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<h1 class="menu-title">Real-Time Interrupt-driven Concurrency</h1>
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<h1 at/after="">Monotonic &amp; spawn_</h1>
<p>The understanding of time is an important concept in embedded systems, and to be able to run tasks
based on time is essential. The framework provides the static methods
<code>task::spawn_after(/* duration */)</code> and <code>task::spawn_at(/* specific time instant */)</code>.
<code>spawn_after</code> is more commonly used, but in cases where it's needed to have spawns happen
without drift or to a fixed baseline <code>spawn_at</code> is available.</p>
<p>The <code>#[monotonic]</code> attribute, applied to a type alias definition, exists to support this.
This type alias must point to a type which implements the <a href="https://docs.rs/rtic-monotonic"><code>rtic_monotonic::Monotonic</code></a> trait.
This is generally some timer which handles the timing of the system.
One or more monotonics can coexist in the same system, for example a slow timer that wakes the
system from sleep and another which purpose is for fine grained scheduling while the
system is awake.</p>
<p>The attribute has one required parameter and two optional parameters, <code>binds</code>, <code>default</code> and
<code>priority</code> respectively.
The required parameter, <code>binds = InterruptName</code>, associates an interrupt vector to the timer's
interrupt, while <code>default = true</code> enables a shorthand API when spawning and accessing
time (<code>monotonics::now()</code> vs <code>monotonics::MyMono::now()</code>), and <code>priority</code> sets the priority
of the interrupt vector.</p>
<blockquote>
<p>The default <code>priority</code> is the <strong>maximum priority</strong> of the system.
If your system has a high priority task with tight scheduling requirements,
it might be desirable to demote the <code>monotonic</code> task to a lower priority
to reduce scheduling jitter for the high priority task.
This however might introduce jitter and delays into scheduling via the <code>monotonic</code>,
making it a trade-off.</p>
</blockquote>
<p>The monotonics are initialized in <code>#[init]</code> and returned within the <code>init::Monotonic( ... )</code> tuple.
This activates the monotonics making it possible to use them.</p>
<p>See the following example:</p>
<pre><pre class="playground"><code class="language-rust"><span class="boring">#![allow(unused)]
</span><span class="boring">fn main() {
</span>//! examples/schedule.rs
#![deny(unsafe_code)]
#![deny(warnings)]
#![deny(missing_docs)]
#![no_main]
#![no_std]
use panic_semihosting as _;
#[rtic::app(device = lm3s6965, dispatchers = [SSI0])]
mod app {
use cortex_m_semihosting::{debug, hprintln};
use systick_monotonic::*;
#[monotonic(binds = SysTick, default = true)]
type MyMono = Systick&lt;100&gt;; // 100 Hz / 10 ms granularity
#[shared]
struct Shared {}
#[local]
struct Local {}
#[init]
fn init(cx: init::Context) -&gt; (Shared, Local, init::Monotonics) {
let systick = cx.core.SYST;
// Initialize the monotonic (SysTick rate in QEMU is 12 MHz)
let mono = Systick::new(systick, 12_000_000);
hprintln!("init");
// Schedule `foo` to run 1 second in the future
foo::spawn_after(1.secs()).unwrap();
(
Shared {},
Local {},
init::Monotonics(mono), // Give the monotonic to RTIC
)
}
#[task]
fn foo(_: foo::Context) {
hprintln!("foo");
// Schedule `bar` to run 2 seconds in the future (1 second after foo runs)
bar::spawn_after(1.secs()).unwrap();
}
#[task]
fn bar(_: bar::Context) {
hprintln!("bar");
// Schedule `baz` to run 1 seconds from now, but with a specific time instant.
baz::spawn_at(monotonics::now() + 1.secs()).unwrap();
}
#[task]
fn baz(_: baz::Context) {
hprintln!("baz");
debug::exit(debug::EXIT_SUCCESS); // Exit QEMU simulator
}
}
<span class="boring">}</span></code></pre></pre>
<pre><code class="language-console">$ cargo run --target thumbv7m-none-eabi --example schedule
init
foo
bar
baz
</code></pre>
<p>A key requirement of a Monotonic is that it must deal gracefully with
hardware timer overruns.</p>
<h2 id="canceling-or-rescheduling-a-scheduled-task"><a class="header" href="#canceling-or-rescheduling-a-scheduled-task">Canceling or rescheduling a scheduled task</a></h2>
<p>Tasks spawned using <code>task::spawn_after</code> and <code>task::spawn_at</code> returns a <code>SpawnHandle</code>,
which allows canceling or rescheduling of the task scheduled to run in the future.</p>
<p>If <code>cancel</code> or <code>reschedule_at</code>/<code>reschedule_after</code> returns an <code>Err</code> it means that the operation was
too late and that the task is already sent for execution. The following example shows this in action:</p>
<pre><pre class="playground"><code class="language-rust"><span class="boring">#![allow(unused)]
</span><span class="boring">fn main() {
</span>//! examples/cancel-reschedule.rs
#![deny(unsafe_code)]
#![deny(warnings)]
#![deny(missing_docs)]
#![no_main]
#![no_std]
use panic_semihosting as _;
#[rtic::app(device = lm3s6965, dispatchers = [SSI0])]
mod app {
use cortex_m_semihosting::{debug, hprintln};
use systick_monotonic::*;
#[monotonic(binds = SysTick, default = true)]
type MyMono = Systick&lt;100&gt;; // 100 Hz / 10 ms granularity
#[shared]
struct Shared {}
#[local]
struct Local {}
#[init]
fn init(cx: init::Context) -&gt; (Shared, Local, init::Monotonics) {
let systick = cx.core.SYST;
// Initialize the monotonic (SysTick rate in QEMU is 12 MHz)
let mono = Systick::new(systick, 12_000_000);
hprintln!("init");
// Schedule `foo` to run 1 second in the future
foo::spawn_after(1.secs()).unwrap();
(
Shared {},
Local {},
init::Monotonics(mono), // Give the monotonic to RTIC
)
}
#[task]
fn foo(_: foo::Context) {
hprintln!("foo");
// Schedule `bar` to run 2 seconds in the future (1 second after foo runs)
let spawn_handle = baz::spawn_after(2.secs()).unwrap();
bar::spawn_after(1.secs(), spawn_handle, false).unwrap(); // Change to true
}
#[task]
fn bar(_: bar::Context, baz_handle: baz::SpawnHandle, do_reschedule: bool) {
hprintln!("bar");
if do_reschedule {
// Reschedule baz 2 seconds from now, instead of the original 1 second
// from now.
baz_handle.reschedule_after(2.secs()).unwrap();
// Or baz_handle.reschedule_at(/* time */)
} else {
// Or cancel it
baz_handle.cancel().unwrap();
debug::exit(debug::EXIT_SUCCESS); // Exit QEMU simulator
}
}
#[task]
fn baz(_: baz::Context) {
hprintln!("baz");
debug::exit(debug::EXIT_SUCCESS); // Exit QEMU simulator
}
}
<span class="boring">}</span></code></pre></pre>
<pre><code class="language-console">$ cargo run --target thumbv7m-none-eabi --example cancel-reschedule
init
foo
bar
</code></pre>
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