nrf/ppi: implement and add example
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3 changed files with 231 additions and 22 deletions
112
embassy-nrf-examples/src/bin/ppi.rs
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112
embassy-nrf-examples/src/bin/ppi.rs
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@ -0,0 +1,112 @@
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#![no_std]
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#![no_main]
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#![feature(min_type_alias_impl_trait)]
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#![feature(impl_trait_in_bindings)]
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#![feature(type_alias_impl_trait)]
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#![allow(incomplete_features)]
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#[path = "../example_common.rs"]
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mod example_common;
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use core::future::pending;
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use example_common::*;
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use cortex_m_rt::entry;
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use defmt::panic;
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use embassy::executor::{task, Executor};
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use embassy::util::Forever;
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use embassy_nrf::gpio::{Input, Level, Output, OutputDrive, Pull};
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use embassy_nrf::gpiote::{self, InputChannel, InputChannelPolarity};
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use embassy_nrf::ppi::Ppi;
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use embassy_nrf::{interrupt, Peripherals};
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use futures::future;
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use gpiote::{OutputChannel, OutputChannelPolarity};
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#[task]
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async fn run() {
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let p = Peripherals::take().unwrap();
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let g = gpiote::initialize(p.GPIOTE, interrupt::take!(GPIOTE));
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info!("Starting!");
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let button1 = InputChannel::new(
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g,
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p.GPIOTE_CH0,
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Input::new(p.P0_11, Pull::Up),
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InputChannelPolarity::HiToLo,
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);
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let button2 = InputChannel::new(
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g,
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p.GPIOTE_CH1,
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Input::new(p.P0_12, Pull::Up),
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InputChannelPolarity::HiToLo,
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);
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let button3 = InputChannel::new(
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g,
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p.GPIOTE_CH2,
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Input::new(p.P0_24, Pull::Up),
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InputChannelPolarity::HiToLo,
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);
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let button4 = InputChannel::new(
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g,
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p.GPIOTE_CH3,
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Input::new(p.P0_25, Pull::Up),
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InputChannelPolarity::HiToLo,
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);
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let led1 = OutputChannel::new(
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g,
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p.GPIOTE_CH4,
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Output::new(p.P0_13, Level::Low, OutputDrive::Standard),
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OutputChannelPolarity::Toggle,
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);
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let led2 = OutputChannel::new(
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g,
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p.GPIOTE_CH5,
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Output::new(p.P0_14, Level::Low, OutputDrive::Standard),
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OutputChannelPolarity::Toggle,
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);
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let mut ppi = Ppi::new(p.PPI_CH0);
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ppi.set_event(button1.event_in());
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ppi.set_task(led1.task_out());
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ppi.enable();
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let mut ppi = Ppi::new(p.PPI_CH1);
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ppi.set_event(button2.event_in());
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ppi.set_task(led1.task_clr());
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ppi.enable();
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let mut ppi = Ppi::new(p.PPI_CH2);
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ppi.set_event(button3.event_in());
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ppi.set_task(led1.task_set());
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ppi.enable();
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let mut ppi = Ppi::new(p.PPI_CH3);
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ppi.set_event(button4.event_in());
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ppi.set_task(led1.task_out());
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ppi.set_fork_task(led2.task_out());
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ppi.enable();
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info!("PPI setup!");
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info!("Press button 1 to toggle LED 1");
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info!("Press button 2 to turn on LED 1");
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info!("Press button 3 to turn off LED 1");
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info!("Press button 4 to toggle LEDs 1 and 2");
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// Block forever so the above drivers don't get dropped
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pending::<()>().await;
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}
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static EXECUTOR: Forever<Executor> = Forever::new();
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#[entry]
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fn main() -> ! {
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info!("Hello World!");
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let executor = EXECUTOR.put(Executor::new());
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executor.run(|spawner| {
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unwrap!(spawner.spawn(run()));
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});
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}
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@ -7,19 +7,15 @@ use embassy::interrupt::InterruptExt;
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use embassy::traits::gpio::{WaitForHigh, WaitForLow};
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use embassy::util::AtomicWaker;
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use embassy_extras::impl_unborrow;
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use embedded_hal::digital::v2::{InputPin, OutputPin, StatefulOutputPin};
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use embedded_hal::digital::v2::{InputPin, StatefulOutputPin};
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use futures::future::poll_fn;
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use crate::gpio::sealed::Pin as _;
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use crate::gpio::{AnyPin, Input, Output, Pin as GpioPin, Port, Pull};
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use crate::gpio::{AnyPin, Input, Output, Pin as GpioPin, Port};
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use crate::pac;
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use crate::pac::generic::Reg;
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use crate::pac::gpiote::_TASKS_OUT;
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use crate::ppi::{Event, Task};
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use crate::{interrupt, peripherals};
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#[cfg(not(feature = "51"))]
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use crate::pac::gpiote::{_TASKS_CLR, _TASKS_SET};
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pub const CHANNEL_COUNT: usize = 8;
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#[cfg(any(feature = "52833", feature = "52840"))]
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@ -53,7 +49,7 @@ pub struct Initialized {
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_private: (),
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}
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pub fn initialize(gpiote: peripherals::GPIOTE, irq: interrupt::GPIOTE) -> Initialized {
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pub fn initialize(_gpiote: peripherals::GPIOTE, irq: interrupt::GPIOTE) -> Initialized {
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#[cfg(any(feature = "52833", feature = "52840"))]
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let ports = unsafe { &[&*pac::P0::ptr(), &*pac::P1::ptr()] };
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#[cfg(not(any(feature = "52833", feature = "52840")))]
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@ -122,6 +118,7 @@ impl Iterator for BitIter {
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}
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}
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/// GPIOTE channel driver in input mode
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pub struct InputChannel<'d, C: Channel, T: GpioPin> {
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ch: C,
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pin: Input<'d, T>,
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@ -185,6 +182,12 @@ impl<'d, C: Channel, T: GpioPin> InputChannel<'d, C, T> {
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})
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.await;
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}
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/// Returns the IN event, for use with PPI.
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pub fn event_in(&self) -> Event {
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let g = unsafe { &*pac::GPIOTE::ptr() };
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Event::from_reg(&g.events_in[self.ch.number()])
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}
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}
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impl<'d, C: Channel, T: GpioPin> InputPin for InputChannel<'d, C, T> {
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@ -199,9 +202,10 @@ impl<'d, C: Channel, T: GpioPin> InputPin for InputChannel<'d, C, T> {
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}
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}
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/// GPIOTE channel driver in output mode
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pub struct OutputChannel<'d, C: Channel, T: GpioPin> {
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ch: C,
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pin: Output<'d, T>,
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_pin: Output<'d, T>,
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}
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impl<'d, C: Channel, T: GpioPin> Drop for OutputChannel<'d, C, T> {
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unsafe { w.psel().bits(pin.pin.pin()) }
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});
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OutputChannel { ch, pin }
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OutputChannel { ch, _pin: pin }
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}
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/// Triggers `task out` (as configured with task_out_polarity, defaults to Toggle).
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g.tasks_clr[self.ch.number()].write(|w| unsafe { w.bits(1) });
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}
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/// Returns reference to task_out endpoint for PPI.
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pub fn task_out(&self) -> &Reg<u32, _TASKS_OUT> {
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/// Returns the OUT task, for use with PPI.
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pub fn task_out(&self) -> Task {
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let g = unsafe { &*pac::GPIOTE::ptr() };
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&g.tasks_out[self.ch.number()]
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Task::from_reg(&g.tasks_out[self.ch.number()])
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}
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/// Returns reference to task_clr endpoint for PPI.
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/// Returns the CLR task, for use with PPI.
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#[cfg(not(feature = "51"))]
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pub fn task_clr(&self) -> &Reg<u32, _TASKS_CLR> {
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pub fn task_clr(&self) -> Task {
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let g = unsafe { &*pac::GPIOTE::ptr() };
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&g.tasks_clr[self.ch.number()]
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Task::from_reg(&g.tasks_clr[self.ch.number()])
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}
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/// Returns reference to task_set endpoint for PPI.
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/// Returns the SET task, for use with PPI.
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#[cfg(not(feature = "51"))]
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pub fn task_set(&self) -> &Reg<u32, _TASKS_SET> {
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pub fn task_set(&self) -> Task {
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let g = unsafe { &*pac::GPIOTE::ptr() };
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&g.tasks_set[self.ch.number()]
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Task::from_reg(&g.tasks_set[self.ch.number()])
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}
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}
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/// GPIO input driver with support
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/// GPIOTE port input driver
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pub struct PortInput<'d, T: GpioPin> {
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pin: Input<'d, T>,
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}
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//! On nRF52 devices, there is also a fork task endpoint, where the user can configure one more task
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//! to be triggered by the same event, even fixed PPI channels have a configurable fork task.
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use embassy_extras::impl_unborrow;
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use core::marker::PhantomData;
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use core::ptr::NonNull;
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use embassy::util::PeripheralBorrow;
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use embassy_extras::{impl_unborrow, unborrow};
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use crate::peripherals;
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use crate::{pac, peripherals};
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// ======================
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// driver
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pub struct Ppi<'d, C: Channel> {
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ch: C,
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phantom: PhantomData<&'d mut C>,
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}
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impl<'d, C: Channel> Ppi<'d, C> {
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pub fn new(ch: impl PeripheralBorrow<Target = C> + 'd) -> Self {
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unborrow!(ch);
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let mut this = Self {
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ch,
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phantom: PhantomData,
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};
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#[cfg(not(feature = "51"))]
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this.clear_fork_task();
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this
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}
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/// Enables the channel.
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pub fn enable(&mut self) {
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let r = unsafe { &*pac::PPI::ptr() };
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r.chenset
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.write(|w| unsafe { w.bits(1 << self.ch.number()) });
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}
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/// Disables the channel.
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pub fn disable(&mut self) {
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let r = unsafe { &*pac::PPI::ptr() };
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r.chenclr
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.write(|w| unsafe { w.bits(1 << self.ch.number()) });
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}
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#[cfg(not(feature = "51"))]
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/// Sets the fork task that must be triggered when the configured event occurs. The user must
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/// provide a reference to the task.
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pub fn set_fork_task(&mut self, task: Task) {
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let r = unsafe { &*pac::PPI::ptr() };
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r.fork[self.ch.number()]
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.tep
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.write(|w| unsafe { w.bits(task.0.as_ptr() as u32) })
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}
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#[cfg(not(feature = "51"))]
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/// Clear the fork task endpoint. Previously set task will no longer be triggered.
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pub fn clear_fork_task(&mut self) {
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let r = unsafe { &*pac::PPI::ptr() };
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r.fork[self.ch.number()].tep.write(|w| unsafe { w.bits(0) })
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}
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}
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impl<'d, C: Channel> Drop for Ppi<'d, C> {
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fn drop(&mut self) {
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self.disable()
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}
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}
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impl<'d, C: ConfigurableChannel> Ppi<'d, C> {
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/// Sets the task to be triggered when the configured event occurs.
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pub fn set_task(&mut self, task: Task) {
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let r = unsafe { &*pac::PPI::ptr() };
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r.ch[self.ch.number()]
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.tep
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.write(|w| unsafe { w.bits(task.0.as_ptr() as u32) })
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}
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/// Sets the event that will trigger the chosen task(s).
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pub fn set_event(&mut self, event: Event) {
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let r = unsafe { &*pac::PPI::ptr() };
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r.ch[self.ch.number()]
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.eep
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.write(|w| unsafe { w.bits(event.0.as_ptr() as u32) })
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}
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}
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// ======================
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// traits
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pub struct Task(pub NonNull<()>);
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impl Task {
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pub(crate) fn from_reg<T>(reg: &T) -> Self {
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Self(unsafe { NonNull::new_unchecked(reg as *const _ as *mut ()) })
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}
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}
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pub struct Event(pub NonNull<()>);
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impl Event {
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pub(crate) fn from_reg<T>(reg: &T) -> Self {
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Self(unsafe { NonNull::new_unchecked(reg as *const _ as *mut ()) })
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}
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}
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mod sealed {
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pub trait ConfigurableChannel {}
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pub trait Channel {}
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