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//! Interrupts
use core::cell::UnsafeCell;
/// A "mutex" based on critical sections
pub struct Mutex<T> {
inner: UnsafeCell<T>,
}
impl<T> Mutex<T> {
/// Creates a new mutex
pub const fn new(value: T) -> Self {
Mutex { inner: UnsafeCell::new(value) }
}
}
impl<T> Mutex<T> {
/// Gets access to the inner data
///
/// NOTE this prevents interrupts handlers from running thus gaining
/// exclusive access to the processor
pub fn lock<F, R>(&self, f: F) -> R
where F: FnOnce(&mut T) -> R
{
unsafe { ::interrupt::free(|_| f(&mut *self.inner.get())) }
}
}
/// Interrupt number
pub unsafe trait Nr {
/// Returns the number associated with this interrupt
fn nr(&self) -> u8;
}
// FIXME `T` should have some bound: `Send` or `Sync`?
unsafe impl<T> Sync for Mutex<T> {}
/// Disable interrupts, globally
#[inline(always)]
pub fn disable() {
match () {
#[cfg(target_arch = "arm")]
() => unsafe {
asm!("cpsid i"
:
:
:
: "volatile");
},
#[cfg(not(target_arch = "arm"))]
() => {}
}
}
/// Enable interrupts, globally
#[inline(always)]
pub fn enable() {
match () {
#[cfg(target_arch = "arm")]
() => unsafe {
asm!("cpsie i"
:
:
:
: "volatile");
},
#[cfg(not(target_arch = "arm"))]
() => {}
}
}
/// Critical section token
///
/// Indicates that you are executing code within a critical section
pub struct CsCtxt {
_0: (),
}
/// Execute closure `f` in an interrupt-free context.
///
/// This as also known as a "critical section".
pub fn free<F, R>(f: F) -> R
where F: FnOnce(&CsCtxt) -> R
{
let primask = ::register::primask::read();
// disable interrupts
disable();
let r = f(&CsCtxt { _0: () });
// If the interrupts were active before our `disable` call, then re-enable
// them. Otherwise, keep them disabled
if primask.is_active() {
enable();
}
r
}
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