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			402 lines
		
	
	
	
		
			11 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			402 lines
		
	
	
	
		
			11 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
#include <scwx/wsr88d/ar2v_file.hpp>
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#include <scwx/wsr88d/rda/message_factory.hpp>
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#include <scwx/wsr88d/rda/types.hpp>
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#include <scwx/util/rangebuf.hpp>
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#include <scwx/util/time.hpp>
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#include <fstream>
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#include <sstream>
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#include <boost/iostreams/copy.hpp>
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#include <boost/iostreams/filtering_streambuf.hpp>
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#include <boost/iostreams/filter/bzip2.hpp>
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#include <boost/log/trivial.hpp>
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namespace scwx
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{
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namespace wsr88d
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{
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static const std::string logPrefix_ = "[scwx::wsr88d::ar2v_file] ";
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class Ar2vFileImpl
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{
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public:
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   explicit Ar2vFileImpl() :
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       tapeFilename_(),
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       extensionNumber_(),
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       julianDate_ {0},
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       milliseconds_ {0},
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       icao_(),
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       numRecords_ {0},
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       rawRecords_(),
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       vcpData_ {nullptr},
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       radarData_ {},
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       index_ {} {};
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   ~Ar2vFileImpl() = default;
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   void HandleMessage(std::shared_ptr<rda::Message>& message);
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   void IndexFile();
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   void LoadLDMRecords(std::ifstream& f);
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   void ParseLDMRecords();
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   void ProcessRadarData(std::shared_ptr<rda::DigitalRadarData> message);
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   std::string tapeFilename_;
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   std::string extensionNumber_;
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   uint32_t    julianDate_;
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   uint32_t    milliseconds_;
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   std::string icao_;
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   size_t numRecords_;
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   std::shared_ptr<rda::VolumeCoveragePatternData>         vcpData_;
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   std::map<uint16_t, std::shared_ptr<rda::ElevationScan>> radarData_;
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   std::map<rda::DataBlockType,
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            std::map<uint16_t, std::shared_ptr<rda::ElevationScan>>>
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      index_;
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   std::list<std::stringstream> rawRecords_;
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};
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Ar2vFile::Ar2vFile() : p(std::make_unique<Ar2vFileImpl>()) {}
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Ar2vFile::~Ar2vFile() = default;
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Ar2vFile::Ar2vFile(Ar2vFile&&) noexcept = default;
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Ar2vFile& Ar2vFile::operator=(Ar2vFile&&) noexcept = default;
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uint32_t Ar2vFile::julian_date() const
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{
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   return p->julianDate_;
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}
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uint32_t Ar2vFile::milliseconds() const
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{
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   return p->milliseconds_;
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}
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std::chrono::system_clock::time_point Ar2vFile::start_time() const
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{
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   return util::TimePoint(p->julianDate_, p->milliseconds_);
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}
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std::chrono::system_clock::time_point Ar2vFile::end_time() const
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{
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   std::chrono::system_clock::time_point endTime {};
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   if (p->radarData_.size() > 0)
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   {
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      std::shared_ptr<rda::DigitalRadarData> lastRadial =
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         p->radarData_.crbegin()->second->crbegin()->second;
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      endTime = util::TimePoint(lastRadial->modified_julian_date(),
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                                lastRadial->collection_time());
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   }
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   return endTime;
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}
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std::map<uint16_t, std::shared_ptr<rda::ElevationScan>>
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Ar2vFile::radar_data() const
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{
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   return p->radarData_;
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}
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std::shared_ptr<const rda::VolumeCoveragePatternData> Ar2vFile::vcp_data() const
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{
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   return p->vcpData_;
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}
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std::tuple<std::shared_ptr<rda::ElevationScan>, float, std::vector<float>>
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Ar2vFile::GetElevationScan(rda::DataBlockType                    dataBlockType,
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                           float                                 elevation,
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                           std::chrono::system_clock::time_point time) const
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{
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   BOOST_LOG_TRIVIAL(debug)
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      << logPrefix_ << "GetElevationScan: " << elevation << " degrees";
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   constexpr float scaleFactor = 8.0f / 0.043945f;
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   std::shared_ptr<rda::ElevationScan> elevationScan = nullptr;
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   float                               elevationCut  = 0.0f;
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   std::vector<float>                  elevationCuts;
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   uint16_t codedElevation =
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      static_cast<uint16_t>(std::lroundf(elevation * scaleFactor));
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   if (p->index_.contains(dataBlockType))
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   {
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      auto scans = p->index_.at(dataBlockType);
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      uint16_t lowerBound = scans.cbegin()->first;
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      uint16_t upperBound = scans.crbegin()->first;
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      for (auto scan : scans)
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      {
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         if (scan.first > lowerBound && scan.first <= codedElevation)
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         {
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            lowerBound = scan.first;
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         }
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         if (scan.first < upperBound && scan.first >= codedElevation)
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         {
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            upperBound = scan.first;
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         }
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         elevationCuts.push_back(scan.first / scaleFactor);
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      }
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      uint16_t lowerDelta = std::abs(static_cast<int32_t>(codedElevation) -
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                                     static_cast<int32_t>(lowerBound));
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      uint16_t upperDelta = std::abs(static_cast<int32_t>(codedElevation) -
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                                     static_cast<int32_t>(upperBound));
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      if (lowerDelta < upperDelta)
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      {
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         elevationScan = scans.at(lowerBound);
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         elevationCut  = lowerBound / scaleFactor;
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      }
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      else
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      {
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         elevationScan = scans.at(upperBound);
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         elevationCut  = upperBound / scaleFactor;
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      }
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   }
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   return std::tie(elevationScan, elevationCut, elevationCuts);
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}
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bool Ar2vFile::LoadFile(const std::string& filename)
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{
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   BOOST_LOG_TRIVIAL(debug) << logPrefix_ << "LoadFile(" << filename << ")";
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   bool fileValid = true;
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   std::ifstream f(filename, std::ios_base::in | std::ios_base::binary);
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   if (!f.good())
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   {
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      BOOST_LOG_TRIVIAL(warning)
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         << logPrefix_ << "Could not open file for reading: " << filename;
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      fileValid = false;
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   }
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   if (fileValid)
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   {
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      // Read Volume Header Record
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      p->tapeFilename_.resize(9, ' ');
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      p->extensionNumber_.resize(3, ' ');
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      p->icao_.resize(4, ' ');
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      f.read(&p->tapeFilename_[0], 9);
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      f.read(&p->extensionNumber_[0], 3);
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      f.read(reinterpret_cast<char*>(&p->julianDate_), 4);
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      f.read(reinterpret_cast<char*>(&p->milliseconds_), 4);
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      f.read(&p->icao_[0], 4);
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      p->julianDate_   = ntohl(p->julianDate_);
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      p->milliseconds_ = ntohl(p->milliseconds_);
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   }
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   if (f.eof())
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   {
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      BOOST_LOG_TRIVIAL(warning)
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         << logPrefix_ << "Could not read Volume Header Record\n";
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      fileValid = false;
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   }
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   if (fileValid)
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   {
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      BOOST_LOG_TRIVIAL(debug)
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         << logPrefix_ << "Filename:  " << p->tapeFilename_;
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      BOOST_LOG_TRIVIAL(debug)
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         << logPrefix_ << "Extension: " << p->extensionNumber_;
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      BOOST_LOG_TRIVIAL(debug) << logPrefix_ << "Date:      " << p->julianDate_;
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      BOOST_LOG_TRIVIAL(debug)
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         << logPrefix_ << "Time:      " << p->milliseconds_;
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      BOOST_LOG_TRIVIAL(debug) << logPrefix_ << "ICAO:      " << p->icao_;
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      p->LoadLDMRecords(f);
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   }
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   p->IndexFile();
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   return fileValid;
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}
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void Ar2vFileImpl::LoadLDMRecords(std::ifstream& f)
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{
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   BOOST_LOG_TRIVIAL(debug) << logPrefix_ << "Loading LDM Records";
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   numRecords_ = 0;
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   while (f.peek() != EOF)
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   {
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      std::streampos startPosition = f.tellg();
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      int32_t        controlWord   = 0;
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      size_t         recordSize;
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      f.read(reinterpret_cast<char*>(&controlWord), 4);
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      controlWord = ntohl(controlWord);
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      recordSize  = std::abs(controlWord);
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      BOOST_LOG_TRIVIAL(trace)
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         << logPrefix_ << "LDM Record Found: Size = " << recordSize << " bytes";
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      boost::iostreams::filtering_streambuf<boost::iostreams::input> in;
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      util::rangebuf r(f.rdbuf(), recordSize);
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      in.push(boost::iostreams::bzip2_decompressor());
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      in.push(r);
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      try
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      {
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         std::stringstream ss;
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         std::streamsize   bytesCopied = boost::iostreams::copy(in, ss);
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         BOOST_LOG_TRIVIAL(trace)
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            << logPrefix_ << "Decompressed record size = " << bytesCopied
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            << " bytes";
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         rawRecords_.push_back(std::move(ss));
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      }
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      catch (const boost::iostreams::bzip2_error& ex)
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      {
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         int error = ex.error();
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         BOOST_LOG_TRIVIAL(warning)
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            << logPrefix_ << "Error decompressing record " << numRecords_;
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         f.seekg(startPosition + std::streampos(recordSize));
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      }
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      ++numRecords_;
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   }
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   ParseLDMRecords();
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   BOOST_LOG_TRIVIAL(debug)
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      << logPrefix_ << "Found " << numRecords_ << " LDM Records";
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}
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void Ar2vFileImpl::ParseLDMRecords()
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{
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   BOOST_LOG_TRIVIAL(debug) << logPrefix_ << "Parsing LDM Records";
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   size_t count = 0;
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   for (auto it = rawRecords_.begin(); it != rawRecords_.end(); it++)
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   {
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      std::stringstream& ss = *it;
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      BOOST_LOG_TRIVIAL(trace) << logPrefix_ << "Record " << count++;
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      // The communications manager inserts an extra 12 bytes at the beginning
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      // of each record
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      ss.seekg(12);
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      while (!ss.eof())
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      {
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         rda::MessageInfo msgInfo = rda::MessageFactory::Create(ss);
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         if (!msgInfo.headerValid)
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         {
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            // Invalid message
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            break;
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         }
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         if (msgInfo.messageValid)
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         {
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            HandleMessage(msgInfo.message);
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         }
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         off_t    offset   = 0;
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         uint16_t nextSize = 0u;
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         do
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         {
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            ss.read(reinterpret_cast<char*>(&nextSize), 2);
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            if (nextSize == 0)
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            {
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               offset += 2;
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            }
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            else
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            {
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               ss.seekg(-2, std::ios_base::cur);
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            }
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         } while (!ss.eof() && nextSize == 0u);
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         if (!ss.eof() && offset != 0)
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         {
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            BOOST_LOG_TRIVIAL(trace)
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               << logPrefix_ << "Next record offset by " << offset << " bytes";
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         }
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      }
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   }
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   rawRecords_.clear();
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}
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void Ar2vFileImpl::HandleMessage(std::shared_ptr<rda::Message>& message)
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{
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   switch (message->header().message_type())
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   {
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   case static_cast<uint8_t>(rda::MessageId::VolumeCoveragePatternData):
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      vcpData_ =
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         std::static_pointer_cast<rda::VolumeCoveragePatternData>(message);
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      break;
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   case static_cast<uint8_t>(rda::MessageId::DigitalRadarData):
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      ProcessRadarData(
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         std::static_pointer_cast<rda::DigitalRadarData>(message));
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      break;
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   default: break;
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   }
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}
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void Ar2vFileImpl::ProcessRadarData(
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   std::shared_ptr<rda::DigitalRadarData> message)
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{
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   uint16_t azimuthIndex   = message->azimuth_number() - 1;
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   uint16_t elevationIndex = message->elevation_number() - 1;
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   if (radarData_[elevationIndex] == nullptr)
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   {
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      radarData_[elevationIndex] = std::make_shared<rda::ElevationScan>();
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   }
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   (*radarData_[elevationIndex])[azimuthIndex] = message;
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}
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void Ar2vFileImpl::IndexFile()
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{
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   BOOST_LOG_TRIVIAL(debug) << logPrefix_ << "Indexing file";
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   for (auto elevationCut : radarData_)
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   {
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      uint16_t elevationAngle =
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         vcpData_->elevation_angle_raw(elevationCut.first);
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      rda::WaveformType waveformType =
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         vcpData_->waveform_type(elevationCut.first);
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      std::shared_ptr<rda::DigitalRadarData> radial0 =
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         (*elevationCut.second)[0];
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      for (rda::DataBlockType dataBlockType :
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           rda::MomentDataBlockTypeIterator())
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      {
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         if (dataBlockType == rda::DataBlockType::MomentRef &&
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             waveformType ==
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                rda::WaveformType::ContiguousDopplerWithAmbiguityResolution)
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         {
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            // Reflectivity data is contained within both surveillance and
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            // doppler modes.  Surveillance mode produces a better image.
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            continue;
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         }
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         auto momentData = radial0->moment_data_block(dataBlockType);
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         if (momentData != nullptr)
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         {
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            // TODO: Handle multiple elevation scans
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            index_[dataBlockType][elevationAngle] = elevationCut.second;
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         }
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      }
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   }
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}
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} // namespace wsr88d
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} // namespace scwx
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