#include "dbchandler.h" #include #include #include DBCHandler::DBCHandler(QObject *parent) : QObject(parent) { } void DBCHandler::loadDBCFile(QString filename) { QFile *inFile = new QFile(filename); QString line; QRegularExpression regex; QRegularExpressionMatch match; DBC_MESSAGE *currentMessage; qDebug() << "DBC File: " << filename; if (!inFile->open(QIODevice::ReadOnly | QIODevice::Text)) return; qDebug() << "Starting DBC load"; dbc_nodes.clear(); dbc_messages.clear(); DBC_NODE falseNode; falseNode.name = "Vector__XXX"; falseNode.comment = "Default node if none specified"; dbc_nodes.append(falseNode); while (!inFile->atEnd()) { line = QString(inFile->readLine().simplified()); if (line.startsWith("BO_ ")) { //qDebug() << "Found a BO line"; regex.setPattern("^BO\\_ (\\w+) (\\w+) *: (\\w+) (\\w+)"); match = regex.match(line); //captured 1 = the ID in decimal //captured 2 = The message name //captured 3 = the message length //captured 4 = the NODE responsible for this message if (match.hasMatch()) { DBC_MESSAGE msg; msg.ID = match.captured(1).toInt(); //the ID is always stored in decimal format msg.name = match.captured(2); msg.len = match.captured(3).toInt(); msg.sender = findNodeByName(match.captured(4)); dbc_messages.append(msg); currentMessage = &dbc_messages.last(); } } if (line.startsWith("SG_ ")) { //qDebug() << "Found a SG line"; regex.setPattern("^SG\\_ (\\w+) : (\\d+)\\|(\\d+)@(\\d+)([\\+|\\-]) \\(([0-9.+\\-eE]+),([0-9.+\\-eE]+)\\) \\[([0-9.+\\-eE]+)\\|([0-9.+\\-eE]+)\\] \\\"(.*)\\\" (.*)"); match = regex.match(line); //captured 1 is the signal name //captured 2 is the starting bit //captured 3 is the length in bits //captured 4 is the byte order / value type //captured 5 specifies signed/unsigned for ints //captured 6 is the scaling factor //captured 7 is the offset //captured 8 is the minimum value //captured 9 is the maximum value //captured 10 is the unit //captured 11 is the receiving node if (match.hasMatch()) { DBC_SIGNAL sig; sig.name = match.captured(1); sig.startBit = match.captured(2).toInt(); sig.signalSize = match.captured(3).toInt(); int val = match.captured(4).toInt(); if (val < 2) { if (match.captured(5) == "+") sig.valType = UNSIGNED_INT; else sig.valType = SIGNED_INT; } switch (val) { case 0: sig.intelByteOrder = true; break; case 1: sig.intelByteOrder = false; break; case 2: sig.valType = SP_FLOAT; break; case 3: sig.valType = DP_FLOAT; break; case 4: sig.valType = STRING; break; } sig.factor = match.captured(6).toDouble(); sig.bias = match.captured(7).toDouble(); sig.min = match.captured(8).toDouble(); sig.max = match.captured(9).toDouble(); sig.unitName = match.captured(10); sig.receiver = findNodeByName(match.captured(11)); currentMessage->msgSignals.append(sig); } } if (line.startsWith("BU_:")) { //qDebug() << "Found a BU line"; regex.setPattern("^BU\\_\\:(.*)"); match = regex.match(line); //captured 1 = a list of node names separated by spaces. No idea how many yet if (match.hasMatch()) { QStringList nodeStrings = match.captured(1).split(' '); qDebug() << "Found " << nodeStrings.count() << " node names"; for (int i = 0; i < nodeStrings.count(); i++) { //qDebug() << nodeStrings[i]; if (nodeStrings[i].length() > 1) { DBC_NODE node; node.name = nodeStrings[i]; dbc_nodes.append(node); } } } } if (line.startsWith("CM_ SG_ ")) { //qDebug() << "Found an SG comment line"; regex.setPattern("^CM\\_ SG\\_ *(\\w+) *(\\w+) *\\\"(.*)\\\";"); match = regex.match(line); //captured 1 is the ID to match against to get to the message //captured 2 is the signal name from that message //captured 3 is the comment itself if (match.hasMatch()) { //qDebug() << "Comment was: " << match.captured(3); DBC_MESSAGE *msg = findMsgByID(match.captured(1).toInt()); if (msg != NULL) { DBC_SIGNAL *sig = findSignalByName(msg, match.captured(2)); if (sig != NULL) { sig->comment = match.captured(3); } } } } if (line.startsWith("CM_ BO_ ")) { //qDebug() << "Found a BO comment line"; regex.setPattern("^CM\\_ BO\\_ *(\\w+) *\\\"(.*)\\\";"); match = regex.match(line); //captured 1 is the ID to match against to get to the message //captured 2 is the comment itself if (match.hasMatch()) { //qDebug() << "Comment was: " << match.captured(2); DBC_MESSAGE *msg = findMsgByID(match.captured(1).toInt()); if (msg != NULL) { msg->comment = match.captured(2); } } } if (line.startsWith("CM_ BU_ ")) { //qDebug() << "Found a BU comment line"; regex.setPattern("^CM\\_ BU\\_ *(\\w+) *\\\"(.*)\\\";"); match = regex.match(line); //captured 1 is the Node name //captured 2 is the comment itself if (match.hasMatch()) { //qDebug() << "Comment was: " << match.captured(2); DBC_NODE *node = findNodeByName(match.captured(1)); if (node != NULL) { node->comment = match.captured(2); } } } //VAL_ (1090) (VCUPresentParkLightOC) (1 "Error present" 0 "Error not present") ; if (line.startsWith("VAL_ ")) { //qDebug() << "Found a value definition line"; regex.setPattern("^VAL\\_ (\\w+) (\\w+) (.*);"); match = regex.match(line); //captured 1 is the ID to match against //captured 2 is the signal name to match against //captured 3 is a series of values in the form (number "text") that is, all sep'd by spaces if (match.hasMatch()) { //qDebug() << "Data was: " << match.captured(3); DBC_MESSAGE *msg = findMsgByID(match.captured(1).toInt()); if (msg != NULL) { DBC_SIGNAL *sig = findSignalByName(msg, match.captured(2)); if (sig != NULL) { QString tokenString = match.captured(3); DBC_VAL val; while (tokenString.length() > 2) { regex.setPattern("(\\d+) \\\"(.*?)\\\" (.*)"); match = regex.match(tokenString); if (match.hasMatch()) { val.value = match.captured(1).toInt(); val.descript = match.captured(2); //qDebug() << "sig val " << val.value << " desc " <valList.append(val); tokenString = tokenString.right(tokenString.length() - match.captured(1).length() - match.captured(2).length() - 4); //qDebug() << "New token string: " << tokenString; } else tokenString = ""; } } } } } /* if (line.startsWith("BA_DEF_ SG_ ")) { qDebug() << "Found a SG attribute line"; regex.setPattern("^BA\\_DEF\\_ SG\\_ +\\\"([A-Za-z0-9\-_]+)\\\" +(.+);"); match = regex.match(line); //captured 1 is the Node name //captured 2 is the comment itself if (match.hasMatch()) { qDebug() << "Comment was: " << match.captured(2); } } if (line.startsWith("BA_DEF_ BO_ ")) { } if (line.startsWith("BA_DEF_ BU_ ")) { } */ } inFile->close(); } DBC_NODE *DBCHandler::findNodeByName(QString name) { if (dbc_nodes.length() == 0) return NULL; for (int i = 0; i < dbc_nodes.length(); i++) { if (dbc_nodes[i].name == name) { return &dbc_nodes[i]; } } return NULL; } DBC_NODE *DBCHandler::findNodeByIdx(int idx) { if (idx < 0) return NULL; if (idx >= dbc_nodes.count()) return NULL; return &dbc_nodes[idx]; } DBC_MESSAGE *DBCHandler::findMsgByID(int id) { if (dbc_messages.length() == 0) return NULL; for (int i = 0; i < dbc_messages.length(); i++) { if (dbc_messages[i].ID == id) { return &dbc_messages[i]; } } return NULL; } DBC_MESSAGE *DBCHandler::findMsgByIdx(int idx) { if (dbc_messages.length() == 0) return NULL; if (idx < 0) return NULL; if (idx >= dbc_messages.count()) return NULL; return &dbc_messages[idx]; } DBC_MESSAGE *DBCHandler::findMsgByName(QString name) { if (dbc_messages.length() == 0) return NULL; for (int i = 0; i < dbc_messages.length(); i++) { if (dbc_messages[i].name.compare(name, Qt::CaseInsensitive)) { return &dbc_messages[i]; } } return NULL; } DBC_SIGNAL *DBCHandler::findSignalByName(DBC_MESSAGE *msg, QString name) { if (msg == NULL) return NULL; if (msg->msgSignals.length() == 0) return NULL; for (int i = 0; i < msg->msgSignals.length(); i++) { if (msg->msgSignals[i].name == name) { return &msg->msgSignals[i]; } } return NULL; } DBC_SIGNAL *DBCHandler::findSignalByIdx(DBC_MESSAGE *msg, int idx) { if (msg == NULL) return NULL; if (msg->msgSignals.length() == 0) return NULL; if (idx < 0) return NULL; if (idx >= msg->msgSignals.count()) return NULL; return &msg->msgSignals[idx]; } //Dumps the messages, signals, values structs out in order to debugging console. Used only for debugging //not really meant for general consumption. void DBCHandler::listDebugging() { for (int i = 0; i < dbc_messages.length(); i++) { DBC_MESSAGE msg = dbc_messages.at(i); qDebug() << " "; qDebug() << "Msg ID: " << msg.ID << " Name: " << msg.name; for (int j = 0; j < msg.msgSignals.length(); j++) { DBC_SIGNAL sig; sig = msg.msgSignals.at(j); qDebug() << " Signal Name: " << sig.name; qDebug() << " Start bit: " << sig.startBit; qDebug() << " Bit Length: " << sig.signalSize; if (sig.valList.length() > 1) qDebug() << " Values: "; for (int k = 0; k < sig.valList.length(); k++) { DBC_VAL val = sig.valList.at(k); qDebug() << " " << val.value << " Description: " << val.descript; } } } } //Vector uses a special format for bit ordering. It pretends that the bits are numbered //0 to 63 in ascending order of bits as if a 64 bit integer were stored lowest first //and highest bit last. //0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 Vector bit ordering //7 6 5 4 3 2 1 0 7 6 5 4 3 2 1 0 7 6 5 4 3 2 1 0 7 6 5 4 3 2 1 0 Normal bitwise ordering within bytes //0 1 2 3 4 5 6 7 0 1 2 3 4 5 6 7 0 1 2 3 4 5 6 7 0 1 2 3 4 5 6 7 Reversed bit order used by Vector //0 1 2 3 Byte ordering (same either way) //A 16 bit integer would be stored Low first high second for intel format and high first, low second for motorola //For intel format invert the starting bit within a byte. //Otherwise, iterate over the bytes that it encompasses //For intel format this works nicely as it means you can just go through the list getting higher and higher //values for each bit as you go. //For motorola it is backwards but only partially. For each byte you can go through and it's higher as you go //but, at each byte boundary the next byte is lower than the multiplier for the last. QString DBCHandler::processSignal(const CANFrame &frame, const DBC_SIGNAL &sig) { int startBit, endBit, startByte, endByte, bitWithinByteStart, bitWithinByteEnd; int result = 0; int multiplier; int bitsToGo; startBit = sig.startBit; startByte = startBit / 8; bitWithinByteStart = startBit % 8; if (sig.intelByteOrder) { bitWithinByteStart = 7 - bitWithinByteStart; startBit = (startByte * 8) + bitWithinByteStart; } if (sig.valType == STRING) { QString buildString; int bytes = sig.signalSize / 8; for (int x = 0; x < bytes; x++) buildString.append(frame.data[startByte + x]); return buildString; } endBit = startBit + sig.signalSize - 1; endByte = endBit / 8; bitWithinByteEnd = endBit % 8; bitsToGo = sig.signalSize - 1; multiplier = 1; if (sig.intelByteOrder) { for (int y = startByte; y < endByte; y++) multiplier *= 256; } //qDebug() << "Signal Name: " << sig.name; //qDebug() << "Intel Order: " << sig.intelByteOrder; //qDebug() << "start byte: " << startByte; //qDebug() << "End Byte: " << endByte; int sBit, eBit; sBit = bitWithinByteStart; eBit = sBit + bitsToGo; if (eBit > 7) eBit = 7; bitsToGo -= (eBit - sBit + 1); for (int b = startByte; b <= endByte; b++) { //qDebug() << "Byte: " << frame.data[b]; //qDebug() << "S: " << sBit; //qDebug() << "E: " << eBit; //process this byte result += processByte(frame.data[b], sBit, eBit) * multiplier; //add to multiplier if (!sig.intelByteOrder) multiplier = multiplier << 8; else multiplier = multiplier >> 8; //Prepare sBit and eBit for next byte sBit = 0; //fresh byte so we start at the beginning now eBit = sBit + bitsToGo; if (eBit > 7) eBit = 7; bitsToGo -= (eBit - sBit + 1); } if (sig.valType == SIGNED_INT) { int mask = (1 << (sig.signalSize - 1)); if ((result & mask) == mask) //is the highest bit possible for this signal size set? { /* * if so we need to also set every bit higher in the result int too. * This leads to the below two lines that are nasty. Here's the theory behind that... * If the value is signed and the highest bit is set then it is negative. To create * a negative value out of this even though the variable result is 64 bit we have to * run 1's all of the way up to bit 63 in result. -1 is all ones for whatever size integer * you have. So, it's 64 1's in this case. * signedMask is done this way: * first you take the signal size and shift 1 up that far. Then subtract one. Lets * see that for a 16 bit signal: * (1 << 16) - 1 = the first 16 bits set as 1's. So far so good. We then negate the whole * thing which flips all bits. Thus signedMask ends up with 1's everwhere that the signal * doesn't take up in the 64 bit signed integer result. Then, result has an OR operation on * it with the old value and -1 masked so that the the 1 bits from -1 don't overwrite bits from the * actual signal. This extends the sign bits out so that the integer result reads as the proper negative * value. We dont need to do any of this if the sign bit wasn't set. */ int signedMask = ~((1 << sig.signalSize) - 1); result = (-1 & signedMask) | result; } } double endResult = ((double)result * sig.factor) + sig.bias; result = (int) endResult; //qDebug() << "Result: " << result; QString outputString; outputString = sig.name + ": "; if (sig.valList.count() > 0) //if this is a value list type then look it up and display the proper string { for (int x = 0; x < sig.valList.count(); x++) { if (sig.valList.at(x).value == result) outputString += sig.valList.at(x).descript; } } else //otherwise display the actual number and unit (if it exists) { outputString += QString::number(endResult) + sig.unitName; } return outputString; } //given a byte it will reverse the bit order in that byte unsigned char DBCHandler::reverseBits(unsigned char b) { b = (b & 0xF0) >> 4 | (b & 0x0F) << 4; b = (b & 0xCC) >> 2 | (b & 0x33) << 2; b = (b & 0xAA) >> 1 | (b & 0x55) << 1; return b; } unsigned char DBCHandler::processByte(unsigned char input, int start, int end) { unsigned char output = 0, size = end - start + 1; //first knock it down so that bottom is is start output = input >> start; //then mask off all bits above the proper ending output &= ((1 << size) - 1); return output; } /* SG_ NLG5_E_B_P : 15|1@0+ (1,0) [0|1] "" Control SG_ NLG5_S_MC_M_PI : 23|8@0+ (0.1,0) [0|20] "A" Control SG_ NLG5_S_MC_M_CP : 7|16@0+ (0.1,0) [0|100] "A" Control */