Adds HAL-level support for the Xteink X3 (SSD1677 controller, 792x528 display). Includes device detection, display initialization, button mapping, power management, and theme adjustments for the X3 form factor.
305 lines
9.3 KiB
C++
305 lines
9.3 KiB
C++
#include <HalGPIO.h>
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#include <Logging.h>
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#include <Preferences.h>
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#include <SPI.h>
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#include <Wire.h>
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#include <esp_sleep.h>
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// Global HalGPIO instance
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HalGPIO gpio;
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namespace X3GPIO {
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struct X3ProbeResult {
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bool bq27220 = false;
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bool ds3231 = false;
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bool qmi8658 = false;
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uint8_t score() const {
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return static_cast<uint8_t>(bq27220) + static_cast<uint8_t>(ds3231) + static_cast<uint8_t>(qmi8658);
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}
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};
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bool readI2CReg8(uint8_t addr, uint8_t reg, uint8_t* outValue) {
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Wire.beginTransmission(addr);
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Wire.write(reg);
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if (Wire.endTransmission(false) != 0) {
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return false;
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}
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if (Wire.requestFrom(addr, static_cast<uint8_t>(1), static_cast<uint8_t>(true)) < 1) {
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return false;
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}
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*outValue = Wire.read();
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return true;
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}
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bool readI2CReg16LE(uint8_t addr, uint8_t reg, uint16_t* outValue) {
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Wire.beginTransmission(addr);
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Wire.write(reg);
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if (Wire.endTransmission(false) != 0) {
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return false;
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}
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if (Wire.requestFrom(addr, static_cast<uint8_t>(2), static_cast<uint8_t>(true)) < 2) {
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while (Wire.available()) {
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Wire.read();
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}
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return false;
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}
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const uint8_t lo = Wire.read();
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const uint8_t hi = Wire.read();
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*outValue = (static_cast<uint16_t>(hi) << 8) | lo;
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return true;
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}
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bool readBQ27220CurrentMA(int16_t* outCurrent) {
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uint16_t raw = 0;
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if (!readI2CReg16LE(I2C_ADDR_BQ27220, BQ27220_CUR_REG, &raw)) {
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return false;
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}
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*outCurrent = static_cast<int16_t>(raw);
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return true;
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}
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bool probeBQ27220Signature() {
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uint16_t soc = 0;
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uint16_t voltageMv = 0;
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if (!readI2CReg16LE(I2C_ADDR_BQ27220, BQ27220_SOC_REG, &soc)) {
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return false;
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}
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if (soc > 100) {
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return false;
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}
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if (!readI2CReg16LE(I2C_ADDR_BQ27220, BQ27220_VOLT_REG, &voltageMv)) {
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return false;
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}
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return voltageMv >= 2500 && voltageMv <= 5000;
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}
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bool probeDS3231Signature() {
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uint8_t sec = 0;
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if (!readI2CReg8(I2C_ADDR_DS3231, DS3231_SEC_REG, &sec)) {
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return false;
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}
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const uint8_t tensDigit = (sec >> 4) & 0x07;
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const uint8_t onesDigit = sec & 0x0F;
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return tensDigit <= 5 && onesDigit <= 9;
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}
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bool probeQMI8658Signature() {
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uint8_t whoami = 0;
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if (readI2CReg8(I2C_ADDR_QMI8658, QMI8658_WHO_AM_I_REG, &whoami) && whoami == QMI8658_WHO_AM_I_VALUE) {
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return true;
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}
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if (readI2CReg8(I2C_ADDR_QMI8658_ALT, QMI8658_WHO_AM_I_REG, &whoami) && whoami == QMI8658_WHO_AM_I_VALUE) {
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return true;
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}
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return false;
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}
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X3ProbeResult runX3ProbePass() {
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X3ProbeResult result;
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Wire.begin(X3_I2C_SDA, X3_I2C_SCL, X3_I2C_FREQ);
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Wire.setTimeOut(6);
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result.bq27220 = probeBQ27220Signature();
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result.ds3231 = probeDS3231Signature();
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result.qmi8658 = probeQMI8658Signature();
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Wire.end();
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pinMode(20, INPUT);
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pinMode(0, INPUT);
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return result;
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}
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} // namespace X3GPIO
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namespace {
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constexpr char HW_NAMESPACE[] = "cphw";
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constexpr char NVS_KEY_DEV_OVERRIDE[] = "dev_ovr"; // 0=auto, 1=x4, 2=x3
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constexpr char NVS_KEY_DEV_CACHED[] = "dev_det"; // 0=unknown, 1=x4, 2=x3
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enum class NvsDeviceValue : uint8_t { Unknown = 0, X4 = 1, X3 = 2 };
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NvsDeviceValue readNvsDeviceValue(const char* key, NvsDeviceValue defaultValue) {
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Preferences prefs;
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if (!prefs.begin(HW_NAMESPACE, true)) {
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return defaultValue;
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}
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const uint8_t raw = prefs.getUChar(key, static_cast<uint8_t>(defaultValue));
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prefs.end();
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if (raw > static_cast<uint8_t>(NvsDeviceValue::X3)) {
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return defaultValue;
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}
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return static_cast<NvsDeviceValue>(raw);
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}
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void writeNvsDeviceValue(const char* key, NvsDeviceValue value) {
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Preferences prefs;
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if (!prefs.begin(HW_NAMESPACE, false)) {
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return;
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}
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prefs.putUChar(key, static_cast<uint8_t>(value));
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prefs.end();
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}
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HalGPIO::DeviceType nvsToDeviceType(NvsDeviceValue value) {
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return value == NvsDeviceValue::X3 ? HalGPIO::DeviceType::X3 : HalGPIO::DeviceType::X4;
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}
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HalGPIO::DeviceType detectDeviceTypeWithFingerprint() {
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// Explicit override for recovery/support:
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// 0 = auto, 1 = force X4, 2 = force X3
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const NvsDeviceValue overrideValue = readNvsDeviceValue(NVS_KEY_DEV_OVERRIDE, NvsDeviceValue::Unknown);
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if (overrideValue == NvsDeviceValue::X3 || overrideValue == NvsDeviceValue::X4) {
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LOG_INF("HW", "Device override active: %s", overrideValue == NvsDeviceValue::X3 ? "X3" : "X4");
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return nvsToDeviceType(overrideValue);
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}
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const NvsDeviceValue cachedValue = readNvsDeviceValue(NVS_KEY_DEV_CACHED, NvsDeviceValue::Unknown);
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if (cachedValue == NvsDeviceValue::X3 || cachedValue == NvsDeviceValue::X4) {
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LOG_INF("HW", "Using cached device type: %s", cachedValue == NvsDeviceValue::X3 ? "X3" : "X4");
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return nvsToDeviceType(cachedValue);
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}
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// No cache yet: run active X3 fingerprint probe and persist result.
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const X3GPIO::X3ProbeResult pass1 = X3GPIO::runX3ProbePass();
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delay(2);
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const X3GPIO::X3ProbeResult pass2 = X3GPIO::runX3ProbePass();
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const uint8_t score1 = pass1.score();
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const uint8_t score2 = pass2.score();
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LOG_INF("HW", "X3 probe scores: pass1=%u(bq=%d rtc=%d imu=%d) pass2=%u(bq=%d rtc=%d imu=%d)", score1, pass1.bq27220,
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pass1.ds3231, pass1.qmi8658, score2, pass2.bq27220, pass2.ds3231, pass2.qmi8658);
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const bool x3Confirmed = (score1 >= 2) && (score2 >= 2);
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const bool x4Confirmed = (score1 == 0) && (score2 == 0);
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if (x3Confirmed) {
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writeNvsDeviceValue(NVS_KEY_DEV_CACHED, NvsDeviceValue::X3);
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return HalGPIO::DeviceType::X3;
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}
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if (x4Confirmed) {
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writeNvsDeviceValue(NVS_KEY_DEV_CACHED, NvsDeviceValue::X4);
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return HalGPIO::DeviceType::X4;
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}
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// Conservative fallback for first boot with inconclusive probes.
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return HalGPIO::DeviceType::X4;
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}
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} // namespace
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void HalGPIO::begin() {
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inputMgr.begin();
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SPI.begin(EPD_SCLK, SPI_MISO, EPD_MOSI, EPD_CS);
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_deviceType = detectDeviceTypeWithFingerprint();
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if (deviceIsX4()) {
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pinMode(BAT_GPIO0, INPUT);
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pinMode(UART0_RXD, INPUT);
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}
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}
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void HalGPIO::update() {
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inputMgr.update();
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const bool connected = isUsbConnected();
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usbStateChanged = (connected != lastUsbConnected);
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lastUsbConnected = connected;
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}
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bool HalGPIO::wasUsbStateChanged() const { return usbStateChanged; }
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bool HalGPIO::isPressed(uint8_t buttonIndex) const { return inputMgr.isPressed(buttonIndex); }
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bool HalGPIO::wasPressed(uint8_t buttonIndex) const { return inputMgr.wasPressed(buttonIndex); }
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bool HalGPIO::wasAnyPressed() const { return inputMgr.wasAnyPressed(); }
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bool HalGPIO::wasReleased(uint8_t buttonIndex) const { return inputMgr.wasReleased(buttonIndex); }
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bool HalGPIO::wasAnyReleased() const { return inputMgr.wasAnyReleased(); }
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unsigned long HalGPIO::getHeldTime() const { return inputMgr.getHeldTime(); }
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void HalGPIO::startDeepSleep() {
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// Ensure that the power button has been released to avoid immediately turning back on if you're holding it
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while (inputMgr.isPressed(BTN_POWER)) {
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delay(50);
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inputMgr.update();
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}
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// Arm the wakeup trigger *after* the button is released
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esp_deep_sleep_enable_gpio_wakeup(1ULL << InputManager::POWER_BUTTON_PIN, ESP_GPIO_WAKEUP_GPIO_LOW);
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// Enter Deep Sleep
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esp_deep_sleep_start();
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}
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void HalGPIO::verifyPowerButtonWakeup(uint16_t requiredDurationMs, bool shortPressAllowed) {
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if (shortPressAllowed) {
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// Fast path - no duration check needed
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return;
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}
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// TODO: Intermittent edge case remains: a single tap followed by another single tap
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// can still power on the device. Tighten wake debounce/state handling here.
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// Calibrate: subtract boot time already elapsed, assuming button held since boot
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const uint16_t calibration = millis();
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const uint16_t calibratedDuration = (calibration < requiredDurationMs) ? (requiredDurationMs - calibration) : 1;
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const auto start = millis();
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inputMgr.update();
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// inputMgr.isPressed() may take up to ~500ms to return correct state
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while (!inputMgr.isPressed(BTN_POWER) && millis() - start < 1000) {
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delay(10);
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inputMgr.update();
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}
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if (inputMgr.isPressed(BTN_POWER)) {
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do {
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delay(10);
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inputMgr.update();
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} while (inputMgr.isPressed(BTN_POWER) && inputMgr.getHeldTime() < calibratedDuration);
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if (inputMgr.getHeldTime() < calibratedDuration) {
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startDeepSleep();
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}
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} else {
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startDeepSleep();
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}
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}
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bool HalGPIO::isUsbConnected() const {
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if (deviceIsX3()) {
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// X3: infer USB/charging via BQ27220 Current() register (0x0C, signed mA).
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// Positive current means charging.
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for (uint8_t attempt = 0; attempt < 2; ++attempt) {
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int16_t currentMa = 0;
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if (X3GPIO::readBQ27220CurrentMA(¤tMa)) {
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return currentMa > 0;
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}
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delay(2);
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}
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return false;
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}
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// U0RXD/GPIO20 reads HIGH when USB is connected
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return digitalRead(UART0_RXD) == HIGH;
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}
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HalGPIO::WakeupReason HalGPIO::getWakeupReason() const {
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const auto wakeupCause = esp_sleep_get_wakeup_cause();
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const auto resetReason = esp_reset_reason();
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const bool usbConnected = isUsbConnected();
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if ((wakeupCause == ESP_SLEEP_WAKEUP_UNDEFINED && resetReason == ESP_RST_POWERON && !usbConnected) ||
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(wakeupCause == ESP_SLEEP_WAKEUP_GPIO && resetReason == ESP_RST_DEEPSLEEP && usbConnected)) {
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return WakeupReason::PowerButton;
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}
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if (wakeupCause == ESP_SLEEP_WAKEUP_UNDEFINED && resetReason == ESP_RST_UNKNOWN && usbConnected) {
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return WakeupReason::AfterFlash;
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}
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if (wakeupCause == ESP_SLEEP_WAKEUP_UNDEFINED && resetReason == ESP_RST_POWERON && usbConnected) {
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return WakeupReason::AfterUSBPower;
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}
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return WakeupReason::Other;
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}
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