use core::future::Future;
use core::marker::PhantomData;
use core::pin::Pin;
use core::task::{Context, Poll};
use embassy_hal_internal::{into_ref, PeripheralRef};
use super::low_level::{CountingMode, FilterValue, InputCaptureMode, InputTISelection, Timer};
use super::{
CaptureCompareInterruptHandler, Channel, Channel1Pin, Channel2Pin, Channel3Pin, Channel4Pin,
GeneralInstance4Channel,
};
use crate::gpio::{AfType, AnyPin, Pull};
use crate::interrupt::typelevel::{Binding, Interrupt};
use crate::time::Hertz;
use crate::Peripheral;
pub enum Ch1 {}
pub enum Ch2 {}
pub enum Ch3 {}
pub enum Ch4 {}
pub struct CapturePin<'d, T, C> {
_pin: PeripheralRef<'d, AnyPin>,
phantom: PhantomData<(T, C)>,
}
macro_rules! channel_impl {
($new_chx:ident, $channel:ident, $pin_trait:ident) => {
impl<'d, T: GeneralInstance4Channel> CapturePin<'d, T, $channel> {
#[doc = concat!("Create a new ", stringify!($channel), " capture pin instance.")]
pub fn $new_chx(pin: impl Peripheral<P = impl $pin_trait<T>> + 'd, pull: Pull) -> Self {
into_ref!(pin);
pin.set_as_af(pin.af_num(), AfType::input(pull));
CapturePin {
_pin: pin.map_into(),
phantom: PhantomData,
}
}
}
};
}
channel_impl!(new_ch1, Ch1, Channel1Pin);
channel_impl!(new_ch2, Ch2, Channel2Pin);
channel_impl!(new_ch3, Ch3, Channel3Pin);
channel_impl!(new_ch4, Ch4, Channel4Pin);
pub struct InputCapture<'d, T: GeneralInstance4Channel> {
inner: Timer<'d, T>,
}
impl<'d, T: GeneralInstance4Channel> InputCapture<'d, T> {
pub fn new(
tim: impl Peripheral<P = T> + 'd,
_ch1: Option<CapturePin<'d, T, Ch1>>,
_ch2: Option<CapturePin<'d, T, Ch2>>,
_ch3: Option<CapturePin<'d, T, Ch3>>,
_ch4: Option<CapturePin<'d, T, Ch4>>,
_irq: impl Binding<T::CaptureCompareInterrupt, CaptureCompareInterruptHandler<T>> + 'd,
freq: Hertz,
counting_mode: CountingMode,
) -> Self {
Self::new_inner(tim, freq, counting_mode)
}
fn new_inner(tim: impl Peripheral<P = T> + 'd, freq: Hertz, counting_mode: CountingMode) -> Self {
let mut this = Self { inner: Timer::new(tim) };
this.inner.set_counting_mode(counting_mode);
this.inner.set_tick_freq(freq);
this.inner.enable_outputs(); this.inner.start();
T::CaptureCompareInterrupt::unpend();
unsafe { T::CaptureCompareInterrupt::enable() };
this
}
pub fn enable(&mut self, channel: Channel) {
self.inner.enable_channel(channel, true);
}
pub fn disable(&mut self, channel: Channel) {
self.inner.enable_channel(channel, false);
}
pub fn is_enabled(&self, channel: Channel) -> bool {
self.inner.get_channel_enable_state(channel)
}
pub fn set_input_capture_mode(&mut self, channel: Channel, mode: InputCaptureMode) {
self.inner.set_input_capture_mode(channel, mode);
}
pub fn set_input_ti_selection(&mut self, channel: Channel, tisel: InputTISelection) {
self.inner.set_input_ti_selection(channel, tisel)
}
pub fn get_capture_value(&self, channel: Channel) -> u32 {
self.inner.get_capture_value(channel)
}
pub fn get_input_interrupt(&self, channel: Channel) -> bool {
self.inner.get_input_interrupt(channel)
}
fn new_future(&self, channel: Channel, mode: InputCaptureMode, tisel: InputTISelection) -> InputCaptureFuture<T> {
self.inner.set_input_ti_selection(channel, tisel);
self.inner.set_input_capture_filter(channel, FilterValue::NO_FILTER);
self.inner.set_input_capture_mode(channel, mode);
self.inner.set_input_capture_prescaler(channel, 0);
self.inner.enable_channel(channel, true);
self.inner.enable_input_interrupt(channel, true);
InputCaptureFuture {
channel,
phantom: PhantomData,
}
}
pub async fn wait_for_rising_edge(&mut self, channel: Channel) -> u32 {
self.new_future(channel, InputCaptureMode::Rising, InputTISelection::Normal)
.await
}
pub async fn wait_for_falling_edge(&mut self, channel: Channel) -> u32 {
self.new_future(channel, InputCaptureMode::Falling, InputTISelection::Normal)
.await
}
pub async fn wait_for_any_edge(&mut self, channel: Channel) -> u32 {
self.new_future(channel, InputCaptureMode::BothEdges, InputTISelection::Normal)
.await
}
pub async fn wait_for_rising_edge_alternate(&mut self, channel: Channel) -> u32 {
self.new_future(channel, InputCaptureMode::Rising, InputTISelection::Alternate)
.await
}
pub async fn wait_for_falling_edge_alternate(&mut self, channel: Channel) -> u32 {
self.new_future(channel, InputCaptureMode::Falling, InputTISelection::Alternate)
.await
}
pub async fn wait_for_any_edge_alternate(&mut self, channel: Channel) -> u32 {
self.new_future(channel, InputCaptureMode::BothEdges, InputTISelection::Alternate)
.await
}
}
#[must_use = "futures do nothing unless you `.await` or poll them"]
struct InputCaptureFuture<T: GeneralInstance4Channel> {
channel: Channel,
phantom: PhantomData<T>,
}
impl<T: GeneralInstance4Channel> Drop for InputCaptureFuture<T> {
fn drop(&mut self) {
critical_section::with(|_| {
let regs = unsafe { crate::pac::timer::TimGp16::from_ptr(T::regs()) };
regs.dier().modify(|w| w.set_ccie(self.channel.index(), false));
});
}
}
impl<T: GeneralInstance4Channel> Future for InputCaptureFuture<T> {
type Output = u32;
fn poll(self: Pin<&mut Self>, cx: &mut Context<'_>) -> Poll<Self::Output> {
T::state().cc_waker[self.channel.index()].register(cx.waker());
let regs = unsafe { crate::pac::timer::TimGp16::from_ptr(T::regs()) };
let dier = regs.dier().read();
if !dier.ccie(self.channel.index()) {
let val = regs.ccr(self.channel.index()).read().0;
Poll::Ready(val)
} else {
Poll::Pending
}
}
}