VSC whitespace changes - sorry!
This commit is contained in:
@@ -3749,7 +3749,7 @@ void SFE_UBLOX_GNSS::processUBXpacket(ubxPacket *msg)
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// To prevent this, uncomment the line two lines below
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// To prevent this, uncomment the line two lines below
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if ((packetUBXRXMPMP != NULL) && (packetUBXRXMPMP->callbackData != NULL)
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if ((packetUBXRXMPMP != NULL) && (packetUBXRXMPMP->callbackData != NULL)
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//&& (packetUBXRXMPMP->automaticFlags.flags.bits.callbackCopyValid == false) // <=== Uncomment this line to prevent new data from overwriting 'old'
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//&& (packetUBXRXMPMP->automaticFlags.flags.bits.callbackCopyValid == false) // <=== Uncomment this line to prevent new data from overwriting 'old'
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)
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)
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{
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{
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packetUBXRXMPMP->callbackData->version = extractByte(msg, 0);
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packetUBXRXMPMP->callbackData->version = extractByte(msg, 0);
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packetUBXRXMPMP->callbackData->numBytesUserData = extractInt(msg, 2);
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packetUBXRXMPMP->callbackData->numBytesUserData = extractInt(msg, 2);
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@@ -3786,7 +3786,7 @@ void SFE_UBLOX_GNSS::processUBXpacket(ubxPacket *msg)
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// To prevent this, uncomment the line two lines below
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// To prevent this, uncomment the line two lines below
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if ((packetUBXRXMPMPmessage != NULL) && (packetUBXRXMPMPmessage->callbackData != NULL)
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if ((packetUBXRXMPMPmessage != NULL) && (packetUBXRXMPMPmessage->callbackData != NULL)
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//&& (packetUBXRXMPMPmessage->automaticFlags.flags.bits.callbackCopyValid == false) // <=== Uncomment this line to prevent new data from overwriting 'old'
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//&& (packetUBXRXMPMPmessage->automaticFlags.flags.bits.callbackCopyValid == false) // <=== Uncomment this line to prevent new data from overwriting 'old'
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)
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)
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{
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{
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packetUBXRXMPMPmessage->callbackData->sync1 = UBX_SYNCH_1;
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packetUBXRXMPMPmessage->callbackData->sync1 = UBX_SYNCH_1;
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packetUBXRXMPMPmessage->callbackData->sync2 = UBX_SYNCH_2;
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packetUBXRXMPMPmessage->callbackData->sync2 = UBX_SYNCH_2;
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@@ -3808,7 +3808,7 @@ void SFE_UBLOX_GNSS::processUBXpacket(ubxPacket *msg)
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// Parse various byte fields into storage - but only if we have memory allocated for it
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// Parse various byte fields into storage - but only if we have memory allocated for it
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if ((packetUBXRXMCOR != NULL) && (packetUBXRXMCOR->callbackData != NULL)
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if ((packetUBXRXMCOR != NULL) && (packetUBXRXMCOR->callbackData != NULL)
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//&& (packetUBXRXMCOR->automaticFlags.flags.bits.callbackCopyValid == false) // <=== Uncomment this line to prevent new data from overwriting 'old'
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//&& (packetUBXRXMCOR->automaticFlags.flags.bits.callbackCopyValid == false) // <=== Uncomment this line to prevent new data from overwriting 'old'
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)
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)
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{
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{
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packetUBXRXMCOR->callbackData->version = extractByte(msg, 0);
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packetUBXRXMCOR->callbackData->version = extractByte(msg, 0);
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packetUBXRXMCOR->callbackData->ebno = extractByte(msg, 1);
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packetUBXRXMCOR->callbackData->ebno = extractByte(msg, 1);
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@@ -5399,34 +5399,34 @@ void SFE_UBLOX_GNSS::checkCallbacks(void)
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if ((packetUBXRXMPMP != NULL) // If RAM has been allocated for message storage
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if ((packetUBXRXMPMP != NULL) // If RAM has been allocated for message storage
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&& (packetUBXRXMPMP->callbackData != NULL) // If RAM has been allocated for the copy of the data
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&& (packetUBXRXMPMP->callbackData != NULL) // If RAM has been allocated for the copy of the data
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&& (packetUBXRXMPMP->callbackPointerPtr != NULL) // If the pointer to the callback has been defined
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&& (packetUBXRXMPMP->callbackPointerPtr != NULL) // If the pointer to the callback has been defined
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&& (packetUBXRXMPMP->automaticFlags.flags.bits.callbackCopyValid == true)) // If the copy of the data is valid
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&& (packetUBXRXMPMP->automaticFlags.flags.bits.callbackCopyValid == true)) // If the copy of the data is valid
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{
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{
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// if (_printDebug == true)
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// if (_printDebug == true)
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// _debugSerial->println(F("checkCallbacks: calling callbackPtr for RXM PMP"));
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// _debugSerial->println(F("checkCallbacks: calling callbackPtr for RXM PMP"));
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packetUBXRXMPMP->callbackPointerPtr(packetUBXRXMPMP->callbackData); // Call the callback
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packetUBXRXMPMP->callbackPointerPtr(packetUBXRXMPMP->callbackData); // Call the callback
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packetUBXRXMPMP->automaticFlags.flags.bits.callbackCopyValid = false; // Mark the data as stale
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packetUBXRXMPMP->automaticFlags.flags.bits.callbackCopyValid = false; // Mark the data as stale
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}
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}
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if ((packetUBXRXMPMPmessage != NULL) // If RAM has been allocated for message storage
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if ((packetUBXRXMPMPmessage != NULL) // If RAM has been allocated for message storage
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&& (packetUBXRXMPMPmessage->callbackData != NULL) // If RAM has been allocated for the copy of the data
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&& (packetUBXRXMPMPmessage->callbackData != NULL) // If RAM has been allocated for the copy of the data
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&& (packetUBXRXMPMPmessage->callbackPointerPtr != NULL) // If the pointer to the callback has been defined
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&& (packetUBXRXMPMPmessage->callbackPointerPtr != NULL) // If the pointer to the callback has been defined
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&& (packetUBXRXMPMPmessage->automaticFlags.flags.bits.callbackCopyValid == true)) // If the copy of the data is valid
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&& (packetUBXRXMPMPmessage->automaticFlags.flags.bits.callbackCopyValid == true)) // If the copy of the data is valid
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{
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{
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// if (_printDebug == true)
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// if (_printDebug == true)
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// _debugSerial->println(F("checkCallbacks: calling callbackPtr for RXM PMP message"));
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// _debugSerial->println(F("checkCallbacks: calling callbackPtr for RXM PMP message"));
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packetUBXRXMPMPmessage->callbackPointerPtr(packetUBXRXMPMPmessage->callbackData); // Call the callback
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packetUBXRXMPMPmessage->callbackPointerPtr(packetUBXRXMPMPmessage->callbackData); // Call the callback
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packetUBXRXMPMPmessage->automaticFlags.flags.bits.callbackCopyValid = false; // Mark the data as stale
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packetUBXRXMPMPmessage->automaticFlags.flags.bits.callbackCopyValid = false; // Mark the data as stale
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}
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}
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if ((packetUBXRXMCOR != NULL) // If RAM has been allocated for message storage
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if ((packetUBXRXMCOR != NULL) // If RAM has been allocated for message storage
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&& (packetUBXRXMCOR->callbackData != NULL) // If RAM has been allocated for the copy of the data
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&& (packetUBXRXMCOR->callbackData != NULL) // If RAM has been allocated for the copy of the data
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&& (packetUBXRXMCOR->callbackPointerPtr != NULL) // If the pointer to the callback has been defined
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&& (packetUBXRXMCOR->callbackPointerPtr != NULL) // If the pointer to the callback has been defined
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&& (packetUBXRXMCOR->automaticFlags.flags.bits.callbackCopyValid == true)) // If the copy of the data is valid
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&& (packetUBXRXMCOR->automaticFlags.flags.bits.callbackCopyValid == true)) // If the copy of the data is valid
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{
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{
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// if (_printDebug == true)
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// if (_printDebug == true)
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// _debugSerial->println(F("checkCallbacks: calling callbackPtr for RXM COR"));
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// _debugSerial->println(F("checkCallbacks: calling callbackPtr for RXM COR"));
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packetUBXRXMCOR->callbackPointerPtr(packetUBXRXMCOR->callbackData); // Call the callback
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packetUBXRXMCOR->callbackPointerPtr(packetUBXRXMCOR->callbackData); // Call the callback
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packetUBXRXMCOR->automaticFlags.flags.bits.callbackCopyValid = false; // Mark the data as stale
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packetUBXRXMCOR->automaticFlags.flags.bits.callbackCopyValid = false; // Mark the data as stale
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}
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}
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@@ -8468,7 +8468,7 @@ bool SFE_UBLOX_GNSS::setDynamicSPARTNKey(uint8_t keyLengthBytes, uint16_t validF
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}
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}
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if (ok)
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if (ok)
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ok = setDynamicSPARTNKey(keyLengthBytes, validFromWno, validFromTow, (const uint8_t *)binaryKey);
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ok = setDynamicSPARTNKey(keyLengthBytes, validFromWno, validFromTow, (const uint8_t *)binaryKey);
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delete[] binaryKey; // Free the memory allocated for binaryKey
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delete[] binaryKey; // Free the memory allocated for binaryKey
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@@ -8617,7 +8617,7 @@ bool SFE_UBLOX_GNSS::setDynamicSPARTNKeys(uint8_t keyLengthBytes1, uint16_t vali
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if (ok)
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if (ok)
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ok = setDynamicSPARTNKeys(keyLengthBytes1, validFromWno1, validFromTow1, (const uint8_t *)binaryKey1,
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ok = setDynamicSPARTNKeys(keyLengthBytes1, validFromWno1, validFromTow1, (const uint8_t *)binaryKey1,
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keyLengthBytes2, validFromWno2, validFromTow2, (const uint8_t *)binaryKey2);
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keyLengthBytes2, validFromWno2, validFromTow2, (const uint8_t *)binaryKey2);
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delete[] binaryKey1; // Free the memory allocated for binaryKey1
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delete[] binaryKey1; // Free the memory allocated for binaryKey1
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delete[] binaryKey2; // Free the memory allocated for binaryKey2
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delete[] binaryKey2; // Free the memory allocated for binaryKey2
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@@ -11801,7 +11801,7 @@ bool SFE_UBLOX_GNSS::initPacketUBXNAVSVIN()
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void SFE_UBLOX_GNSS::flushNAVSVIN()
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void SFE_UBLOX_GNSS::flushNAVSVIN()
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{
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{
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if (packetUBXNAVSVIN == NULL)
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if (packetUBXNAVSVIN == NULL)
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return; // Bail if RAM has not been allocated (otherwise we could be writing anywhere!)
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return; // Bail if RAM has not been allocated (otherwise we could be writing anywhere!)
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packetUBXNAVSVIN->moduleQueried.moduleQueried.all = 0; // Mark all datums as stale (read before)
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packetUBXNAVSVIN->moduleQueried.moduleQueried.all = 0; // Mark all datums as stale (read before)
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}
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}
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@@ -15980,11 +15980,11 @@ uint8_t SFE_UBLOX_GNSS::getNavigationFrequency(uint16_t maxWait)
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if (measurementRate == 0)
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if (measurementRate == 0)
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{
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{
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#ifndef SFE_UBLOX_REDUCED_PROG_MEM
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#ifndef SFE_UBLOX_REDUCED_PROG_MEM
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if ((_printDebug == true) || (_printLimitedDebug == true)) // This is important. Print this if doing limited debugging
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if ((_printDebug == true) || (_printLimitedDebug == true)) // This is important. Print this if doing limited debugging
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_debugSerial->println(F("getNavigationFrequency: zero measRate!"));
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_debugSerial->println(F("getNavigationFrequency: zero measRate!"));
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#endif
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#endif
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return(0); // Avoid divide-by-zero error
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return (0); // Avoid divide-by-zero error
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}
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}
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measurementRate = 1000 / measurementRate; // This may return an int when it's a float, but I'd rather not return 4 bytes
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measurementRate = 1000 / measurementRate; // This may return an int when it's a float, but I'd rather not return 4 bytes
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@@ -16386,16 +16386,16 @@ uint32_t SFE_UBLOX_GNSS::getUnixEpoch(uint16_t maxWait)
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packetUBXNAVPVT->moduleQueried.moduleQueried1.bits.min = false;
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packetUBXNAVPVT->moduleQueried.moduleQueried1.bits.min = false;
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packetUBXNAVPVT->moduleQueried.moduleQueried1.bits.sec = false;
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packetUBXNAVPVT->moduleQueried.moduleQueried1.bits.sec = false;
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packetUBXNAVPVT->moduleQueried.moduleQueried1.bits.all = false;
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packetUBXNAVPVT->moduleQueried.moduleQueried1.bits.all = false;
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uint32_t t = SFE_UBLOX_DAYS_FROM_1970_TO_2020; // Jan 1st 2020 as days from Jan 1st 1970
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uint32_t t = SFE_UBLOX_DAYS_FROM_1970_TO_2020; // Jan 1st 2020 as days from Jan 1st 1970
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t += (uint32_t)SFE_UBLOX_DAYS_SINCE_2020[packetUBXNAVPVT->data.year - 2020]; // Add on the number of days since 2020
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t += (uint32_t)SFE_UBLOX_DAYS_SINCE_2020[packetUBXNAVPVT->data.year - 2020]; // Add on the number of days since 2020
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t += (uint32_t)SFE_UBLOX_DAYS_SINCE_MONTH[packetUBXNAVPVT->data.year % 4 == 0 ? 0 : 1][packetUBXNAVPVT->data.month - 1]; // Add on the number of days since Jan 1st
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t += (uint32_t)SFE_UBLOX_DAYS_SINCE_MONTH[packetUBXNAVPVT->data.year % 4 == 0 ? 0 : 1][packetUBXNAVPVT->data.month - 1]; // Add on the number of days since Jan 1st
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t += (uint32_t)packetUBXNAVPVT->data.day - 1; // Add on the number of days since the 1st of the month
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t += (uint32_t)packetUBXNAVPVT->data.day - 1; // Add on the number of days since the 1st of the month
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t *= 24; // Convert to hours
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t *= 24; // Convert to hours
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t += (uint32_t)packetUBXNAVPVT->data.hour; // Add on the hour
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t += (uint32_t)packetUBXNAVPVT->data.hour; // Add on the hour
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t *= 60; // Convert to minutes
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t *= 60; // Convert to minutes
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t += (uint32_t)packetUBXNAVPVT->data.min; // Add on the minute
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t += (uint32_t)packetUBXNAVPVT->data.min; // Add on the minute
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t *= 60; // Convert to seconds
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t *= 60; // Convert to seconds
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t += (uint32_t)packetUBXNAVPVT->data.sec; // Add on the second
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t += (uint32_t)packetUBXNAVPVT->data.sec; // Add on the second
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return t;
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return t;
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}
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}
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@@ -16417,23 +16417,23 @@ uint32_t SFE_UBLOX_GNSS::getUnixEpoch(uint32_t µsecond, uint16_t maxWait)
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packetUBXNAVPVT->moduleQueried.moduleQueried1.bits.sec = false;
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packetUBXNAVPVT->moduleQueried.moduleQueried1.bits.sec = false;
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packetUBXNAVPVT->moduleQueried.moduleQueried1.bits.nano = false;
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packetUBXNAVPVT->moduleQueried.moduleQueried1.bits.nano = false;
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packetUBXNAVPVT->moduleQueried.moduleQueried1.bits.all = false;
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packetUBXNAVPVT->moduleQueried.moduleQueried1.bits.all = false;
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uint32_t t = SFE_UBLOX_DAYS_FROM_1970_TO_2020; // Jan 1st 2020 as days from Jan 1st 1970
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uint32_t t = SFE_UBLOX_DAYS_FROM_1970_TO_2020; // Jan 1st 2020 as days from Jan 1st 1970
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t += (uint32_t)SFE_UBLOX_DAYS_SINCE_2020[packetUBXNAVPVT->data.year - 2020]; // Add on the number of days since 2020
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t += (uint32_t)SFE_UBLOX_DAYS_SINCE_2020[packetUBXNAVPVT->data.year - 2020]; // Add on the number of days since 2020
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t += (uint32_t)SFE_UBLOX_DAYS_SINCE_MONTH[packetUBXNAVPVT->data.year % 4 == 0 ? 0 : 1][packetUBXNAVPVT->data.month - 1]; // Add on the number of days since Jan 1st
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t += (uint32_t)SFE_UBLOX_DAYS_SINCE_MONTH[packetUBXNAVPVT->data.year % 4 == 0 ? 0 : 1][packetUBXNAVPVT->data.month - 1]; // Add on the number of days since Jan 1st
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t += (uint32_t)packetUBXNAVPVT->data.day - 1; // Add on the number of days since the 1st of the month
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t += (uint32_t)packetUBXNAVPVT->data.day - 1; // Add on the number of days since the 1st of the month
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t *= 24; // Convert to hours
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t *= 24; // Convert to hours
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t += (uint32_t)packetUBXNAVPVT->data.hour; // Add on the hour
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t += (uint32_t)packetUBXNAVPVT->data.hour; // Add on the hour
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t *= 60; // Convert to minutes
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t *= 60; // Convert to minutes
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t += (uint32_t)packetUBXNAVPVT->data.min; // Add on the minute
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t += (uint32_t)packetUBXNAVPVT->data.min; // Add on the minute
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t *= 60; // Convert to seconds
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t *= 60; // Convert to seconds
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t += (uint32_t)packetUBXNAVPVT->data.sec; // Add on the second
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t += (uint32_t)packetUBXNAVPVT->data.sec; // Add on the second
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int32_t us = packetUBXNAVPVT->data.nano / 1000; // Convert nanos to micros
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int32_t us = packetUBXNAVPVT->data.nano / 1000; // Convert nanos to micros
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microsecond = (uint32_t)us; // Could be -ve!
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microsecond = (uint32_t)us; // Could be -ve!
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// Adjust t if nano is negative
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// Adjust t if nano is negative
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if (us < 0)
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if (us < 0)
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{
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{
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microsecond = (uint32_t)(us + 1000000); // Make nano +ve
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microsecond = (uint32_t)(us + 1000000); // Make nano +ve
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t--; // Decrement t by 1 second
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t--; // Decrement t by 1 second
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}
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}
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return t;
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return t;
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}
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}
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@@ -1110,14 +1110,14 @@ public:
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void flushNAVCLOCK(); // Mark all the data as read/stale
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void flushNAVCLOCK(); // Mark all the data as read/stale
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void logNAVCLOCK(bool enabled = true); // Log data to file buffer
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void logNAVCLOCK(bool enabled = true); // Log data to file buffer
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bool getSurveyStatus(uint16_t maxWait = 2100); // NAV SVIN - Reads survey in status
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bool getSurveyStatus(uint16_t maxWait = 2100); // NAV SVIN - Reads survey in status
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bool setAutoNAVSVIN(bool enabled, uint16_t maxWait = defaultMaxWait); // Enable/disable automatic survey in reports at the navigation frequency
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bool setAutoNAVSVIN(bool enabled, uint16_t maxWait = defaultMaxWait); // Enable/disable automatic survey in reports at the navigation frequency
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bool setAutoNAVSVIN(bool enabled, bool implicitUpdate, uint16_t maxWait = defaultMaxWait); // Enable/disable automatic survey in reports at the navigation frequency, with implicitUpdate == false accessing stale data will not issue parsing of data in the rxbuffer of your interface, instead you have to call checkUblox when you want to perform an update
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bool setAutoNAVSVIN(bool enabled, bool implicitUpdate, uint16_t maxWait = defaultMaxWait); // Enable/disable automatic survey in reports at the navigation frequency, with implicitUpdate == false accessing stale data will not issue parsing of data in the rxbuffer of your interface, instead you have to call checkUblox when you want to perform an update
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bool setAutoNAVSVINrate(uint8_t rate, bool implicitUpdate = true, uint16_t maxWait = defaultMaxWait); // Set the rate for automatic SVIN reports
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bool setAutoNAVSVINrate(uint8_t rate, bool implicitUpdate = true, uint16_t maxWait = defaultMaxWait); // Set the rate for automatic SVIN reports
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bool setAutoNAVSVINcallbackPtr(void (*callbackPointerPtr)(UBX_NAV_SVIN_data_t *), uint16_t maxWait = defaultMaxWait); // Enable automatic SVIN reports at the navigation frequency. Data is accessed from the callback.
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bool setAutoNAVSVINcallbackPtr(void (*callbackPointerPtr)(UBX_NAV_SVIN_data_t *), uint16_t maxWait = defaultMaxWait); // Enable automatic SVIN reports at the navigation frequency. Data is accessed from the callback.
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bool assumeAutoNAVSVIN(bool enabled, bool implicitUpdate = true); // In case no config access to the GPS is possible and survey in is send cyclically already
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bool assumeAutoNAVSVIN(bool enabled, bool implicitUpdate = true); // In case no config access to the GPS is possible and survey in is send cyclically already
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void flushNAVSVIN(); // Mark all the data as read/stale
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void flushNAVSVIN(); // Mark all the data as read/stale
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void logNAVSVIN(bool enabled = true); // Log data to file buffer
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void logNAVSVIN(bool enabled = true); // Log data to file buffer
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// Add "auto" support for NAV TIMELS - to avoid needing 'global' storage
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// Add "auto" support for NAV TIMELS - to avoid needing 'global' storage
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bool getLeapSecondEvent(uint16_t maxWait = defaultMaxWait); // Reads leap second event info
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bool getLeapSecondEvent(uint16_t maxWait = defaultMaxWait); // Reads leap second event info
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