mirror of
https://github.com/embassy-rs/embassy.git
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Merge pull request #2846 from BjornTheProgrammer/main
Added PIO pwm examples for rp
This commit is contained in:
commit
5b0735688d
118
examples/rp/src/bin/pio_pwm.rs
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118
examples/rp/src/bin/pio_pwm.rs
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//! This example shows how to create a pwm using the PIO module in the RP2040 chip.
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#![no_std]
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#![no_main]
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use core::time::Duration;
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use embassy_executor::Spawner;
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use embassy_rp::gpio::Level;
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use embassy_rp::peripherals::PIO0;
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use embassy_rp::pio::{Common, Config, Direction, Instance, InterruptHandler, Pio, PioPin, StateMachine};
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use embassy_rp::{bind_interrupts, clocks};
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use embassy_time::Timer;
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use pio::InstructionOperands;
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use {defmt_rtt as _, panic_probe as _};
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const REFRESH_INTERVAL: u64 = 20000;
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bind_interrupts!(struct Irqs {
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PIO0_IRQ_0 => InterruptHandler<PIO0>;
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});
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pub fn to_pio_cycles(duration: Duration) -> u32 {
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(clocks::clk_sys_freq() / 1_000_000) / 3 * duration.as_micros() as u32 // parentheses are required to prevent overflow
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}
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pub struct PwmPio<'d, T: Instance, const SM: usize> {
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sm: StateMachine<'d, T, SM>,
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}
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impl<'d, T: Instance, const SM: usize> PwmPio<'d, T, SM> {
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pub fn new(pio: &mut Common<'d, T>, mut sm: StateMachine<'d, T, SM>, pin: impl PioPin) -> Self {
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let prg = pio_proc::pio_asm!(
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".side_set 1 opt"
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"pull noblock side 0"
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"mov x, osr"
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"mov y, isr"
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"countloop:"
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"jmp x!=y noset"
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"jmp skip side 1"
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"noset:"
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"nop"
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"skip:"
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"jmp y-- countloop"
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);
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pio.load_program(&prg.program);
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let pin = pio.make_pio_pin(pin);
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sm.set_pins(Level::High, &[&pin]);
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sm.set_pin_dirs(Direction::Out, &[&pin]);
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let mut cfg = Config::default();
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cfg.use_program(&pio.load_program(&prg.program), &[&pin]);
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sm.set_config(&cfg);
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Self { sm }
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}
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pub fn start(&mut self) {
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self.sm.set_enable(true);
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}
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pub fn stop(&mut self) {
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self.sm.set_enable(false);
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}
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pub fn set_period(&mut self, duration: Duration) {
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let is_enabled = self.sm.is_enabled();
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while !self.sm.tx().empty() {} // Make sure that the queue is empty
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self.sm.set_enable(false);
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self.sm.tx().push(to_pio_cycles(duration));
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unsafe {
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self.sm.exec_instr(
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InstructionOperands::PULL {
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if_empty: false,
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block: false,
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}
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.encode(),
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);
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self.sm.exec_instr(
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InstructionOperands::OUT {
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destination: ::pio::OutDestination::ISR,
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bit_count: 32,
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}
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.encode(),
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);
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};
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if is_enabled {
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self.sm.set_enable(true) // Enable if previously enabled
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}
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}
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pub fn set_level(&mut self, level: u32) {
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self.sm.tx().push(level);
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}
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pub fn write(&mut self, duration: Duration) {
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self.set_level(to_pio_cycles(duration));
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}
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}
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#[embassy_executor::main]
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async fn main(_spawner: Spawner) {
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let p = embassy_rp::init(Default::default());
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let Pio { mut common, sm0, .. } = Pio::new(p.PIO0, Irqs);
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// Note that PIN_25 is the led pin on the Pico
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let mut pwm_pio = PwmPio::new(&mut common, sm0, p.PIN_25);
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pwm_pio.set_period(Duration::from_micros(REFRESH_INTERVAL));
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pwm_pio.start();
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let mut duration = 0;
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loop {
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duration = (duration + 1) % 1000;
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pwm_pio.write(Duration::from_micros(duration));
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Timer::after_millis(1).await;
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}
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}
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208
examples/rp/src/bin/pio_servo.rs
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208
examples/rp/src/bin/pio_servo.rs
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//! This example shows how to create a pwm using the PIO module in the RP2040 chip.
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#![no_std]
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#![no_main]
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use core::time::Duration;
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use embassy_executor::Spawner;
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use embassy_rp::gpio::Level;
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use embassy_rp::peripherals::PIO0;
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use embassy_rp::pio::{Common, Config, Direction, Instance, InterruptHandler, Pio, PioPin, StateMachine};
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use embassy_rp::{bind_interrupts, clocks};
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use embassy_time::Timer;
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use pio::InstructionOperands;
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use {defmt_rtt as _, panic_probe as _};
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const DEFAULT_MIN_PULSE_WIDTH: u64 = 1000; // uncalibrated default, the shortest duty cycle sent to a servo
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const DEFAULT_MAX_PULSE_WIDTH: u64 = 2000; // uncalibrated default, the longest duty cycle sent to a servo
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const DEFAULT_MAX_DEGREE_ROTATION: u64 = 160; // 160 degrees is typical
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const REFRESH_INTERVAL: u64 = 20000; // The period of each cycle
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bind_interrupts!(struct Irqs {
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PIO0_IRQ_0 => InterruptHandler<PIO0>;
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});
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pub fn to_pio_cycles(duration: Duration) -> u32 {
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(clocks::clk_sys_freq() / 1_000_000) / 3 * duration.as_micros() as u32 // parentheses are required to prevent overflow
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}
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pub struct PwmPio<'d, T: Instance, const SM: usize> {
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sm: StateMachine<'d, T, SM>,
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}
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impl<'d, T: Instance, const SM: usize> PwmPio<'d, T, SM> {
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pub fn new(pio: &mut Common<'d, T>, mut sm: StateMachine<'d, T, SM>, pin: impl PioPin) -> Self {
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let prg = pio_proc::pio_asm!(
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".side_set 1 opt"
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"pull noblock side 0"
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"mov x, osr"
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"mov y, isr"
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"countloop:"
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"jmp x!=y noset"
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"jmp skip side 1"
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"noset:"
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"nop"
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"skip:"
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"jmp y-- countloop"
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);
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pio.load_program(&prg.program);
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let pin = pio.make_pio_pin(pin);
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sm.set_pins(Level::High, &[&pin]);
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sm.set_pin_dirs(Direction::Out, &[&pin]);
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let mut cfg = Config::default();
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cfg.use_program(&pio.load_program(&prg.program), &[&pin]);
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sm.set_config(&cfg);
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Self { sm }
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}
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pub fn start(&mut self) {
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self.sm.set_enable(true);
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}
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pub fn stop(&mut self) {
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self.sm.set_enable(false);
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}
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pub fn set_period(&mut self, duration: Duration) {
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let is_enabled = self.sm.is_enabled();
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while !self.sm.tx().empty() {} // Make sure that the queue is empty
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self.sm.set_enable(false);
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self.sm.tx().push(to_pio_cycles(duration));
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unsafe {
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self.sm.exec_instr(
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InstructionOperands::PULL {
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if_empty: false,
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block: false,
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}
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.encode(),
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);
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self.sm.exec_instr(
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InstructionOperands::OUT {
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destination: ::pio::OutDestination::ISR,
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bit_count: 32,
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}
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.encode(),
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);
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};
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if is_enabled {
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self.sm.set_enable(true) // Enable if previously enabled
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}
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}
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pub fn set_level(&mut self, level: u32) {
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self.sm.tx().push(level);
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}
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pub fn write(&mut self, duration: Duration) {
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self.set_level(to_pio_cycles(duration));
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}
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}
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pub struct ServoBuilder<'d, T: Instance, const SM: usize> {
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pwm: PwmPio<'d, T, SM>,
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period: Duration,
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min_pulse_width: Duration,
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max_pulse_width: Duration,
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max_degree_rotation: u64,
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}
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impl<'d, T: Instance, const SM: usize> ServoBuilder<'d, T, SM> {
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pub fn new(pwm: PwmPio<'d, T, SM>) -> Self {
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Self {
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pwm,
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period: Duration::from_micros(REFRESH_INTERVAL),
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min_pulse_width: Duration::from_micros(DEFAULT_MIN_PULSE_WIDTH),
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max_pulse_width: Duration::from_micros(DEFAULT_MAX_PULSE_WIDTH),
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max_degree_rotation: DEFAULT_MAX_DEGREE_ROTATION,
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}
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}
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pub fn set_period(mut self, duration: Duration) -> Self {
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self.period = duration;
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self
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}
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pub fn set_min_pulse_width(mut self, duration: Duration) -> Self {
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self.min_pulse_width = duration;
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self
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}
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pub fn set_max_pulse_width(mut self, duration: Duration) -> Self {
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self.max_pulse_width = duration;
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self
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}
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pub fn set_max_degree_rotation(mut self, degree: u64) -> Self {
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self.max_degree_rotation = degree;
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self
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}
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pub fn build(mut self) -> Servo<'d, T, SM> {
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self.pwm.set_period(self.period);
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Servo {
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pwm: self.pwm,
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min_pulse_width: self.min_pulse_width,
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max_pulse_width: self.max_pulse_width,
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max_degree_rotation: self.max_degree_rotation,
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}
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}
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}
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pub struct Servo<'d, T: Instance, const SM: usize> {
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pwm: PwmPio<'d, T, SM>,
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min_pulse_width: Duration,
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max_pulse_width: Duration,
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max_degree_rotation: u64,
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}
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impl<'d, T: Instance, const SM: usize> Servo<'d, T, SM> {
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pub fn start(&mut self) {
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self.pwm.start();
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}
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pub fn stop(&mut self) {
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self.pwm.stop();
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}
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pub fn write_time(&mut self, duration: Duration) {
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self.pwm.write(duration);
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}
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pub fn rotate(&mut self, degree: u64) {
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let degree_per_nano_second = (self.max_pulse_width.as_nanos() as u64 - self.min_pulse_width.as_nanos() as u64)
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/ self.max_degree_rotation;
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let mut duration =
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Duration::from_nanos(degree * degree_per_nano_second + self.min_pulse_width.as_nanos() as u64);
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if self.max_pulse_width < duration {
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duration = self.max_pulse_width;
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}
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self.pwm.write(duration);
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}
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}
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#[embassy_executor::main]
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async fn main(_spawner: Spawner) {
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let p = embassy_rp::init(Default::default());
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let Pio { mut common, sm0, .. } = Pio::new(p.PIO0, Irqs);
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let pwm_pio = PwmPio::new(&mut common, sm0, p.PIN_1);
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let mut servo = ServoBuilder::new(pwm_pio)
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.set_max_degree_rotation(120) // Example of adjusting values for MG996R servo
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.set_min_pulse_width(Duration::from_micros(350)) // This value was detemined by a rough experiment.
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.set_max_pulse_width(Duration::from_micros(2600)) // Along with this value.
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.build();
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servo.start();
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let mut degree = 0;
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loop {
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degree = (degree + 1) % 120;
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servo.rotate(degree);
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Timer::after_millis(50).await;
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}
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}
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