bitbucket.org/nuttx/buildroot returns 404, as does every other repository
under that Bitbucket organisation. The buildroot that still carries the
NuttX toolchain, ldnxflat included, is github.com/patacongo/buildroot.
Thirty three files carried the dead address, most of them as a "Bitbucket
download site" for a board's toolchain. There are no downloads to offer, so
those now name the repository, and the surrounding prose says so.
The other dead Bitbucket addresses are left alone: nuttx/nuttx, nuttx/tools,
nuttx/uclibc and nuttx/nxwidgets need a decision each about what replaces
them, which is not this patch. patacongo/obsoleted is still there.
Assisted-by: Claude Opus 5 (1M context) <noreply@anthropic.com>
Signed-off-by: Marco Casaroli <marco.casaroli@gmail.com>
Add a "fastboot_usb" section to the waveshare-rp2040-zero and
waveshare-rp2040-lcd-1.28 board doc pages, describing the USB fastboot
composite configuration added by the previous commits: fastbootd runs
on boot instead of NSH, composed together with CDC/ACM for the
console, and reachable on the host via fastboot devices/getvar/reboot.
Assisted-by: OpenCode:claude-sonnet-5
Signed-off-by: wangjianyu3 <wangjianyu3@xiaomi.com>
Wire the RTL8721F (amebagreen2) into the shared Ameba timer driver
(arch/arm/src/common/ameba/ameba_timer.c), registered at /dev/timer0
(TIM1) and /dev/timer1 (TIM2). Only the per-chip base addresses, RCC
masks and IRQs differ, so this adds a small ameba_timer_chip.h (the two
32-bit basic LTIM timers at 0x40819200 / 0x40819400, 32.768 kHz,
APBPeriph_LTIM1/2, IRQ_TIMER1/2, verified against the SoC hal_platform.h
/ sysreg_lsys.h / vector table) plus the Make.defs/CMakeLists build
hooks, the fwlib ram_common/ameba_tim.c RAM source (now also pulled in
by CONFIG_AMEBA_TIMER, matching the PWM rule), the board bring-up
registration and a timer defconfig. The shared driver is unchanged.
TIM0 is left untouched because the boot ROM claims it as the always-on
system timer; reprogramming it would break every SDK delay.
Assisted-by: Claude <noreply@anthropic.com>
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Wire the RTL8720F into the shared Ameba timer driver
(arch/arm/src/common/ameba/ameba_timer.c), registered at /dev/timer0
(TIM1) and /dev/timer1 (TIM2). Only the per-chip base addresses, RCC
masks and IRQs differ, so this adds a small ameba_timer_chip.h (the two
32-bit basic LTIM timers at 0x40808200 / 0x40808400, 32.768 kHz,
APBPeriph_LTIM1/2, IRQ_TIMER1/2, verified against the SoC hal_platform.h
/ sysreg_lsys.h / vector table) plus the Make.defs/CMakeLists build
hooks, the fwlib ram_common/ameba_tim.c RAM source (now also pulled in
by CONFIG_AMEBA_TIMER, matching the PWM rule), the board bring-up
registration and a timer defconfig. The shared driver is unchanged.
TIM0 is left untouched because the boot ROM claims it as the always-on
system timer; reprogramming it would break every SDK delay.
Assisted-by: Claude <noreply@anthropic.com>
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Add a parameterised NuttX timer lower-half for the Realtek Ameba
general-purpose timers, sitting on the SDK fwlib RTIM register layer and
registered at /dev/timerN. The shared driver
(arch/arm/src/common/ameba/ameba_timer.c) reads a per-chip instance
table (ameba_timer_chip.h) for each timer's base, input clock, RCC gate
masks and IRQ; the period is programmed directly in microseconds and
converted to the 32-bit auto-reload with one clkfreq formula.
On the pke8721daf two of the 32.768 kHz "basic" (LTIM) timers are
exposed: /dev/timer0 is TIM1 and /dev/timer1 is TIM2. TIM0 is left
untouched because the boot ROM claims it as the always-on system timer
(SYSTIMER); reprogramming it would break every SDK delay. The RTIM
time-base entry points resolve to ROM, while the interrupt-clear and
period-change helpers come from the fwlib RAM source ameba_tim.c (shared
with the PWM driver).
Verified on hardware with examples/timer against both devices: the
update interrupt fires at the requested 1 s interval (measured with the
independent ROM SYSTIMER = 32768 ticks = 1.000 s).
Also whitelist the vendor RTIM_ symbol prefix in tools/nxstyle.c,
alongside the existing RCC_/SYSTIMER_ Ameba SDK entries.
Assisted-by: Claude <noreply@anthropic.com>
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Adopt the zbus message bus on the linum-stm32h753bi (first adopter
board):
- scripts/flash.ld: include the iterable sections common fragments
(2 lines: common-rom.ld inside .text, common-ram.ld inside .data).
- configs/zbus/defconfig: board configuration enabling zbus with all
observer types, the zbus example and its cmocka test suite
(./tools/configure.sh linum-stm32h753bi:zbus).
- Board documentation: describe the new configuration.
Validated on hardware: the 16-test cmocka suite passes twice in the
same boot and the zbus example produces the expected output.
Assisted-by: Claude Code
Signed-off-by: Jorge Guzman <jorge.gzm@gmail.com>
Wire the RTL8721F (amebagreen2) into the shared Ameba watchdog driver
(arch/arm/src/common/ameba/ameba_wdg.c), registered as /dev/watchdog0.
Only the per-chip base address and IRQ differ, so this adds a small
ameba_wdg_chip.h (WDG2 non-secure system watchdog at 0x4080AD80,
CPU0_NS_WDG IRQ 69, verified against the SoC hal_platform.h and
ameba_vector_table.h) plus the Make.defs/CMakeLists build hooks, the
board bring-up registration, and a wdg defconfig. The shared driver is
unchanged.
Assisted-by: Claude <noreply@anthropic.com>
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Wire the RTL8720F into the shared Ameba watchdog driver
(arch/arm/src/common/ameba/ameba_wdg.c), registered as /dev/watchdog0.
Only the per-chip base address and IRQ differ, so this adds a small
ameba_wdg_chip.h (WDG2 non-secure system watchdog at 0x40801D80,
KM4TZ_NS_WDG IRQ 52, verified against the SoC hal_platform.h and
ameba_vector_table.h) plus the Make.defs/CMakeLists build hooks, the
board bring-up registration, and a wdg defconfig. The shared driver is
unchanged.
Also corrects the RTL8720F row in the rtl8721dx chip-header reference
table (the non-secure system WDG IRQ is KM4TZ_NS_WDG = 52).
Assisted-by: Claude <noreply@anthropic.com>
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Add a NuttX watchdog lower-half for the Ameba KM4 non-secure system
watchdog (WDG2), registered as /dev/watchdog0. The fwlib WDG API is
ROM-resident, so no board.mk change is needed.
The hardware cannot be stopped once enabled, so stop() is emulated via
the early interrupt (EI) auto-refreshing the counter, and capture()
delivers a pre-timeout callback through the same EI. The EI has a
three-part timing contract, all handled here: it must be armed with
EIMOD=ENABLE at WDG_Init, its EIE gate only takes effect after
WDG_Enable, and -- because the EI is level-based -- a pure capture path
must mask EIE after the one-shot callback to avoid re-entrant storming
while the reset is pending. The EI flag is cleared twice per the slow
WDG clock.
Per-chip base address and IRQ live in ameba_wdg_chip.h so the shared
driver needs no change to port to another Ameba IC.
Verified on pke8721daf: timeout reset (BOOT REASON WDG2), stop()
suppressing the reset, and capture() firing ~EICNT ms before the reset.
Assisted-by: Claude <noreply@anthropic.com>
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Wire the shared Ameba RTC driver (arch/arm/src/common/ameba/ameba_rtc.c)
into RTL8721F (amebagreen2). The driver is chip-agnostic and reads only
per-chip macros from ameba_rtc_chip.h; RTL8721F differs from amebadplus
only in the RTC interrupt vector (RTL8721F_IRQ_RTC, vector 41). The
APBPeriph_RTC masks and RTC_BASE_YEAR (1900) are identical across all
current Ameba chips.
- ameba_rtc_chip.h: per-chip RTC IRQ / clock masks / base year
- Make.defs, ameba_board.mk: compile ameba_rtc.c and the fwlib RAM
RTC source when CONFIG_AMEBA_RTC=y
- board: rtl8721f_rtc.c registers /dev/rtc0 from bringup
- configs/rtc: examples/alarm profile
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Assisted-by: Claude <noreply@anthropic.com>
Wire the shared Ameba RTC driver (arch/arm/src/common/ameba/ameba_rtc.c)
into RTL8720F. The driver is chip-agnostic and reads only per-chip macros
from ameba_rtc_chip.h; RTL8720F differs from amebadplus only in the RTC
interrupt vector (RTL8720F_IRQ_RTC, vector 33). The APBPeriph_RTC masks
and RTC_BASE_YEAR (1900) are identical across all current Ameba chips.
- ameba_rtc_chip.h: per-chip RTC IRQ / clock masks / base year
- Make.defs, ameba_board.mk: compile ameba_rtc.c and the fwlib RAM
RTC source when CONFIG_AMEBA_RTC=y
- board: rtl8720f_rtc.c registers /dev/rtc0 from bringup
- configs/rtc: examples/alarm profile
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Assisted-by: Claude <noreply@anthropic.com>
Expose the Ameba on-chip RTC as a NuttX date/time RTC at /dev/rtc0
(rdtime/settime) with a single one-shot alarm (setalarm/rdalarm/
cancelalarm/setrelative) that fires the RTC interrupt and the upper-half
callback. The same hardware also backs the arch date/time RTC hooks
(up_rtc_initialize/getdatetime/settime, g_rtc_enabled) so the NuttX
system time is seeded from it.
The driver sits on the SDK fwlib RTC API (mirrored structures + local
externs, no vendor headers pulled into the NuttX include world). The
fwlib RTC API lives in the RAM source ameba_rtc.c, so it is added to the
board fwlib build under CONFIG_AMEBA_RTC. The hardware keeps a year plus
a day-of-year (no month/day register); the driver bridges that to the
NuttX month/day calendar with the libc UTC routines (timegm/gmtime_r),
which is exact and reversible.
The only per-chip fact -- the RTC interrupt vector -- lives in the
per-chip ameba_rtc_chip.h; the shared driver is never edited for a new
Ameba chip. A configs/rtc profile (examples/alarm) is added for
verification.
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Assisted-by: Claude <noreply@anthropic.com>
List every peripheral implemented by STM32U3C5, and update the common GPIO, EXTI
and USART driver paths after the Cortex-M33 migration.
Signed-off-by: raiden00pl <raiden00@railab.me>
Assisted-by: Claude Code
Add HSI48 clock selection, USB pull-up control, automatic CDC/ACM registration during board bring-up, USB test configurations, and board documentation.
Assisted-by: OpenAI Codex
Signed-off-by: jsanchez-2g <jsanchez@2g-eng.com>
Wire the shared Ameba ADC driver into the RTL8721F build: add the
per-chip ameba_adc_chip.h (12 channels, CH0..CH7 external on
PA20,PA19,PA18,PA17,PA15,PA14,PA13,PA12, PINMUX function 5), the
board ADC table and registration, the adc board config, and build
glue for both cmake and make (including the fwlib RAM-layer
ameba_adc.c in ameba_board.mk). Document the ADC on the board index.
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Assisted-by: Claude <noreply@anthropic.com>
Wire the shared Ameba ADC driver into the RTL8720F build: add the
per-chip ameba_adc_chip.h (9 channels, CH0..CH5 external on
PA13..PA18, PINMUX function 5, APB clock on bit24), the board ADC
table and registration, the adc board config, and build glue for
both cmake and make (including the fwlib RAM-layer ameba_adc.c in
ameba_board.mk). Document the ADC on the board index.
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Assisted-by: Claude <noreply@anthropic.com>
Add a NuttX ADC lower-half for the Ameba SoC family, wired for the
amebadplus/pke8721daf as /dev/adc0. The driver uses the fwlib ROM
API and drives on-demand polled conversions via ADC_ReceiveBuf with
the hardware auto channel-switch FIFO, because amebadplus disables the
ADC software-trigger path. Per-chip wiring (channel count, pinmux
function id, APB clock bits, optional aux clock) lives in a chip
header so a new IC only supplies its own values without touching the
shared driver.
Reports raw conversion codes per the NuttX convention (12-bit
effective, 0..~3876 for 0..3.3V), consistent with the STM32/i.MXRT/
Tiva ADC drivers.
Verified on hardware: 0V->121, 3.3V->3876 on CH0(PB19) while
CH1(PB18) held steady, confirming sampling, full-scale and
multi-channel switch-list isolation.
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Assisted-by: Claude <noreply@anthropic.com>
Document the USART2 NSH console, USB FS pins, HSI48/CRS clock source and
the usb-cdc configuration that exposes a separate USB CDC/ACM serial
device.
Assisted-by: GitHub Copilot:claude-opus-5
Signed-off-by: jsanchez-2g <jsanchez@2g-eng.com>
Document the usb-cdc-uart configuration, which keeps NSH on the USART2
ST-LINK virtual COM port and exposes a separate USB CDC/ACM serial
device on the STM32 USB FS connector.
Assisted-by: GitHub Copilot:claude-opus-5
Signed-off-by: jsanchez-2g <jsanchez@2g-eng.com>
Add initial NuttX port for the original (white) BeagleBone board, which is
powered by the TI AM335x Sitara Cortex-A8 processor.
This commit includes:
- Board documentation
- Board support package files derived from BeagleBone black
- Architecture-specific page allocator for memory management in kernel build.
- Default configurations for both flat (`nsh`) and kernel (`knsh`) builds
running via U-Boot from a microSD card.
Signed-off-by: Lwazi Dube <lwazeh@gmail.com>
CONFIG_STM32F7_LCD_BACKLIGHT is not defined by any Kconfig, so the LTDC
backlight control is dead code. CONFIG_STM32F7_PLLSAI and
CONFIG_STM32F7_PLLI2S are defined by the board.h files, and the common
SPI test helper names its mode macros CONFIG_STM32F7_SPIx_TEST_MODE.
Use the common CONFIG_STM32_* names everywhere.
Also drop the misspelled CONFIG_STM32F7_STM33F75XX from the DMA chip
check, which already tests CONFIG_STM32_STM32F75XX.
The CAN section of the STM32F7 documentation names the options
CONFIG_STM32F7F7_CANx, which has a duplicated family prefix and never
existed. Use the common names there too.
Signed-off-by: raiden00pl <raiden00@railab.me>
Assisted-by: Claude Code
Wire the shared Ameba PWM driver (arch/arm/src/common/ameba/ameba_pwm.c)
to RTL8721F (amebagreen2). The chip spreads PWM across four four-channel
timers (TIM4..TIM7); this port drives TIM4 as the single time base with
four compare channels, matching the shared driver's model. A new
ameba_pwm_chip.h supplies the RTL8721F specifics taken from the SDK
fwlib headers: TIM4 at the non-secure base 0x41000000, 40 MHz input
clock, IRQ 11 (TIMER4_IRQ), crossbar pad-mux codes 111..114
(PINMUX_FUNCTION_TIM4_PWM0..3) and the distinct function/clock enable
bits (APBPeriph_PWM0 / APBPeriph_PWM0_CLOCK).
The board registers one timer at /dev/pwm0 with channel 1 on PB18 and
channel 2 on PB19 for the pwm example; edit the table to match a board's
wiring. The common driver is not touched.
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Assisted-by: Claude <noreply@anthropic.com>
Wire the shared Ameba PWM driver (arch/arm/src/common/ameba/ameba_pwm.c)
to RTL8720F. The chip spreads PWM across several four-channel timers
(TIM4/TIM5); this port drives TIM4 as the single time base with four
compare channels, matching the shared driver's model. A new
ameba_pwm_chip.h supplies the RTL8720F specifics taken from the SDK
fwlib headers: TIM4 at the non-secure base 0x401c7000, 40 MHz input
clock, IRQ 9 (TIMER4_IRQ), crossbar pad-mux codes 45..48
(PINMUX_FUNCTION_TIM4_PWM0..3) and the distinct function/clock enable
bits (APBPeriph_PWM0 / APBPeriph_PWM0_CLOCK).
The board registers one timer at /dev/pwm0 with channel 1 on PB18 and
channel 2 on PB19 for the pwm example; edit the table to match a board's
wiring. The common driver is not touched.
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Assisted-by: Claude <noreply@anthropic.com>
Add a shared NuttX PWM lower-half for the Realtek Ameba PWM timer in
arch/arm/src/common/ameba, driven through the SDK fwlib. TIM8 provides a
single time base feeding eight compare channels (CCR0..CCR7) that share one
frequency while each carries its own duty, so a single /dev/pwm0 exposes the
multichannel output via CONFIG_PWM_NCHANNELS. The fwlib PWM routines are
split ROM/RAM: the time-base calls resolve from on-chip ROM, while the
capture/compare calls live in fwlib ram_common/ameba_tim.c, which the build
pulls into AMEBA_FWLIB_SRCS when CONFIG_AMEBA_PWM is set.
Per-chip wiring (timer index, channel count, register base, input clock,
IRQ, clock masks and the crossbar pad-mux code table) lives in
arch/arm/src/rtl8721dx/ameba_pwm_chip.h so a port to another Ameba chip only
supplies a same-named header; the pad-mux codes are a per-channel table
(AMEBA_PWM_PINMUX_FIDS) rather than a computed base, so chips with a single
shared code or codes grouped per timer are expressed by the header alone.
The timer registers as /dev/pwm0 from pke8721daf bring-up through the stock
PWM character driver; a dedicated `pwm` defconfig drives examples/pwm for
validation.
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Assisted-by: Claude <noreply@anthropic.com>
EXTI is one of the supported peripherals and nucleo-h563zi has a
defconfig for the user button which demonstrates the interrupt
capability.
Signed-off-by: Liam Howatt <liamhowatt@geotab.com>
Wire the shared Ameba SPI (DesignWare SSI) driver
(arch/arm/src/common/ameba/ameba_spi.c) into the RTL8721F (amebagreen2)
build and expose the SPI0/SPI1 masters at /dev/spiN.
Add the per-chip ameba_spi_chip.h with the amebagreen2 controller bases
(0x40121000 / 0x40122000, non-secure aliases), the group-0 SPI clock masks
(bit14/bit15), and the per-signal crossbar pad-mux codes (SPI0 75/76/77/78,
SPI1 79/80/81/82). The SSI ip_clk is the PERI_HCLK-domain clock, which the
amebagreen2 fwlib exposes directly through HPERI_ClkGet(), so AMEBA_SPI_IPCLK()
is a single ROM call rather than the register poking the other ICs need.
Compile the common driver and the SDK fwlib SSI RAM source under
CONFIG_AMEBA_SPI, register the bus in the board bring-up, and add an "spi"
board configuration exercising the system/spi spitool.
Assisted-by: Claude <noreply@anthropic.com>
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Wire the shared Ameba SPI (DesignWare SSI) driver
(arch/arm/src/common/ameba/ameba_spi.c) into the RTL8720F build and expose
the SPI0/SPI1 masters at /dev/spiN.
Add the per-chip ameba_spi_chip.h with the RTL8720F controller bases
(0x401C1000 / 0x401C2000, non-secure aliases), the group-0 SPI clock masks,
the per-signal crossbar pad-mux codes (RTL8720F has no generic
PINMUX_FUNCTION_SPI), and the SYS_PLL-based ip_clk computation
(REG_LSYS_CKD_SYS_PLL_GRP0 HPERI divider). The chip header declares the
SYS_PLL_ClkGet() query its AMEBA_SPI_IPCLK() uses, since RTL8720F has no
PLL_ClkGet().
Compile the common driver and the SDK fwlib SSI RAM source under
CONFIG_AMEBA_SPI, register the bus in the board bring-up, and add an "spi"
board configuration exercising the system/spi spitool.
Assisted-by: Claude <noreply@anthropic.com>
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Add a shared NuttX SPI master lower-half for the Realtek Ameba SPI
controllers (SPI0/SPI1) in arch/arm/src/common/ameba, driven through the
SDK fwlib in polling mode with full-duplex exchange and a software chip
select. Per-chip wiring (controller count, register bases, clock masks,
crossbar pad-mux codes and the fwlib SSI_InitTypeDef layout) lives in
arch/arm/src/rtl8721dx/ameba_spi_chip.h so a port to the other Ameba
chips only supplies a same-named header.
Each controller registers as /dev/spiN from pke8721daf bring-up through
the stock SPI character driver; a dedicated `spi` defconfig drives the
spitool for validation.
Assisted-by: Claude <noreply@anthropic.com>
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
The I2C master driver support for the RTL8721Dx (pke8721daf) and RTL8721F
(rtl8721f_evb) boards was merged without the matching board documentation.
Add the missing I2C entry to each board's Features list and an "i2c"
configuration section describing the /dev/i2cN devices, the board pin
table, and the i2ctool usage, mirroring the existing gpio/uart sections.
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Assisted-by: Claude <noreply@anthropic.com>
Wire the RTL8720F to the shared Ameba I2C master driver
(arch/arm/src/common/ameba/ameba_i2c.c), reusing it unchanged.
Add the per-chip header arch/arm/src/rtl8720f/ameba_i2c_chip.h supplying
the chip's I2C wiring: two controllers (I2C0/I2C1) on their non-secure
register aliases (0x401c8000 / 0x401c9000), the APBPeriph function/clock
masks, the crossbar SCL/SDA pad-mux codes (59/60 and 61/62), and
AMEBA_I2C_HAS_DMA_FIELDS=1 (the chip's I2C_InitTypeDef carries the DMA
request-level fields).
Add the board glue: rtl8720f_i2c.c registers I2C0 at /dev/i2c0
(PA22/PA23) and I2C1 at /dev/i2c1 (PA24/PA25), plus the build wiring
(Make.defs / CMakeLists.txt / ameba_board.mk pull in the common driver
and the fwlib ram_common/ameba_i2c.c data-table source), the bringup
registration hook and the board header declaration.
Add the i2c defconfig (minimal NSH with the i2ctool) and document the
config in the board index.
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Assisted-by: Claude <noreply@anthropic.com>
Wire the shared common UART driver
(arch/arm/src/common/ameba/ameba_uart.c) into RTL8720F. Add an
ameba_uart_chip.h supplying the per-chip UART parameters: two
general-purpose controllers (UART0/UART1), their non-secure register
bases (0x401C3000 / 0x401C4000 -- the fwlib UART_DEV_TABLE points at
the non-secure alias), NVIC vectors, APBPeriph function/clock masks
and the crossbar TX/RX pad-mux function codes.
The fwlib ROM UART routines index data tables (UART_DEV_TABLE,
APBPeriph_UARTx) that live in fwlib ram_common/ameba_uart.c, so that
source is compiled in when CONFIG_AMEBA_UART is set. Wire
CONFIG_AMEBA_UART into Make.defs/CMakeLists/ameba_board.mk, add the
board port table (UART0 at /dev/ttyS1, PA22 TX / PA23 RX, 115200 8N1)
with bringup registration, a uart config and board documentation.
Hardware-verified on rtl8720f_evb: serialrx/serialblaster over a
PA22-to-PA23 TX/RX loopback transferred all 2600 bytes intact.
Assisted-by: Claude <noreply@anthropic.com>
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
RTL8720F drives all GPIO through a single 32-pin port A controller
served by one NVIC vector, unlike RTL8721Dx (ports A/B) or RTL8721F
(ports A/B/C). Add an ameba_gpio_chip.h that configures the shared
common GPIO driver (arch/arm/src/common/ameba/ameba_gpio.c) for a
single port: AMEBA_GPIO_NPORTS=1, AMEBA_GPIO_PORT_IRQS={GPIOA} and
the APBPeriph_GPIO gate bits.
GPIO_INTStatusGet/ClearEdge live in the RTL8720F ROM symbol table, so
no fwlib ram_common object needs compiling in. Wire CONFIG_AMEBA_GPIO
into Make.defs/CMakeLists/Kconfig, add the board pin table (PA22 out,
PA23 in, PA24 interrupt) with bringup registration and a gpio config.
Hardware-verified on rtl8720f_evb: output, input and (falling-edge)
interrupt all confirmed via a PA22-to-PA24 loopback.
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Assisted-by: Claude <noreply@anthropic.com>
QEMU's b-l475e-iot01a machine models the STM32L4x5 core peripherals, but
not the QUADSPI controller or the on-board MX25R6435F flash. The nsh
configuration therefore panics during board bring-up, inside
stm32_qspi_initialize() -> mx25rxx_initialize() -> qspi_command(), before
the console has produced any output.
Add a qemu configuration that is nsh without CONFIG_B_L475E_IOT01A_MTD_FLASH
and the QSPI/MTD/SMARTFS chain that symbol selects. It boots to an NSH
prompt on USART1 under:
qemu-system-arm -M b-l475e-iot01a -nographic -kernel nuttx
Document the new configuration, including the fact that QEMU's STM32L4x5
USART model never calls qemu_chr_fe_accept_input() after the guest reads
RDR. Console input consequently stalls after the first byte or two when a
line is pasted or piped in, although typing at human speed works.
Assisted-by: Claude Code:claude-opus-5
Signed-off-by: Marco Casaroli <marco.casaroli@gmail.com>
Add the board photo and replace the placeholder todo in the RTL8721F EVB
documentation index with a figure directive so the board page renders the
hardware image, matching the other Realtek board pages.
Signed-off-by: dechao_gong <dechao_gong@realsil.com.cn>
Assisted-by: Claude <noreply@anthropic.com>