344 lines
9.8 KiB
C++
344 lines
9.8 KiB
C++
#include "CarBmwI3.h"
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#include <vector>
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#include <algorithm>
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/**
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activateliveData->commandQueue
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*/
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void CarBmwI3::activateCommandQueue() {
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const uint16_t commandQueueLoopFrom = 18;
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const std::vector<String> commandQueue = {
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"AT Z", // Reset all
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"AT D", // All to defaults
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"AT I", // Print the version ID
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"AT E0", // Echo off
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"AT PP2COFF", // Disable prog parameter 2C
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//"AT SH6F1", // Set header to 6F1
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"AT CF600", // Set the ID filter to 600
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"AT CM700", // Set the ID mask to 700
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"AT PBC001", // Protocol B options and baudrate (div 1 = 500k)
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"AT SPB", // Set protocol to B and save it (USER1 11bit, 125kbaud)
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"AT AT0", // Adaptive timing off
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"AT STFF", // Set timeout to ff x 4ms
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"AT AL", // Allow long messages ( > 7 Bytes)
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"AT H1", // Additional headers on
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"AT S0", // Printing of spaces off
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"AT L0", // Linefeeds off
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"AT CSM0", // Silent monitoring off
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"AT CTM5", // Set timer multiplier to 5
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"AT JE", // Use J1939 SAE data format
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// Loop from (BMW i3)
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// BMS
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"ATSH6F1",
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"22402B", // STATUS_MESSWERTE_IBS - 12V Bat
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//////"22F101", // STATUS_A_T_ELUE ???
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"22D85C", // Calculated indoor temperature
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"22D96B", // Outdoor temperature
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//"22DC61", // BREMSLICHT_SCHALTER
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"22DD7B", // ALTERUNG_KAPAZITAET Aging of kapacity
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"22DD7C", // GW_INFO - should contain kWh but in some strange form
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"22DDBF", // Min and Max cell voltage
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"22DDC0", // TEMPERATUREN
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"22DD69", // HV_STORM
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//"22DD6C", // KUEHLKREISLAUF_TEMP
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"22DDB4", // HV_SPANNUNG
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"22DDBC" // SOC
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};
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// 60Ah / 22kWh version
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liveData->params.batteryTotalAvailableKWh = 18.8;
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liveData->params.batModuleTempCount = 5; //?
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// init params which are currently not filled from parsed data
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liveData->params.tireFrontLeftPressureBar = 0;
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liveData->params.tireFrontLeftTempC = 0;
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liveData->params.tireRearLeftPressureBar = 0;
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liveData->params.tireRearLeftTempC = 0;
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liveData->params.tireFrontRightPressureBar = 0;
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liveData->params.tireFrontRightTempC = 0;
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liveData->params.tireRearRightPressureBar = 0;
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liveData->params.tireRearRightTempC = 0;
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// Empty and fill command queue
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for(auto item : liveData->commandQueue) {
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item = "";
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}
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for (int i = 0; i < commandQueue.size(); i++) {
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liveData->commandQueue[i] = commandQueue[i];
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}
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liveData->commandQueueLoopFrom = commandQueueLoopFrom;
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liveData->commandQueueCount = commandQueue.size();
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liveData->rxBuffOffset = 1; // there is one additional byte in received packets compared to other cars
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liveData->expectedMinimalPacketLength = 6; // to filter occasional 5-bytes long packets
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liveData->rxTimeoutMs = 500; // timeout for receiving of CAN response
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liveData->delayBetweenCommandsMs = 100; // delay between commands, set to 0 if no delay is needed
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}
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/**
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parseRowMerged
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*/
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void CarBmwI3::parseRowMerged()
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{
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// syslog->println("--Parsing row merged: ");
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// syslog->print("--responseRowMerged: "); syslog->println(liveData->responseRowMerged);
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// syslog->print("--currentAtshRequest: "); syslog->println(liveData->currentAtshRequest);
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// syslog->print("--commandRequest: "); syslog->println(liveData->commandRequest);
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// syslog->print("--mergedLength: "); syslog->println(liveData->responseRowMerged.length());
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syslog->print("--mergedVectorLength: "); syslog->println(liveData->vResponseRowMerged.size());
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if (liveData->responseRowMerged.length() <= 6) {
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syslog->println("--too short data, skiping processing");
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}
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struct Header_t
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{
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uint8_t startChar;
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uint8_t pid[2];
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uint8_t pData[];
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uint16_t getPid() { return 256 * pid[0] + pid[1]; };
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};
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Header_t* pHeader = (Header_t*)liveData->vResponseRowMerged.data();
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const uint16_t payloadLength = liveData->vResponseRowMerged.size() - sizeof(Header_t);
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// create reversed payload to get little endian order of data
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std::vector<uint8_t> payloadReversed(pHeader->pData, pHeader->pData + payloadLength);
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std::reverse(payloadReversed.begin(), payloadReversed.end());
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//syslog->print("--extracted PID: "); syslog->println(pHeader->getPid());
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//syslog->print("--payload length: "); syslog->println(payloadLength);
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// BMS
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if (liveData->currentAtshRequest.equals("ATSH6F1")) {
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switch (pHeader->getPid()) {
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case 0x402B:
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{
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struct s402B_t {
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int16_t unknown[13];
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uint16_t auxRawCurrent;
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uint16_t auxRawVoltage;
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int16_t auxTemp;
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};
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if (payloadLength == sizeof(s402B_t)) {
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s402B_t* ptr = (s402B_t*)payloadReversed.data();
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liveData->params.auxTemperature = ptr->auxTemp / 10.0;
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liveData->params.auxVoltage = ptr->auxRawVoltage / 4000.0 + 6;
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liveData->params.auxCurrentAmp = - (ptr->auxRawCurrent / 12.5 - 200);
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}
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}
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break;
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case 0xD85C:
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{
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struct D85C_t {
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int8_t indoorTemp;
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};
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if (payloadLength == sizeof(D85C_t)) {
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D85C_t* ptr = (D85C_t*)payloadReversed.data();
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liveData->params.indoorTemperature = ptr->indoorTemp;
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}
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}
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break;
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case 0xD96B:
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{
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struct D96B_t {
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uint16_t outdoorTempRaw;
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};
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if (payloadLength == sizeof(D96B_t)) {
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D96B_t* ptr = (D96B_t*)payloadReversed.data();
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liveData->params.outdoorTemperature = (ptr->outdoorTempRaw / 2.0) - 40.0;
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}
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}
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break;
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case 0xDD69:
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{
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struct DD69_t {
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uint8_t unknown[4];
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int32_t batAmp;
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};
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if (payloadLength == sizeof(DD69_t)) {
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DD69_t* ptr = (DD69_t*)payloadReversed.data();
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liveData->params.batPowerAmp = ptr->batAmp / 100.0; //liveData->hexToDecFromResponse(6, 14, 4, true) / 100.0;
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liveData->params.batPowerKw = (liveData->params.batPowerAmp * liveData->params.batVoltage) / 1000.0;
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if (liveData->params.batPowerKw < 0) // Reset charging start time
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liveData->params.chargingStartTime = liveData->params.currentTime;
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}
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}
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break;
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case 0xDD6C:
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{
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struct DD6C_t {
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int16_t tempCoolant;
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};
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if (payloadLength == sizeof(DD6C_t)) {
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DD6C_t* ptr = (DD6C_t*)payloadReversed.data();
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liveData->params.coolingWaterTempC = ptr->tempCoolant / 10.0;
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liveData->params.coolantTemp1C = ptr->tempCoolant / 10.0;
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liveData->params.coolantTemp2C = ptr->tempCoolant / 10.0;
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/*
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float coolingWaterTempC;
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float coolantTemp1C;
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float coolantTemp2C;
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*/
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}
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}
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break;
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case 0xDD7B:
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{
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struct DD7B_t {
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uint8_t agingOfCapacity;
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};
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if (payloadLength == sizeof(DD7B_t)) {
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DD7B_t* ptr = (DD7B_t*)payloadReversed.data();
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liveData->params.sohPerc = ptr->agingOfCapacity;
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}
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}
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break;
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case 0xDD7C:
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{
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struct DD7C_t {
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//uint8_t unused1;
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uint32_t discharged;
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uint32_t charged;
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uint8_t unknown[];
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};
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Serial.print("DD7C received, struct sizeof is "); Serial.println(sizeof(DD7C_t));
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if (payloadLength >= sizeof(DD7C_t)) {
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DD7C_t* ptr = (DD7C_t*)(payloadReversed.data() + 1); // skip one charcter on beginning (TODO: fix when pragma push/pack is done)
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liveData->params.cumulativeEnergyDischargedKWh = ptr->discharged / 100000.0;
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if (liveData->params.cumulativeEnergyDischargedKWhStart == -1)
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liveData->params.cumulativeEnergyDischargedKWhStart = liveData->params.cumulativeEnergyDischargedKWh;
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liveData->params.cumulativeEnergyChargedKWh = ptr->charged / 100000.0;
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if (liveData->params.cumulativeEnergyChargedKWhStart == -1)
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liveData->params.cumulativeEnergyChargedKWhStart = liveData->params.cumulativeEnergyChargedKWh;
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}
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}
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break;
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case 0xDDB4:
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{
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struct DDB4_t {
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uint16_t batVoltage;
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};
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if (payloadLength == sizeof(DDB4_t)) { // HV_SPANNUNG_BATTERIE
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DDB4_t* ptr = (DDB4_t*)payloadReversed.data();
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liveData->params.batVoltage = ptr->batVoltage / 100.0;
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liveData->params.batPowerKw = (liveData->params.batPowerAmp * liveData->params.batVoltage) / 1000.0;
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if (liveData->params.batPowerKw < 0) // Reset charging start time
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liveData->params.chargingStartTime = liveData->params.currentTime;
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}
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}
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break;
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case 0xDDBF:
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{
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struct DDBF_t {
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uint16_t unused[2];
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uint16_t ucellMax;
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uint16_t ucellMin;
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};
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if (payloadLength == sizeof(DDBF_t)) { // HV_SPANNUNG_BATTERIE
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DDBF_t* ptr = (DDBF_t*)payloadReversed.data();
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liveData->params.batCellMaxV = ptr->ucellMax / 1000.0;
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liveData->params.batCellMinV = ptr->ucellMin / 1000.0;
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}
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}
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break;
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case 0xDDC0:
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{
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struct DDC0_t {
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uint8_t unknown[2];
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int16_t tempAvg;
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int16_t tempMax;
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int16_t tempMin;
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};
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if (payloadLength == sizeof(DDC0_t)) {
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DDC0_t* ptr = (DDC0_t*)payloadReversed.data();
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liveData->params.batMinC = ptr->tempMin / 100.0;
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liveData->params.batTempC = ptr->tempAvg / 100.0;
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liveData->params.batMaxC = ptr->tempMax / 100.0;
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syslog->print("----batMinC: "); syslog->println(liveData->params.batMinC);
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syslog->print("----batTemp: "); syslog->println(liveData->params.batTempC);
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syslog->print("----batMaxC: "); syslog->println(liveData->params.batMaxC);
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}
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}
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break;
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case 0xDDBC:
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{
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struct DDBC_t {
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uint8_t unknown[2];
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uint16_t socMin;
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uint16_t socMax;
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uint16_t soc;
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};
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if (payloadLength == sizeof(DDBC_t)) {
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DDBC_t* ptr = (DDBC_t*)payloadReversed.data();
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liveData->params.socPercPrevious = liveData->params.socPerc;
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liveData->params.socPerc = ptr->soc / 10.0;
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}
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}
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break;
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} // switch
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} // ATSH6F1
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}
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/**
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loadTestData
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*/
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void CarBmwI3::loadTestData()
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{
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}
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