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							211 lines
						
					
					
						
							5.6 KiB
						
					
					
				
			
		
		
	
	
							211 lines
						
					
					
						
							5.6 KiB
						
					
					
				#include "tools/cabana/dbc/dbc.h"
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#include <algorithm>
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#include "tools/cabana/utils/util.h"
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uint qHash(const MessageId &item) {
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  return qHash(item.source) ^ qHash(item.address);
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}
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// cabana::Msg
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cabana::Msg::~Msg() {
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  for (auto s : sigs) {
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    delete s;
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  }
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}
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cabana::Signal *cabana::Msg::addSignal(const cabana::Signal &sig) {
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  auto s = sigs.emplace_back(new cabana::Signal(sig));
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  update();
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  return s;
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}
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cabana::Signal *cabana::Msg::updateSignal(const QString &sig_name, const cabana::Signal &new_sig) {
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  auto s = sig(sig_name);
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  if (s) {
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    *s = new_sig;
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    update();
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  }
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  return s;
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}
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void cabana::Msg::removeSignal(const QString &sig_name) {
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  auto it = std::find_if(sigs.begin(), sigs.end(), [&](auto &s) { return s->name == sig_name; });
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  if (it != sigs.end()) {
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    delete *it;
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    sigs.erase(it);
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    update();
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  }
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}
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cabana::Msg &cabana::Msg::operator=(const cabana::Msg &other) {
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  address = other.address;
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  name = other.name;
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  size = other.size;
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  comment = other.comment;
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  for (auto s : sigs) delete s;
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  sigs.clear();
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  for (auto s : other.sigs) {
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    sigs.push_back(new cabana::Signal(*s));
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  }
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  update();
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  return *this;
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}
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cabana::Signal *cabana::Msg::sig(const QString &sig_name) const {
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  auto it = std::find_if(sigs.begin(), sigs.end(), [&](auto &s) { return s->name == sig_name; });
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  return it != sigs.end() ? *it : nullptr;
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}
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int cabana::Msg::indexOf(const cabana::Signal *sig) const {
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  for (int i = 0; i < sigs.size(); ++i) {
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    if (sigs[i] == sig) return i;
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  }
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  return -1;
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}
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QString cabana::Msg::newSignalName() {
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  QString new_name;
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  for (int i = 1; /**/; ++i) {
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    new_name = QString("NEW_SIGNAL_%1").arg(i);
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    if (sig(new_name) == nullptr) break;
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  }
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  return new_name;
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}
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void cabana::Msg::update() {
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  if (transmitter.isEmpty()) {
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    transmitter = DEFAULT_NODE_NAME;
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  }
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  mask.assign(size, 0x00);
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  multiplexor = nullptr;
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  // sort signals
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  std::sort(sigs.begin(), sigs.end(), [](auto l, auto r) {
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    return std::tie(r->type, l->multiplex_value, l->start_bit, l->name) <
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           std::tie(l->type, r->multiplex_value, r->start_bit, r->name);
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  });
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  for (auto sig : sigs) {
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    if (sig->type == cabana::Signal::Type::Multiplexor) {
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      multiplexor = sig;
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    }
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    sig->update();
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    // update mask
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    int i = sig->msb / 8;
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    int bits = sig->size;
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    while (i >= 0 && i < size && bits > 0) {
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      int lsb = (int)(sig->lsb / 8) == i ? sig->lsb : i * 8;
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      int msb = (int)(sig->msb / 8) == i ? sig->msb : (i + 1) * 8 - 1;
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      int sz = msb - lsb + 1;
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      int shift = (lsb - (i * 8));
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      mask[i] |= ((1ULL << sz) - 1) << shift;
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      bits -= size;
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      i = sig->is_little_endian ? i - 1 : i + 1;
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    }
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  }
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  for (auto sig : sigs) {
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    sig->multiplexor = sig->type == cabana::Signal::Type::Multiplexed ? multiplexor : nullptr;
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    if (!sig->multiplexor) {
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      if (sig->type == cabana::Signal::Type::Multiplexed) {
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        sig->type = cabana::Signal::Type::Normal;
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      }
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      sig->multiplex_value = 0;
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    }
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  }
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}
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// cabana::Signal
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void cabana::Signal::update() {
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  updateMsbLsb(*this);
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  if (receiver_name.isEmpty()) {
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    receiver_name = DEFAULT_NODE_NAME;
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  }
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  float h = 19 * (float)lsb / 64.0;
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  h = fmod(h, 1.0);
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  size_t hash = qHash(name);
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  float s = 0.25 + 0.25 * (float)(hash & 0xff) / 255.0;
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  float v = 0.75 + 0.25 * (float)((hash >> 8) & 0xff) / 255.0;
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  color = QColor::fromHsvF(h, s, v);
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  precision = std::max(num_decimals(factor), num_decimals(offset));
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}
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QString cabana::Signal::formatValue(double value, bool with_unit) const {
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  // Show enum string
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  int64_t raw_value = round((value - offset) / factor);
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  for (const auto &[val, desc] : val_desc) {
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    if (std::abs(raw_value - val) < 1e-6) {
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      return desc;
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    }
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  }
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  QString val_str = QString::number(value, 'f', precision);
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  if (with_unit && !unit.isEmpty()) {
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    val_str += " " + unit;
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  }
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  return val_str;
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}
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bool cabana::Signal::getValue(const uint8_t *data, size_t data_size, double *val) const {
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  if (multiplexor && get_raw_value(data, data_size, *multiplexor) != multiplex_value) {
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    return false;
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  }
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  *val = get_raw_value(data, data_size, *this);
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  return true;
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}
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bool cabana::Signal::operator==(const cabana::Signal &other) const {
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  return name == other.name && size == other.size &&
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         start_bit == other.start_bit &&
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         msb == other.msb && lsb == other.lsb &&
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         is_signed == other.is_signed && is_little_endian == other.is_little_endian &&
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         factor == other.factor && offset == other.offset &&
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         min == other.min && max == other.max && comment == other.comment && unit == other.unit && val_desc == other.val_desc &&
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         multiplex_value == other.multiplex_value && type == other.type && receiver_name == other.receiver_name;
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}
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// helper functions
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double get_raw_value(const uint8_t *data, size_t data_size, const cabana::Signal &sig) {
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  int64_t val = 0;
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  int i = sig.msb / 8;
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  int bits = sig.size;
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  while (i >= 0 && i < data_size && bits > 0) {
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    int lsb = (int)(sig.lsb / 8) == i ? sig.lsb : i * 8;
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    int msb = (int)(sig.msb / 8) == i ? sig.msb : (i + 1) * 8 - 1;
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    int size = msb - lsb + 1;
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    uint64_t d = (data[i] >> (lsb - (i * 8))) & ((1ULL << size) - 1);
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    val |= d << (bits - size);
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    bits -= size;
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    i = sig.is_little_endian ? i - 1 : i + 1;
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  }
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  if (sig.is_signed) {
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    val -= ((val >> (sig.size - 1)) & 0x1) ? (1ULL << sig.size) : 0;
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  }
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  return val * sig.factor + sig.offset;
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}
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void updateMsbLsb(cabana::Signal &s) {
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  if (s.is_little_endian) {
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    s.lsb = s.start_bit;
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    s.msb = s.start_bit + s.size - 1;
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  } else {
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    s.lsb = flipBitPos(flipBitPos(s.start_bit) + s.size - 1);
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    s.msb = s.start_bit;
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  }
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}
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