145 lines
5.0 KiB
Rust
145 lines
5.0 KiB
Rust
//! Peripheral interrupt handling specific to cortex-m devices.
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use core::mem::MaybeUninit;
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use cortex_m::peripheral::scb::VectActive;
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use cortex_m::peripheral::{NVIC, SCB};
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use embassy_hal_common::{into_ref, Peripheral, PeripheralRef};
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use crate::interrupt::{Interrupt, InterruptExt, Priority};
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/// A type which can be used as state with `PeripheralMutex`.
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///
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/// It needs to be `Send` because `&mut` references are sent back and forth between the 'thread' which owns the `PeripheralMutex` and the interrupt,
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/// and `&mut T` is only `Send` where `T: Send`.
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pub trait PeripheralState: Send {
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/// The interrupt that is used for this peripheral.
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type Interrupt: Interrupt;
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/// The interrupt handler that should be invoked for the peripheral. Implementations need to clear the appropriate interrupt flags to ensure the handle will not be called again.
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fn on_interrupt(&mut self);
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}
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/// A type for storing the state of a peripheral that can be stored in a static.
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pub struct StateStorage<S>(MaybeUninit<S>);
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impl<S> StateStorage<S> {
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/// Create a new instance for storing peripheral state.
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pub const fn new() -> Self {
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Self(MaybeUninit::uninit())
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}
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}
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/// A type for a peripheral that keeps the state of a peripheral that can be accessed from thread mode and an interrupt handler in
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/// a safe way.
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pub struct PeripheralMutex<'a, S: PeripheralState> {
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state: *mut S,
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irq: PeripheralRef<'a, S::Interrupt>,
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}
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/// Whether `irq` can be preempted by the current interrupt.
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pub(crate) fn can_be_preempted(irq: &impl Interrupt) -> bool {
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match SCB::vect_active() {
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// Thread mode can't preempt anything.
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VectActive::ThreadMode => false,
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// Exceptions don't always preempt interrupts,
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// but there isn't much of a good reason to be keeping a `PeripheralMutex` in an exception anyway.
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VectActive::Exception(_) => true,
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VectActive::Interrupt { irqn } => {
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#[derive(Clone, Copy)]
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struct NrWrap(u16);
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unsafe impl cortex_m::interrupt::InterruptNumber for NrWrap {
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fn number(self) -> u16 {
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self.0
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}
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}
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NVIC::get_priority(NrWrap(irqn.into())) < irq.get_priority().into()
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}
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}
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}
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impl<'a, S: PeripheralState> PeripheralMutex<'a, S> {
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/// Create a new `PeripheralMutex` wrapping `irq`, with `init` initializing the initial state.
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///
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/// Registers `on_interrupt` as the `irq`'s handler, and enables it.
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pub fn new(
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irq: impl Peripheral<P = S::Interrupt> + 'a,
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storage: &'a mut StateStorage<S>,
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init: impl FnOnce() -> S,
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) -> Self {
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into_ref!(irq);
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if can_be_preempted(&*irq) {
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panic!(
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"`PeripheralMutex` cannot be created in an interrupt with higher priority than the interrupt it wraps"
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);
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}
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let state_ptr = storage.0.as_mut_ptr();
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// Safety: The pointer is valid and not used by anyone else
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// because we have the `&mut StateStorage`.
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unsafe { state_ptr.write(init()) };
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irq.disable();
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irq.set_handler(|p| unsafe {
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// Safety: it's OK to get a &mut to the state, since
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// - We checked that the thread owning the `PeripheralMutex` can't preempt us in `new`.
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// Interrupts' priorities can only be changed with raw embassy `Interrupts`,
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// which can't safely store a `PeripheralMutex` across invocations.
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// - We can't have preempted a with() call because the irq is disabled during it.
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let state = &mut *(p as *mut S);
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state.on_interrupt();
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});
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irq.set_handler_context(state_ptr as *mut ());
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irq.enable();
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Self { irq, state: state_ptr }
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}
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/// Access the peripheral state ensuring interrupts are disabled so that the state can be
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/// safely accessed.
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pub fn with<R>(&mut self, f: impl FnOnce(&mut S) -> R) -> R {
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self.irq.disable();
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// Safety: it's OK to get a &mut to the state, since the irq is disabled.
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let state = unsafe { &mut *self.state };
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let r = f(state);
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self.irq.enable();
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r
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}
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/// Returns whether the wrapped interrupt is currently in a pending state.
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pub fn is_pending(&self) -> bool {
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self.irq.is_pending()
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}
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/// Forces the wrapped interrupt into a pending state.
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pub fn pend(&self) {
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self.irq.pend()
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}
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/// Forces the wrapped interrupt out of a pending state.
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pub fn unpend(&self) {
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self.irq.unpend()
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}
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/// Gets the priority of the wrapped interrupt.
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pub fn priority(&self) -> Priority {
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self.irq.get_priority()
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}
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}
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impl<'a, S: PeripheralState> Drop for PeripheralMutex<'a, S> {
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fn drop(&mut self) {
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self.irq.disable();
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self.irq.remove_handler();
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// safety:
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// - we initialized the state in `new`, so we know it's initialized.
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// - the irq is disabled, so it won't preempt us while dropping.
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unsafe { self.state.drop_in_place() }
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}
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}
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