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https://github.com/embassy-rs/embassy.git
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rp/timer: add
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c210a6efd1
commit
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@ -3,10 +3,16 @@ use proc_macro2::TokenStream;
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use quote::quote;
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pub fn generate(embassy_prefix: &ModulePrefix, config: syn::Expr) -> TokenStream {
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let embassy_path = embassy_prefix.append("embassy").path();
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let embassy_rp_path = embassy_prefix.append("embassy_rp").path();
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quote!(
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use #embassy_rp_path::{interrupt, peripherals};
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let p = #embassy_rp_path::init(#config);
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let alarm = unsafe { <#embassy_rp_path::peripherals::TIMER_ALARM0 as #embassy_path::util::Steal>::steal() };
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let mut alarm = #embassy_rp_path::timer::Alarm::new(alarm);
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let alarm = unsafe { make_static(&mut alarm) };
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executor.set_alarm(alarm);
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)
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}
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@ -22,6 +22,6 @@ cortex-m-rt = "0.6.13"
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cortex-m = "0.7.1"
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critical-section = "0.2.1"
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rp2040-pac2 = { git = "https://github.com/embassy-rs/rp2040-pac2", rev="91fa122b4923fdc02462a39ec109b161aedb29b4", features = ["rt"] }
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#rp2040-pac2 = { path = "../../rp/rp2040-pac2" }
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rp2040-pac2 = { git = "https://github.com/embassy-rs/rp2040-pac2", rev="2ce29ba58ad904d3995ce65bb46807e853f1fbf9", features = ["rt"] }
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#rp2040-pac2 = { path = "../../rp/rp2040-pac2", features = ["rt"] }
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embedded-hal = { version = "0.2.4", features = [ "unproven" ] }
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@ -4,6 +4,7 @@ use crate::{pac, reset};
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const XOSC_MHZ: u32 = 12;
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/// safety: must be called exactly once at bootup
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pub unsafe fn init() {
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// Reset everything except:
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// - QSPI (we're using it to run this code!)
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@ -11,10 +11,12 @@ pub use rp2040_pac2 as pac;
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pub(crate) mod fmt;
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pub mod interrupt;
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pub use embassy_macros::interrupt;
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pub mod dma;
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pub mod gpio;
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pub mod spi;
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pub mod timer;
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pub mod uart;
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mod clocks;
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@ -64,6 +66,11 @@ embassy_extras::peripherals! {
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SPI0,
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SPI1,
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TIMER_ALARM0,
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TIMER_ALARM1,
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TIMER_ALARM2,
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TIMER_ALARM3,
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DMA_CH0,
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DMA_CH1,
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DMA_CH2,
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@ -100,6 +107,7 @@ pub fn init(_config: config::Config) -> Peripherals {
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unsafe {
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clocks::init();
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timer::init();
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}
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peripherals
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187
embassy-rp/src/timer.rs
Normal file
187
embassy-rp/src/timer.rs
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@ -0,0 +1,187 @@
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use core::cell::Cell;
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use critical_section::CriticalSection;
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use embassy::interrupt::{Interrupt, InterruptExt};
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use embassy::util::CriticalSectionMutex as Mutex;
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use crate::{interrupt, pac};
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struct AlarmState {
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timestamp: Cell<u64>,
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callback: Cell<Option<(fn(*mut ()), *mut ())>>,
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}
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unsafe impl Send for AlarmState {}
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const ALARM_COUNT: usize = 4;
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const DUMMY_ALARM: AlarmState = AlarmState {
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timestamp: Cell::new(0),
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callback: Cell::new(None),
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};
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static ALARMS: Mutex<[AlarmState; ALARM_COUNT]> = Mutex::new([DUMMY_ALARM; ALARM_COUNT]);
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fn now() -> u64 {
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loop {
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unsafe {
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let hi = pac::TIMER.timerawh().read();
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let lo = pac::TIMER.timerawl().read();
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let hi2 = pac::TIMER.timerawh().read();
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if hi == hi2 {
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return (hi as u64) << 32 | (lo as u64);
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}
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}
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}
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}
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struct Timer;
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impl embassy::time::Clock for Timer {
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fn now(&self) -> u64 {
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now()
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}
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}
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pub trait AlarmInstance {
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fn alarm_num(&self) -> usize;
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}
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impl AlarmInstance for crate::peripherals::TIMER_ALARM0 {
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fn alarm_num(&self) -> usize {
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0
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}
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}
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impl AlarmInstance for crate::peripherals::TIMER_ALARM1 {
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fn alarm_num(&self) -> usize {
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1
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}
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}
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impl AlarmInstance for crate::peripherals::TIMER_ALARM2 {
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fn alarm_num(&self) -> usize {
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2
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}
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}
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impl AlarmInstance for crate::peripherals::TIMER_ALARM3 {
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fn alarm_num(&self) -> usize {
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3
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}
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}
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pub struct Alarm<T: AlarmInstance> {
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inner: T,
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}
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impl<T: AlarmInstance> Alarm<T> {
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pub fn new(inner: T) -> Self {
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Self { inner }
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}
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}
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impl<T: AlarmInstance> embassy::time::Alarm for Alarm<T> {
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fn set_callback(&self, callback: fn(*mut ()), ctx: *mut ()) {
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let n = self.inner.alarm_num();
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critical_section::with(|cs| {
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let alarm = &ALARMS.borrow(cs)[n];
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alarm.callback.set(Some((callback, ctx)));
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})
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}
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fn set(&self, timestamp: u64) {
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let n = self.inner.alarm_num();
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critical_section::with(|cs| {
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let alarm = &ALARMS.borrow(cs)[n];
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alarm.timestamp.set(timestamp);
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// Arm it.
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// Note that we're not checking the high bits at all. This means the irq may fire early
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// if the alarm is more than 72 minutes (2^32 us) in the future. This is OK, since on irq fire
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// it is checked if the alarm time has passed.
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unsafe { pac::TIMER.alarm(n).write_value(timestamp as u32) };
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let now = now();
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// If alarm timestamp has passed, trigger it instantly.
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// This disarms it.
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if timestamp <= now {
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trigger_alarm(n, cs);
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}
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})
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}
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fn clear(&self) {
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self.set(u64::MAX);
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}
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}
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fn check_alarm(n: usize) {
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critical_section::with(|cs| {
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let alarm = &ALARMS.borrow(cs)[n];
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let timestamp = alarm.timestamp.get();
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if timestamp <= now() {
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trigger_alarm(n, cs)
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} else {
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// Not elapsed, arm it again.
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// This can happen if it was set more than 2^32 us in the future.
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unsafe { pac::TIMER.alarm(n).write_value(timestamp as u32) };
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}
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});
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// clear the irq
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unsafe { pac::TIMER.intr().write(|w| w.set_alarm(n, true)) }
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}
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fn trigger_alarm(n: usize, cs: CriticalSection) {
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// disarm
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unsafe { pac::TIMER.armed().write(|w| w.set_armed(1 << n)) }
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let alarm = &ALARMS.borrow(cs)[n];
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alarm.timestamp.set(u64::MAX);
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// Call after clearing alarm, so the callback can set another alarm.
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if let Some((f, ctx)) = alarm.callback.get() {
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f(ctx);
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}
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}
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/// safety: must be called exactly once at bootup
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pub unsafe fn init() {
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// init alarms
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critical_section::with(|cs| {
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let alarms = ALARMS.borrow(cs);
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for a in alarms {
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a.timestamp.set(u64::MAX);
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}
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});
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// enable all irqs
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pac::TIMER.inte().write(|w| {
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w.set_alarm(0, true);
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w.set_alarm(1, true);
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w.set_alarm(2, true);
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w.set_alarm(3, true);
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});
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interrupt::TIMER_IRQ_0::steal().enable();
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interrupt::TIMER_IRQ_1::steal().enable();
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interrupt::TIMER_IRQ_2::steal().enable();
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interrupt::TIMER_IRQ_3::steal().enable();
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embassy::time::set_clock(&Timer);
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}
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#[interrupt]
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unsafe fn TIMER_IRQ_0() {
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check_alarm(0)
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}
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#[interrupt]
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unsafe fn TIMER_IRQ_1() {
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check_alarm(1)
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}
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#[interrupt]
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unsafe fn TIMER_IRQ_2() {
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check_alarm(2)
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}
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#[interrupt]
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unsafe fn TIMER_IRQ_3() {
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check_alarm(3)
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}
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@ -11,6 +11,7 @@ mod example_common;
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use defmt::*;
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use embassy::executor::Spawner;
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use embassy::time::{Duration, Timer};
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use embassy_rp::{gpio, Peripherals};
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use gpio::{Level, Output};
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@ -21,10 +22,10 @@ async fn main(_spawner: Spawner, p: Peripherals) {
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loop {
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info!("led on!");
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led.set_high();
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cortex_m::asm::delay(1_000_000);
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Timer::after(Duration::from_secs(1)).await;
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info!("led off!");
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led.set_low();
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cortex_m::asm::delay(1_000_000);
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Timer::after(Duration::from_secs(1)).await;
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}
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}
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