esp-idf/components
Island ba0b8dcac1 Merge branch 'bluedroid/memory_full' into 'master'
fix (Bluedroid) : Fix the memory corruption issue

See merge request espressif/esp-idf!24905
2023-08-10 19:05:32 +08:00
..
app_trace
app_update fix(app_update): Fix CI test_switch_ota by increasing deepsleep 2023-07-21 13:58:20 +08:00
bootloader change(bootloader): added address check in bootloader.ld 2023-08-09 19:33:26 +08:00
bootloader_support change(esp32p4): update rtc interrupt registration todo list 2023-08-09 19:33:36 +08:00
bt Merge branch 'bluedroid/memory_full' into 'master' 2023-08-10 19:05:32 +08:00
cmock
console fix(console): fixed esp_console_init not working if heap_alloc_caps was 0 2023-08-10 10:35:32 +08:00
cxx
driver Merge branch 'feature/esp32p4_pcnt_support' into 'master' 2023-08-10 18:52:23 +08:00
efuse change(efuse): Update eFuses for esp32p4 chip 2023-08-09 19:33:35 +08:00
esp-tls
esp_adc docs: fix typos in esp_adc/include/esp_adc/adc_continuous.h 2023-08-08 06:11:30 +00:00
esp_app_format
esp_bootloader_format
esp_coex
esp_common feat(tcm): added tcm basic support on esp32p4 2023-07-25 05:59:10 +00:00
esp_eth esp_eth: add loopback test, change chip drivers to reflect chip specific behaviour 2023-08-03 13:18:44 +02:00
esp_event fix(esp_event): made #include <stdint.h> explicit 2023-08-09 16:17:06 +08:00
esp_gdbstub feat(esp32p4): introduced new target esp32p4, supported hello_world 2023-08-09 19:33:25 +08:00
esp_hid
esp_http_client fix: nitpick in esp_http_client 2023-08-02 13:48:14 +05:30
esp_http_server
esp_https_ota
esp_https_server
esp_hw_support Merge branch 'feature/add_esp32p4_hello_world' into 'master' 2023-08-10 16:04:55 +08:00
esp_lcd feat(lcd): Add new version LCD implementation to adapt new I2C APIs 2023-08-10 11:55:54 +08:00
esp_local_ctrl
esp_mm feat(esp32p4): introduced new target esp32p4, supported hello_world 2023-08-09 19:33:25 +08:00
esp_netif Merge branch 'bugfix/netif_default_sta_init' into 'master' 2023-07-21 21:56:37 +08:00
esp_netif_stack
esp_partition feat(example/storage/littlefs): add LittleFS demo example 2023-07-21 11:08:01 +02:00
esp_phy fix(phy): Fix 11b/g rx issue for ESP32 2023-08-08 12:57:01 +00:00
esp_pm feat(esp32p4): introduced new target esp32p4, supported hello_world 2023-08-09 19:33:25 +08:00
esp_psram feat(esp32p4): introduced new target esp32p4, supported hello_world 2023-08-09 19:33:25 +08:00
esp_ringbuf
esp_rom Merge branch 'feature/support_hp_regi2c_for_esp32c6' into 'master' 2023-08-10 16:54:56 +08:00
esp_system Merge branch 'feature/add_esp32p4_hello_world' into 'master' 2023-08-10 16:04:55 +08:00
esp_timer feat(esp_timer): added esp_timer p4 base support 2023-07-25 05:59:10 +00:00
esp_wifi fix(wifi): Fix error propagation while initiating FTM 2023-08-03 16:59:28 +05:30
espcoredump Merge branch 'contrib/github_pr_11869' into 'master' 2023-08-10 02:19:32 +08:00
esptool_py
fatfs docs(fatfs): Move mentioned APIs to a separate API reference section 2023-08-04 23:47:44 +00:00
freertos refactor(freertos): Refactor usage of portBASE_TYPE to BaseType_t 2023-07-31 17:10:34 +02:00
hal Merge branch 'feature/esp32p4_pcnt_support' into 'master' 2023-08-10 18:52:23 +08:00
heap feat(esp32p4): introduced new target esp32p4, supported hello_world 2023-08-09 19:33:25 +08:00
http_parser
idf_test feat(esp32p4): introduced new target esp32p4, supported hello_world 2023-08-09 19:33:25 +08:00
ieee802154
json feat: Update cJSON version to v1.7.16 2023-07-28 16:45:00 +05:30
linux
log
lwip fix(dhcp server): Fix dhcp server address pool issue 2023-07-25 20:48:19 +08:00
mbedtls feat(mbedtls): support ecp fixed-point multiplication configurable 2023-08-08 14:03:57 +08:00
mqtt
newlib feat(esp32p4): introduced new target esp32p4, supported hello_world 2023-08-09 19:33:25 +08:00
nvs_flash nvs: nvs_get_stats fixed test, improved comment 2023-08-08 08:43:19 +02:00
nvs_sec_provider
openthread feat(thread): update openthread lib 2023-08-01 14:56:43 +08:00
partition_table feat(example/storage/littlefs): add LittleFS demo example 2023-07-21 11:08:01 +02:00
perfmon
protobuf-c
protocomm
pthread refactor: moved semaphore.h to newlib platform_include 2023-08-08 16:45:57 +08:00
riscv change(vector.S): port hw stack guard change to p4 2023-07-25 05:59:10 +00:00
sdmmc test(sdmmc): support power down card on S3 emmc board 2023-07-26 15:44:45 +08:00
soc Merge branch 'feature/esp32p4_pcnt_support' into 'master' 2023-08-10 18:52:23 +08:00
spi_flash feat(esp32p4): introduced new target esp32p4, supported hello_world 2023-08-09 19:33:25 +08:00
spiffs
tcp_transport
touch_element
ulp change(ulp): change some hal(ll) function name to new ones 2023-08-10 11:55:54 +08:00
unity
usb Merge branch 'bugfix/usb/host/urb_compliance_verification_add' into 'master' 2023-08-03 16:20:49 +08:00
vfs
wear_levelling
wifi_provisioning
wpa_supplicant feat(esp32p4): introduced new target esp32p4, supported hello_world 2023-08-09 19:33:25 +08:00
xtensa
README.md

README.md

Core Components

Overview

This document contains details about what the core components are, what they contain, and how they are organized.

Organization

The core components are organized into two groups.

The first group (referred to as G0 from now on) contains hal, xtensa and riscv (referred to as arch components from now on), esp_rom, esp_common, and soc. This group contain information about and low-level access to underlying hardware; or in the case of esp_common, hardware-agnostic code and utilities. These components can depend on each other, but as much as possible have no dependencies outside the group. The reason for this is that, due to the nature of what these components contain, the likelihood is high that a lot of other components will require these. Ideally, then, the dependency relationship only goes one way. This makes it easier for these components, as a group, to be usable in another project. One can conceivably implement a competing SDK to ESP-IDF on top of these components.

The second group (referred to as G1 from now on) sits at a higher level than the first group. This group contains the components esp_hw_support, esp_system, newlib, spi_flash, freertos, log, and heap. Like the first group, circular dependencies within the group are allowed; and being at a higher level, dependency on the first group is allowed. These components represent software mechanisms essential to building other components.

Descriptions

The following is a short description of the components mentioned above.

G0 Components

hal

Contains the hardware abstraction layer and low-level operation implementations for the various peripherals. The low-level functions assign meaningful names to register-level manipulations; the hardware abstraction provide operations one level above this, grouping these low-level functions into routines that achieve a meaningful action or state of the peripheral.

Example:

  • spi_flash_ll_set_address is a low-level function part of the hardware abstraction spi_flash_hal_read_block

arch

Contains low-level architecture operations and definitions, including those for customizations (can be thought of on the same level as the low-level functions of hal). This can also contain files provided by the architecture vendor.

Example:

  • xt_set_exception_handler
  • rv_utils_intr_enable
  • ERI_PERFMON_MAX

esp_common

Contains hardware-agnostic definitions, constants, macros, utilities, 'pure' and/or algorithmic functions that is useable by all other components (that is, barring there being a more appropriate component to put them in).

Example:

  • BIT(nr) and other bit manipulation utilities in the future
  • IDF_DEPRECATED(REASON)
  • ESP_IDF_VERSION_MAJOR

soc

Contains description of the underlying hardware: register structure, addresses, pins, capabilities, etc.

Example:

  • DR_REG_DPORT_BASE
  • SOC_MCPWM_SUPPORTED
  • uart_dev_s

esp_rom

Contains headers, linker scripts, abstraction layer, patches, and other related files to ROM functions.

Example:

  • esp32.rom.eco3.ld
  • rom/aes.h

G1 Components

spi_flash

SPI flash device access implementation.

freertos

FreeRTOS port to targets supported by ESP-IDF.

log

Logging library.

heap

Heap implementation.

newlib

Some functions n the standard library are implemented here, especially those needing other G1 components.

Example:

  • malloc is implemented in terms of the component heap's functions
  • gettimeofday is implemented in terms of system time in esp_system

esp_mm

Memory management. Currently, this encompasses:

  • Memory mapping for MMU supported memories
  • Memory synchronisation via Cache
  • Utils such as APIs to convert between virtual address and physical address

esp_psram

Contains implementation of PSRAM services

esp_system

Contains implementation of system services and controls system behavior. The implementations here may take hardware resources and/or decide on a hardware state needed for support of a system service/feature/mechanism. Currently, this encompasses the following, but not limited to:

  • Startup and initialization
  • Panic and debug
  • Reset and reset reason
  • Task and interrupt watchdogs

esp_hw_support

Contains implementations that provide hardware operations, arbitration, or resource sharing, especially those that is used in the system. Unlike esp_system, implementations here do not decide on a hardware state or takes hardware resource, acting merely as facilitator to hardware access. Currently, this encompasses the following, but not limited to:

  • Interrupt allocation
  • Sleep functions
  • Memory functions (external SPIRAM, async memory, etc.)
  • Clock and clock control
  • Random generation
  • CPU utilities
  • MAC settings

esp_hw_support vs esp_system

This section details list some implementations and the reason for placing it in either esp_hw_support or esp_system.

task_wdt.c (esp_system) vs intr_alloc.c (esp_hw_support)

The task watchdog fits the definition of taking and configuring hardware resources (wdt, interrupt) for implementation of a system service/mechanism.

This is in contrast with interrupt allocation that merely facilitates access to the underlying hardware for other implementations - drivers, user code, and even the task watchdog mentioned previously!

crosscore_int.c (esp_system)

The current implementation of crosscore interrupts is tightly coupled with a number of interrupt reasons associated with system services/mechanisms: REASON_YIELD (scheduler), REASON_FREQ_SWITCH (power management) REASON_PRINT_BACKTRACE (panic and debug).

However, if an implementation exists that makes it possible to register an arbitrary interrupt reason - a lower level inter-processor call if you will, then this implementation is a good candidate for esp_hw_support. The current implementation in esp_system can then just register the interrupt reasons mentioned above.

esp_mac.h, esp_chip_info.h, esp_random.h (esp_hw_support)

The functions in these headers used to be in esp_system.h, but have been split-off.

The remaining functions in esp_system.h are those that deal with system behavior, such as esp_register_shutdown_handler, or are proxy for other system components's APIs such as esp_get_free_heap_size.

The functions split-off from esp_system.h are much more hardware manipulation oriented such as: esp_read_mac, esp_random and esp_chip_info.