mirror of
https://github.com/esphome/esphome.git
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ac0d921413
* Socket refactor and SSL * esp-idf temp * Fixes * Echo component and noise * Add noise API transport support * Updates * ESP-IDF * Complete * Fixes * Fixes * Versions update * New i2c APIs * Complete i2c refactor * SPI migration * Revert ESP Preferences migration, too complex for now * OTA support * Remove echo again * Remove ssl again * GPIOFlags updates * Rename esphal and ICACHE_RAM_ATTR * Make ESP32 arduino compilable again * Fix GPIO flags * Complete pin registry refactor and fixes * Fixes to make test1 compile * Remove sdkconfig file * Ignore sdkconfig file * Fixes in reviewing * Make test2 compile * Make test4 compile * Make test5 compile * Run clang-format * Fix lint errors * Use esp-idf APIs instead of btStart * Another round of fixes * Start implementing ESP8266 * Make test3 compile * Guard esp8266 code * Lint * Reformat * Fixes * Fixes v2 * more fixes * ESP-IDF tidy target * Convert ARDUINO_ARCH_ESPxx * Update WiFiSignalSensor * Update time ifdefs * OTA needs millis from hal * RestartSwitch needs delay from hal * ESP-IDF Uart * Fix OTA blank password * Allow setting sdkconfig * Fix idf partitions and allow setting sdkconfig from yaml * Re-add read/write compat APIs and fix esp8266 uart * Fix esp8266 store log strings in flash * Fix ESP32 arduino preferences not initialized * Update ifdefs * Change how sdkconfig change is detected * Add checks to ci-custom and fix them * Run clang-format * Add esp-idf clang-tidy target and fix errors * Fixes from clang-tidy idf round 2 * Fixes from compiling tests with esp-idf * Run clang-format * Switch test5.yaml to esp-idf * Implement ESP8266 Preferences * Lint * Re-do PIO package version selection a bit * Fix arduinoespressif32 package version * Fix unit tests * Lint * Lint fixes * Fix readv/writev not defined * Fix graphing component * Re-add all old options from core/config.py Co-authored-by: Jesse Hills <3060199+jesserockz@users.noreply.github.com>
426 lines
16 KiB
C++
426 lines
16 KiB
C++
#include "bme680_bsec.h"
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#include "esphome/core/log.h"
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#include "esphome/core/helpers.h"
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#include <string>
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namespace esphome {
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namespace bme680_bsec {
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#ifdef USE_BSEC
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static const char *const TAG = "bme680_bsec.sensor";
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static const std::string IAQ_ACCURACY_STATES[4] = {"Stabilizing", "Uncertain", "Calibrating", "Calibrated"};
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BME680BSECComponent *BME680BSECComponent::instance; // NOLINT(cppcoreguidelines-avoid-non-const-global-variables)
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void BME680BSECComponent::setup() {
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ESP_LOGCONFIG(TAG, "Setting up BME680 via BSEC...");
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BME680BSECComponent::instance = this;
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this->bsec_status_ = bsec_init();
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if (this->bsec_status_ != BSEC_OK) {
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this->mark_failed();
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return;
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}
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this->bme680_.dev_id = this->address_;
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this->bme680_.intf = BME680_I2C_INTF;
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this->bme680_.read = BME680BSECComponent::read_bytes_wrapper;
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this->bme680_.write = BME680BSECComponent::write_bytes_wrapper;
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this->bme680_.delay_ms = BME680BSECComponent::delay_ms;
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this->bme680_.amb_temp = 25;
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this->bme680_status_ = bme680_init(&this->bme680_);
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if (this->bme680_status_ != BME680_OK) {
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this->mark_failed();
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return;
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}
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if (this->sample_rate_ == SAMPLE_RATE_ULP) {
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const uint8_t bsec_config[] = {
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#include "config/generic_33v_300s_28d/bsec_iaq.txt"
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};
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this->set_config_(bsec_config);
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} else {
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const uint8_t bsec_config[] = {
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#include "config/generic_33v_3s_28d/bsec_iaq.txt"
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};
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this->set_config_(bsec_config);
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}
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this->update_subscription_();
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if (this->bsec_status_ != BSEC_OK) {
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this->mark_failed();
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return;
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}
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this->load_state_();
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}
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void BME680BSECComponent::set_config_(const uint8_t *config) {
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uint8_t work_buffer[BSEC_MAX_WORKBUFFER_SIZE];
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this->bsec_status_ = bsec_set_configuration(config, BSEC_MAX_PROPERTY_BLOB_SIZE, work_buffer, sizeof(work_buffer));
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}
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float BME680BSECComponent::calc_sensor_sample_rate_(SampleRate sample_rate) {
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if (sample_rate == SAMPLE_RATE_DEFAULT) {
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sample_rate = this->sample_rate_;
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}
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return sample_rate == SAMPLE_RATE_ULP ? BSEC_SAMPLE_RATE_ULP : BSEC_SAMPLE_RATE_LP;
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}
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void BME680BSECComponent::update_subscription_() {
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bsec_sensor_configuration_t virtual_sensors[BSEC_NUMBER_OUTPUTS];
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int num_virtual_sensors = 0;
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if (this->iaq_sensor_) {
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virtual_sensors[num_virtual_sensors].sensor_id =
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this->iaq_mode_ == IAQ_MODE_STATIC ? BSEC_OUTPUT_STATIC_IAQ : BSEC_OUTPUT_IAQ;
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virtual_sensors[num_virtual_sensors].sample_rate = this->calc_sensor_sample_rate_(SAMPLE_RATE_DEFAULT);
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num_virtual_sensors++;
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}
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if (this->co2_equivalent_sensor_) {
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virtual_sensors[num_virtual_sensors].sensor_id = BSEC_OUTPUT_CO2_EQUIVALENT;
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virtual_sensors[num_virtual_sensors].sample_rate = this->calc_sensor_sample_rate_(SAMPLE_RATE_DEFAULT);
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num_virtual_sensors++;
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}
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if (this->breath_voc_equivalent_sensor_) {
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virtual_sensors[num_virtual_sensors].sensor_id = BSEC_OUTPUT_BREATH_VOC_EQUIVALENT;
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virtual_sensors[num_virtual_sensors].sample_rate = this->calc_sensor_sample_rate_(SAMPLE_RATE_DEFAULT);
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num_virtual_sensors++;
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}
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if (this->pressure_sensor_) {
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virtual_sensors[num_virtual_sensors].sensor_id = BSEC_OUTPUT_RAW_PRESSURE;
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virtual_sensors[num_virtual_sensors].sample_rate = this->calc_sensor_sample_rate_(this->pressure_sample_rate_);
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num_virtual_sensors++;
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}
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if (this->gas_resistance_sensor_) {
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virtual_sensors[num_virtual_sensors].sensor_id = BSEC_OUTPUT_RAW_GAS;
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virtual_sensors[num_virtual_sensors].sample_rate = this->calc_sensor_sample_rate_(SAMPLE_RATE_DEFAULT);
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num_virtual_sensors++;
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}
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if (this->temperature_sensor_) {
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virtual_sensors[num_virtual_sensors].sensor_id = BSEC_OUTPUT_SENSOR_HEAT_COMPENSATED_TEMPERATURE;
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virtual_sensors[num_virtual_sensors].sample_rate = this->calc_sensor_sample_rate_(this->temperature_sample_rate_);
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num_virtual_sensors++;
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}
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if (this->humidity_sensor_) {
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virtual_sensors[num_virtual_sensors].sensor_id = BSEC_OUTPUT_SENSOR_HEAT_COMPENSATED_HUMIDITY;
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virtual_sensors[num_virtual_sensors].sample_rate = this->calc_sensor_sample_rate_(this->humidity_sample_rate_);
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num_virtual_sensors++;
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}
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bsec_sensor_configuration_t sensor_settings[BSEC_MAX_PHYSICAL_SENSOR];
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uint8_t num_sensor_settings = BSEC_MAX_PHYSICAL_SENSOR;
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this->bsec_status_ =
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bsec_update_subscription(virtual_sensors, num_virtual_sensors, sensor_settings, &num_sensor_settings);
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}
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void BME680BSECComponent::dump_config() {
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ESP_LOGCONFIG(TAG, "BME680 via BSEC:");
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bsec_version_t version;
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bsec_get_version(&version);
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ESP_LOGCONFIG(TAG, " BSEC Version: %d.%d.%d.%d", version.major, version.minor, version.major_bugfix,
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version.minor_bugfix);
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LOG_I2C_DEVICE(this);
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if (this->is_failed()) {
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ESP_LOGE(TAG, "Communication failed (BSEC Status: %d, BME680 Status: %d)", this->bsec_status_,
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this->bme680_status_);
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}
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ESP_LOGCONFIG(TAG, " Temperature Offset: %.2f", this->temperature_offset_);
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ESP_LOGCONFIG(TAG, " IAQ Mode: %s", this->iaq_mode_ == IAQ_MODE_STATIC ? "Static" : "Mobile");
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ESP_LOGCONFIG(TAG, " Sample Rate: %s", BME680_BSEC_SAMPLE_RATE_LOG(this->sample_rate_));
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ESP_LOGCONFIG(TAG, " State Save Interval: %ims", this->state_save_interval_ms_);
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LOG_SENSOR(" ", "Temperature", this->temperature_sensor_);
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ESP_LOGCONFIG(TAG, " Sample Rate: %s", BME680_BSEC_SAMPLE_RATE_LOG(this->temperature_sample_rate_));
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LOG_SENSOR(" ", "Pressure", this->pressure_sensor_);
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ESP_LOGCONFIG(TAG, " Sample Rate: %s", BME680_BSEC_SAMPLE_RATE_LOG(this->pressure_sample_rate_));
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LOG_SENSOR(" ", "Humidity", this->humidity_sensor_);
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ESP_LOGCONFIG(TAG, " Sample Rate: %s", BME680_BSEC_SAMPLE_RATE_LOG(this->humidity_sample_rate_));
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LOG_SENSOR(" ", "Gas Resistance", this->gas_resistance_sensor_);
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LOG_SENSOR(" ", "IAQ", this->iaq_sensor_);
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LOG_SENSOR(" ", "Numeric IAQ Accuracy", this->iaq_accuracy_sensor_);
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LOG_TEXT_SENSOR(" ", "IAQ Accuracy", this->iaq_accuracy_text_sensor_);
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LOG_SENSOR(" ", "CO2 Equivalent", this->co2_equivalent_sensor_);
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LOG_SENSOR(" ", "Breath VOC Equivalent", this->breath_voc_equivalent_sensor_);
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}
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float BME680BSECComponent::get_setup_priority() const { return setup_priority::DATA; }
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void BME680BSECComponent::loop() {
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this->run_();
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if (this->bsec_status_ < BSEC_OK || this->bme680_status_ < BME680_OK) {
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this->status_set_error();
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} else {
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this->status_clear_error();
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}
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if (this->bsec_status_ > BSEC_OK || this->bme680_status_ > BME680_OK) {
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this->status_set_warning();
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} else {
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this->status_clear_warning();
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}
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}
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void BME680BSECComponent::run_() {
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int64_t curr_time_ns = this->get_time_ns_();
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if (curr_time_ns < this->next_call_ns_) {
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return;
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}
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ESP_LOGV(TAG, "Performing sensor run");
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bsec_bme_settings_t bme680_settings;
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this->bsec_status_ = bsec_sensor_control(curr_time_ns, &bme680_settings);
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if (this->bsec_status_ < BSEC_OK) {
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ESP_LOGW(TAG, "Failed to fetch sensor control settings (BSEC Error Code %d)", this->bsec_status_);
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return;
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}
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this->next_call_ns_ = bme680_settings.next_call;
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if (bme680_settings.trigger_measurement) {
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this->bme680_.tph_sett.os_temp = bme680_settings.temperature_oversampling;
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this->bme680_.tph_sett.os_pres = bme680_settings.pressure_oversampling;
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this->bme680_.tph_sett.os_hum = bme680_settings.humidity_oversampling;
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this->bme680_.gas_sett.run_gas = bme680_settings.run_gas;
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this->bme680_.gas_sett.heatr_temp = bme680_settings.heater_temperature;
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this->bme680_.gas_sett.heatr_dur = bme680_settings.heating_duration;
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this->bme680_.power_mode = BME680_FORCED_MODE;
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uint16_t desired_settings = BME680_OST_SEL | BME680_OSP_SEL | BME680_OSH_SEL | BME680_GAS_SENSOR_SEL;
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this->bme680_status_ = bme680_set_sensor_settings(desired_settings, &this->bme680_);
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if (this->bme680_status_ != BME680_OK) {
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ESP_LOGW(TAG, "Failed to set sensor settings (BME680 Error Code %d)", this->bme680_status_);
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return;
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}
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this->bme680_status_ = bme680_set_sensor_mode(&this->bme680_);
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if (this->bme680_status_ != BME680_OK) {
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ESP_LOGW(TAG, "Failed to set sensor mode (BME680 Error Code %d)", this->bme680_status_);
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return;
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}
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uint16_t meas_dur = 0;
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bme680_get_profile_dur(&meas_dur, &this->bme680_);
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ESP_LOGV(TAG, "Queueing read in %ums", meas_dur);
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this->set_timeout("read", meas_dur,
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[this, curr_time_ns, bme680_settings]() { this->read_(curr_time_ns, bme680_settings); });
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} else {
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ESP_LOGV(TAG, "Measurement not required");
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this->read_(curr_time_ns, bme680_settings);
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}
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}
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void BME680BSECComponent::read_(int64_t trigger_time_ns, bsec_bme_settings_t bme680_settings) {
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ESP_LOGV(TAG, "Reading data");
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if (bme680_settings.trigger_measurement) {
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while (this->bme680_.power_mode != BME680_SLEEP_MODE) {
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this->bme680_status_ = bme680_get_sensor_mode(&this->bme680_);
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if (this->bme680_status_ != BME680_OK) {
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ESP_LOGW(TAG, "Failed to get sensor mode (BME680 Error Code %d)", this->bme680_status_);
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}
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}
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}
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if (!bme680_settings.process_data) {
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ESP_LOGV(TAG, "Data processing not required");
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return;
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}
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struct bme680_field_data data;
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this->bme680_status_ = bme680_get_sensor_data(&data, &this->bme680_);
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if (this->bme680_status_ != BME680_OK) {
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ESP_LOGW(TAG, "Failed to get sensor data (BME680 Error Code %d)", this->bme680_status_);
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return;
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}
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if (!(data.status & BME680_NEW_DATA_MSK)) {
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ESP_LOGD(TAG, "BME680 did not report new data");
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return;
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}
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bsec_input_t inputs[BSEC_MAX_PHYSICAL_SENSOR]; // Temperature, Pressure, Humidity & Gas Resistance
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uint8_t num_inputs = 0;
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if (bme680_settings.process_data & BSEC_PROCESS_TEMPERATURE) {
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inputs[num_inputs].sensor_id = BSEC_INPUT_TEMPERATURE;
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inputs[num_inputs].signal = data.temperature / 100.0f;
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inputs[num_inputs].time_stamp = trigger_time_ns;
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num_inputs++;
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// Temperature offset from the real temperature due to external heat sources
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inputs[num_inputs].sensor_id = BSEC_INPUT_HEATSOURCE;
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inputs[num_inputs].signal = this->temperature_offset_;
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inputs[num_inputs].time_stamp = trigger_time_ns;
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num_inputs++;
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}
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if (bme680_settings.process_data & BSEC_PROCESS_HUMIDITY) {
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inputs[num_inputs].sensor_id = BSEC_INPUT_HUMIDITY;
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inputs[num_inputs].signal = data.humidity / 1000.0f;
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inputs[num_inputs].time_stamp = trigger_time_ns;
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num_inputs++;
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}
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if (bme680_settings.process_data & BSEC_PROCESS_PRESSURE) {
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inputs[num_inputs].sensor_id = BSEC_INPUT_PRESSURE;
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inputs[num_inputs].signal = data.pressure;
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inputs[num_inputs].time_stamp = trigger_time_ns;
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num_inputs++;
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}
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if (bme680_settings.process_data & BSEC_PROCESS_GAS) {
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if (data.status & BME680_GASM_VALID_MSK) {
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inputs[num_inputs].sensor_id = BSEC_INPUT_GASRESISTOR;
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inputs[num_inputs].signal = data.gas_resistance;
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inputs[num_inputs].time_stamp = trigger_time_ns;
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num_inputs++;
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} else {
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ESP_LOGD(TAG, "BME680 did not report gas data");
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}
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}
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if (num_inputs < 1) {
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ESP_LOGD(TAG, "No signal inputs available for BSEC");
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return;
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}
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bsec_output_t outputs[BSEC_NUMBER_OUTPUTS];
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uint8_t num_outputs = BSEC_NUMBER_OUTPUTS;
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this->bsec_status_ = bsec_do_steps(inputs, num_inputs, outputs, &num_outputs);
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if (this->bsec_status_ != BSEC_OK) {
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ESP_LOGW(TAG, "BSEC failed to process signals (BSEC Error Code %d)", this->bsec_status_);
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return;
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}
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if (num_outputs < 1) {
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ESP_LOGD(TAG, "No signal outputs provided by BSEC");
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return;
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}
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this->publish_(outputs, num_outputs);
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}
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void BME680BSECComponent::publish_(const bsec_output_t *outputs, uint8_t num_outputs) {
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ESP_LOGV(TAG, "Publishing sensor states");
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for (uint8_t i = 0; i < num_outputs; i++) {
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switch (outputs[i].sensor_id) {
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case BSEC_OUTPUT_IAQ:
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case BSEC_OUTPUT_STATIC_IAQ:
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uint8_t accuracy;
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accuracy = outputs[i].accuracy;
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this->publish_sensor_state_(this->iaq_sensor_, outputs[i].signal);
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this->publish_sensor_state_(this->iaq_accuracy_text_sensor_, IAQ_ACCURACY_STATES[accuracy]);
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this->publish_sensor_state_(this->iaq_accuracy_sensor_, accuracy, true);
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// Queue up an opportunity to save state
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this->defer("save_state", [this, accuracy]() { this->save_state_(accuracy); });
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break;
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case BSEC_OUTPUT_CO2_EQUIVALENT:
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this->publish_sensor_state_(this->co2_equivalent_sensor_, outputs[i].signal);
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break;
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case BSEC_OUTPUT_BREATH_VOC_EQUIVALENT:
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this->publish_sensor_state_(this->breath_voc_equivalent_sensor_, outputs[i].signal);
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break;
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case BSEC_OUTPUT_RAW_PRESSURE:
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this->publish_sensor_state_(this->pressure_sensor_, outputs[i].signal / 100.0f);
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break;
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case BSEC_OUTPUT_RAW_GAS:
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this->publish_sensor_state_(this->gas_resistance_sensor_, outputs[i].signal);
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break;
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case BSEC_OUTPUT_SENSOR_HEAT_COMPENSATED_TEMPERATURE:
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this->publish_sensor_state_(this->temperature_sensor_, outputs[i].signal);
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break;
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case BSEC_OUTPUT_SENSOR_HEAT_COMPENSATED_HUMIDITY:
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this->publish_sensor_state_(this->humidity_sensor_, outputs[i].signal);
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break;
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}
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}
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}
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int64_t BME680BSECComponent::get_time_ns_() {
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int64_t time_ms = millis();
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if (this->last_time_ms_ > time_ms) {
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this->millis_overflow_counter_++;
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}
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this->last_time_ms_ = time_ms;
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return (time_ms + ((int64_t) this->millis_overflow_counter_ << 32)) * INT64_C(1000000);
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}
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void BME680BSECComponent::publish_sensor_state_(sensor::Sensor *sensor, float value, bool change_only) {
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if (!sensor || (change_only && sensor->has_state() && sensor->state == value)) {
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return;
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}
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sensor->publish_state(value);
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}
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void BME680BSECComponent::publish_sensor_state_(text_sensor::TextSensor *sensor, const std::string &value) {
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if (!sensor || (sensor->has_state() && sensor->state == value)) {
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return;
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}
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sensor->publish_state(value);
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}
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int8_t BME680BSECComponent::read_bytes_wrapper(uint8_t address, uint8_t a_register, uint8_t *data, uint16_t len) {
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return BME680BSECComponent::instance->read_bytes(a_register, data, len) ? 0 : -1;
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}
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int8_t BME680BSECComponent::write_bytes_wrapper(uint8_t address, uint8_t a_register, uint8_t *data, uint16_t len) {
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return BME680BSECComponent::instance->write_bytes(a_register, data, len) ? 0 : -1;
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}
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void BME680BSECComponent::delay_ms(uint32_t period) {
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ESP_LOGV(TAG, "Delaying for %ums", period);
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delay(period);
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}
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|
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void BME680BSECComponent::load_state_() {
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uint32_t hash = fnv1_hash("bme680_bsec_state_" + to_string(this->address_));
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this->bsec_state_ = global_preferences->make_preference<uint8_t[BSEC_MAX_STATE_BLOB_SIZE]>(hash, true);
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|
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uint8_t state[BSEC_MAX_STATE_BLOB_SIZE];
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if (this->bsec_state_.load(&state)) {
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ESP_LOGV(TAG, "Loading state");
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uint8_t work_buffer[BSEC_MAX_WORKBUFFER_SIZE];
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this->bsec_status_ = bsec_set_state(state, BSEC_MAX_STATE_BLOB_SIZE, work_buffer, sizeof(work_buffer));
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if (this->bsec_status_ != BSEC_OK) {
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ESP_LOGW(TAG, "Failed to load state (BSEC Error Code %d)", this->bsec_status_);
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|
}
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|
ESP_LOGI(TAG, "Loaded state");
|
|
}
|
|
}
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|
|
|
void BME680BSECComponent::save_state_(uint8_t accuracy) {
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if (accuracy < 3 || (millis() - this->last_state_save_ms_ < this->state_save_interval_ms_)) {
|
|
return;
|
|
}
|
|
|
|
ESP_LOGV(TAG, "Saving state");
|
|
|
|
uint8_t state[BSEC_MAX_STATE_BLOB_SIZE];
|
|
uint8_t work_buffer[BSEC_MAX_STATE_BLOB_SIZE];
|
|
uint32_t num_serialized_state = BSEC_MAX_STATE_BLOB_SIZE;
|
|
|
|
this->bsec_status_ =
|
|
bsec_get_state(0, state, BSEC_MAX_STATE_BLOB_SIZE, work_buffer, BSEC_MAX_STATE_BLOB_SIZE, &num_serialized_state);
|
|
if (this->bsec_status_ != BSEC_OK) {
|
|
ESP_LOGW(TAG, "Failed fetch state for save (BSEC Error Code %d)", this->bsec_status_);
|
|
return;
|
|
}
|
|
|
|
if (!this->bsec_state_.save(&state)) {
|
|
ESP_LOGW(TAG, "Failed to save state");
|
|
return;
|
|
}
|
|
this->last_state_save_ms_ = millis();
|
|
|
|
ESP_LOGI(TAG, "Saved state");
|
|
}
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#endif
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} // namespace bme680_bsec
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} // namespace esphome
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