Gao Xu 80e3ece7d1 Merge branch 'bugfix/remove_wno_format_in_driver_hal_and_esp_hw_support_components' into 'master' před 2 roky
..
esp32 3234ee3f9e refactor(mcpwm): add RCC related LL functions před 2 roky
esp32c2 255d499884 fix(ll): fix cpp compile error před 2 roky
esp32c3 255d499884 fix(ll): fix cpp compile error před 2 roky
esp32c6 3234ee3f9e refactor(mcpwm): add RCC related LL functions před 2 roky
esp32h2 3234ee3f9e refactor(mcpwm): add RCC related LL functions před 2 roky
esp32p4 3234ee3f9e refactor(mcpwm): add RCC related LL functions před 2 roky
esp32s2 255d499884 fix(ll): fix cpp compile error před 2 roky
esp32s3 3234ee3f9e refactor(mcpwm): add RCC related LL functions před 2 roky
include 255d499884 fix(ll): fix cpp compile error před 2 roky
platform_port 333553caf2 fix(hal): check the public header files and fix violations před 2 roky
test 8c6ddb776c fix: remove wno format in hal component před 2 roky
test_apps 1a18fdb83a feat(hal): Adding AES snd SHA peripheral to crypto testapps před 2 roky
CMakeLists.txt 8c6ddb776c fix: remove wno format in hal component před 2 roky
Kconfig 15e8c04f7b spi: change linker file let spi hal able to out from iram před 2 roky
README.md 54febcae0e fix(adc): invalid assertion on the adc_unit před 2 roky
adc_hal.c 56a376c696 feat(esp_gdma): add hal interface for common operations před 2 roky
adc_hal_common.c ffb40a89d9 adc_cali: supported channel compensation of adc calibration on esp32c6 před 2 roky
adc_oneshot_hal.c 8c6ddb776c fix: remove wno format in hal component před 2 roky
aes_hal.c 333553caf2 fix(hal): check the public header files and fix violations před 2 roky
apm_hal.c 8d0f6dab0f apm: added support for APM on esp32c6 před 3 roky
brownout_hal.c a3d962d89a brownout: Disable the hardware BOD when BOD interrupt is enabled před 2 roky
cache_hal.c fd759d65b0 refactor(cache): abstract cache rom API in cache_ll.h před 2 roky
ds_hal.c 333553caf2 fix(hal): check the public header files and fix violations před 2 roky
ecc_hal.c a485b1cb67 esp32h2: Add support for ECC hardware accelerator před 2 roky
ecdsa_hal.c d86b320892 feat(ecdsa): add ECDSA peripheral support for esp32p4 před 2 roky
efuse_hal.c ffb40a89d9 adc_cali: supported channel compensation of adc calibration on esp32c6 před 2 roky
emac_hal.c 88600bd91b driver: minor code clean up to pass coverity scan test před 2 roky
etm_hal.c fb26d0e11f etm: added etm channel allocator před 3 roky
gdma_hal_ahb_v1.c 274e1c0089 fix(gdma): fixed compilation failure of gdma před 2 roky
gdma_hal_ahb_v2.c 200eb866dc feat(gdma): support hardware crc calculation před 2 roky
gdma_hal_axi.c 200eb866dc feat(gdma): support hardware crc calculation před 2 roky
gdma_hal_crc_gen.c 200eb866dc feat(gdma): support hardware crc calculation před 2 roky
gdma_hal_top.c 200eb866dc feat(gdma): support hardware crc calculation před 2 roky
gpio_hal.c be9afeac86 feat(gpio): add support for ESP32P4 před 2 roky
hmac_hal.c 1c233cc508 hmac_hal: Merge hmac hal layer for different into one před 3 roky
i2c_hal.c de85f47bc9 feat(i2c): Add I2C driver support for esp32p4 před 2 roky
i2c_hal_iram.c 4ef94fc0dc feat(i2c): Add new API and implementation for I2C driver před 2 roky
i2s_hal.c 1b22591ea7 i2s: fixed i2s_ll compiling failure under C++ evironment před 2 roky
lcd_hal.c 8c6ddb776c fix: remove wno format in hal component před 2 roky
ledc_hal.c fcc6514dde ledc: Add an all-in-one HAL function to set fade parameters, and refactor ledc_ll_get_max_duty function před 2 roky
ledc_hal_iram.c fcc6514dde ledc: Add an all-in-one HAL function to set fade parameters, and refactor ledc_ll_get_max_duty function před 2 roky
linker.lf 767698b90d feat(uart): Add sdkconfig.ci.iram_safe test for UART driver před 2 roky
lp_timer_hal.c 01fb28b65b Power Management: move lp_timer_hal.c to upper hal layer for esp32h2 and esp32c6 před 2 roky
mcpwm_hal.c f7ff7ac4d0 mcpwm: clean up hal driver and add doc před 3 roky
mmu_hal.c 8c8affc812 feat(mmu): support mmu and flash mmap driver on p4 před 2 roky
mpi_hal.c 4ae1ea7b9f bignum: refactored the hardware abstraction of the mpi peripheral před 2 roky
mpu_hal.c 333553caf2 fix(hal): check the public header files and fix violations před 2 roky
parlio_hal.c f534247a00 driver: add parallel IO TX driver před 2 roky
pcnt_hal.c ec8defaa96 pulse_cnt: new driver for PCNT peripheral před 3 roky
rmt_hal.c b562754a2f rmt: support esp32c6 před 3 roky
rtc_io_hal.c 4985caa38f refactor(driver/rtcio): Re-wrap RTCIO APIs with more accurate soc_caps před 2 roky
sdio_slave_hal.c 8c6ddb776c fix: remove wno format in hal component před 2 roky
sdkconfig.rename e18f381905 HAL: fix kconfig HAL_ASSERTION typo před 3 roky
sdm_hal.c 4154eaec93 sdm: clean up soc/hal/ll code před 3 roky
sha_hal.c 333553caf2 fix(hal): check the public header files and fix violations před 2 roky
spi_flash_encrypt_hal_iram.c 333553caf2 fix(hal): check the public header files and fix violations před 2 roky
spi_flash_hal.c ed96dadd06 spi_flash: 2nd stage for supporting flash suspend. (1). Support more esp chips (2). Improve real-time performance (3). Making timing more stable (4) Add documents před 2 roky
spi_flash_hal_common.inc c147a6d022 fix(spi_flash): Fix spi_flash write fail on 26M C2(including OTA fail on this chip) před 2 roky
spi_flash_hal_gpspi.c 333553caf2 fix(hal): check the public header files and fix violations před 2 roky
spi_flash_hal_iram.c ed96dadd06 spi_flash: 2nd stage for supporting flash suspend. (1). Support more esp chips (2). Improve real-time performance (3). Making timing more stable (4) Add documents před 2 roky
spi_hal.c 8f5851d064 fix(all): unify default mosi level to low on all targets před 2 roky
spi_hal_iram.c 8f5851d064 fix(all): unify default mosi level to low on all targets před 2 roky
spi_slave_hal.c 56a376c696 feat(esp_gdma): add hal interface for common operations před 2 roky
spi_slave_hal_iram.c 8f5851d064 fix(all): unify default mosi level to low on all targets před 2 roky
spi_slave_hd_hal.c 56a376c696 feat(esp_gdma): add hal interface for common operations před 2 roky
systimer_hal.c cbdb799b6f feat(esp_timer): Support systimer for ESP32P4 před 2 roky
timer_hal.c 7638235311 feat(mcpwm): MCPWM event comparator driver před 2 roky
touch_sensor_hal.c 333553caf2 fix(hal): check the public header files and fix violations před 2 roky
twai_hal.c 72becf31e4 twai: Add errata workaround for listen only mode před 2 roky
twai_hal_iram.c a25123f703 twai: bringup on esp32c6 před 3 roky
uart_hal.c 921713fff4 uart: Support LP_UART port with UART driver on esp32c6 před 2 roky
uart_hal_iram.c 333553caf2 fix(hal): check the public header files and fix violations před 2 roky
usb_dwc_hal.c 7d386f68df usb_host: Restrict ESP32-S2 AHB errata workaround to only ECO0 chips před 2 roky
usb_hal.c 333553caf2 fix(hal): check the public header files and fix violations před 2 roky
usb_phy_hal.c 1fcd639224 usb: Add usb_phy driver to support operations on USB PHY před 4 roky
wdt_hal_iram.c 9c37441b17 wdt: refactor wdt codes to use unified type před 3 roky
xt_wdt_hal.c 4869b3cd4a WDT: Add support for XTAL32K Watchdog timer před 4 roky

README.md

hal (G0 component)

⚠️ The HAL component is still under heavy development at the moment, so we don't guarantee the stability and backward-compatibility among versions.

The hal component provides a Hardware Abstraction Layer for all targets supported by ESP-IDF. It is designed to be a G0 component so that it can be used by other components like driver, esp_hw_support, esp_system and so on.

In a broad sense, the HAL layer consists of two sub-layers: HAL (upper) and Low-Level(bottom). The HAL layer defines the steps and data that is required to operate a peripheral (e.g. initialization, start and stop). The low-level is a translation layer above the register files under the soc component, it only covers general conceptions to register configurations.

Low-Level (hal/<periph>_ll.h)

Functions defined in the file must be static inlined. The first argument of an LL function is usually a pointer to the peripheral's base address [^1]. At the moment, each ESP target has its own set of Low-Level drivers. They're located under path e.g. components/hal/<target>/include/hal/<periph>_ll.h. We wish the the low-level functions could be as independent as possible, so that the caller doesn't need to worry about conflict between different sub-modules. For example, when resetting the driver of module A, the module B is also reset by accident. However, the digital design is not perfect, coupling happens from time to time.

Handling Shared Registers

One of the biggest coupling is the so-called "hardware shared resource". Take the common Reset and Clock Control part as an example, the clock enable and disable logic of different peripherals are mixing in the same register. In RTOS environment, it's super easy to make a mistake when you enable peripheral A and then peripheral B is disabled by accident. A simple way to avoid such mistake is to using a critical section when accessing such shared registers. However from the point of the software architecture, it's not a good idea to add a lock in the Low-Level because it's a concept of the operating system.

One compromise is to highlight the LL function which needs the caller to use them in a critical section. e.g.

/// use a macro to wrap the function, force the caller to use it in a critical section
/// the critical section needs to declare the __DECLARE_RCC_RC_ATOMIC_ENV variable in advance
#define timer_ll_reset_register(...) (void)__DECLARE_RCC_RC_ATOMIC_ENV; timer_ll_reset_register(__VA_ARGS__)

/// use a macro to wrap the function, force the caller to use it in a critical section
/// the critical section needs to declare the __DECLARE_RCC_ATOMIC_ENV variable in advance
#define timer_ll_set_clock_source(...) (void)__DECLARE_RCC_ATOMIC_ENV; timer_ll_set_clock_source(__VA_ARGS__)

By referencing a variable which is only declared in the critical section, the compiler will report an error if the caller forgets to use the critical section. The following macros are provided by esp_private/periph_ctrl.h, which contain the above magic variables.

You should use this critical section if the peripheral module has multiple independent sub-modules. You should use this critical section if the peripheral module has multiple independent sub-modules.
Macro Private variables used to declare a critical section Use condition
PERIPH_RCC_ACQUIRE_ATOMIC __DECLARE_RCC_RC_ATOMIC_ENV This critical section not only protects the shared register accessing, but also increases a reference counter of the peripheral module.
PERIPH_RCC_RELEASE_ATOMIC __DECLARE_RCC_RC_ATOMIC_ENV This critical section not only protects the shared register accessing, but also decreases a reference counter of the peripheral module.
PERIPH_RCC_ATOMIC __DECLARE_RCC_ATOMIC_ENV This critical section only protects the shared register accessing.

ESP-IDF driver developers then can use the above macros to call the special LL functions. e.g.

static void enable_timer_group0_for_calibration(void)
{
    PERIPH_RCC_ACQUIRE_ATOMIC(PERIPH_TIMG0_MODULE, ref_count) {
        if (ref_count == 0) {
            timer_ll_enable_bus_clock(0, true);
            timer_ll_reset_register(0);
        }
    }
}

HAL (hal/<periph>_hal.h)

This layer is a combination of Low-Level function calls, aiming to ease the load when porting a new chip to other platforms (e.g. Zephyr). This layer shouldn't rely on Operating System, i.e., don't use primitives that only offered by an Operating System, e.g., the lock and other blocking functions. Please don't introduce any driver models in the HAL layer so that the non-idf developers can customized their own drivers according to their platform requirement.

The first argument of a HAL function is usually a pointer to the context object. The context object is a structure which saves the necessary information that is used by the HAL driver (e.g. the base address of the peripheral). ⚡ Please note, the memory used by the HAL context object is allocated by the caller, so the HAL driver shouldn't free it.

File Structure

include/hal

/include/hal contains header files which provides a hardware-agnostic interface to the SoC. The interface consists of function declarations and abstracted types that other, higher level components can make use of in order to have code portable to all targets ESP-IDF supports.

It contains an abstraction layer for interacting with/driving the hardware found in the SoC such as the peripherals and 'core' hardware such as the CPU, MPU, caches, etc. It contains for the abstracted types. The abstraction design is actually two levels -- often sometimes xxx_hal.h includes a lower-level header from a xxx_ll.h, which resides in the implementation.

target/include

Provides the implementation of the hardware-agnostic interface in the abstraction. Target-specific subdirectories exist for wildly different implementations among targets; while code that are common/very similar might be placed in the top-level of /<target>/include, using some amount of conditional preprocessor. It is up to the developers' discretion on which strategy to use. Code usually reside in source files with same names to header files whose interfaces they implement, ex. xxx_hal.c for xxx_hal.h.

As mentioned previously, the lower-level abstraction header xxx_ll.h resides in this directory, since they contain hardware-specific details. However, what these can do is provide some abstraction among implementations, so that more code can be moved to the common, non-target-specific subdirectories.

This can also contain target-specific extensions to the HAL headers. These target-specific HAL headers have the same name and include the abstraction layer HAL header via include_next. These extensions might add more function declarations or override some things using macro magic.

[^1]: This is not a must. Sometimes if the LL is just operating some system level registers, you don't have to provide this argument.