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Bachelorarbeit-Rover/lib/Sensors/sensorData.cpp
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2023-10-12 20:50:59 +02:00

215 lines
5.6 KiB
C++

/**
* @file sensorData.cpp
* @author Alexander Klein (alex@kleiax.de)
* @brief
* @version 0.1
* @date 2023-09-02
*
* @copyright Copyright (c) 2023
*
*/
#include "sensorData.h"
bool SensorData::outputStatusPrintPVTdata = false;
uint32_t SensorData::ubxUpdateTimeStatic = 0;
UBX_NAV_PVT_data_t *SensorData::ubxDataStatic = nullptr;
SensorData::SensorData()
{
Component::loopDelay = SensorData::loopDelay;
}
void SensorData::enableGnss(SPIClass *spiPort, uint8_t csPin)
{
this->gnss = new SFE_UBLOX_GNSS();
if (this->gnss->begin(*spiPort, csPin, 4000000) == false)
{
std::cout << "u-blox GNSS not detected on SPI bus. Please check wiring. Freezing." << std::endl;
while (true)
{
}
}
this->initGnss();
}
void SensorData::enableGnss()
{
this->gnss = new SFE_UBLOX_GNSS();
if (this->gnss->begin() == false)
{
std::cout << "u-blox GNSS not detected at default I2C address. Please check wiring. Freezing." << std::endl;
while (true)
{
}
}
this->initGnss();
}
void SensorData::enableRealCompass()
{
static constexpr byte address = 0x0d;
this->realCompass = new QMC5883LCompass();
// Init Compass
Wire.beginTransmission(address);
// TODO: describe Bytes !!!
Wire.write(0x0b);
Wire.write(0x01);
Wire.endTransmission();
this->realCompass->setMode(0x01, 0x0C, 0x10, 0X00);
CalibrateCompass caliCompass(this->realCompass);
caliCompass.loadData();
caliCompass.useData();
}
void SensorData::enableCalcCompass()
{
// TODO: !!! implementieren
}
CalcAzimuth::State SensorData::getCalcAzimuthState() const
{
if (static_cast<bool>(this->calcCompass))
{
return this->calcCompass->getState();
}
return CalcAzimuth::State::Invalid;
}
void SensorData::printPVTdata(UBX_NAV_PVT_data_t *ubxDataStruct)
{
static constexpr uint8_t stringSize = 32;
if (!SensorData::outputStatusPrintPVTdata)
{
return;
}
const double latitude = ubxDataStruct->lat / 10000000.0;
const double longitude = ubxDataStruct->lon / 10000000.0;
const double altitude = ubxDataStruct->hMSL / 1000.0;
const uint8_t fixType = ubxDataStruct->fixType;
char fixTypeString[stringSize];
if (fixType == 0)
{
strcpy(fixTypeString, static_cast<const char *>("None"));
}
else if (fixType == 1)
{
strcpy(fixTypeString, static_cast<const char *>("Dead Reckoning"));
}
else if (fixType == 2)
{
strcpy(fixTypeString, static_cast<const char *>("2D"));
}
else if (fixType == 3)
{
strcpy(fixTypeString, static_cast<const char *>("3D"));
}
else if (fixType == 3)
{
strcpy(fixTypeString, static_cast<const char *>("GNSS + Dead Reckoning"));
}
else if (fixType == 5)
{
strcpy(fixTypeString, static_cast<const char *>("Time Only"));
}
else
{
strcpy(fixTypeString, static_cast<const char *>("UNKNOWN"));
}
const uint8_t carrSoln = ubxDataStruct->flags.bits.carrSoln;
char carrSolnString[stringSize];
if (carrSoln == 0)
{
strcpy(carrSolnString, static_cast<const char *>("None"));
}
else if (carrSoln == 1)
{
strcpy(carrSolnString, static_cast<const char *>("Floating"));
}
else if (carrSoln == 2)
{
strcpy(carrSolnString, static_cast<const char *>("Fixed"));
}
else
{
strcpy(carrSolnString, static_cast<const char *>("UNKNOWN"));
}
const uint32_t hAcc = ubxDataStruct->hAcc;
std::cout << "Lat: " << latitude
<< " Lng: " << longitude
<< " Alt: " << altitude << std::endl;
std::cout << "Fix: " << fixTypeString
<< " Carrier Solution: " << carrSolnString
<< " Horizontal Accuracy Estimate: " << hAcc << " mm" << std::endl;
}
void SensorData::savePVTdata(UBX_NAV_PVT_data_t *ubxDataStruct)
{
SensorData::printPVTdata(ubxDataStruct);
SensorData::ubxDataStatic = ubxDataStruct;
SensorData::ubxUpdateTimeStatic = millis();
}
void SensorData::setOutputStatusPrintPVTdata(bool status)
{
SensorData::outputStatusPrintPVTdata = status;
}
void SensorData::run()
{
if (static_cast<bool>(this->realCompass))
{
this->realCompass->read();
this->realAzimuth = this->realCompass->getAzimuth();
}
}
void SensorData::runAsChild()
{
if (static_cast<bool>(this->gnss))
{
this->gnss->checkUblox();
this->gnss->checkCallbacks();
if (SensorData::ubxUpdateTimeStatic != this->lastUbxUpdate)
{
this->updateUbxData();
}
}
}
void SensorData::initGnss()
{
const uint8_t versionHigh = this->gnss->getProtocolVersionHigh();
const uint8_t versionLow = this->gnss->getProtocolVersionLow();
std::cout << "u-blox protocol version: " << static_cast<int>(versionHigh) << "." << static_cast<int>(versionLow) << std::endl;
this->gnss->setSPIOutput(COM_TYPE_UBX);
this->gnss->enableNMEAMessage(UBX_NMEA_GGA, COM_PORT_SPI, 10);
this->gnss->setUSBOutput(COM_TYPE_UBX | COM_TYPE_NMEA);
this->gnss->setAutoPVTcallbackPtr(&(SensorData::savePVTdata));
// SensorData::setOutputStatusPrintPVTdata(true);
this->gnss->setNavigationFrequency(1);
this->gnss->setAutoPVT(true);
}
void SensorData::updateUbxData()
{
this->gnssData = SensorData::ubxDataStatic;
this->lastUbxUpdate = SensorData::ubxUpdateTimeStatic;
Point::Coordinates coords{0, 0};
coords.lat = this->gnssData->lat / 10000000.0;
coords.lon = this->gnssData->lon / 10000000.0;
this->currentPosition = Point(coords, this->gnssData->hAcc);
}