the MMU is initialized
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* so that the memory layout can be used while creating page tables.
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*/
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void bl31_early_platform_setup2(u_register_t arg0, u_register_t arg1,
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u_register_t arg2, u_register_t arg3)
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{
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uint64_t tfa_handoff_addr;
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setup_console();
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/* Initialize the platform config for future decision making */
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zynqmp_config_setup();
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/*
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* Do initial security configuration to allow DRAM/device access. On
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* Base ZYNQMP only DRAM security is programmable (via TrustZone), but
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* other platforms might have more programmable security devices
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* present.
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*/
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/* Populate common information for BL32 and BL33 */
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SET_PARAM_HEAD(&bl32_image_ep_info, PARAM_EP, VERSION_1, 0);
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SET_SECURITY_STATE(bl32_image_ep_info.h.attr, SECURE);
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SET_PARAM_HEAD(&bl33_image_ep_info, PARAM_EP, VERSION_1, 0);
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SET_SECURITY_STATE(bl33_image_ep_info.h.attr, NON_SECURE);
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tfa_handoff_addr = mmio_read_32(PMU_GLOBAL_GEN_STORAGE6);
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if (zynqmp_get_bootmode() == ZYNQMP_BOOTMODE_JTAG) {
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bl31_set_default_config();
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} else {
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/* use parameters from XBL */
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enum xbl_handoff ret = xbl_handover(&bl32_image_ep_info,
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&bl33_image_ep_info,
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tfa_handoff_addr);
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if (ret != XBL_HANDOFF_SUCCESS) {
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panic();
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}
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}
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if (bl32_image_ep_info.pc != 0) {
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NOTICE("BL31: Secure code at 0x%lx\n", bl32_image_ep_info.pc);
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}
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if (bl33_image_ep_info.pc != 0) {
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NOTICE("BL31: Non secure code at 0x%lx\n", bl33_image_ep_info.pc);
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}
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custom_early_setup();
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}
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#if ZYNQMP_WDT_RESTART
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static zynmp_intr_info_type_el3_t type_el3_interrupt_table[MAX_INTR_EL3];
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int request_intr_type_el3(uint32_t id, interrupt_type_handler_t handler)
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{
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static uint32_t index;
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uint32_t i;
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/* Validate 'handler' and 'id' parameters */
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if (!handler || index >= MAX_INTR_EL3) {
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return -EINVAL;
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}
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/* Check if a handler has already been registered */
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for (i = 0; i < index; i++) {
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if (id == type_el3_interrupt_table[i].id) {
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return -EALREADY;
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}
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}
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type_el3_interrupt_table[index].id = id;
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type_el3_interrupt_table[index].handler = handler;
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index++;
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return 0;
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}
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static uint64_t rdo_el3_interrupt_handler(uint32_t id, uint32_t flags,
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void *handle, void *cookie)
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{
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uint32_t intr_id;
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uint32_t i;
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interrupt_type_handler_t handler = NULL;
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intr_id = plat_ic_get_pending_interrupt_id();
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for (i = 0; i < MAX_INTR_EL3; i++) {
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if (intr_id == type_el3_interrupt_table[i].id) {
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handler = type_el3_interrupt_table[i].handler;
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}
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}
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if (handler != NULL) {
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return handler(intr_id, flags, handle, cookie);
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}
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return 0;
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}
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#endif
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void bl31_platform_setup(void)
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{
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prepare_dtb();
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/* Initialize the gic cpu and distributor interfaces */
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plat_arm_gic_driver_init();
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plat_arm_gic_init();
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}
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void bl31_plat_runtime_setup(void)
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{
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#if ZYNQMP_WDT_RESTART
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uint64_t flags = 0;
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uint64_t rc;
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set_interrupt_rm_flag(flags, NON_SECURE);
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rc = register_interrupt_type_handler(INTR_TYPE_EL3,
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rdo_el3_interrupt_handler, flags);
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if (rc) {
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panic();
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}
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#endif
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custom_runtime_setup();
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}
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/*
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* Perform the very early platform specific architectural setup here.
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*/
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void bl31_plat_arch_setup(void)
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{
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plat_arm_interconnect_init();
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plat_arm_interconnect_enter_coherency();
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const mmap_region_t bl_regions[] = {
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#if (defined(XILINX_OF_BOARD_DTB_ADDR) && !IS_TFA_IN_OCM(BL31_BASE))
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MAP_REGION_FLAT(XILINX_OF_BOARD_DTB_ADDR, XILINX_OF_BOARD_DTB_MAX_SIZE,
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MT_MEMORY | MT_RW | MT_NS),
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#endif
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MAP_REGION_FLAT(BL31_BASE, BL31_END - BL31_BASE,
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MT_MEMORY | MT_RW | MT_SECURE),
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MAP_REGION_FLAT(BL_CODE_BASE, BL_CODE_END - BL_CODE_BASE,
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MT_CODE | MT_SECURE),
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MAP_REGION_FLAT(BL_RO_DATA_BASE, BL_RO_DATA_END - BL_RO_DATA_BASE,
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MT_RO_DATA | MT_SECURE),
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MAP_REGION_FLAT(BL_COHERENT_RAM_BASE,
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BL_COHERENT_RAM_END - BL_COHERENT_RAM_BASE,
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MT_DEVICE | MT_RW | MT_SECURE),
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{0}
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};
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custom_mmap_add();
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setup_page_tables(bl_regions, plat_get_mmap());
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enable_mmu_el3(0);
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}
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