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			716 lines
		
	
	
	
		
			19 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			716 lines
		
	
	
	
		
			19 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
| #include <scwx/qt/manager/timeline_manager.hpp>
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| #include <scwx/qt/manager/radar_product_manager.hpp>
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| #include <scwx/qt/settings/general_settings.hpp>
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| #include <scwx/util/logger.hpp>
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| #include <scwx/util/map.hpp>
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| #include <scwx/util/time.hpp>
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| 
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| #include <condition_variable>
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| #include <mutex>
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| 
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| #include <boost/asio/post.hpp>
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| #include <boost/asio/steady_timer.hpp>
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| #include <boost/asio/thread_pool.hpp>
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| #include <fmt/chrono.h>
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| 
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| namespace scwx
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| {
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| namespace qt
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| {
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| namespace manager
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| {
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| 
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| static const std::string logPrefix_ = "scwx::qt::manager::timeline_manager";
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| static const auto        logger_    = scwx::util::Logger::Create(logPrefix_);
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| 
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| enum class Direction
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| {
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|    Back,
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|    Next
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| };
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| 
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| // Wait up to 5 seconds for radar sweeps to update
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| static constexpr std::chrono::seconds kRadarSweepMonitorTimeout_ {5};
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| 
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| class TimelineManager::Impl
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| {
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| public:
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|    explicit Impl(TimelineManager* self) : self_ {self}
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|    {
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|       auto& generalSettings = settings::GeneralSettings::Instance();
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| 
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|       loopDelay_ =
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|          std::chrono::milliseconds(generalSettings.loop_delay().GetValue());
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|       loopSpeed_ = generalSettings.loop_speed().GetValue();
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|       loopTime_  = std::chrono::minutes(generalSettings.loop_time().GetValue());
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|    }
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| 
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|    ~Impl()
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|    {
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|       // Lock mutexes before destroying
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|       std::unique_lock animationTimerLock {animationTimerMutex_};
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|       animationTimer_.cancel();
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| 
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|       std::unique_lock selectTimeLock {selectTimeMutex_};
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|    }
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| 
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|    TimelineManager* self_;
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| 
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|    std::pair<std::chrono::system_clock::time_point,
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|              std::chrono::system_clock::time_point>
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|         GetLoopStartAndEndTimes();
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|    void UpdateCacheLimit(
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|       std::shared_ptr<manager::RadarProductManager> radarProductManager,
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|       const std::set<std::chrono::system_clock::time_point>& volumeTimes);
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| 
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|    void RadarSweepMonitorDisable();
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|    void RadarSweepMonitorReset();
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|    void RadarSweepMonitorWait(std::unique_lock<std::mutex>& lock);
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| 
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|    void Pause();
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|    void Play();
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|    void PlaySync();
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|    void
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|    SelectTimeAsync(std::chrono::system_clock::time_point selectedTime = {});
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|    std::pair<bool, bool>
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|         SelectTime(std::chrono::system_clock::time_point selectedTime = {});
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|    void StepAsync(Direction direction);
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|    void Step(Direction direction);
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| 
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|    boost::asio::thread_pool playThreadPool_ {1};
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|    boost::asio::thread_pool selectThreadPool_ {1};
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| 
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|    std::size_t                           mapCount_ {0};
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|    std::string                           radarSite_ {"?"};
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|    std::string                           previousRadarSite_ {"?"};
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|    std::chrono::system_clock::time_point pinnedTime_ {};
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|    std::chrono::system_clock::time_point adjustedTime_ {};
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|    std::chrono::system_clock::time_point selectedTime_ {};
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|    types::MapTime                        viewType_ {types::MapTime::Live};
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|    std::chrono::minutes                  loopTime_;
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|    double                                loopSpeed_;
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|    std::chrono::milliseconds             loopDelay_;
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| 
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|    bool                    radarSweepMonitorActive_ {false};
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|    std::mutex              radarSweepMonitorMutex_ {};
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|    std::condition_variable radarSweepMonitorCondition_ {};
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|    std::set<std::size_t>   radarSweepsUpdated_ {};
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|    std::set<std::size_t>   radarSweepsComplete_ {};
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| 
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|    types::AnimationState     animationState_ {types::AnimationState::Pause};
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|    boost::asio::steady_timer animationTimer_ {playThreadPool_};
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|    std::mutex                animationTimerMutex_ {};
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| 
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|    std::mutex selectTimeMutex_ {};
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| };
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| 
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| TimelineManager::TimelineManager() : p(std::make_unique<Impl>(this)) {}
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| TimelineManager::~TimelineManager() = default;
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| 
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| void TimelineManager::SetMapCount(std::size_t mapCount)
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| {
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|    p->mapCount_ = mapCount;
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| }
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| 
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| void TimelineManager::SetRadarSite(const std::string& radarSite)
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| {
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|    if (p->radarSite_ == radarSite)
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|    {
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|       // No action needed
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|       return;
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|    }
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| 
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|    logger_->debug("SetRadarSite: {}", radarSite);
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| 
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|    p->radarSite_ = radarSite;
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| 
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|    if (p->viewType_ == types::MapTime::Live)
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|    {
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|       // If the selected view type is live, select the current products
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|       p->SelectTime();
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|    }
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|    else
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|    {
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|       // If the selected view type is archive, select using the selected time
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|       p->SelectTimeAsync(p->selectedTime_);
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|    }
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| }
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| 
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| void TimelineManager::SetDateTime(
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|    std::chrono::system_clock::time_point dateTime)
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| {
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|    logger_->debug("SetDateTime: {}", scwx::util::TimeString(dateTime));
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| 
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|    p->pinnedTime_ = dateTime;
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| 
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|    if (p->viewType_ == types::MapTime::Archive)
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|    {
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|       // Only select if the view type is archive
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|       p->SelectTimeAsync(dateTime);
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|    }
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| 
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|    // Ignore a date/time selection if the view type is live
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| }
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| 
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| void TimelineManager::SetViewType(types::MapTime viewType)
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| {
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|    logger_->debug("SetViewType: {}", types::GetMapTimeName(viewType));
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| 
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|    p->viewType_ = viewType;
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| 
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|    if (p->viewType_ == types::MapTime::Live)
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|    {
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|       // If the selected view type is live, select the current products
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|       p->SelectTime();
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|    }
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|    else
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|    {
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|       // If the selected view type is archive, select using the pinned time
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|       p->SelectTimeAsync(p->pinnedTime_);
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|    }
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| 
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|    Q_EMIT ViewTypeUpdated(viewType);
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| }
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| 
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| void TimelineManager::SetLoopTime(std::chrono::minutes loopTime)
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| {
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|    logger_->debug("SetLoopTime: {}", loopTime);
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| 
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|    p->loopTime_ = loopTime;
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| }
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| 
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| void TimelineManager::SetLoopSpeed(double loopSpeed)
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| {
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|    logger_->debug("SetLoopSpeed: {}", loopSpeed);
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| 
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|    if (loopSpeed < 1.0)
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|    {
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|       loopSpeed = 1.0;
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|    }
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| 
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|    p->loopSpeed_ = loopSpeed;
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| }
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| 
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| void TimelineManager::SetLoopDelay(std::chrono::milliseconds loopDelay)
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| {
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|    logger_->debug("SetLoopDelay: {}", loopDelay);
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| 
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|    p->loopDelay_ = loopDelay;
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| }
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| 
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| void TimelineManager::AnimationStepBegin()
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| {
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|    logger_->debug("AnimationStepBegin");
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| 
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|    p->Pause();
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| 
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|    if (p->viewType_ == types::MapTime::Live ||
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|        p->pinnedTime_ == std::chrono::system_clock::time_point {})
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|    {
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|       // If the selected view type is live, select the current products
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|       p->SelectTimeAsync(std::chrono::system_clock::now() - p->loopTime_);
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|    }
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|    else
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|    {
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|       // If the selected view type is archive, select using the pinned time
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|       p->SelectTimeAsync(p->pinnedTime_ - p->loopTime_);
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|    }
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| }
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| 
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| void TimelineManager::AnimationStepBack()
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| {
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|    logger_->debug("AnimationStepBack");
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| 
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|    p->Pause();
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|    p->StepAsync(Direction::Back);
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| }
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| 
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| void TimelineManager::AnimationPlayPause()
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| {
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|    if (p->animationState_ == types::AnimationState::Pause)
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|    {
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|       logger_->debug("AnimationPlay");
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|       p->Play();
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|    }
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|    else
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|    {
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|       logger_->debug("AnimationPause");
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|       p->Pause();
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|    }
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| }
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| 
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| void TimelineManager::AnimationStepNext()
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| {
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|    logger_->debug("AnimationStepNext");
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| 
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|    p->Pause();
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|    p->StepAsync(Direction::Next);
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| }
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| 
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| void TimelineManager::AnimationStepEnd()
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| {
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|    logger_->debug("AnimationStepEnd");
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| 
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|    p->Pause();
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| 
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|    if (p->viewType_ == types::MapTime::Live)
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|    {
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|       // If the selected view type is live, select the current products
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|       p->SelectTime();
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|    }
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|    else
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|    {
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|       // If the selected view type is archive, select using the pinned time
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|       p->SelectTimeAsync(p->pinnedTime_);
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|    }
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| }
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| 
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| void TimelineManager::Impl::RadarSweepMonitorDisable()
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| {
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|    radarSweepMonitorActive_ = false;
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| }
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| 
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| void TimelineManager::Impl::RadarSweepMonitorReset()
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| {
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|    radarSweepsUpdated_.clear();
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|    radarSweepsComplete_.clear();
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| 
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|    radarSweepMonitorActive_ = true;
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| }
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| 
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| void TimelineManager::Impl::RadarSweepMonitorWait(
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|    std::unique_lock<std::mutex>& lock)
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| {
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|    std::cv_status status =
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|       radarSweepMonitorCondition_.wait_for(lock, kRadarSweepMonitorTimeout_);
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|    if (status == std::cv_status::timeout)
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|    {
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|       logger_->debug("Radar sweep monitor timed out");
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|    }
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|    radarSweepMonitorActive_ = false;
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| }
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| 
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| void TimelineManager::ReceiveRadarSweepUpdated(std::size_t mapIndex)
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| {
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|    if (!p->radarSweepMonitorActive_)
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|    {
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|       return;
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|    }
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| 
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|    std::unique_lock lock {p->radarSweepMonitorMutex_};
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| 
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|    // Radar sweep is updated, but still needs painted
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|    p->radarSweepsUpdated_.insert(mapIndex);
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| }
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| 
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| void TimelineManager::ReceiveRadarSweepNotUpdated(std::size_t mapIndex,
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|                                                   types::NoUpdateReason reason)
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| {
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|    if (!p->radarSweepMonitorActive_ ||
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|        reason == types::NoUpdateReason::NotLoaded)
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|    {
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|       return;
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|    }
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| 
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|    std::unique_lock lock {p->radarSweepMonitorMutex_};
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| 
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|    // Radar sweep is complete, no painting will occur
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|    p->radarSweepsComplete_.insert(mapIndex);
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| 
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|    // If all sweeps have completed rendering
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|    if (p->radarSweepsComplete_.size() == p->mapCount_)
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|    {
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|       // Notify monitors
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|       p->radarSweepMonitorActive_ = false;
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|       p->radarSweepMonitorCondition_.notify_all();
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|    }
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| }
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| 
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| void TimelineManager::ReceiveMapWidgetPainted(std::size_t mapIndex)
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| {
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|    if (!p->radarSweepMonitorActive_)
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|    {
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|       return;
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|    }
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| 
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|    std::unique_lock lock {p->radarSweepMonitorMutex_};
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| 
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|    // If the radar sweep has been updated
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|    if (p->radarSweepsUpdated_.contains(mapIndex) &&
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|        !p->radarSweepsComplete_.contains(mapIndex))
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|    {
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|       // Mark the radar sweep complete
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|       p->radarSweepsComplete_.insert(mapIndex);
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| 
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|       // If all sweeps have completed rendering
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|       if (p->radarSweepsComplete_.size() == p->mapCount_)
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|       {
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|          // Notify monitors
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|          p->radarSweepMonitorActive_ = false;
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|          p->radarSweepMonitorCondition_.notify_all();
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|       }
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|    }
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| }
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| 
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| void TimelineManager::Impl::Pause()
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| {
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|    // Cancel animation
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|    std::unique_lock animationTimerLock {animationTimerMutex_};
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|    animationTimer_.cancel();
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| 
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|    if (animationState_ != types::AnimationState::Pause)
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|    {
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|       animationState_ = types::AnimationState::Pause;
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|       Q_EMIT self_->AnimationStateUpdated(animationState_);
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|    }
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| }
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| 
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| std::pair<std::chrono::system_clock::time_point,
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|           std::chrono::system_clock::time_point>
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| TimelineManager::Impl::GetLoopStartAndEndTimes()
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| {
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|    // Determine loop end time
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|    std::chrono::system_clock::time_point endTime;
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| 
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|    if (viewType_ == types::MapTime::Live ||
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|        pinnedTime_ == std::chrono::system_clock::time_point {})
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|    {
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|       endTime = std::chrono::floor<std::chrono::minutes>(
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|          std::chrono::system_clock::now());
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|    }
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|    else
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|    {
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|       endTime = pinnedTime_;
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|    }
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| 
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|    // Determine loop start time and current position in the loop
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|    std::chrono::system_clock::time_point startTime = endTime - loopTime_;
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| 
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|    return {startTime, endTime};
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| }
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| 
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| void TimelineManager::Impl::UpdateCacheLimit(
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|    std::shared_ptr<manager::RadarProductManager>          radarProductManager,
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|    const std::set<std::chrono::system_clock::time_point>& volumeTimes)
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| {
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|    // Calculate the number of volume scans in the loop
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|    auto [startTime, endTime] = GetLoopStartAndEndTimes();
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|    auto startIter = util::GetBoundedElementIterator(volumeTimes, startTime);
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|    auto endIter   = util::GetBoundedElementIterator(volumeTimes, endTime);
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|    std::size_t numVolumeScans = std::distance(startIter, endIter) + 1;
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| 
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|    // Dynamically update maximum cached volume scans to the lesser of
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|    // either 1.5x the loop length or 5 greater than the loop length
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|    radarProductManager->SetCacheLimit(std::min(
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|       static_cast<std::size_t>(numVolumeScans * 1.5), numVolumeScans + 5u));
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| }
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| 
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| void TimelineManager::Impl::Play()
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| {
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|    if (animationState_ != types::AnimationState::Play)
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|    {
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|       animationState_ = types::AnimationState::Play;
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|       Q_EMIT self_->AnimationStateUpdated(animationState_);
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|    }
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| 
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|    {
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|       std::unique_lock animationTimerLock {animationTimerMutex_};
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|       animationTimer_.cancel();
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|    }
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| 
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|    boost::asio::post(playThreadPool_,
 | |
|                      [this]()
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|                      {
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|                         try
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|                         {
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|                            PlaySync();
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|                         }
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|                         catch (const std::exception& ex)
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|                         {
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|                            logger_->error(ex.what());
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|                         }
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|                      });
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| }
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| 
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| void TimelineManager::Impl::PlaySync()
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| {
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|    using namespace std::chrono_literals;
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| 
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|    // Take a lock for time selection
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|    std::unique_lock lock {selectTimeMutex_};
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| 
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|    auto [startTime, endTime] = GetLoopStartAndEndTimes();
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|    std::chrono::system_clock::time_point currentTime = selectedTime_;
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|    std::chrono::system_clock::time_point newTime;
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| 
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|    if (currentTime < startTime || currentTime >= endTime)
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|    {
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|       // If the currently selected time is out of the loop, select the
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|       // start time
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|       newTime = startTime;
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|    }
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|    else
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|    {
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|       // If the currently selected time is in the loop, increment
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|       newTime = currentTime + 1min;
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|    }
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| 
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|    // Unlock prior to selecting time
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|    lock.unlock();
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| 
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|    // Lock radar sweep monitor
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|    std::unique_lock radarSweepMonitorLock {radarSweepMonitorMutex_};
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| 
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|    // Reset radar sweep monitor in preparation for update
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|    RadarSweepMonitorReset();
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| 
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|    // Select the time
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|    auto selectTimeStart = std::chrono::steady_clock::now();
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|    SelectTime(newTime);
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|    auto selectTimeEnd = std::chrono::steady_clock::now();
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|    auto elapsedTime   = selectTimeEnd - selectTimeStart;
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| 
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|    // Wait for radar sweeps to update
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|    RadarSweepMonitorWait(radarSweepMonitorLock);
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| 
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|    // Calculate the interval until the next update, prior to selecting
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|    std::chrono::milliseconds interval;
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|    if (newTime != endTime)
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|    {
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|       // Determine repeat interval (speed of 1.0 is 1 minute per second)
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|       interval = std::chrono::duration_cast<std::chrono::milliseconds>(
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|          std::chrono::milliseconds(std::lroundl(1000.0 / loopSpeed_)) -
 | |
|          elapsedTime);
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|    }
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|    else
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|    {
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|       // Pause at the end of the loop
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|       interval = std::chrono::duration_cast<std::chrono::milliseconds>(
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|          loopDelay_ - elapsedTime);
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|    }
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| 
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|    std::unique_lock animationTimerLock {animationTimerMutex_};
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|    animationTimer_.expires_after(interval);
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|    animationTimer_.async_wait(
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|       [this](const boost::system::error_code& e)
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|       {
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|          if (e == boost::system::errc::success)
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|          {
 | |
|             if (animationState_ == types::AnimationState::Play)
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|             {
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|                Play();
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|             }
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|          }
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|          else if (e == boost::asio::error::operation_aborted)
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|          {
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|             logger_->debug("Play timer cancelled");
 | |
|          }
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|          else
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|          {
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|             logger_->warn("Play timer error: {}", e.message());
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|          }
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|       });
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| }
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| 
 | |
| void TimelineManager::Impl::SelectTimeAsync(
 | |
|    std::chrono::system_clock::time_point selectedTime)
 | |
| {
 | |
|    boost::asio::post(selectThreadPool_,
 | |
|                      [=, this]()
 | |
|                      {
 | |
|                         try
 | |
|                         {
 | |
|                            SelectTime(selectedTime);
 | |
|                         }
 | |
|                         catch (const std::exception& ex)
 | |
|                         {
 | |
|                            logger_->error(ex.what());
 | |
|                         }
 | |
|                      });
 | |
| }
 | |
| 
 | |
| std::pair<bool, bool> TimelineManager::Impl::SelectTime(
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|    std::chrono::system_clock::time_point selectedTime)
 | |
| {
 | |
|    bool volumeTimeUpdated   = false;
 | |
|    bool selectedTimeUpdated = false;
 | |
| 
 | |
|    if (selectedTime_ == selectedTime && radarSite_ == previousRadarSite_)
 | |
|    {
 | |
|       // Nothing to do
 | |
|       return {volumeTimeUpdated, selectedTimeUpdated};
 | |
|    }
 | |
|    else if (selectedTime == std::chrono::system_clock::time_point {})
 | |
|    {
 | |
|       // If a default time point is given, reset to a live view
 | |
|       selectedTime_      = selectedTime;
 | |
|       adjustedTime_      = selectedTime;
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|       previousRadarSite_ = radarSite_;
 | |
| 
 | |
|       logger_->debug("Time updated: Live");
 | |
| 
 | |
|       Q_EMIT self_->LiveStateUpdated(true);
 | |
|       Q_EMIT self_->VolumeTimeUpdated(selectedTime);
 | |
|       Q_EMIT self_->SelectedTimeUpdated(selectedTime);
 | |
| 
 | |
|       volumeTimeUpdated   = true;
 | |
|       selectedTimeUpdated = true;
 | |
| 
 | |
|       return {volumeTimeUpdated, selectedTimeUpdated};
 | |
|    }
 | |
| 
 | |
|    // Take a lock for time selection
 | |
|    std::unique_lock lock {selectTimeMutex_};
 | |
| 
 | |
|    // Request active volume times
 | |
|    auto radarProductManager =
 | |
|       manager::RadarProductManager::Instance(radarSite_);
 | |
|    auto volumeTimes = radarProductManager->GetActiveVolumeTimes(selectedTime);
 | |
| 
 | |
|    // Dynamically update maximum cached volume scans
 | |
|    UpdateCacheLimit(radarProductManager, volumeTimes);
 | |
| 
 | |
|    // Find the best match bounded time
 | |
|    auto elementPtr = util::GetBoundedElementPointer(volumeTimes, selectedTime);
 | |
| 
 | |
|    // The timeline is no longer live
 | |
|    Q_EMIT self_->LiveStateUpdated(false);
 | |
| 
 | |
|    if (elementPtr != nullptr)
 | |
|    {
 | |
|       // If the adjusted time changed, or if a new radar site has been selected
 | |
|       if (adjustedTime_ != *elementPtr || radarSite_ != previousRadarSite_)
 | |
|       {
 | |
|          // If the time was found, select it
 | |
|          adjustedTime_ = *elementPtr;
 | |
| 
 | |
|          logger_->debug("Volume time updated: {}",
 | |
|                         scwx::util::TimeString(adjustedTime_));
 | |
| 
 | |
|          volumeTimeUpdated = true;
 | |
|          Q_EMIT self_->VolumeTimeUpdated(adjustedTime_);
 | |
|       }
 | |
|    }
 | |
|    else
 | |
|    {
 | |
|       // No volume time was found
 | |
|       logger_->info("No volume scan found for {}",
 | |
|                     scwx::util::TimeString(selectedTime));
 | |
|    }
 | |
| 
 | |
|    logger_->trace("Selected time updated: {}",
 | |
|                   scwx::util::TimeString(selectedTime));
 | |
| 
 | |
|    selectedTime_       = selectedTime;
 | |
|    selectedTimeUpdated = true;
 | |
|    Q_EMIT self_->SelectedTimeUpdated(selectedTime);
 | |
| 
 | |
|    previousRadarSite_ = radarSite_;
 | |
| 
 | |
|    return {volumeTimeUpdated, selectedTimeUpdated};
 | |
| }
 | |
| 
 | |
| void TimelineManager::Impl::StepAsync(Direction direction)
 | |
| {
 | |
|    boost::asio::post(selectThreadPool_,
 | |
|                      [=, this]()
 | |
|                      {
 | |
|                         try
 | |
|                         {
 | |
|                            Step(direction);
 | |
|                         }
 | |
|                         catch (const std::exception& ex)
 | |
|                         {
 | |
|                            logger_->error(ex.what());
 | |
|                         }
 | |
|                      });
 | |
| }
 | |
| 
 | |
| void TimelineManager::Impl::Step(Direction direction)
 | |
| {
 | |
|    // Take a lock for time selection
 | |
|    std::unique_lock lock {selectTimeMutex_};
 | |
| 
 | |
|    std::chrono::system_clock::time_point newTime = selectedTime_;
 | |
| 
 | |
|    if (newTime == std::chrono::system_clock::time_point {})
 | |
|    {
 | |
|       if (direction == Direction::Back)
 | |
|       {
 | |
|          newTime = std::chrono::floor<std::chrono::minutes>(
 | |
|             std::chrono::system_clock::now());
 | |
|       }
 | |
|       else
 | |
|       {
 | |
|          // Cannot step forward any further
 | |
|          return;
 | |
|       }
 | |
|    }
 | |
| 
 | |
|    // Unlock prior to selecting time
 | |
|    lock.unlock();
 | |
| 
 | |
|    // Lock radar sweep monitor
 | |
|    std::unique_lock radarSweepMonitorLock {radarSweepMonitorMutex_};
 | |
| 
 | |
|    // Attempt to step forward or backward up to 30 minutes until an update is
 | |
|    // received on at least one map
 | |
|    for (std::size_t i = 0; i < 30; ++i)
 | |
|    {
 | |
|       using namespace std::chrono_literals;
 | |
| 
 | |
|       // Increment/decrement selected time by one minute
 | |
|       if (direction == Direction::Back)
 | |
|       {
 | |
|          newTime -= 1min;
 | |
|       }
 | |
|       else
 | |
|       {
 | |
|          newTime += 1min;
 | |
| 
 | |
|          // If the new time is more than 2 minutes in the future, stop stepping
 | |
|          if (newTime > std::chrono::system_clock::now() + 2min)
 | |
|          {
 | |
|             break;
 | |
|          }
 | |
|       }
 | |
| 
 | |
|       // Reset radar sweep monitor in preparation for update
 | |
|       RadarSweepMonitorReset();
 | |
| 
 | |
|       // Select the time
 | |
|       SelectTime(newTime);
 | |
| 
 | |
|       // Wait for radar sweeps to update
 | |
|       RadarSweepMonitorWait(radarSweepMonitorLock);
 | |
| 
 | |
|       // Check for updates
 | |
|       if (!radarSweepsUpdated_.empty())
 | |
|       {
 | |
|          break;
 | |
|       }
 | |
|    }
 | |
| }
 | |
| 
 | |
| std::shared_ptr<TimelineManager> TimelineManager::Instance()
 | |
| {
 | |
|    static std::weak_ptr<TimelineManager> timelineManagerReference_ {};
 | |
|    static std::mutex                     instanceMutex_ {};
 | |
| 
 | |
|    std::unique_lock lock(instanceMutex_);
 | |
| 
 | |
|    std::shared_ptr<TimelineManager> timelineManager =
 | |
|       timelineManagerReference_.lock();
 | |
| 
 | |
|    if (timelineManager == nullptr)
 | |
|    {
 | |
|       timelineManager           = std::make_shared<TimelineManager>();
 | |
|       timelineManagerReference_ = timelineManager;
 | |
|    }
 | |
| 
 | |
|    return timelineManager;
 | |
| }
 | |
| 
 | |
| } // namespace manager
 | |
| } // namespace qt
 | |
| } // namespace scwx
 | 
