mirror of
https://github.com/espressif/esp-idf.git
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172 lines
5.6 KiB
C
172 lines
5.6 KiB
C
/*
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* SPDX-FileCopyrightText: 2021-2022 Espressif Systems (Shanghai) CO LTD
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*
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* SPDX-License-Identifier: Apache-2.0
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*/
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/**
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* This file will be redesigned into MMU driver, to maintain all the external
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* memory contexts including:
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* - Flash
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* - PSRAM
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* - DDR
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*
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* Now only MMU-PSRAM related private APIs
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*/
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#include <stdint.h>
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#include <sys/param.h>
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#include "sdkconfig.h"
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#include "esp_attr.h"
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#include "esp_log.h"
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#include "soc/ext_mem_defs.h"
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#include "esp_private/mmu.h"
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#if CONFIG_IDF_TARGET_ESP32S2
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#include "soc/extmem_reg.h"
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#include "esp32s2/rom/cache.h"
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#elif CONFIG_IDF_TARGET_ESP32S3
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#include "soc/extmem_reg.h"
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#include "esp32s3/rom/cache.h"
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#endif
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#define ALIGN_UP_BY(num, align) (((num) + ((align) - 1)) & ~((align) - 1))
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__attribute__((unused)) static const char *TAG = "mmu";
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extern int _instruction_reserved_start;
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extern int _instruction_reserved_end;
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extern int _rodata_reserved_start;
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extern int _rodata_reserved_end;
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intptr_t mmu_get_psram_vaddr_start(void)
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{
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#if CONFIG_IDF_TARGET_ESP32S3
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intptr_t rodata_end_aligned = ALIGN_UP_BY((intptr_t)&_rodata_reserved_end, MMU_PAGE_SIZE);
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ESP_EARLY_LOGV(TAG, "rodata_end_aligned is 0x%x bytes", rodata_end_aligned);
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return rodata_end_aligned;
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#elif CONFIG_IDF_TARGET_ESP32S2
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return DPORT_CACHE_ADDRESS_LOW;
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#else //CONFIG_IDF_TARGET_ESP32
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return DRAM1_CACHE_ADDRESS_LOW;
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#endif
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}
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intptr_t mmu_get_psram_vaddr_end(void)
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{
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#if CONFIG_IDF_TARGET_ESP32S3
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return DRAM0_CACHE_ADDRESS_HIGH;
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#elif CONFIG_IDF_TARGET_ESP32S2
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return DRAM0_CACHE_ADDRESS_HIGH;
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#else //CONFIG_IDF_TARGET_ESP32
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return DRAM1_CACHE_ADDRESS_HIGH;
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#endif
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}
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//------------------------------------Copy Flash .text to PSRAM-------------------------------------//
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#if CONFIG_SPIRAM_FETCH_INSTRUCTIONS
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static uint32_t instruction_in_spiram;
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static uint32_t instr_start_page;
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static uint32_t instr_end_page;
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static int instr_flash2spiram_offs;
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/**
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* - These logics are abstracted from the PSRAM driver
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* - These functions are only required by `flash_mmap.c` for converting paddr to vaddr, and vice versa
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* - The `flash_mmpa.c` will be rewritten into MMU driver
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*
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* Therefore, keep the APIs here for now
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*/
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void instruction_flash_page_info_init(uint32_t psram_start_physical_page)
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{
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#if CONFIG_IDF_TARGET_ESP32S2
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uint32_t instr_page_cnt = ((uint32_t)&_instruction_reserved_end - (uint32_t)&_instruction_reserved_start + MMU_PAGE_SIZE - 1) / MMU_PAGE_SIZE;
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uint32_t instr_mmu_offset = ((uint32_t)&_instruction_reserved_start & MMU_VADDR_MASK) / MMU_PAGE_SIZE;
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instr_start_page = ((volatile uint32_t *)(DR_REG_MMU_TABLE + PRO_CACHE_IBUS0_MMU_START))[instr_mmu_offset];
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#elif CONFIG_IDF_TARGET_ESP32S3
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uint32_t instr_page_cnt = ((uint32_t)&_instruction_reserved_end - SOC_IROM_LOW + MMU_PAGE_SIZE - 1) / MMU_PAGE_SIZE;
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instr_start_page = *((volatile uint32_t *)(DR_REG_MMU_TABLE + CACHE_IROM_MMU_START));
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#endif
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instr_start_page &= MMU_VALID_VAL_MASK;
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instr_end_page = instr_start_page + instr_page_cnt - 1;
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instr_flash2spiram_offs = instr_start_page - psram_start_physical_page;
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instruction_in_spiram = 1;
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ESP_DRAM_LOGV("mmu_psram", "Instructions from flash page%d copy to SPIRAM page%d, Offset: %d", instr_start_page, psram_start_physical_page, instr_flash2spiram_offs);
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}
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uint32_t esp_spiram_instruction_access_enabled(void)
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{
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return instruction_in_spiram;
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}
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int instruction_flash2spiram_offset(void)
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{
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return instr_flash2spiram_offs;
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}
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uint32_t instruction_flash_start_page_get(void)
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{
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return instr_start_page;
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}
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uint32_t instruction_flash_end_page_get(void)
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{
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return instr_end_page;
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}
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#endif //CONFIG_SPIRAM_FETCH_INSTRUCTIONS
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#if CONFIG_SPIRAM_RODATA
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//------------------------------------Copy Flash .rodata to PSRAM-------------------------------------//
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static uint32_t rodata_in_spiram;
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static int rodata_flash2spiram_offs;
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static uint32_t rodata_start_page;
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static uint32_t rodata_end_page;
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/**
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* - These logics are abstracted from the PSRAM driver
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* - These functions are only required by `flash_mmap.c` for converting paddr to vaddr, and vice versa
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* - The `flash_mmpa.c` will be rewritten into MMU driver
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*
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* Therefore, keep the APIs here for now
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*/
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void rodata_flash_page_info_init(uint32_t psram_start_physical_page)
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{
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#if CONFIG_IDF_TARGET_ESP32S2
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uint32_t rodata_page_cnt = ((uint32_t)&_rodata_reserved_end - (uint32_t)&_rodata_reserved_start + MMU_PAGE_SIZE - 1) / MMU_PAGE_SIZE;
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uint32_t rodata_mmu_offset = ((uint32_t)&_rodata_reserved_start & MMU_VADDR_MASK) / MMU_PAGE_SIZE;
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rodata_start_page = ((volatile uint32_t *)(DR_REG_MMU_TABLE + PRO_CACHE_IBUS2_MMU_START))[rodata_mmu_offset];
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#elif CONFIG_IDF_TARGET_ESP32S3
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uint32_t rodata_page_cnt = ((uint32_t)&_rodata_reserved_end - ((uint32_t)&_rodata_reserved_start & ~ (MMU_PAGE_SIZE - 1)) + MMU_PAGE_SIZE - 1) / MMU_PAGE_SIZE;
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rodata_start_page = *(volatile uint32_t *)(DR_REG_MMU_TABLE + CACHE_DROM_MMU_START);
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#endif
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rodata_start_page &= MMU_VALID_VAL_MASK;
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rodata_end_page = rodata_start_page + rodata_page_cnt - 1;
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rodata_flash2spiram_offs = rodata_start_page - psram_start_physical_page;
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rodata_in_spiram = 1;
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ESP_DRAM_LOGV("mmu_psram", "Rodata from flash page%d copy to SPIRAM page%d, Offset: %d", rodata_start_page, psram_start_physical_page, rodata_flash2spiram_offs);
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}
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uint32_t esp_spiram_rodata_access_enabled(void)
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{
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return rodata_in_spiram;
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}
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int rodata_flash2spiram_offset(void)
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{
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return rodata_flash2spiram_offs;
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}
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uint32_t rodata_flash_start_page_get(void)
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{
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return rodata_start_page;
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}
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uint32_t rodata_flash_end_page_get(void)
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{
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return rodata_end_page;
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}
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#endif //#if CONFIG_SPIRAM_RODATA
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