#include "HalPowerManager.h" #include #include #include #include #include "HalGPIO.h" HalPowerManager powerManager; // Singleton instance void HalPowerManager::begin() { pinMode(BAT_GPIO0, INPUT); normalFreq = getCpuFrequencyMhz(); modeMutex = xSemaphoreCreateMutex(); assert(modeMutex != nullptr); } void HalPowerManager::setPowerSaving(bool enabled) { if (normalFreq <= 0) { return; // invalid state } auto wifiMode = WiFi.getMode(); if (wifiMode != WIFI_MODE_NULL) { // Wifi is active, force disabling power saving enabled = false; } // Note: We don't use mutex here to avoid too much overhead, // it's not very important if we read a slightly stale value for currentLockMode const LockMode mode = currentLockMode; if (mode == None && enabled && !isLowPower) { LOG_DBG("PWR", "Going to low-power mode"); if (!setCpuFrequencyMhz(LOW_POWER_FREQ)) { LOG_DBG("PWR", "Failed to set CPU frequency = %d MHz", LOW_POWER_FREQ); return; } isLowPower = true; } else if ((!enabled || mode != None) && isLowPower) { LOG_DBG("PWR", "Restoring normal CPU frequency"); if (!setCpuFrequencyMhz(normalFreq)) { LOG_DBG("PWR", "Failed to set CPU frequency = %d MHz", normalFreq); return; } isLowPower = false; } // Otherwise, no change needed } void HalPowerManager::startDeepSleep(HalGPIO& gpio, bool keepClockAlive) const { // Ensure that the power button has been released to avoid immediately turning back on if you're holding it while (gpio.isPressed(HalGPIO::BTN_POWER)) { delay(50); gpio.update(); } // GPIO13 is connected to the battery latch MOSFET. // When keepClockAlive is false (default): GPIO13 goes LOW, the MCU is // completely powered off during sleep (including the LP timer / RTC memory). // When keepClockAlive is true: GPIO13 stays HIGH, the MCU remains powered // at ~3-4 mA so the LP timer keeps running and RTC memory is preserved. // This allows HalClock to accurately compute elapsed sleep time on wake. constexpr gpio_num_t GPIO_SPIWP = GPIO_NUM_13; // Release any GPIO hold from a previous sleep cycle (keepClockAlive=true leaves GPIO13 held after wake). // Without this, gpio_set_level() below silently fails and GPIO13 is stuck in its prior state, // causing the device to enter a sleep/wake loop that requires a hardware reset to escape. gpio_hold_dis(GPIO_SPIWP); gpio_deep_sleep_hold_dis(); gpio_set_direction(GPIO_SPIWP, GPIO_MODE_OUTPUT); gpio_set_level(GPIO_SPIWP, keepClockAlive ? 1 : 0); esp_sleep_config_gpio_isolate(); gpio_deep_sleep_hold_en(); gpio_hold_en(GPIO_SPIWP); pinMode(InputManager::POWER_BUTTON_PIN, INPUT_PULLUP); // Arm the wakeup trigger *after* the button is released // Note: when keepClockAlive is false, this is only useful for waking up on USB power. On battery, the MCU will be // completely powered off, so the power button is hard-wired to briefly provide power to the MCU, waking it up // regardless of the wakeup source configuration. // When keepClockAlive is true, this is the actual wakeup mechanism since the MCU stays powered. esp_deep_sleep_enable_gpio_wakeup(1ULL << InputManager::POWER_BUTTON_PIN, ESP_GPIO_WAKEUP_GPIO_LOW); // Enter Deep Sleep esp_deep_sleep_start(); } uint16_t HalPowerManager::getBatteryPercentage() const { static const BatteryMonitor battery = BatteryMonitor(BAT_GPIO0); return battery.readPercentage(); } HalPowerManager::Lock::Lock() { xSemaphoreTake(powerManager.modeMutex, portMAX_DELAY); // Current limitation: only one lock at a time if (powerManager.currentLockMode != None) { LOG_ERR("PWR", "Lock already held, ignore"); valid = false; } else { powerManager.currentLockMode = NormalSpeed; valid = true; } xSemaphoreGive(powerManager.modeMutex); if (valid) { // Immediately restore normal CPU frequency if currently in low-power mode powerManager.setPowerSaving(false); } } HalPowerManager::Lock::~Lock() { xSemaphoreTake(powerManager.modeMutex, portMAX_DELAY); if (valid) { powerManager.currentLockMode = None; } xSemaphoreGive(powerManager.modeMutex); }