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#pragma once |
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#include <vector> |
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#include <opencv2/opencv.hpp> |
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namespace PaddleDetection { |
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typedef enum |
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{ |
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New = 0, |
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Tracked = 1, |
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Lost = 2, |
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Removed = 3 |
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} TrajectoryState; |
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class Trajectory; |
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typedef std::vector<Trajectory> TrajectoryPool; |
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typedef std::vector<Trajectory>::iterator TrajectoryPoolIterator; |
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typedef std::vector<Trajectory *>TrajectoryPtrPool; |
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typedef std::vector<Trajectory *>::iterator TrajectoryPtrPoolIterator; |
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class TKalmanFilter : public cv::KalmanFilter |
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{ |
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public: |
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TKalmanFilter(void); |
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virtual ~TKalmanFilter(void) {} |
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virtual void init(const cv::Mat &measurement); |
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virtual const cv::Mat &predict(); |
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virtual const cv::Mat &correct(const cv::Mat &measurement); |
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virtual void project(cv::Mat &mean, cv::Mat &covariance) const; |
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private: |
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float std_weight_position; |
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float std_weight_velocity; |
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}; |
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inline TKalmanFilter::TKalmanFilter(void) : cv::KalmanFilter(8, 4) |
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{ |
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cv::KalmanFilter::transitionMatrix = cv::Mat::eye(8, 8, CV_32F); |
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for (int i = 0; i < 4; ++i) |
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cv::KalmanFilter::transitionMatrix.at<float>(i, i + 4) = 1; |
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cv::KalmanFilter::measurementMatrix = cv::Mat::eye(4, 8, CV_32F); |
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std_weight_position = 1/20.f; |
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std_weight_velocity = 1/160.f; |
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} |
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class Trajectory : public TKalmanFilter |
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{ |
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public: |
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Trajectory(); |
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Trajectory(cv::Vec4f <rb, float score, const cv::Mat &embedding); |
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Trajectory(const Trajectory &other); |
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Trajectory &operator=(const Trajectory &rhs); |
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virtual ~Trajectory(void) {}; |
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static int next_id(); |
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virtual const cv::Mat &predict(void); |
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virtual void update(Trajectory &traj, int timestamp, bool update_embedding=true); |
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virtual void activate(int timestamp); |
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virtual void reactivate(Trajectory &traj, int timestamp, bool newid=false); |
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virtual void mark_lost(void); |
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virtual void mark_removed(void); |
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friend TrajectoryPool operator+(const TrajectoryPool &a, const TrajectoryPool &b); |
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friend TrajectoryPool operator+(const TrajectoryPool &a, const TrajectoryPtrPool &b); |
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friend TrajectoryPool &operator+=(TrajectoryPool &a, const TrajectoryPtrPool &b); |
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friend TrajectoryPool operator-(const TrajectoryPool &a, const TrajectoryPool &b); |
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friend TrajectoryPool &operator-=(TrajectoryPool &a, const TrajectoryPool &b); |
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friend TrajectoryPtrPool operator+(const TrajectoryPtrPool &a, const TrajectoryPtrPool &b); |
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friend TrajectoryPtrPool operator+(const TrajectoryPtrPool &a, TrajectoryPool &b); |
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friend TrajectoryPtrPool operator-(const TrajectoryPtrPool &a, const TrajectoryPtrPool &b); |
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friend cv::Mat embedding_distance(const TrajectoryPool &a, const TrajectoryPool &b); |
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friend cv::Mat embedding_distance(const TrajectoryPtrPool &a, const TrajectoryPtrPool &b); |
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friend cv::Mat embedding_distance(const TrajectoryPtrPool &a, const TrajectoryPool &b); |
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friend cv::Mat mahalanobis_distance(const TrajectoryPool &a, const TrajectoryPool &b); |
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friend cv::Mat mahalanobis_distance(const TrajectoryPtrPool &a, const TrajectoryPtrPool &b); |
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friend cv::Mat mahalanobis_distance(const TrajectoryPtrPool &a, const TrajectoryPool &b); |
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friend cv::Mat iou_distance(const TrajectoryPool &a, const TrajectoryPool &b); |
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friend cv::Mat iou_distance(const TrajectoryPtrPool &a, const TrajectoryPtrPool &b); |
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friend cv::Mat iou_distance(const TrajectoryPtrPool &a, const TrajectoryPool &b); |
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private: |
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void update_embedding(const cv::Mat &embedding); |
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public: |
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TrajectoryState state; |
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cv::Vec4f ltrb; |
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cv::Mat smooth_embedding; |
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int id; |
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bool is_activated; |
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int timestamp; |
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int starttime; |
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float score; |
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private: |
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static int count; |
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cv::Vec4f xyah; |
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cv::Mat current_embedding; |
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float eta; |
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int length; |
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}; |
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inline cv::Vec4f ltrb2xyah(cv::Vec4f <rb) |
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{ |
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cv::Vec4f xyah; |
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xyah[0] = (ltrb[0] + ltrb[2]) * 0.5f; |
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xyah[1] = (ltrb[1] + ltrb[3]) * 0.5f; |
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xyah[3] = ltrb[3] - ltrb[1]; |
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xyah[2] = (ltrb[2] - ltrb[0]) / xyah[3]; |
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return xyah; |
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} |
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inline Trajectory::Trajectory() : |
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state(New), ltrb(cv::Vec4f()), smooth_embedding(cv::Mat()), id(0), |
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is_activated(false), timestamp(0), starttime(0), score(0), eta(0.9), length(0) |
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{ |
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} |
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inline Trajectory::Trajectory(cv::Vec4f <rb_, float score_, const cv::Mat &embedding) : |
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state(New), ltrb(ltrb_), smooth_embedding(cv::Mat()), id(0), |
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is_activated(false), timestamp(0), starttime(0), score(score_), eta(0.9), length(0) |
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{ |
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xyah = ltrb2xyah(ltrb); |
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update_embedding(embedding); |
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} |
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inline Trajectory::Trajectory(const Trajectory &other): |
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state(other.state), ltrb(other.ltrb), id(other.id), is_activated(other.is_activated), |
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timestamp(other.timestamp), starttime(other.starttime), xyah(other.xyah), |
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score(other.score), eta(other.eta), length(other.length) |
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{ |
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other.smooth_embedding.copyTo(smooth_embedding); |
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other.current_embedding.copyTo(current_embedding); |
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other.statePre.copyTo(cv::KalmanFilter::statePre); |
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other.statePost.copyTo(cv::KalmanFilter::statePost); |
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other.errorCovPre.copyTo(cv::KalmanFilter::errorCovPre); |
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other.errorCovPost.copyTo(cv::KalmanFilter::errorCovPost); |
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} |
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inline Trajectory &Trajectory::operator=(const Trajectory &rhs) |
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{ |
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this->state = rhs.state; |
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this->ltrb = rhs.ltrb; |
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rhs.smooth_embedding.copyTo(this->smooth_embedding); |
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this->id = rhs.id; |
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this->is_activated = rhs.is_activated; |
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this->timestamp = rhs.timestamp; |
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this->starttime = rhs.starttime; |
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this->xyah = rhs.xyah; |
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this->score = rhs.score; |
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rhs.current_embedding.copyTo(this->current_embedding); |
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this->eta = rhs.eta; |
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this->length = rhs.length; |
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rhs.statePre.copyTo(cv::KalmanFilter::statePre); |
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rhs.statePost.copyTo(cv::KalmanFilter::statePost); |
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rhs.errorCovPre.copyTo(cv::KalmanFilter::errorCovPre); |
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rhs.errorCovPost.copyTo(cv::KalmanFilter::errorCovPost); |
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return *this; |
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} |
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inline int Trajectory::next_id() |
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{ |
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++count; |
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return count; |
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} |
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inline void Trajectory::mark_lost(void) |
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{ |
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state = Lost; |
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} |
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inline void Trajectory::mark_removed(void) |
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{ |
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state = Removed; |
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} |
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} |
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