Merge pull request #2351 from jewel-rs/feat/radio
[embassry_nrf]: add BLE Radio driver
This commit is contained in:
commit
b806800f23
4 changed files with 523 additions and 0 deletions
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@ -173,6 +173,9 @@ embassy_hal_internal::peripherals! {
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// I2S
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I2S,
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// Radio
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RADIO,
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}
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impl_usb!(USBD, USBD, USBD);
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@ -311,6 +314,8 @@ impl_saadc_input!(P0_31, ANALOG_INPUT7);
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impl_i2s!(I2S, I2S, I2S);
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impl_radio!(RADIO, RADIO, RADIO);
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embassy_hal_internal::interrupt_mod!(
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POWER_CLOCK,
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RADIO,
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@ -45,6 +45,11 @@ pub mod buffered_uarte;
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pub mod gpio;
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#[cfg(feature = "gpiote")]
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pub mod gpiote;
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// TODO: tested on other chips
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#[cfg(any(feature = "nrf52840"))]
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pub mod radio;
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#[cfg(any(feature = "nrf52832", feature = "nrf52833", feature = "nrf52840"))]
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pub mod i2s;
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pub mod nvmc;
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438
embassy-nrf/src/radio/ble.rs
Normal file
438
embassy-nrf/src/radio/ble.rs
Normal file
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@ -0,0 +1,438 @@
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//! Radio driver implementation focused on Bluetooth Low-Energy transmission.
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use core::future::poll_fn;
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use core::sync::atomic::{compiler_fence, Ordering};
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use core::task::Poll;
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use embassy_hal_internal::drop::OnDrop;
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use embassy_hal_internal::{into_ref, PeripheralRef};
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pub use pac::radio::mode::MODE_A as Mode;
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use pac::radio::pcnf0::PLEN_A as PreambleLength;
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use pac::radio::state::STATE_A as RadioState;
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pub use pac::radio::txpower::TXPOWER_A as TxPower;
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use crate::interrupt::typelevel::Interrupt;
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use crate::radio::*;
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use crate::util::slice_in_ram_or;
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/// RADIO error.
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#[derive(Debug, Clone, Copy, PartialEq, Eq)]
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#[cfg_attr(feature = "defmt", derive(defmt::Format))]
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#[non_exhaustive]
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pub enum Error {
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/// Buffer was too long.
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BufferTooLong,
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/// Buffer was to short.
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BufferTooShort,
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/// The buffer is not in data RAM. It is most likely in flash, and nRF's DMA cannot access flash.
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BufferNotInRAM,
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}
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/// Radio driver.
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pub struct Radio<'d, T: Instance> {
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_p: PeripheralRef<'d, T>,
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}
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impl<'d, T: Instance> Radio<'d, T> {
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/// Create a new radio driver.
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pub fn new(
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radio: impl Peripheral<P = T> + 'd,
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_irq: impl interrupt::typelevel::Binding<T::Interrupt, InterruptHandler<T>> + 'd,
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) -> Self {
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into_ref!(radio);
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let r = T::regs();
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r.pcnf1.write(|w| unsafe {
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// It is 0 bytes long in a standard BLE packet
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w.statlen()
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.bits(0)
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// MaxLen configures the maximum packet payload plus add-on size in
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// number of bytes that can be transmitted or received by the RADIO. This feature can be used to ensure
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// that the RADIO does not overwrite, or read beyond, the RAM assigned to the packet payload. This means
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// that if the packet payload length defined by PCNF1.STATLEN and the LENGTH field in the packet specifies a
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// packet larger than MAXLEN, the payload will be truncated at MAXLEN
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//
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// To simplify the implementation, It is setted as the maximum value
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// and the length of the packet is controlled only by the LENGTH field in the packet
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.maxlen()
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.bits(255)
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// Configure the length of the address field in the packet
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// The prefix after the address fields is always appended, so is always 1 byte less than the size of the address
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// The base address is truncated from the least significant byte if the BALEN is less than 4
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//
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// BLE address is always 4 bytes long
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.balen()
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.bits(3) // 3 bytes base address (+ 1 prefix);
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// Configure the endianess
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// For BLE is always little endian (LSB first)
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.endian()
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.little()
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// Data whitening is used to avoid long sequences of zeros or
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// ones, e.g., 0b0000000 or 0b1111111, in the data bit stream.
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// The whitener and de-whitener are defined the same way,
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// using a 7-bit linear feedback shift register with the
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// polynomial x7 + x4 + 1.
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//
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// In BLE Whitening shall be applied on the PDU and CRC of all
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// Link Layer packets and is performed after the CRC generation
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// in the transmitter. No other parts of the packets are whitened.
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// De-whitening is performed before the CRC checking in the receiver
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// Before whitening or de-whitening, the shift register should be
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// initialized based on the channel index.
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.whiteen()
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.set_bit()
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});
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// Configure CRC
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r.crccnf.write(|w| {
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// In BLE the CRC shall be calculated on the PDU of all Link Layer
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// packets (even if the packet is encrypted).
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// It skips the address field
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w.skipaddr()
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.skip()
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// In BLE 24-bit CRC = 3 bytes
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.len()
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.three()
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});
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// Ch map between 2400 MHZ .. 2500 MHz
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// All modes use this range
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r.frequency.write(|w| w.map().default());
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// Configure shortcuts to simplify and speed up sending and receiving packets.
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r.shorts.write(|w| {
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// start transmission/recv immediately after ramp-up
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// disable radio when transmission/recv is done
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w.ready_start().enabled().end_disable().enabled()
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});
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// Enable NVIC interrupt
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T::Interrupt::unpend();
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unsafe { T::Interrupt::enable() };
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Self { _p: radio }
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}
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fn state(&self) -> RadioState {
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match T::regs().state.read().state().variant() {
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Some(s) => s,
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None => unreachable!(),
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}
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}
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#[allow(dead_code)]
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fn trace_state(&self) {
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match self.state() {
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RadioState::DISABLED => trace!("radio:state:DISABLED"),
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RadioState::RX_RU => trace!("radio:state:RX_RU"),
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RadioState::RX_IDLE => trace!("radio:state:RX_IDLE"),
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RadioState::RX => trace!("radio:state:RX"),
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RadioState::RX_DISABLE => trace!("radio:state:RX_DISABLE"),
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RadioState::TX_RU => trace!("radio:state:TX_RU"),
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RadioState::TX_IDLE => trace!("radio:state:TX_IDLE"),
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RadioState::TX => trace!("radio:state:TX"),
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RadioState::TX_DISABLE => trace!("radio:state:TX_DISABLE"),
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}
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}
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/// Set the radio mode
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///
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/// The radio must be disabled before calling this function
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pub fn set_mode(&mut self, mode: Mode) {
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assert!(self.state() == RadioState::DISABLED);
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let r = T::regs();
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r.mode.write(|w| w.mode().variant(mode));
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r.pcnf0.write(|w| {
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w.plen().variant(match mode {
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Mode::BLE_1MBIT => PreambleLength::_8BIT,
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Mode::BLE_2MBIT => PreambleLength::_16BIT,
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Mode::BLE_LR125KBIT | Mode::BLE_LR500KBIT => PreambleLength::LONG_RANGE,
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_ => unimplemented!(),
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})
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});
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}
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/// Set the header size changing the S1's len field
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///
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/// The radio must be disabled before calling this function
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pub fn set_header_expansion(&mut self, use_s1_field: bool) {
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assert!(self.state() == RadioState::DISABLED);
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let r = T::regs();
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// s1 len in bits
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let s1len: u8 = match use_s1_field {
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false => 0,
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true => 8,
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};
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r.pcnf0.write(|w| unsafe {
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w
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// Configure S0 to 1 byte length, this will represent the Data/Adv header flags
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.s0len()
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.set_bit()
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// Configure the length (in bits) field to 1 byte length, this will represent the length of the payload
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// and also be used to know how many bytes to read/write from/to the buffer
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.lflen()
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.bits(8)
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// Configure the lengh (in bits) of bits in the S1 field. It could be used to represent the CTEInfo for data packages in BLE.
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.s1len()
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.bits(s1len)
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});
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}
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/// Set initial data whitening value
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/// Data whitening is used to avoid long sequences of zeros or ones, e.g., 0b0000000 or 0b1111111, in the data bit stream
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/// On BLE the initial value is the channel index | 0x40
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///
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/// The radio must be disabled before calling this function
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pub fn set_whitening_init(&mut self, whitening_init: u8) {
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assert!(self.state() == RadioState::DISABLED);
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let r = T::regs();
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r.datawhiteiv.write(|w| unsafe { w.datawhiteiv().bits(whitening_init) });
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}
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/// Set the central frequency to be used
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/// It should be in the range 2400..2500
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///
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/// [The radio must be disabled before calling this function](https://devzone.nordicsemi.com/f/nordic-q-a/15829/radio-frequency-change)
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pub fn set_frequency(&mut self, frequency: u32) {
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assert!(self.state() == RadioState::DISABLED);
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assert!((2400..=2500).contains(&frequency));
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let r = T::regs();
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r.frequency
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.write(|w| unsafe { w.frequency().bits((frequency - 2400) as u8) });
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}
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/// Set the acess address
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/// This address is always constants for advertising
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/// And a random value generate on each connection
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/// It is used to filter the packages
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///
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/// The radio must be disabled before calling this function
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pub fn set_access_address(&mut self, access_address: u32) {
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assert!(self.state() == RadioState::DISABLED);
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let r = T::regs();
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// Configure logical address
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// The byte ordering on air is always least significant byte first for the address
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// So for the address 0xAA_BB_CC_DD, the address on air will be DD CC BB AA
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// The package order is BASE, PREFIX so BASE=0xBB_CC_DD and PREFIX=0xAA
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r.prefix0
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.write(|w| unsafe { w.ap0().bits((access_address >> 24) as u8) });
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// The base address is truncated from the least significant byte (because the BALEN is less than 4)
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// So it shifts the address to the right
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r.base0.write(|w| unsafe { w.bits(access_address << 8) });
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// Don't match tx address
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r.txaddress.write(|w| unsafe { w.txaddress().bits(0) });
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// Match on logical address
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// This config only filter the packets by the address,
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// so only packages send to the previous address
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// will finish the reception (TODO: check the explanation)
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r.rxaddresses.write(|w| {
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w.addr0()
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.enabled()
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.addr1()
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.enabled()
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.addr2()
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.enabled()
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.addr3()
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.enabled()
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.addr4()
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.enabled()
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});
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}
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/// Set the CRC polynomial
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/// It only uses the 24 least significant bits
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///
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/// The radio must be disabled before calling this function
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pub fn set_crc_poly(&mut self, crc_poly: u32) {
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assert!(self.state() == RadioState::DISABLED);
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let r = T::regs();
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r.crcpoly.write(|w| unsafe {
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// Configure the CRC polynomial
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// Each term in the CRC polynomial is mapped to a bit in this
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// register which index corresponds to the term's exponent.
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// The least significant term/bit is hard-wired internally to
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// 1, and bit number 0 of the register content is ignored by
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// the hardware. The following example is for an 8 bit CRC
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// polynomial: x8 + x7 + x3 + x2 + 1 = 1 1000 1101 .
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w.crcpoly().bits(crc_poly & 0xFFFFFF)
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});
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}
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/// Set the CRC init value
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/// It only uses the 24 least significant bits
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/// The CRC initial value varies depending of the PDU type
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///
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/// The radio must be disabled before calling this function
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pub fn set_crc_init(&mut self, crc_init: u32) {
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assert!(self.state() == RadioState::DISABLED);
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let r = T::regs();
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r.crcinit.write(|w| unsafe { w.crcinit().bits(crc_init & 0xFFFFFF) });
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}
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/// Set the radio tx power
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///
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/// The radio must be disabled before calling this function
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pub fn set_tx_power(&mut self, tx_power: TxPower) {
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assert!(self.state() == RadioState::DISABLED);
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let r = T::regs();
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r.txpower.write(|w| w.txpower().variant(tx_power));
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}
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/// Set buffer to read/write
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///
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/// This method is unsound. You should guarantee that the buffer will live
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/// for the life time of the transmission or if the buffer will be modified.
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/// Also if the buffer is smaller than the packet length, the radio will
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/// read/write memory out of the buffer bounds.
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fn set_buffer(&mut self, buffer: &[u8]) -> Result<(), Error> {
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slice_in_ram_or(buffer, Error::BufferNotInRAM)?;
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let r = T::regs();
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// Here it consider that the length of the packet is
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// correctly set in the buffer, otherwise it will send
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// unowned regions of memory
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let ptr = buffer.as_ptr();
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// Configure the payload
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r.packetptr.write(|w| unsafe { w.bits(ptr as u32) });
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Ok(())
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}
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/// Send packet
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/// If the length byte in the package is greater than the buffer length
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/// the radio will read memory out of the buffer bounds
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pub async fn transmit(&mut self, buffer: &[u8]) -> Result<(), Error> {
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self.set_buffer(buffer)?;
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let r = T::regs();
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self.trigger_and_wait_end(move || {
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// Initialize the transmission
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// trace!("txen");
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r.tasks_txen.write(|w| w.tasks_txen().set_bit());
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})
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.await;
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Ok(())
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}
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/// Receive packet
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/// If the length byte in the received package is greater than the buffer length
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/// the radio will write memory out of the buffer bounds
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pub async fn receive(&mut self, buffer: &mut [u8]) -> Result<(), Error> {
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self.set_buffer(buffer)?;
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let r = T::regs();
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self.trigger_and_wait_end(move || {
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// Initialize the transmission
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// trace!("rxen");
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r.tasks_rxen.write(|w| w.tasks_rxen().set_bit());
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})
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.await;
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Ok(())
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}
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async fn trigger_and_wait_end(&mut self, trigger: impl FnOnce()) {
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//self.trace_state();
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let r = T::regs();
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let s = T::state();
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// If the Future is dropped before the end of the transmission
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// it disable the interrupt and stop the transmission
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// to keep the state consistent
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let drop = OnDrop::new(|| {
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trace!("radio drop: stopping");
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r.intenclr.write(|w| w.end().clear());
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r.events_end.reset();
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r.tasks_stop.write(|w| w.tasks_stop().set_bit());
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// The docs don't explicitly mention any event to acknowledge the stop task
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while r.events_end.read().events_end().bit_is_clear() {}
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trace!("radio drop: stopped");
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});
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// trace!("radio:enable interrupt");
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// Clear some remnant side-effects (TODO: check if this is necessary)
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r.events_end.reset();
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// Enable interrupt
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r.intenset.write(|w| w.end().set());
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compiler_fence(Ordering::SeqCst);
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// Trigger the transmission
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trigger();
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// self.trace_state();
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// On poll check if interrupt happen
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poll_fn(|cx| {
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s.end_waker.register(cx.waker());
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if r.events_end.read().events_end().bit_is_set() {
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// trace!("radio:end");
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return core::task::Poll::Ready(());
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}
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Poll::Pending
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})
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.await;
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compiler_fence(Ordering::SeqCst);
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r.events_disabled.reset(); // ACK
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// Everthing ends fine, so it disable the drop
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drop.defuse();
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}
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/// Disable the radio
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fn disable(&mut self) {
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let r = T::regs();
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compiler_fence(Ordering::SeqCst);
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// If it is already disabled, do nothing
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if self.state() != RadioState::DISABLED {
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trace!("radio:disable");
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// Trigger the disable task
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r.tasks_disable.write(|w| w.tasks_disable().set_bit());
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// Wait until the radio is disabled
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while r.events_disabled.read().events_disabled().bit_is_clear() {}
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compiler_fence(Ordering::SeqCst);
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// Acknowledge it
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r.events_disabled.reset();
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}
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}
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}
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impl<'d, T: Instance> Drop for Radio<'d, T> {
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fn drop(&mut self) {
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self.disable();
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}
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}
|
75
embassy-nrf/src/radio/mod.rs
Normal file
75
embassy-nrf/src/radio/mod.rs
Normal file
|
@ -0,0 +1,75 @@
|
|||
//! Integrated 2.4 GHz Radio
|
||||
//!
|
||||
//! The 2.4 GHz radio transceiver is compatible with multiple radio standards
|
||||
//! such as 1Mbps, 2Mbps and Long Range Bluetooth Low Energy.
|
||||
|
||||
#![macro_use]
|
||||
|
||||
/// Bluetooth Low Energy Radio driver.
|
||||
pub mod ble;
|
||||
|
||||
use core::marker::PhantomData;
|
||||
|
||||
use crate::{interrupt, pac, Peripheral};
|
||||
|
||||
/// Interrupt handler
|
||||
pub struct InterruptHandler<T: Instance> {
|
||||
_phantom: PhantomData<T>,
|
||||
}
|
||||
|
||||
impl<T: Instance> interrupt::typelevel::Handler<T::Interrupt> for InterruptHandler<T> {
|
||||
unsafe fn on_interrupt() {
|
||||
let r = T::regs();
|
||||
let s = T::state();
|
||||
|
||||
if r.events_end.read().events_end().bit_is_set() {
|
||||
s.end_waker.wake();
|
||||
r.intenclr.write(|w| w.end().clear());
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
pub(crate) mod sealed {
|
||||
use embassy_sync::waitqueue::AtomicWaker;
|
||||
|
||||
pub struct State {
|
||||
/// end packet transmission or reception
|
||||
pub end_waker: AtomicWaker,
|
||||
}
|
||||
impl State {
|
||||
pub const fn new() -> Self {
|
||||
Self {
|
||||
end_waker: AtomicWaker::new(),
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
pub trait Instance {
|
||||
fn regs() -> &'static crate::pac::radio::RegisterBlock;
|
||||
fn state() -> &'static State;
|
||||
}
|
||||
}
|
||||
|
||||
macro_rules! impl_radio {
|
||||
($type:ident, $pac_type:ident, $irq:ident) => {
|
||||
impl crate::radio::sealed::Instance for peripherals::$type {
|
||||
fn regs() -> &'static pac::radio::RegisterBlock {
|
||||
unsafe { &*pac::$pac_type::ptr() }
|
||||
}
|
||||
|
||||
fn state() -> &'static crate::radio::sealed::State {
|
||||
static STATE: crate::radio::sealed::State = crate::radio::sealed::State::new();
|
||||
&STATE
|
||||
}
|
||||
}
|
||||
impl crate::radio::Instance for peripherals::$type {
|
||||
type Interrupt = crate::interrupt::typelevel::$irq;
|
||||
}
|
||||
};
|
||||
}
|
||||
|
||||
/// Radio peripheral instance.
|
||||
pub trait Instance: Peripheral<P = Self> + sealed::Instance + 'static + Send {
|
||||
/// Interrupt for this peripheral.
|
||||
type Interrupt: interrupt::typelevel::Interrupt;
|
||||
}
|
Loading…
Reference in a new issue