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Rather than using a fixed virtual address space size, read all regions in the resource description of each partition and restrict the virtual address space size to the one the partition actually needs. This also allows SPM to take advantage of the extension ARMv8.4-TTST if the virtual address space size is small enough. Change-Id: I8646aa95e659136b58b44b040364cdee631f7e82 Signed-off-by: Antonio Nino Diaz <antonio.ninodiaz@arm.com>
381 lines
11 KiB
C
381 lines
11 KiB
C
/*
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* Copyright (c) 2018-2019, 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 <arch.h>
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#include <arch_features.h>
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#include <arch_helpers.h>
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#include <assert.h>
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#include <errno.h>
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#include <string.h>
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#include <platform_def.h>
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#include <lib/object_pool.h>
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#include <lib/utils.h>
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#include <lib/utils_def.h>
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#include <lib/xlat_tables/xlat_tables_v2.h>
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#include <plat/common/platform.h>
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#include <services/sp_res_desc.h>
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#include "spm_private.h"
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#include "spm_shim_private.h"
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/*******************************************************************************
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* Instantiation of translation table context
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******************************************************************************/
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/* Place translation tables by default along with the ones used by BL31. */
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#ifndef PLAT_SP_IMAGE_XLAT_SECTION_NAME
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#define PLAT_SP_IMAGE_XLAT_SECTION_NAME "xlat_table"
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#endif
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/*
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* Allocate elements of the translation contexts for the Secure Partitions.
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*/
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/* Allocate an array of mmap_region per partition. */
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static struct mmap_region sp_mmap_regions[PLAT_SP_IMAGE_MMAP_REGIONS + 1]
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[PLAT_SPM_MAX_PARTITIONS];
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static OBJECT_POOL(sp_mmap_regions_pool, sp_mmap_regions,
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sizeof(mmap_region_t) * (PLAT_SP_IMAGE_MMAP_REGIONS + 1),
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PLAT_SPM_MAX_PARTITIONS);
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/* Allocate individual translation tables. */
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static uint64_t sp_xlat_tables[XLAT_TABLE_ENTRIES]
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[(PLAT_SP_IMAGE_MAX_XLAT_TABLES + 1) * PLAT_SPM_MAX_PARTITIONS]
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__aligned(XLAT_TABLE_SIZE) __section(PLAT_SP_IMAGE_XLAT_SECTION_NAME);
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static OBJECT_POOL(sp_xlat_tables_pool, sp_xlat_tables,
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XLAT_TABLE_ENTRIES * sizeof(uint64_t),
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(PLAT_SP_IMAGE_MAX_XLAT_TABLES + 1) * PLAT_SPM_MAX_PARTITIONS);
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/* Allocate arrays. */
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static int sp_xlat_mapped_regions[PLAT_SP_IMAGE_MAX_XLAT_TABLES]
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[PLAT_SPM_MAX_PARTITIONS];
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static OBJECT_POOL(sp_xlat_mapped_regions_pool, sp_xlat_mapped_regions,
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sizeof(int) * PLAT_SP_IMAGE_MAX_XLAT_TABLES, PLAT_SPM_MAX_PARTITIONS);
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/* Allocate individual contexts. */
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static xlat_ctx_t sp_xlat_ctx[PLAT_SPM_MAX_PARTITIONS];
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static OBJECT_POOL(sp_xlat_ctx_pool, sp_xlat_ctx, sizeof(xlat_ctx_t),
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PLAT_SPM_MAX_PARTITIONS);
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/* Get handle of Secure Partition translation context */
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void spm_sp_xlat_context_alloc(sp_context_t *sp_ctx)
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{
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/* Allocate xlat context elements */
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xlat_ctx_t *ctx = pool_alloc(&sp_xlat_ctx_pool);
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struct mmap_region *mmap = pool_alloc(&sp_mmap_regions_pool);
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uint64_t *base_table = pool_alloc(&sp_xlat_tables_pool);
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uint64_t **tables = pool_alloc_n(&sp_xlat_tables_pool,
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PLAT_SP_IMAGE_MAX_XLAT_TABLES);
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int *mapped_regions = pool_alloc(&sp_xlat_mapped_regions_pool);
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/* Calculate the size of the virtual address space needed */
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uintptr_t va_size = 0U;
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struct sp_rd_sect_mem_region *rdmem;
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for (rdmem = sp_ctx->rd.mem_region; rdmem != NULL; rdmem = rdmem->next) {
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uintptr_t end_va = (uintptr_t)rdmem->base +
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(uintptr_t)rdmem->size;
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if (end_va > va_size)
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va_size = end_va;
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}
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if (va_size == 0U) {
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ERROR("No regions in resource description.\n");
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panic();
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}
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/*
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* Get the power of two that is greater or equal to the top VA. The
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* values of base and size in the resource description are 32-bit wide
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* so the values will never overflow when using a uintptr_t.
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*/
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if (!IS_POWER_OF_TWO(va_size)) {
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va_size = 1ULL <<
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((sizeof(va_size) * 8) - __builtin_clzll(va_size));
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}
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if (va_size > PLAT_VIRT_ADDR_SPACE_SIZE) {
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ERROR("Resource description requested too much virtual memory.\n");
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panic();
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}
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uintptr_t min_va_size;
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/* The following sizes are only valid for 4KB pages */
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assert(PAGE_SIZE == (4U * 1024U));
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if (is_armv8_4_ttst_present()) {
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VERBOSE("Using ARMv8.4-TTST\n");
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min_va_size = 1ULL << (64 - TCR_TxSZ_MAX_TTST);
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} else {
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min_va_size = 1ULL << (64 - TCR_TxSZ_MAX);
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}
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if (va_size < min_va_size) {
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va_size = min_va_size;
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}
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/* Initialize xlat context */
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xlat_setup_dynamic_ctx(ctx, PLAT_PHY_ADDR_SPACE_SIZE - 1ULL,
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va_size - 1ULL, mmap,
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PLAT_SP_IMAGE_MMAP_REGIONS, tables,
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PLAT_SP_IMAGE_MAX_XLAT_TABLES, base_table,
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EL1_EL0_REGIME, mapped_regions);
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sp_ctx->xlat_ctx_handle = ctx;
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};
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/*******************************************************************************
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* Translation table context used for S-EL1 exception vectors
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******************************************************************************/
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REGISTER_XLAT_CONTEXT2(spm_sel1, SPM_SHIM_MMAP_REGIONS, SPM_SHIM_XLAT_TABLES,
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SPM_SHIM_XLAT_VIRT_ADDR_SPACE_SIZE, PLAT_PHY_ADDR_SPACE_SIZE,
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EL1_EL0_REGIME, PLAT_SP_IMAGE_XLAT_SECTION_NAME);
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void spm_exceptions_xlat_init_context(void)
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{
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/* This region contains the exception vectors used at S-EL1. */
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mmap_region_t sel1_exception_vectors =
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MAP_REGION(SPM_SHIM_EXCEPTIONS_PTR,
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0x0UL,
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SPM_SHIM_EXCEPTIONS_SIZE,
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MT_CODE | MT_SECURE | MT_PRIVILEGED);
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mmap_add_region_ctx(&spm_sel1_xlat_ctx,
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&sel1_exception_vectors);
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init_xlat_tables_ctx(&spm_sel1_xlat_ctx);
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}
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uint64_t *spm_exceptions_xlat_get_base_table(void)
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{
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return spm_sel1_xlat_ctx.base_table;
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}
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/*******************************************************************************
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* Functions to allocate memory for regions.
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******************************************************************************/
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/*
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* The region with base PLAT_SPM_HEAP_BASE and size PLAT_SPM_HEAP_SIZE is
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* reserved for SPM to use as heap to allocate memory regions of Secure
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* Partitions. This is only done at boot.
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*/
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static OBJECT_POOL(spm_heap_mem, (void *)PLAT_SPM_HEAP_BASE, 1U,
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PLAT_SPM_HEAP_SIZE);
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static uintptr_t spm_alloc_heap(size_t size)
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{
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return (uintptr_t)pool_alloc_n(&spm_heap_mem, size);
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}
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/*******************************************************************************
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* Functions to map memory regions described in the resource description.
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******************************************************************************/
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static unsigned int rdmem_attr_to_mmap_attr(uint32_t attr)
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{
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unsigned int index = attr & RD_MEM_MASK;
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const unsigned int mmap_attr_arr[8] = {
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MT_DEVICE | MT_RW | MT_SECURE, /* RD_MEM_DEVICE */
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MT_CODE | MT_SECURE, /* RD_MEM_NORMAL_CODE */
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MT_MEMORY | MT_RW | MT_SECURE, /* RD_MEM_NORMAL_DATA */
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MT_MEMORY | MT_RW | MT_SECURE, /* RD_MEM_NORMAL_BSS */
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MT_RO_DATA | MT_SECURE, /* RD_MEM_NORMAL_RODATA */
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MT_MEMORY | MT_RW | MT_SECURE, /* RD_MEM_NORMAL_SPM_SP_SHARED_MEM */
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MT_MEMORY | MT_RW | MT_SECURE, /* RD_MEM_NORMAL_CLIENT_SHARED_MEM */
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MT_MEMORY | MT_RW | MT_SECURE /* RD_MEM_NORMAL_MISCELLANEOUS */
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};
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if (index >= ARRAY_SIZE(mmap_attr_arr)) {
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ERROR("Unsupported RD memory attributes 0x%x\n", attr);
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panic();
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}
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return mmap_attr_arr[index];
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}
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/*
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* The data provided in the resource description structure is not directly
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* compatible with a mmap_region structure. This function handles the conversion
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* and maps it.
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*/
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static void map_rdmem(sp_context_t *sp_ctx, struct sp_rd_sect_mem_region *rdmem)
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{
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int rc;
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mmap_region_t mmap;
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/* Location of the SP image */
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uintptr_t sp_size = sp_ctx->image_size;
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uintptr_t sp_base_va = sp_ctx->rd.attribute.load_address;
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unsigned long long sp_base_pa = sp_ctx->image_base;
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/* Location of the memory region to map */
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size_t rd_size = rdmem->size;
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uintptr_t rd_base_va = rdmem->base;
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unsigned long long rd_base_pa;
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unsigned int memtype = rdmem->attr & RD_MEM_MASK;
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if (rd_size == 0U) {
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VERBOSE("Memory region '%s' is empty. Ignored.\n", rdmem->name);
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return;
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}
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VERBOSE("Adding memory region '%s'\n", rdmem->name);
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mmap.granularity = REGION_DEFAULT_GRANULARITY;
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/* Check if the RD region is inside of the SP image or not */
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int is_outside = (rd_base_va + rd_size <= sp_base_va) ||
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(sp_base_va + sp_size <= rd_base_va);
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/* Set to 1 if it is needed to zero this region */
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int zero_region = 0;
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switch (memtype) {
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case RD_MEM_DEVICE:
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/* Device regions are mapped 1:1 */
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rd_base_pa = rd_base_va;
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break;
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case RD_MEM_NORMAL_CODE:
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case RD_MEM_NORMAL_RODATA:
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{
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if (is_outside == 1) {
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ERROR("Code and rodata sections must be fully contained in the image.");
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panic();
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}
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/* Get offset into the image */
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rd_base_pa = sp_base_pa + rd_base_va - sp_base_va;
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break;
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}
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case RD_MEM_NORMAL_DATA:
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{
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if (is_outside == 1) {
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ERROR("Data sections must be fully contained in the image.");
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panic();
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}
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rd_base_pa = spm_alloc_heap(rd_size);
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/* Get offset into the image */
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void *img_pa = (void *)(sp_base_pa + rd_base_va - sp_base_va);
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VERBOSE(" Copying data from %p to 0x%llx\n", img_pa, rd_base_pa);
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/* Map destination */
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rc = mmap_add_dynamic_region(rd_base_pa, rd_base_pa,
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rd_size, MT_MEMORY | MT_RW | MT_SECURE);
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if (rc != 0) {
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ERROR("Unable to map data region at EL3: %d\n", rc);
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panic();
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}
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/* Copy original data to destination */
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memcpy((void *)rd_base_pa, img_pa, rd_size);
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/* Unmap destination region */
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rc = mmap_remove_dynamic_region(rd_base_pa, rd_size);
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if (rc != 0) {
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ERROR("Unable to remove data region at EL3: %d\n", rc);
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panic();
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}
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break;
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}
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case RD_MEM_NORMAL_MISCELLANEOUS:
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/* Allow SPM to change the attributes of the region. */
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mmap.granularity = PAGE_SIZE;
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rd_base_pa = spm_alloc_heap(rd_size);
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zero_region = 1;
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break;
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case RD_MEM_NORMAL_SPM_SP_SHARED_MEM:
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if ((sp_ctx->spm_sp_buffer_base != 0) ||
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(sp_ctx->spm_sp_buffer_size != 0)) {
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ERROR("A partition must have only one SPM<->SP buffer.\n");
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panic();
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}
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rd_base_pa = spm_alloc_heap(rd_size);
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zero_region = 1;
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/* Save location of this buffer, it is needed by SPM */
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sp_ctx->spm_sp_buffer_base = rd_base_pa;
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sp_ctx->spm_sp_buffer_size = rd_size;
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break;
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case RD_MEM_NORMAL_CLIENT_SHARED_MEM:
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/* Fallthrough */
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case RD_MEM_NORMAL_BSS:
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rd_base_pa = spm_alloc_heap(rd_size);
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zero_region = 1;
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break;
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default:
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panic();
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}
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mmap.base_pa = rd_base_pa;
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mmap.base_va = rd_base_va;
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mmap.size = rd_size;
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/* Only S-EL0 mappings supported for now */
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mmap.attr = rdmem_attr_to_mmap_attr(rdmem->attr) | MT_USER;
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VERBOSE(" VA: 0x%lx PA: 0x%llx (0x%lx, attr: 0x%x)\n",
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mmap.base_va, mmap.base_pa, mmap.size, mmap.attr);
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/* Map region in the context of the Secure Partition */
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mmap_add_region_ctx(sp_ctx->xlat_ctx_handle, &mmap);
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if (zero_region == 1) {
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VERBOSE(" Zeroing region...\n");
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rc = mmap_add_dynamic_region(mmap.base_pa, mmap.base_pa,
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mmap.size, MT_MEMORY | MT_RW | MT_SECURE);
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if (rc != 0) {
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ERROR("Unable to map memory at EL3 to zero: %d\n",
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rc);
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panic();
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}
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zeromem((void *)mmap.base_pa, mmap.size);
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/*
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* Unmap destination region unless it is the SPM<->SP buffer,
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* which must be used by SPM.
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*/
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if (memtype != RD_MEM_NORMAL_SPM_SP_SHARED_MEM) {
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rc = mmap_remove_dynamic_region(rd_base_pa, rd_size);
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if (rc != 0) {
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ERROR("Unable to remove region at EL3: %d\n", rc);
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panic();
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}
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}
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}
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}
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void sp_map_memory_regions(sp_context_t *sp_ctx)
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{
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struct sp_rd_sect_mem_region *rdmem;
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for (rdmem = sp_ctx->rd.mem_region; rdmem != NULL; rdmem = rdmem->next) {
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map_rdmem(sp_ctx, rdmem);
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}
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init_xlat_tables_ctx(sp_ctx->xlat_ctx_handle);
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}
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