the Tx is finished
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@@ -10,7 +10,6 @@ use embassy_time::{Duration, Timer};
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use {defmt_rtt as _, panic_probe as _};
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use embassy_stm32::{
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dma::Request,
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gpio::{Level, Output, Speed},
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peripherals::{GPDMA1_CH0, TIM6},
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rcc,
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@@ -18,7 +17,9 @@ use embassy_stm32::{
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};
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use embassy_stm32::Peri;
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use dma_gpio::gpio_dma_uart::{encode_uart_byte, write_uart_frames_to_pipe, GpioDmaBsrrTx, TIM6_UP_REQ};
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use dma_gpio::gpio_dma_uart::{
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write_uart_frames_to_pipe, GpioDmaBsrrTx, Parity, StopBits, UartConfig, TIM6_UP_REQ,
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};
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static PIPE: Pipe<CriticalSectionRawMutex, 256> = Pipe::new();
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@@ -26,10 +27,16 @@ static PIPE: Pipe<CriticalSectionRawMutex, 256> = Pipe::new();
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const BAUD: u32 = 115_200;
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const TX_PIN_BIT: u8 = 2; // PA2
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const UART_CFG: UartConfig = UartConfig {
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data_bits: 8,
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parity: Parity::None,
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stop_bits: StopBits::One,
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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_stm32::init(Default::default());
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info!("DMA Pipe -> GPIO UART-like TX (safe wrapper)");
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info!("DMA Pipe -> GPIO UART-like TX");
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// PA2 is the TX "wire"
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let _pa2 = Output::new(p.PA2, Level::High, Speed::VeryHigh);
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@@ -51,7 +58,12 @@ async fn main(spawner: Spawner) {
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// Example: transmit a string as UART frames via the Pipe
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loop {
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write_uart_frames_to_pipe(&PIPE, TX_PIN_BIT, b"Hello, DMA UART!\r\n").await;
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write_uart_frames_to_pipe(
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&PIPE,
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TX_PIN_BIT,
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b"Hello, DMA UART (configurable)!\r\n",
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&UART_CFG,
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).await;
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Timer::after(Duration::from_secs(2)).await;
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}
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}
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@@ -70,7 +82,6 @@ async fn dma_tx_task(ch: Peri<'static, GPDMA1_CH0>) {
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}
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let w = u32::from_le_bytes(b);
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// Log + send via DMA (timer-paced, 1 beat per bit time)
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info!("DMA write 0x{:08X} -> GPIOA.BSRR", w);
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tx.write_word(w).await;
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}
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@@ -6,7 +6,37 @@ use embassy_stm32::{
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};
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use embassy_sync::{blocking_mutex::raw::CriticalSectionRawMutex, pipe::Pipe};
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pub const TIM6_UP_REQ: Request = 4; // Table 137: tim6_upd_dma, strana 687
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pub const TIM6_UP_REQ: Request = 4; // Table 137: tim6_upd_dma, strana 687 STM32U5xx datasheet
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#[derive(Clone, Copy, Debug, PartialEq, Eq)]
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pub enum Parity {
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None,
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Even,
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Odd,
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}
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#[derive(Clone, Copy, Debug, PartialEq, Eq)]
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pub enum StopBits {
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One,
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Two,
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}
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#[derive(Clone, Copy, Debug)]
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pub struct UartConfig {
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pub data_bits: u8, // 5..=8 bitov strana 16 TI_uart
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pub parity: Parity,
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pub stop_bits: StopBits,
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}
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impl Default for UartConfig {
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fn default() -> Self {
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Self {
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data_bits: 8,
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parity: Parity::None,
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stop_bits: StopBits::One,
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}
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}
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}
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pub struct GpioDmaBsrrTx<'d> {
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ch: Peri<'d, GPDMA1_CH0>,
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@@ -43,41 +73,95 @@ impl<'d> GpioDmaBsrrTx<'d> {
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}
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}
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// Build 10 BSRR words for one UART frame (8N1) on a given GPIO bit.
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// start bit, 8 data bits LSB-first, stop bit
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// Build up to 12 BSRR words for one UART frame on a given GPIO bit.
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// Format: 1 START (low), N data (LSB first), optional PARITY, STOP(1/2 -> here 1 or 2 ticks).
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// BSRR je safe atomic write only shortcut
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pub fn encode_uart_byte(pin_bit: u8, data: u8) -> [u32; 10] {
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let mut words = [0u32; 10];
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pub fn encode_uart_byte_cfg(
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pin_bit: u8,
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data: u8,
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cfg: &UartConfig,
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out: &mut [u32; 12],
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) -> usize {
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// Dokumentacia strana 636 13.4.7
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// set bit - HIGH, reset bit - LOW
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// set bit - HIGH, reset bit - LOW (BSRR)
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let set_high = |bit: u8| -> u32 { 1u32 << bit };
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let set_low = |bit: u8| -> u32 { 1u32 << (bit as u32 + 16) };
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// start bit LOW
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words[0] = set_low(pin_bit);
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let mut idx = 0usize;
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// data bits, LSB first
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for i in 0..8 {
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let one = (data >> i) & 1 != 0;
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words[1 + i] = if one { set_high(pin_bit) } else { set_low(pin_bit) };
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// START bit (LOW)
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out[idx] = set_low(pin_bit);
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idx += 1;
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// Data bits, LSB first (5..=8)
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let nbits = cfg.data_bits.clamp(5, 8);
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for i in 0..nbits {
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let one = ((data >> i) & 1) != 0;
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out[idx] = if one { set_high(pin_bit) } else { set_low(pin_bit) };
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idx += 1;
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}
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// stop bit HIGH
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words[9] = set_high(pin_bit);
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words
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// Optional parity
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match cfg.parity {
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Parity::None => {}
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Parity::Even | Parity::Odd => {
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// Count ones
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let mask: u8 = if nbits == 8 { 0xFF } else { (1u16 << nbits) as u8 - 1 };
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let ones = (data & mask).count_ones() & 1; // 0=even, 1=odd
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let par_bit_is_one = match cfg.parity {
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Parity::Even => ones == 1, // make total ones even
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Parity::Odd => ones == 0, // make total ones odd
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_ => false,
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};
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out[idx] = if par_bit_is_one {
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set_high(pin_bit)
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} else {
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set_low(pin_bit)
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};
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idx += 1;
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}
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}
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// STOP bits (HIGH)
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// - STB=0 => 1 stop bit
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// - STB=1 => 2 stop bits
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let stop_ticks = match cfg.stop_bits {
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StopBits::One => 1usize,
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StopBits::Two => 2usize,
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};
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for _ in 0..stop_ticks {
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out[idx] = set_high(pin_bit);
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idx += 1;
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}
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idx
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}
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// Convenience: push UART frames for a whole byte slice into a Pipe.
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// Push UART frames for a whole byte slice into a Pipe.
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pub async fn write_uart_frames_to_pipe<const N: usize>(
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pipe: &Pipe<CriticalSectionRawMutex, N>,
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pin_bit: u8,
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bytes: &[u8],
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cfg: &UartConfig,
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) {
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for &b in bytes {
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let frames = encode_uart_byte(pin_bit, b);
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for w in frames {
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let mut frame = [0u32; 12];
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let used = encode_uart_byte_cfg(pin_bit, b, cfg, &mut frame);
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for w in &frame[..used] {
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pipe.write(&w.to_le_bytes()).await;
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}
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}
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}
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// Optional: emit a BREAK (line LOW for 'bits' bit-times).
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pub async fn write_break_to_pipe<const N: usize>(
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pipe: &Pipe<CriticalSectionRawMutex, N>,
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pin_bit: u8,
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bits: usize,
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) {
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let set_low = |bit: u8| -> u32 { 1u32 << (bit as u32 + 16) };
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let word = set_low(pin_bit);
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for _ in 0..bits {
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pipe.write(&word.to_le_bytes()).await;
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}
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}
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