mirror of
https://github.com/ByteWelder/Tactility.git
synced 2026-08-17 23:55:04 +00:00
Adds sub-GHz radio support to Tactility as a first-class kernel device type, plus a driver for the Semtech SX1262. Continues the radio work discussed in #342, brought up to the current kernel driver model (rather than the deprecated tt::hal layer the earlier prototype targeted).
969 lines
32 KiB
C++
969 lines
32 KiB
C++
// SPDX-License-Identifier: Apache-2.0
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#include "sx1262_radio.h"
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#include "sx126x_radiolib_hal.h"
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#include <tactility/concurrent/event_group.h>
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#include <tactility/delay.h>
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#include <tactility/drivers/gpio_controller.h>
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#include <tactility/log.h>
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#include <algorithm>
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#include <initializer_list>
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#include <RadioLib.h>
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#define TAG "sx1262"
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namespace {
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// TX-done wait is derived from the packet's time-on-air: fixed timeouts either
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// false-time-out on slow configs (high SF / narrow BW, airtime up to seconds) or
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// wait needlessly long on fast ones. The margin covers PA ramp and command latency;
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// the fallback is used only when RadioLib can't compute airtime for the modem config.
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constexpr auto SX1262_TX_TIMEOUT_MARGIN_MILLIS = 1000;
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constexpr auto SX1262_TX_TIMEOUT_FALLBACK_MILLIS = 2000;
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constexpr uint32_t SX1262_INTERRUPT_BIT = (1 << 0);
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constexpr uint32_t SX1262_DIO1_EVENT_BIT = (1 << 1);
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constexpr uint32_t SX1262_QUEUED_TX_BIT = (1 << 2);
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constexpr auto SX1262_IRQ_FLAGS = RADIOLIB_IRQ_RX_DEFAULT_FLAGS;
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// RX callbacks run on the radio thread and may do non-trivial work (e.g. packet decryption)
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constexpr size_t SX1262_THREAD_STACK_SIZE = 8192;
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const char* toString(enum LoraRadioState state) {
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switch (state) {
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case LORA_RADIO_STATE_OFF:
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return "off";
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case LORA_RADIO_STATE_ON_PENDING:
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return "on-pending";
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case LORA_RADIO_STATE_ON:
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return "on";
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case LORA_RADIO_STATE_OFF_PENDING:
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return "off-pending";
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case LORA_RADIO_STATE_ERROR:
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return "error";
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default:
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return "unknown";
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}
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}
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const char* toString(enum LoraModulation modulation) {
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switch (modulation) {
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case LORA_MODULATION_NONE:
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return "none";
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case LORA_MODULATION_FSK:
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return "FSK";
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case LORA_MODULATION_LORA:
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return "LoRa";
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case LORA_MODULATION_LR_FHSS:
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return "LR-FHSS";
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default:
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return "unknown";
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}
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}
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const char* toString(enum LoraParameter parameter) {
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switch (parameter) {
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case LORA_PARAMETER_POWER:
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return "power";
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case LORA_PARAMETER_BOOSTED_GAIN:
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return "boosted gain";
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case LORA_PARAMETER_FREQUENCY:
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return "frequency";
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case LORA_PARAMETER_BANDWIDTH:
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return "bandwidth";
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case LORA_PARAMETER_SPREADING_FACTOR:
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return "spreading factor";
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case LORA_PARAMETER_CODING_RATE:
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return "coding rate";
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case LORA_PARAMETER_SYNC_WORD:
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return "sync word";
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case LORA_PARAMETER_PREAMBLE_LENGTH:
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return "preamble length";
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case LORA_PARAMETER_FREQUENCY_DEVIATION:
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return "frequency deviation";
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case LORA_PARAMETER_DATA_RATE:
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return "data rate";
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case LORA_PARAMETER_NARROW_GRID:
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return "narrow grid";
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case LORA_PARAMETER_CURRENT_LIMIT:
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return "current limit";
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default:
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return "unknown";
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}
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}
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template<typename T>
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constexpr error_t checkLimitsAndApply(T& target, const int32_t value, const int32_t lower, const int32_t upper, const int32_t step = 0) {
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if ((value >= lower) && (value <= upper)) {
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if ((step != 0) && ((value % step) != 0)) {
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return ERROR_OUT_OF_RANGE;
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}
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target = static_cast<T>(value);
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return ERROR_NONE;
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}
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return ERROR_OUT_OF_RANGE;
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}
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template<typename T>
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constexpr error_t checkValuesAndApply(T& target, const int32_t value, std::initializer_list<int32_t> valids) {
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for (int32_t valid : valids) {
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if (value == valid) {
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target = static_cast<T>(value);
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return ERROR_NONE;
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}
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}
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return ERROR_OUT_OF_RANGE;
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}
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} // namespace
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struct Sx1262Radio::RadioParts {
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Sx126xRadiolibHal hal;
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Module radioModule;
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SX1262 radio;
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explicit RadioParts(const Settings& settings)
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: hal(settings.spi_host, settings.spi_frequency_hz, settings.spi_controller)
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, radioModule(&hal, settings.pin_cs, RADIOLIB_NC, settings.pin_reset, settings.pin_busy)
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, radio(&radioModule) {}
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};
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Sx1262Radio::Sx1262Radio(const Settings& settings)
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: settings(settings) {
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recursive_mutex_construct(&mutex);
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event_group_construct(&events);
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parts = new RadioParts(settings);
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}
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Sx1262Radio::~Sx1262Radio() {
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setEnabled(false);
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delete parts;
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event_group_destruct(&events);
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recursive_mutex_destruct(&mutex);
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}
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error_t Sx1262Radio::probe() const {
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// NRESET output, idle high. BUSY input with a pull-up: an absent or unpowered
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// module leaves BUSY floating, and the pull-up parks it high so the ready
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// check below can't false-pass on a floating line.
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gpio_config_t reset_conf = {
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.pin_bit_mask = (1ULL << settings.pin_reset),
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.mode = GPIO_MODE_OUTPUT,
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.pull_up_en = GPIO_PULLUP_DISABLE,
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.pull_down_en = GPIO_PULLDOWN_DISABLE,
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.intr_type = GPIO_INTR_DISABLE,
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};
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gpio_config(&reset_conf);
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gpio_set_level(settings.pin_reset, 1);
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gpio_config_t busy_conf = {
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.pin_bit_mask = (1ULL << settings.pin_busy),
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.mode = GPIO_MODE_INPUT,
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.pull_up_en = GPIO_PULLUP_ENABLE,
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.pull_down_en = GPIO_PULLDOWN_DISABLE,
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.intr_type = GPIO_INTR_DISABLE,
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};
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gpio_config(&busy_conf);
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// Reset pulse (datasheet: NRESET low for >= 100 us triggers a full reset)
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gpio_set_level(settings.pin_reset, 0);
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delay_millis(2);
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gpio_set_level(settings.pin_reset, 1);
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// After reset the chip boots and calibrates with BUSY high, then drives BUSY
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// low once it reaches STDBY_RC (datasheet: ~3.5 ms max). Allow a generous
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// margin; a line stuck high means no chip is answering.
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constexpr auto PROBE_TIMEOUT_MILLIS = 20;
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int elapsed = 0;
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while (gpio_get_level(settings.pin_busy) != 0) {
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if (elapsed >= PROBE_TIMEOUT_MILLIS) {
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LOG_E(TAG, "Probe failed: BUSY (GPIO %d) stuck high after reset — module absent or unpowered?", settings.pin_busy);
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return ERROR_RESOURCE;
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}
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delay_millis(1);
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elapsed++;
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}
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// Drop the probe pull-up again: the chip actively drives BUSY when powered,
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// and RadioLib reconfigures the pin at begin() anyway.
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busy_conf.pull_up_en = GPIO_PULLUP_DISABLE;
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gpio_config(&busy_conf);
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LOG_I(TAG, "Probe OK: SX1262 answered reset in ~%d ms (BUSY low)", elapsed);
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return ERROR_NONE;
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}
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// region Thread lifecycle
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void Sx1262Radio::dio1Isr(void* context) {
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auto* self = static_cast<Sx1262Radio*>(context);
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// DIO1 is armed as a HIGH_LEVEL interrupt (edge types are unreliable on the
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// ESP32 per erratum 3.11). A level interrupt re-fires for as long as the line
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// is asserted, so mask it here and let the radio thread re-arm once it has
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// cleared the modem IRQ (which drops DIO1 low again).
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gpio_descriptor_disable_interrupt(self->settings.dio1);
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event_group_set(self->events, SX1262_DIO1_EVENT_BIT);
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}
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int32_t Sx1262Radio::threadMainStatic(void* context) {
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return static_cast<Sx1262Radio*>(context)->threadMain();
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}
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bool Sx1262Radio::isThreadInterrupted() const {
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lock();
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const bool interrupted = threadInterrupted;
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unlock();
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return interrupted;
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}
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int32_t Sx1262Radio::threadMain() {
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int rc = doBegin(getModulation());
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bool hasRx = false;
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if (rc != 0) {
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return rc;
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}
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setState(LORA_RADIO_STATE_ON);
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while (!isThreadInterrupted()) {
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// Re-arm DIO1: the ISR masks the HIGH_LEVEL interrupt on each fire, so the
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// modem's next RX/TX-done needs it enabled again. DIO1 is low here (the
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// previous IRQ was cleared by doReceive()/doTransmit()); re-arming while it
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// were still asserted would just self-fire once and be absorbed by the
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// empty-read guard in doReceive().
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gpio_descriptor_enable_interrupt(settings.dio1);
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hasRx = doListen();
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// Thread might've been interrupted in the meanwhile
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if (isThreadInterrupted()) {
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break;
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}
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// Service a received packet before deciding to transmit: an RX-done and a
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// queued TX can coincide in the same iteration, and dropping the RX here would
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// lose the packet outright.
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if (hasRx) {
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doReceive();
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}
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if (getTxQueueSize() > 0) {
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doTransmit();
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}
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}
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doEnd();
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return 0;
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}
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error_t Sx1262Radio::setEnabled(bool enabled) {
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lock();
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if (enabled) {
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if ((thread != nullptr) && (thread_get_state(thread) != THREAD_STATE_STOPPED)) {
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LOG_W(TAG, "Already started");
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unlock();
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return ERROR_NONE;
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}
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if (modulation == LORA_MODULATION_NONE) {
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LOG_E(TAG, "Cannot enable without a modulation set");
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unlock();
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return ERROR_INVALID_STATE;
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}
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if (thread != nullptr) {
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thread_free(thread);
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thread = nullptr;
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}
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threadInterrupted = false;
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setState(LORA_RADIO_STATE_ON_PENDING);
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thread = thread_alloc_full("SX1262", SX1262_THREAD_STACK_SIZE, threadMainStatic, this, tskNO_AFFINITY);
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if (thread == nullptr) {
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setState(LORA_RADIO_STATE_ERROR);
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unlock();
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return ERROR_OUT_OF_MEMORY;
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}
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thread_set_priority(thread, THREAD_PRIORITY_HIGH);
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if (thread_start(thread) != ERROR_NONE) {
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thread_free(thread);
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thread = nullptr;
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setState(LORA_RADIO_STATE_ERROR);
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unlock();
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return ERROR_UNDEFINED;
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}
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unlock();
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return ERROR_NONE;
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} else {
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setState(LORA_RADIO_STATE_OFF_PENDING);
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if (thread != nullptr) {
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threadInterrupted = true;
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event_group_set(events, SX1262_INTERRUPT_BIT);
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Thread* oldThread = thread;
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thread = nullptr;
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if (thread_get_state(oldThread) != THREAD_STATE_STOPPED) {
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// Unlock so the thread can lock
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unlock();
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// Wait for the thread to finish
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thread_join(oldThread, portMAX_DELAY, pdMS_TO_TICKS(10));
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// Re-lock to continue logic below
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lock();
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}
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thread_free(oldThread);
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}
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setState(LORA_RADIO_STATE_OFF);
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unlock();
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return ERROR_NONE;
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}
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}
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// endregion
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// region State, modulation and callbacks
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enum LoraRadioState Sx1262Radio::getState() const {
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lock();
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const auto result = state;
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unlock();
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return result;
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}
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void Sx1262Radio::setState(enum LoraRadioState newState) {
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lock();
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if (state == newState) {
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unlock();
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return;
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}
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LOG_I(TAG, "State: %s -> %s", toString(state), toString(newState));
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state = newState;
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auto callbacks = stateCallbacks;
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unlock();
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for (const auto& entry : callbacks) {
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entry.callback(settings.device, entry.context, newState);
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}
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}
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error_t Sx1262Radio::setModulation(enum LoraModulation newModulation) {
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const auto currentState = getState();
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if ((currentState == LORA_RADIO_STATE_ON_PENDING) || (currentState == LORA_RADIO_STATE_ON)) {
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return ERROR_INVALID_STATE;
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}
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if (!((newModulation == LORA_MODULATION_NONE) || canTransmit(newModulation) || canReceive(newModulation))) {
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return ERROR_NOT_SUPPORTED;
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}
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lock();
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LOG_I(TAG, "Modulation set to %s", toString(newModulation));
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modulation = newModulation;
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unlock();
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return ERROR_NONE;
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}
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enum LoraModulation Sx1262Radio::getModulation() const {
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lock();
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const auto result = modulation;
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unlock();
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return result;
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}
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// Callbacks are invoked on a snapshot of the list, with the radio mutex released:
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// consumers take their own locks in callbacks and also call into this API while
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// holding those locks, so invoking under the radio mutex would set up an AB-BA
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// deadlock between the radio thread and any consumer thread.
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void Sx1262Radio::publishRx(const struct LoraRxPacket& packet) {
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lock();
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auto callbacks = rxCallbacks;
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unlock();
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for (const auto& entry : callbacks) {
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entry.callback(settings.device, entry.context, &packet);
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}
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}
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void Sx1262Radio::publishTx(LoraTxId id, enum LoraTransmissionState txState) {
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lock();
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auto callbacks = txCallbacks;
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unlock();
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for (const auto& entry : callbacks) {
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entry.callback(settings.device, entry.context, id, txState);
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}
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}
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error_t Sx1262Radio::addRxCallback(void* context, LoraRxCallback callback) {
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lock();
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rxCallbacks.push_back({context, callback});
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unlock();
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return ERROR_NONE;
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}
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error_t Sx1262Radio::removeRxCallback(LoraRxCallback callback) {
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lock();
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const auto old_size = rxCallbacks.size();
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std::erase_if(rxCallbacks, [callback](const auto& entry) { return entry.callback == callback; });
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const auto result = (rxCallbacks.size() == old_size) ? ERROR_NOT_FOUND : ERROR_NONE;
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unlock();
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return result;
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}
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error_t Sx1262Radio::addStateCallback(void* context, LoraStateCallback callback) {
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lock();
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stateCallbacks.push_back({context, callback});
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unlock();
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return ERROR_NONE;
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}
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error_t Sx1262Radio::removeStateCallback(LoraStateCallback callback) {
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lock();
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const auto old_size = stateCallbacks.size();
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std::erase_if(stateCallbacks, [callback](const auto& entry) { return entry.callback == callback; });
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const auto result = (stateCallbacks.size() == old_size) ? ERROR_NOT_FOUND : ERROR_NONE;
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unlock();
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return result;
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}
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error_t Sx1262Radio::addTxCallback(void* context, LoraTxCallback callback) {
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lock();
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txCallbacks.push_back({context, callback});
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unlock();
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return ERROR_NONE;
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}
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error_t Sx1262Radio::removeTxCallback(LoraTxCallback callback) {
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lock();
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const auto old_size = txCallbacks.size();
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std::erase_if(txCallbacks, [callback](const auto& entry) { return entry.callback == callback; });
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const auto result = (txCallbacks.size() == old_size) ? ERROR_NOT_FOUND : ERROR_NONE;
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unlock();
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return result;
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}
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// endregion
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// region TX queue
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size_t Sx1262Radio::getTxQueueSize() const {
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lock();
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const auto size = txQueue.size();
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unlock();
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return size;
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}
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Sx1262Radio::TxItem Sx1262Radio::popNextQueuedTx() {
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lock();
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auto tx = std::move(txQueue.front());
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txQueue.pop_front();
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unlock();
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return tx;
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}
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error_t Sx1262Radio::transmit(const uint8_t* data, size_t length, LoraTxId* id) {
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lock();
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const auto txId = lastTxId;
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lastTxId++;
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txQueue.push_back(TxItem {.id = txId, .data = std::vector<uint8_t>(data, data + length)});
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LOG_D(TAG, "TX id=%d queued: %u bytes (queue depth %u)", (int)txId, (unsigned)length, (unsigned)txQueue.size());
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unlock();
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publishTx(txId, LORA_TRANSMISSION_STATE_QUEUED);
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event_group_set(events, SX1262_QUEUED_TX_BIT);
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if (id != nullptr) {
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*id = txId;
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}
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return ERROR_NONE;
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}
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// endregion
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// region Parameters
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error_t Sx1262Radio::setBaseParameter(enum LoraParameter parameter, int32_t value) {
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switch (parameter) {
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case LORA_PARAMETER_POWER:
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return checkLimitsAndApply(power, value, -9, 22);
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case LORA_PARAMETER_BOOSTED_GAIN:
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return checkLimitsAndApply(boostedGain, value, 0, 1, 1);
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case LORA_PARAMETER_CURRENT_LIMIT:
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// SX1262 OCP range is 0..140 mA (RadioLib clamps to a 2.5 mA step internally).
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return checkLimitsAndApply(currentLimit, value, 0, 140);
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default:
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return ERROR_NOT_SUPPORTED;
|
|
}
|
|
}
|
|
|
|
error_t Sx1262Radio::setLoraParameter(enum LoraParameter parameter, int32_t value) {
|
|
switch (parameter) {
|
|
// Frequency in Hz (150..960 MHz)
|
|
case LORA_PARAMETER_FREQUENCY:
|
|
return checkLimitsAndApply(frequency, value, 150000000, 960000000);
|
|
// Bandwidth in Hz (RadioLib's supported LoRa bandwidths, expressed in Hz)
|
|
case LORA_PARAMETER_BANDWIDTH:
|
|
return checkValuesAndApply(bandwidth, value, {7800, 10400, 15600, 20800, 31250, 41700, 62500, 125000, 250000, 500000});
|
|
case LORA_PARAMETER_SPREADING_FACTOR:
|
|
return checkLimitsAndApply(spreadingFactor, value, 7, 12, 1);
|
|
case LORA_PARAMETER_CODING_RATE:
|
|
return checkLimitsAndApply(codingRate, value, 5, 8, 1);
|
|
case LORA_PARAMETER_SYNC_WORD:
|
|
return checkLimitsAndApply(syncWord, value, 0, 255);
|
|
case LORA_PARAMETER_PREAMBLE_LENGTH:
|
|
return checkLimitsAndApply(preambleLength, value, 0, 65535);
|
|
default:
|
|
break;
|
|
}
|
|
|
|
LOG_W(TAG, "Tried to set unsupported LoRa parameter \"%s\" to %d", toString(parameter), (int)value);
|
|
return ERROR_NOT_SUPPORTED;
|
|
}
|
|
|
|
error_t Sx1262Radio::setFskParameter(enum LoraParameter parameter, int32_t value) {
|
|
switch (parameter) {
|
|
// Frequency in Hz (150..960 MHz)
|
|
case LORA_PARAMETER_FREQUENCY:
|
|
return checkLimitsAndApply(frequency, value, 150000000, 960000000);
|
|
// RX bandwidth in Hz (RadioLib's supported FSK bandwidths, expressed in Hz)
|
|
case LORA_PARAMETER_BANDWIDTH:
|
|
return checkValuesAndApply(bandwidth, value, {4800, 5800, 7300, 9700, 11700, 14600, 19500, 23400, 29300, 39000, 46900, 58600, 78200});
|
|
case LORA_PARAMETER_PREAMBLE_LENGTH:
|
|
return checkLimitsAndApply(preambleLength, value, 0, 65535);
|
|
// Bit rate in bit/s (0.6..300 kbps)
|
|
case LORA_PARAMETER_DATA_RATE:
|
|
return checkLimitsAndApply(bitRate, value, 600, 300000);
|
|
// Frequency deviation in Hz (0..200 kHz)
|
|
case LORA_PARAMETER_FREQUENCY_DEVIATION:
|
|
return checkLimitsAndApply(frequencyDeviation, value, 0, 200000);
|
|
default:
|
|
break;
|
|
}
|
|
|
|
LOG_W(TAG, "Tried to set unsupported FSK parameter \"%s\" to %d", toString(parameter), (int)value);
|
|
return ERROR_NOT_SUPPORTED;
|
|
}
|
|
|
|
error_t Sx1262Radio::setLrFhssParameter(enum LoraParameter parameter, int32_t value) {
|
|
switch (parameter) {
|
|
// Bandwidth in Hz (RadioLib's supported LR-FHSS bandwidths, expressed in Hz)
|
|
case LORA_PARAMETER_BANDWIDTH:
|
|
return checkValuesAndApply(bandwidth, value, {39060, 85940, 136720, 183590, 335940, 386720, 722660, 773440, 1523400, 1574200});
|
|
case LORA_PARAMETER_CODING_RATE:
|
|
return checkValuesAndApply(codingRate, value, {RADIOLIB_SX126X_LR_FHSS_CR_5_6, RADIOLIB_SX126X_LR_FHSS_CR_2_3, RADIOLIB_SX126X_LR_FHSS_CR_1_2, RADIOLIB_SX126X_LR_FHSS_CR_1_3});
|
|
case LORA_PARAMETER_NARROW_GRID:
|
|
return checkLimitsAndApply(narrowGrid, value, 0, 1, 1);
|
|
default:
|
|
break;
|
|
}
|
|
|
|
LOG_W(TAG, "Tried to set unsupported LR-FHSS parameter \"%s\" to %d", toString(parameter), (int)value);
|
|
return ERROR_NOT_SUPPORTED;
|
|
}
|
|
|
|
error_t Sx1262Radio::setParameter(enum LoraParameter parameter, int32_t value) {
|
|
lock();
|
|
|
|
error_t result = setBaseParameter(parameter, value);
|
|
if (result == ERROR_NOT_SUPPORTED) {
|
|
switch (modulation) {
|
|
case LORA_MODULATION_LORA:
|
|
result = setLoraParameter(parameter, value);
|
|
break;
|
|
case LORA_MODULATION_FSK:
|
|
result = setFskParameter(parameter, value);
|
|
break;
|
|
case LORA_MODULATION_LR_FHSS:
|
|
result = setLrFhssParameter(parameter, value);
|
|
break;
|
|
default:
|
|
break;
|
|
}
|
|
}
|
|
|
|
if (result == ERROR_NONE) {
|
|
LOG_D(TAG, "Parameter %s = %d", toString(parameter), (int)value);
|
|
}
|
|
|
|
unlock();
|
|
return result;
|
|
}
|
|
|
|
error_t Sx1262Radio::getBaseParameter(enum LoraParameter parameter, int32_t* value) const {
|
|
switch (parameter) {
|
|
case LORA_PARAMETER_POWER:
|
|
*value = power;
|
|
return ERROR_NONE;
|
|
case LORA_PARAMETER_BOOSTED_GAIN:
|
|
*value = boostedGain;
|
|
return ERROR_NONE;
|
|
case LORA_PARAMETER_CURRENT_LIMIT:
|
|
*value = currentLimit;
|
|
return ERROR_NONE;
|
|
default:
|
|
return ERROR_NOT_SUPPORTED;
|
|
}
|
|
}
|
|
|
|
error_t Sx1262Radio::getLoraParameter(enum LoraParameter parameter, int32_t* value) const {
|
|
switch (parameter) {
|
|
case LORA_PARAMETER_FREQUENCY:
|
|
*value = frequency;
|
|
return ERROR_NONE;
|
|
case LORA_PARAMETER_BANDWIDTH:
|
|
*value = bandwidth;
|
|
return ERROR_NONE;
|
|
case LORA_PARAMETER_SPREADING_FACTOR:
|
|
*value = spreadingFactor;
|
|
return ERROR_NONE;
|
|
case LORA_PARAMETER_CODING_RATE:
|
|
*value = codingRate;
|
|
return ERROR_NONE;
|
|
case LORA_PARAMETER_SYNC_WORD:
|
|
*value = syncWord;
|
|
return ERROR_NONE;
|
|
case LORA_PARAMETER_PREAMBLE_LENGTH:
|
|
*value = preambleLength;
|
|
return ERROR_NONE;
|
|
default:
|
|
return ERROR_NOT_SUPPORTED;
|
|
}
|
|
}
|
|
|
|
error_t Sx1262Radio::getFskParameter(enum LoraParameter parameter, int32_t* value) const {
|
|
switch (parameter) {
|
|
case LORA_PARAMETER_FREQUENCY:
|
|
*value = frequency;
|
|
return ERROR_NONE;
|
|
case LORA_PARAMETER_BANDWIDTH:
|
|
*value = bandwidth;
|
|
return ERROR_NONE;
|
|
case LORA_PARAMETER_DATA_RATE:
|
|
*value = bitRate;
|
|
return ERROR_NONE;
|
|
case LORA_PARAMETER_FREQUENCY_DEVIATION:
|
|
*value = frequencyDeviation;
|
|
return ERROR_NONE;
|
|
default:
|
|
return ERROR_NOT_SUPPORTED;
|
|
}
|
|
}
|
|
|
|
error_t Sx1262Radio::getLrFhssParameter(enum LoraParameter parameter, int32_t* value) const {
|
|
switch (parameter) {
|
|
case LORA_PARAMETER_BANDWIDTH:
|
|
*value = bandwidth;
|
|
return ERROR_NONE;
|
|
case LORA_PARAMETER_CODING_RATE:
|
|
*value = codingRate;
|
|
return ERROR_NONE;
|
|
case LORA_PARAMETER_NARROW_GRID:
|
|
*value = narrowGrid;
|
|
return ERROR_NONE;
|
|
default:
|
|
return ERROR_NOT_SUPPORTED;
|
|
}
|
|
}
|
|
|
|
error_t Sx1262Radio::getParameter(enum LoraParameter parameter, int32_t* value) const {
|
|
lock();
|
|
|
|
// No warnings are emitted to be able to discover parameters by return status
|
|
error_t result = getBaseParameter(parameter, value);
|
|
if (result == ERROR_NOT_SUPPORTED) {
|
|
switch (modulation) {
|
|
case LORA_MODULATION_LORA:
|
|
result = getLoraParameter(parameter, value);
|
|
break;
|
|
case LORA_MODULATION_FSK:
|
|
result = getFskParameter(parameter, value);
|
|
break;
|
|
case LORA_MODULATION_LR_FHSS:
|
|
result = getLrFhssParameter(parameter, value);
|
|
break;
|
|
default:
|
|
break;
|
|
}
|
|
}
|
|
|
|
unlock();
|
|
return result;
|
|
}
|
|
|
|
// endregion
|
|
|
|
// region Radio operations (radio thread only)
|
|
|
|
// DIO1 uses the GPIO descriptor callback API in HIGH_LEVEL mode. The interrupt is
|
|
// armed (enabled) per cycle by the radio thread loop and masked by the ISR on each
|
|
// fire; the modem asserts DIO1 for RX/TX-done, which the driver clears by reading
|
|
// the packet or finishing the transmission. Edge-triggered interrupts are avoided
|
|
// on purpose (ESP32 erratum 3.11: subsequent edge interrupts may be missed, which
|
|
// for a radio would drop an RX/TX-done and stall the thread).
|
|
void Sx1262Radio::registerDio1Isr() {
|
|
gpio_flags_t flags = GPIO_FLAG_DIRECTION_INPUT;
|
|
flags = GPIO_FLAG_INTERRUPT_TO_OPTIONS(flags, GPIO_INTERRUPT_HIGH_LEVEL);
|
|
if (gpio_descriptor_set_flags(settings.dio1, flags) != ERROR_NONE ||
|
|
gpio_descriptor_add_callback(settings.dio1, dio1Isr, this) != ERROR_NONE) {
|
|
LOG_E(TAG, "Failed to install DIO1 interrupt");
|
|
}
|
|
}
|
|
|
|
void Sx1262Radio::unregisterDio1Isr() {
|
|
gpio_descriptor_disable_interrupt(settings.dio1);
|
|
gpio_descriptor_remove_callback(settings.dio1);
|
|
}
|
|
|
|
int Sx1262Radio::doBegin(enum LoraModulation beginModulation) {
|
|
int16_t rc = RADIOLIB_ERR_NONE;
|
|
auto& radio = parts->radio;
|
|
|
|
// RadioLib takes MHz/kHz/kbps floats; the driver stores Hz/bit/s integers.
|
|
const float frequencyMhz = static_cast<float>(frequency) / 1000000.0f;
|
|
const float bandwidthKhz = static_cast<float>(bandwidth) / 1000.0f;
|
|
|
|
if (beginModulation == LORA_MODULATION_LORA) {
|
|
LOG_I(
|
|
TAG,
|
|
"Starting LoRa: %.3f MHz, BW %.2f kHz, SF%u, CR 4/%u, sync 0x%02X, preamble %u, %d dBm, TCXO %.1f V",
|
|
frequencyMhz,
|
|
bandwidthKhz,
|
|
spreadingFactor,
|
|
codingRate,
|
|
syncWord,
|
|
preambleLength,
|
|
power,
|
|
settings.tcxo_voltage
|
|
);
|
|
rc = radio.begin(
|
|
frequencyMhz,
|
|
bandwidthKhz,
|
|
spreadingFactor,
|
|
codingRate,
|
|
syncWord,
|
|
power,
|
|
preambleLength,
|
|
settings.tcxo_voltage,
|
|
settings.use_regulator_ldo
|
|
);
|
|
} else if (beginModulation == LORA_MODULATION_FSK) {
|
|
const float bitRateKbps = static_cast<float>(bitRate) / 1000.0f;
|
|
const float frequencyDeviationKhz = static_cast<float>(frequencyDeviation) / 1000.0f;
|
|
LOG_I(
|
|
TAG,
|
|
"Starting FSK: %.3f MHz, %.2f kbps, deviation %.1f kHz, BW %.1f kHz, preamble %u, %d dBm",
|
|
frequencyMhz,
|
|
bitRateKbps,
|
|
frequencyDeviationKhz,
|
|
bandwidthKhz,
|
|
preambleLength,
|
|
power
|
|
);
|
|
rc = radio.beginFSK(
|
|
frequencyMhz,
|
|
bitRateKbps,
|
|
frequencyDeviationKhz,
|
|
bandwidthKhz,
|
|
power,
|
|
preambleLength,
|
|
settings.tcxo_voltage,
|
|
settings.use_regulator_ldo
|
|
);
|
|
} else if (beginModulation == LORA_MODULATION_LR_FHSS) {
|
|
// NOTE: LR-FHSS is unvalidated. RadioLib's beginLRFHSS() takes
|
|
// (freq, bw-index, cr, narrowGrid, ...) where bw is a RADIOLIB_SX126X_LR_FHSS_BW_*
|
|
// index, not a frequency; this call passes the stored bandwidth into the freq slot
|
|
// and is known to be incomplete. Left as-is pending a dedicated LR-FHSS bring-up —
|
|
// the LoRa and FSK paths above are the hardware-validated ones.
|
|
LOG_I(TAG, "Starting LR-FHSS: BW %d Hz, CR %u, %s grid", (int)bandwidth, codingRate, narrowGrid ? "narrow" : "wide");
|
|
rc = radio.beginLRFHSS(
|
|
bandwidth,
|
|
codingRate,
|
|
narrowGrid,
|
|
settings.tcxo_voltage,
|
|
settings.use_regulator_ldo
|
|
);
|
|
} else {
|
|
LOG_E(TAG, "SX1262 not capable of modulation \"%s\"", toString(beginModulation));
|
|
setState(LORA_RADIO_STATE_ERROR);
|
|
return -1;
|
|
}
|
|
|
|
if (rc != RADIOLIB_ERR_NONE) {
|
|
LOG_E(TAG, "RadioLib initialization failed with code %hi", rc);
|
|
setState(LORA_RADIO_STATE_ERROR);
|
|
return -1;
|
|
}
|
|
|
|
// Apply the PA over-current protection limit. RadioLib's begin() already set its
|
|
// fail-safe default (60 mA), so this is only meaningful when a consumer raised it
|
|
// via LORA_PARAMETER_CURRENT_LIMIT to reach higher output power.
|
|
rc = radio.setCurrentLimit(static_cast<float>(currentLimit));
|
|
if (rc != RADIOLIB_ERR_NONE) {
|
|
LOG_E(TAG, "Setting current limit to %d mA failed with code %hi", (int)currentLimit, rc);
|
|
setState(LORA_RADIO_STATE_ERROR);
|
|
return -1;
|
|
}
|
|
|
|
// Modules that wire the antenna TX/RX switch to DIO2 (e.g. LilyGO T-Deck Max)
|
|
// must enable this or the RF path stays disconnected and no TX/RX gets through.
|
|
if (settings.dio2_rf_switch) {
|
|
rc = radio.setDio2AsRfSwitch(true);
|
|
if (rc != RADIOLIB_ERR_NONE) {
|
|
LOG_E(TAG, "Setting DIO2 as RF switch failed with code %hi", rc);
|
|
setState(LORA_RADIO_STATE_ERROR);
|
|
return -1;
|
|
}
|
|
}
|
|
|
|
rc = radio.setRxBoostedGainMode(boostedGain, true);
|
|
if (rc != RADIOLIB_ERR_NONE) {
|
|
LOG_E(TAG, "Setting RX boosted gain to %s failed with code %hi", boostedGain ? "true" : "false", rc);
|
|
setState(LORA_RADIO_STATE_ERROR);
|
|
return -1;
|
|
}
|
|
|
|
LOG_I(TAG, "Modem initialized (chip verified by RadioLib)");
|
|
registerDio1Isr();
|
|
return 0;
|
|
}
|
|
|
|
void Sx1262Radio::doEnd() {
|
|
unregisterDio1Isr();
|
|
// Leave the modem in its lowest-power state; the next enable runs a full begin()
|
|
const int16_t rc = parts->radio.sleep();
|
|
if (rc != RADIOLIB_ERR_NONE) {
|
|
LOG_W(TAG, "Putting modem to sleep failed with code %hi", rc);
|
|
} else {
|
|
LOG_I(TAG, "Modem put to sleep");
|
|
}
|
|
}
|
|
|
|
void Sx1262Radio::doTransmit() {
|
|
currentTx = popNextQueuedTx();
|
|
auto& radio = parts->radio;
|
|
|
|
int16_t rc = radio.standby();
|
|
if (rc != RADIOLIB_ERR_NONE) {
|
|
LOG_W(TAG, "RadioLib returned %hi on TX standby", rc);
|
|
}
|
|
|
|
LOG_I(TAG, "TX id=%d: %u bytes (%u more queued)", (int)currentTx.id, (unsigned)currentTx.data.size(), (unsigned)getTxQueueSize());
|
|
rc = radio.startTransmit(currentTx.data.data(), currentTx.data.size());
|
|
|
|
if (rc == RADIOLIB_ERR_NONE) {
|
|
publishTx(currentTx.id, LORA_TRANSMISSION_STATE_TRANSMIT_PENDING);
|
|
|
|
// Time-on-air (microseconds) for the current modem config; 0 if RadioLib can't
|
|
// compute it, in which case fall back to a fixed timeout.
|
|
const uint32_t airtimeMillis = radio.getTimeOnAir(currentTx.data.size()) / 1000;
|
|
const uint32_t txTimeoutMillis = (airtimeMillis > 0)
|
|
? (airtimeMillis + SX1262_TX_TIMEOUT_MARGIN_MILLIS)
|
|
: SX1262_TX_TIMEOUT_FALLBACK_MILLIS;
|
|
|
|
// outFlags stays 0 on timeout, which routes to the Timeout branch below
|
|
uint32_t txEventFlags = 0;
|
|
event_group_wait(
|
|
events,
|
|
SX1262_INTERRUPT_BIT | SX1262_DIO1_EVENT_BIT,
|
|
false,
|
|
true,
|
|
&txEventFlags,
|
|
pdMS_TO_TICKS(txTimeoutMillis)
|
|
);
|
|
|
|
// Clean up after transmission
|
|
radio.finishTransmit();
|
|
|
|
// Thread might've been interrupted in the meanwhile. Publish a terminal state so a
|
|
// caller that queued this TX still gets a final callback for its id when
|
|
// setEnabled(false) races with an in-flight transmit.
|
|
if (isThreadInterrupted()) {
|
|
publishTx(currentTx.id, LORA_TRANSMISSION_STATE_ERROR);
|
|
return;
|
|
}
|
|
|
|
// If the DIO1 bit is unset, this means the wait timed out
|
|
if (txEventFlags & SX1262_DIO1_EVENT_BIT) {
|
|
LOG_I(TAG, "TX id=%d: done", (int)currentTx.id);
|
|
publishTx(currentTx.id, LORA_TRANSMISSION_STATE_TRANSMITTED);
|
|
} else {
|
|
LOG_W(TAG, "TX id=%d: no TX-done IRQ within %u ms", (int)currentTx.id, (unsigned)txTimeoutMillis);
|
|
publishTx(currentTx.id, LORA_TRANSMISSION_STATE_TIMEOUT);
|
|
}
|
|
} else {
|
|
LOG_E(TAG, "Error transmitting id=%d, rc=%hi", (int)currentTx.id, rc);
|
|
publishTx(currentTx.id, LORA_TRANSMISSION_STATE_ERROR);
|
|
}
|
|
}
|
|
|
|
bool Sx1262Radio::doListen() {
|
|
auto& radio = parts->radio;
|
|
|
|
if (getModulation() != LORA_MODULATION_LR_FHSS) {
|
|
int16_t rc = radio.startReceiveDutyCycleAuto(preambleLength, 0, SX1262_IRQ_FLAGS);
|
|
if (rc == RADIOLIB_ERR_NONE) {
|
|
uint32_t flags = 0;
|
|
event_group_wait(
|
|
events,
|
|
SX1262_INTERRUPT_BIT | SX1262_DIO1_EVENT_BIT | SX1262_QUEUED_TX_BIT,
|
|
false,
|
|
true,
|
|
&flags,
|
|
portMAX_DELAY
|
|
);
|
|
return (flags & SX1262_DIO1_EVENT_BIT) != 0;
|
|
} else {
|
|
LOG_E(TAG, "Error setting dutycycle RX, RadioLib returned %hi", rc);
|
|
}
|
|
return false;
|
|
} else {
|
|
// LR-FHSS modem only supports TX
|
|
event_group_wait(
|
|
events,
|
|
SX1262_INTERRUPT_BIT | SX1262_QUEUED_TX_BIT,
|
|
false,
|
|
true,
|
|
nullptr,
|
|
portMAX_DELAY
|
|
);
|
|
return false;
|
|
}
|
|
}
|
|
|
|
void Sx1262Radio::doReceive() {
|
|
// LR-FHSS modem only supports TX
|
|
if (getModulation() == LORA_MODULATION_LR_FHSS) return;
|
|
|
|
auto& radio = parts->radio;
|
|
|
|
uint16_t rxSize = radio.getPacketLength(true);
|
|
std::vector<uint8_t> data(rxSize);
|
|
int16_t rc = radio.readData(data.data(), rxSize);
|
|
if (rc != RADIOLIB_ERR_NONE) {
|
|
LOG_E(TAG, "Error receiving data, RadioLib returned %hi", rc);
|
|
} else if (rxSize == 0) {
|
|
// Empty read: skip silently to avoid log flooding on spurious IRQs.
|
|
} else {
|
|
const struct LoraRxPacket packet = {
|
|
.data = data.data(),
|
|
.length = data.size(),
|
|
.rssi = radio.getRSSI(),
|
|
.snr = radio.getSNR(),
|
|
};
|
|
|
|
LOG_I(TAG, "RX: %u bytes, RSSI %.1f dBm, SNR %.1f dB", (unsigned)packet.length, packet.rssi, packet.snr);
|
|
publishRx(packet);
|
|
radio.finishReceive();
|
|
}
|
|
}
|
|
|
|
// endregion
|