Feature: Added option to set runtime values to zero when inverter becames unreachable
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@ -46,6 +46,7 @@ struct INVERTER_CONFIG_T {
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bool Command_Enable;
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bool Command_Enable_Night;
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uint8_t ReachableThreshold;
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bool ZeroRuntimeDataIfUnrechable;
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CHANNEL_CONFIG_T channel[INV_MAX_CHAN_COUNT];
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};
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@ -55,4 +55,9 @@ bool RealTimeRunDataCommand::handleResponse(InverterAbstract* inverter, fragment
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void RealTimeRunDataCommand::gotTimeout(InverterAbstract* inverter)
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{
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inverter->Statistics()->incrementRxFailureCount();
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if (inverter->getZeroValuesIfUnreachable() && !inverter->isReachable()) {
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Hoymiles.getMessageOutput()->println("Set runtime data to zero");
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inverter->Statistics()->zeroRuntimeData();
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}
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}
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@ -106,6 +106,16 @@ uint8_t InverterAbstract::getReachableThreshold()
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return _reachableThreshold;
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}
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void InverterAbstract::setZeroValuesIfUnreachable(bool enabled)
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{
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_zeroValuesIfUnreachable = enabled;
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}
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bool InverterAbstract::getZeroValuesIfUnreachable()
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{
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return _zeroValuesIfUnreachable;
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}
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bool InverterAbstract::sendChangeChannelRequest()
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{
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return false;
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@ -51,6 +51,9 @@ public:
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void setReachableThreshold(uint8_t threshold);
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uint8_t getReachableThreshold();
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void setZeroValuesIfUnreachable(bool enabled);
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bool getZeroValuesIfUnreachable();
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void clearRxFragmentBuffer();
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void addRxFragment(uint8_t fragment[], uint8_t len);
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uint8_t verifyAllFragments(CommandAbstract* cmd);
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@ -91,6 +94,8 @@ private:
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uint8_t _reachableThreshold = 3;
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bool _zeroValuesIfUnreachable = false;
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std::unique_ptr<AlarmLogParser> _alarmLogParser;
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std::unique_ptr<DevInfoParser> _devInfoParser;
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std::unique_ptr<PowerCommandParser> _powerCommandParser;
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@ -33,6 +33,28 @@ const calcFunc_t calcFunctions[] = {
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{ CALC_IRR_CH, &calcIrradiation }
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};
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const FieldId_t runtimeFields[] = {
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FLD_UDC,
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FLD_IDC,
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FLD_PDC,
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FLD_UAC,
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FLD_IAC,
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FLD_PAC,
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FLD_F,
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FLD_T,
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FLD_PF,
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FLD_Q,
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FLD_UAC_1N,
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FLD_UAC_2N,
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FLD_UAC_3N,
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FLD_UAC_12,
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FLD_UAC_23,
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FLD_UAC_31,
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FLD_IAC_1,
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FLD_IAC_2,
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FLD_IAC_3,
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};
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StatisticsParser::StatisticsParser()
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: Parser()
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{
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@ -150,6 +172,47 @@ float StatisticsParser::getChannelFieldValue(ChannelType_t type, ChannelNum_t ch
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return 0;
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}
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bool StatisticsParser::setChannelFieldValue(ChannelType_t type, ChannelNum_t channel, FieldId_t fieldId, float value)
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{
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const byteAssign_t* pos = getAssignmentByChannelField(type, channel, fieldId);
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fieldSettings_t* setting = getSettingByChannelField(type, channel, fieldId);
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if (pos == NULL) {
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return false;
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}
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uint8_t ptr = pos->start + pos->num - 1;
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uint8_t end = pos->start;
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uint16_t div = pos->div;
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if (CMD_CALC == div) {
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return false;
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}
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if (setting != NULL) {
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value -= setting->offset;
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}
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value *= static_cast<float>(div);
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uint32_t val = 0;
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if (pos->isSigned && pos->num == 2) {
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val = static_cast<uint32_t>(static_cast<int16_t>(value));
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} else if (pos->isSigned && pos->num == 4) {
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val = static_cast<uint32_t>(static_cast<int32_t>(value));
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} else {
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val = static_cast<uint32_t>(value);
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}
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HOY_SEMAPHORE_TAKE();
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do {
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_payloadStatistic[ptr] = val;
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val >>= 8;
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} while (--ptr >= end);
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HOY_SEMAPHORE_GIVE();
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return true;
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}
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String StatisticsParser::getChannelFieldValueString(ChannelType_t type, ChannelNum_t channel, FieldId_t fieldId)
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{
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return String(
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@ -253,6 +316,20 @@ uint32_t StatisticsParser::getRxFailureCount()
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return _rxFailureCount;
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}
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void StatisticsParser::zeroRuntimeData()
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{
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// Loop all channels
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for (auto& t : getChannelTypes()) {
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for (auto& c : getChannelsByType(t)) {
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for (uint8_t i = 0; i < (sizeof(runtimeFields) / sizeof(runtimeFields[0])); i++) {
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if (hasChannelFieldValue(t, c, runtimeFields[i])) {
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setChannelFieldValue(t, c, runtimeFields[i], 0);
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}
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}
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}
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}
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}
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static float calcYieldTotalCh0(StatisticsParser* iv, uint8_t arg0)
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{
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float yield = 0;
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@ -125,6 +125,8 @@ public:
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const char* getChannelFieldName(ChannelType_t type, ChannelNum_t channel, FieldId_t fieldId);
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uint8_t getChannelFieldDigits(ChannelType_t type, ChannelNum_t channel, FieldId_t fieldId);
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bool setChannelFieldValue(ChannelType_t type, ChannelNum_t channel, FieldId_t fieldId, float value);
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float getChannelFieldOffset(ChannelType_t type, ChannelNum_t channel, FieldId_t fieldId);
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void setChannelFieldOffset(ChannelType_t type, ChannelNum_t channel, FieldId_t fieldId, float offset);
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@ -139,6 +141,8 @@ public:
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void incrementRxFailureCount();
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uint32_t getRxFailureCount();
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void zeroRuntimeData();
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private:
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uint8_t _payloadStatistic[STATISTIC_PACKET_SIZE] = {};
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uint8_t _statisticLength = 0;
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@ -111,6 +111,7 @@ bool ConfigurationClass::write()
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inv["command_enable"] = config.Inverter[i].Command_Enable;
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inv["command_enable_night"] = config.Inverter[i].Command_Enable_Night;
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inv["reachable_threshold"] = config.Inverter[i].ReachableThreshold;
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inv["zero_runtime"] = config.Inverter[i].ZeroRuntimeDataIfUnrechable;
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JsonArray channel = inv.createNestedArray("channel");
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for (uint8_t c = 0; c < INV_MAX_CHAN_COUNT; c++) {
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@ -260,6 +261,7 @@ bool ConfigurationClass::read()
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config.Inverter[i].Command_Enable = inv["command_enable"] | true;
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config.Inverter[i].Command_Enable_Night = inv["command_enable_night"] | true;
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config.Inverter[i].ReachableThreshold = inv["reachable_threshold"] | REACHABLE_THRESHOLD;
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config.Inverter[i].ZeroRuntimeDataIfUnrechable = inv["zero_runtime"] | false;
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JsonArray channel = inv["channel"];
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for (uint8_t c = 0; c < INV_MAX_CHAN_COUNT; c++) {
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@ -72,6 +72,7 @@ void InverterSettingsClass::init()
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if (inv != nullptr) {
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inv->setReachableThreshold(config.Inverter[i].ReachableThreshold);
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inv->setZeroValuesIfUnreachable(config.Inverter[i].ZeroRuntimeDataIfUnrechable);
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for (uint8_t c = 0; c < INV_MAX_CHAN_COUNT; c++) {
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inv->Statistics()->setStringMaxPower(c, config.Inverter[i].channel[c].MaxChannelPower);
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inv->Statistics()->setChannelFieldOffset(TYPE_DC, static_cast<ChannelNum_t>(c), FLD_YT, config.Inverter[i].channel[c].YieldTotalOffset);
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@ -59,6 +59,7 @@ void WebApiInverterClass::onInverterList(AsyncWebServerRequest* request)
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obj["command_enable"] = config.Inverter[i].Command_Enable;
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obj["command_enable_night"] = config.Inverter[i].Command_Enable_Night;
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obj["reachable_threshold"] = config.Inverter[i].ReachableThreshold;
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obj["zero_runtime"] = config.Inverter[i].ZeroRuntimeDataIfUnrechable;
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auto inv = Hoymiles.getInverterBySerial(config.Inverter[i].Serial);
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uint8_t max_channels;
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@ -284,6 +285,7 @@ void WebApiInverterClass::onInverterEdit(AsyncWebServerRequest* request)
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inverter.Command_Enable = root["command_enable"] | true;
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inverter.Command_Enable_Night = root["command_enable_night"] | true;
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inverter.ReachableThreshold = root["reachable_threshold"] | REACHABLE_THRESHOLD;
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inverter.ZeroRuntimeDataIfUnrechable = root["zero_runtime"] | false;
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arrayCount++;
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}
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@ -315,6 +317,7 @@ void WebApiInverterClass::onInverterEdit(AsyncWebServerRequest* request)
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inv->setEnablePolling(inverter.Poll_Enable);
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inv->setEnableCommands(inverter.Command_Enable);
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inv->setReachableThreshold(inverter.ReachableThreshold);
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inv->setZeroValuesIfUnreachable(inverter.ZeroRuntimeDataIfUnrechable);
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for (uint8_t c = 0; c < INV_MAX_CHAN_COUNT; c++) {
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inv->Statistics()->setStringMaxPower(c, inverter.channel[c].MaxChannelPower);
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inv->Statistics()->setChannelFieldOffset(TYPE_DC, static_cast<ChannelNum_t>(c), FLD_YT, inverter.channel[c].YieldTotalOffset);
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@ -472,6 +472,8 @@
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"InverterHint": "*) Geben Sie die W<sub>p</sub> des Ports ein, um die Einstrahlung zu errechnen.",
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"ReachableThreshold": "Erreichbarkeit Schwellenwert:",
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"ReachableThresholdHint": "Legt fest, wie viele Anfragen fehlschlagen dürfen, bis der Wechselrichter als unerreichbar eingestuft wird.",
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"ZeroRuntime": "Nulle Laufzeit Daten",
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"ZeroRuntimeHint": "Nulle Laufzeit Daten (keine Ertragsdaten), wenn der Wechselrichter nicht erreichbar ist.",
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"Cancel": "@:maintenancereboot.Cancel",
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"Save": "@:dtuadmin.Save",
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"DeleteMsg": "Soll der Wechselrichter \"{name}\" mit der Seriennummer {serial} wirklich gelöscht werden?",
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@ -472,6 +472,8 @@
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"InverterHint": "*) Enter the W<sub>p</sub> of the channel to calculate irradiation.",
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"ReachableThreshold": "Reachable Threshold:",
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"ReachableThresholdHint": "Defines how many requests are allowed to fail until the inverter is treated is not reachable.",
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"ZeroRuntime": "Zero runtime data",
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"ZeroRuntimeHint": "Zero runtime data (no yield data) if inverter becomes unreachable.",
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"Cancel": "@:maintenancereboot.Cancel",
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"Save": "@:dtuadmin.Save",
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"DeleteMsg": "Are you sure you want to delete the inverter \"{name}\" with serial number {serial}?",
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@ -472,6 +472,8 @@
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"InverterHint": "*) Entrez le W<sub>p</sub> du canal pour calculer l'irradiation.",
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"ReachableThreshold": "Reachable Threshold:",
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"ReachableThresholdHint": "Defines how many requests are allowed to fail until the inverter is treated is not reachable.",
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"ZeroRuntime": "Zero runtime data",
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"ZeroRuntimeHint": "Zero runtime data (no yield data) if inverter becomes unreachable.",
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"Cancel": "@:maintenancereboot.Cancel",
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"Save": "@:dtuadmin.Save",
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"DeleteMsg": "Êtes-vous sûr de vouloir supprimer l'onduleur \"{name}\" avec le numéro de série \"{serial}\" ?",
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@ -182,6 +182,11 @@
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v-model="selectedInverterData.reachable_threshold"
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type="number" min="1" max="100"
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:tooltip="$t('inverteradmin.ReachableThresholdHint')" wide />
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<InputElement :label="$t('inverteradmin.ZeroRuntime')"
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v-model="selectedInverterData.zero_runtime"
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type="checkbox"
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:tooltip="$t('inverteradmin.ZeroRuntimeHint')" wide/>
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</div>
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</div>
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</form>
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@ -257,6 +262,7 @@ declare interface Inverter {
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command_enable: boolean;
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command_enable_night: boolean;
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reachable_threshold: number;
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zero_runtime: boolean;
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channel: Array<Channel>;
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}
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