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| /** | |
| * @brief Combines two sets of tracks into a single set, avoiding duplicate track IDs. | |
| * | |
| * This function combines two vectors of tracks, including all tracks from tlista (pointers to STrack objects) and adding tracks from tlistb | |
| * (STrack objects) only if their track IDs are not already present in tlista. It ensures a unified set of tracks for tracking algorithms | |
| * without duplicates, returning pointers to the tracks. | |
| * | |
| * @param tlista Vector of pointers to STrack objects representing the first set of tracks. | |
| * @param tlistb Vector of STrack objects representing the second set of tracks to be added. | |
| * | |
| * @return A vector of pointers to STrack objects containing all tracks from tlista and non-duplicate tracks from tlistb based on track IDs. | |
| */ | |
| vector<STrack *> BYTETracker::joint_stracks(vector<STrack *> &tlista, vector <STrack> &tlistb) { | |
| map<int, int> exists; | |
| vector < STrack * > res; | |
| for (int i = 0; i < tlista.size(); i++) { | |
| exists.insert(pair<int, int>(tlista[i]->track_id, 1)); | |
| res.push_back(tlista[i]); | |
| } | |
| for (int i = 0; i < tlistb.size(); i++) { | |
| int tid = tlistb[i].track_id; | |
| if (!exists[tid] || exists.count(tid) == 0) { | |
| exists[tid] = 1; | |
| res.push_back(&tlistb[i]); | |
| } | |
| } | |
| return res; | |
| } | |
| /** | |
| * @brief Combines two sets of tracks into a single set, ensuring no duplicate track IDs. | |
| * | |
| * This function merges two vectors of STrack objects, including tracks from tlista and adding tracks from tlistb only if their track IDs | |
| * are not already present in tlista. It is used in tracking algorithms to create a unified set of tracks while avoiding duplicates. | |
| * | |
| * @param tlista Vector of STrack objects representing the first set of tracks (e.g., existing tracks). | |
| * @param tlistb Vector of STrack objects representing the second set of tracks to be added (e.g., new tracks). | |
| * | |
| * @return A vector of STrack objects containing all tracks from tlista and non-duplicate tracks from tlistb based on track IDs. | |
| */ | |
| vector <STrack> BYTETracker::joint_stracks(vector <STrack> &tlista, vector <STrack> &tlistb) { | |
| map<int, int> exists; | |
| vector <STrack> res; | |
| for (int i = 0; i < tlista.size(); i++) { | |
| exists.insert(pair<int, int>(tlista[i].track_id, 1)); | |
| res.push_back(tlista[i]); | |
| } | |
| for (int i = 0; i < tlistb.size(); i++) { | |
| int tid = tlistb[i].track_id; | |
| if (!exists[tid] || exists.count(tid) == 0) { | |
| exists[tid] = 1; | |
| res.push_back(tlistb[i]); | |
| } | |
| } | |
| return res; | |
| } | |
| /** | |
| * @brief Computes the difference between two sets of tracks based on track IDs. | |
| * | |
| * This function returns a subset of tracks from tlista that are not present in tlistb, identified by their unique track IDs. | |
| * It filters out tracks from one set that overlap with another. | |
| * | |
| * @param tlista Vector of STrack objects representing the first set of tracks (all tracks). | |
| * @param tlistb Vector of STrack objects representing the second set of tracks (tracks to be subtracted). | |
| * | |
| * @return A vector of STrack objects containing tracks from tlista whose track IDs are not in tlistb. | |
| */ | |
| vector <STrack> BYTETracker::sub_stracks(vector <STrack> &tlista, vector <STrack> &tlistb) { | |
| map<int, STrack> stracks; | |
| for (int i = 0; i < tlista.size(); i++) { | |
| stracks.insert(pair<int, STrack>(tlista[i].track_id, tlista[i])); | |
| } | |
| for (int i = 0; i < tlistb.size(); i++) { | |
| int tid = tlistb[i].track_id; | |
| if (stracks.count(tid) != 0) { | |
| stracks.erase(tid); | |
| } | |
| } | |
| vector <STrack> res; | |
| std::map<int, STrack>::iterator it; | |
| for (it = stracks.begin(); it != stracks.end(); ++it) { | |
| res.push_back(it->second); | |
| } | |
| return res; | |
| } | |
| /** | |
| * @brief Removes duplicate tracks between two sets of tracks based on IoU distance and track age. | |
| * | |
| * This function identifies and removes duplicate tracks between two sets (stracksa and stracksb) by computing their IoU-based distances. | |
| * Tracks with an IoU distance below a threshold are considered potential duplicates, and the younger track (based on frame duration) is removed. | |
| * The function populates two output vectors with non-duplicate tracks. | |
| * | |
| * @param resa Output vector to store non-duplicate tracks from stracksa. | |
| * @param resb Output vector to store non-duplicate tracks from stracksb. | |
| * @param stracksa Input vector of STrack objects representing the first set of tracks. | |
| * @param stracksb Input vector of STrack objects representing the second set of tracks. | |
| */ | |
| void BYTETracker::remove_duplicate_stracks(vector <STrack> &resa, vector <STrack> &resb, vector <STrack> &stracksa, | |
| vector <STrack> &stracksb) { | |
| vector <vector<float>> pdist = iou_distance(stracksa, stracksb); | |
| vector <pair<int, int>> pairs; | |
| for (int i = 0; i < pdist.size(); i++) { | |
| for (int j = 0; j < pdist[i].size(); j++) { | |
| if (pdist[i][j] < 0.15) { | |
| pairs.push_back(pair<int, int>(i, j)); | |
| } | |
| } | |
| } | |
| vector<int> dupa, dupb; | |
| for (int i = 0; i < pairs.size(); i++) { | |
| int timep = stracksa[pairs[i].first].frame_id - stracksa[pairs[i].first].start_frame; | |
| int timeq = stracksb[pairs[i].second].frame_id - stracksb[pairs[i].second].start_frame; | |
| if (timep > timeq) | |
| dupb.push_back(pairs[i].second); | |
| else | |
| dupa.push_back(pairs[i].first); | |
| } | |
| for (int i = 0; i < stracksa.size(); i++) { | |
| vector<int>::iterator iter = find(dupa.begin(), dupa.end(), i); | |
| if (iter == dupa.end()) { | |
| resa.push_back(stracksa[i]); | |
| } | |
| } | |
| for (int i = 0; i < stracksb.size(); i++) { | |
| vector<int>::iterator iter = find(dupb.begin(), dupb.end(), i); | |
| if (iter == dupb.end()) { | |
| resb.push_back(stracksb[i]); | |
| } | |
| } | |
| } | |
| /** | |
| * @brief Performs linear assignment on a cost matrix to match tracks and detections. | |
| * | |
| * This function uses the Jonker-Volgenant algorithm (via lapjv) to find optimal assignments between rows and columns of a cost matrix, | |
| * typically representing distances (e.g., IoU-based) between tracks and detections. It identifies matched pairs and unmatched elements | |
| * based on a cost threshold to associate detections with existing tracks. | |
| * | |
| * @param cost_matrix 2D vector representing the cost matrix, where cost_matrix[i][j] is the cost of assigning track i to detection j. | |
| * @param cost_matrix_size Number of rows in the cost matrix (number of tracks). | |
| * @param cost_matrix_size_size Number of columns in the cost matrix (number of detections). | |
| * @param thresh Maximum allowable cost for a valid assignment; assignments with costs above this are not considered. | |
| * @param matches Output vector of vectors, where each inner vector contains [row_index, col_index] for matched track-detection pairs. | |
| * @param unmatched_a Output vector containing indices of unmatched rows (unmatched tracks). | |
| * @param unmatched_b Output vector containing indices of unmatched columns (unmatched detections). | |
| */ | |
| void | |
| BYTETracker::linear_assignment(vector <vector<float>> &cost_matrix, int cost_matrix_size, int cost_matrix_size_size, | |
| float thresh, | |
| vector <vector<int>> &matches, vector<int> &unmatched_a, vector<int> &unmatched_b) { | |
| if (cost_matrix.size() == 0) { | |
| for (int i = 0; i < cost_matrix_size; i++) { | |
| unmatched_a.push_back(i); | |
| } | |
| for (int i = 0; i < cost_matrix_size_size; i++) { | |
| unmatched_b.push_back(i); | |
| } | |
| return; | |
| } | |
| vector<int> rowsol; | |
| vector<int> colsol; | |
| float c = lapjv(cost_matrix, rowsol, colsol, true, thresh); | |
| for (int i = 0; i < rowsol.size(); i++) { | |
| if (rowsol[i] >= 0) { | |
| vector<int> match; | |
| match.push_back(i); | |
| match.push_back(rowsol[i]); | |
| matches.push_back(match); | |
| } else { | |
| unmatched_a.push_back(i); | |
| } | |
| } | |
| for (int i = 0; i < colsol.size(); i++) { | |
| if (colsol[i] < 0) { | |
| unmatched_b.push_back(i); | |
| } | |
| } | |
| } | |
| /** | |
| * @brief Computes the Intersection over Union (IoU) matrix for two sets of bounding boxes. | |
| * | |
| * This function calculates the IoU between pairs of bounding boxes from two sets, represented in top-left-bottom-right (tlbr) format. | |
| * IoU is a similarity metric used to measure the overlap between bounding boxes, to associate detections with tracks. | |
| * | |
| * @param atlbrs Vector of bounding boxes (e.g., existing tracks). | |
| * @param btlbrs Vector of bounding boxes (e.g., new detections). | |
| * | |
| * @return A 2D vector representing the IoU matrix, where element [i][j] is the IoU between atlbrs[i] and btlbrs[j]. | |
| * Returns an empty matrix if either input is empty. | |
| */ | |
| vector <vector<float>> BYTETracker::ious(vector <vector<float>> &atlbrs, vector <vector<float>> &btlbrs) { | |
| vector <vector<float>> ious; | |
| if (atlbrs.size() * btlbrs.size() == 0) | |
| return ious; | |
| ious.resize(atlbrs.size()); | |
| for (int i = 0; i < ious.size(); i++) { | |
| ious[i].resize(btlbrs.size()); | |
| } | |
| //bbox_ious | |
| for (int k = 0; k < btlbrs.size(); k++) { | |
| vector<float> ious_tmp; | |
| float box_area = (btlbrs[k][2] - btlbrs[k][0] + 1) * (btlbrs[k][3] - btlbrs[k][1] + 1); | |
| for (int n = 0; n < atlbrs.size(); n++) { | |
| float iw = min(atlbrs[n][2], btlbrs[k][2]) - max(atlbrs[n][0], btlbrs[k][0]) + 1; | |
| if (iw > 0) { | |
| float ih = min(atlbrs[n][3], btlbrs[k][3]) - max(atlbrs[n][1], btlbrs[k][1]) + 1; | |
| if (ih > 0) { | |
| float ua = | |
| (atlbrs[n][2] - atlbrs[n][0] + 1) * (atlbrs[n][3] - atlbrs[n][1] + 1) + box_area - iw * ih; | |
| ious[n][k] = iw * ih / ua; | |
| } else { | |
| ious[n][k] = 0.0; | |
| } | |
| } else { | |
| ious[n][k] = 0.0; | |
| } | |
| } | |
| } | |
| return ious; | |
| } | |
| /** | |
| * @brief Computes Generalized Intersection over Union (GIoU) matrix for two sets of bounding boxes. | |
| * | |
| * This function calculates the IoU between pairs of bounding boxes from two sets, represented in top-left-bottom-right (tlbr) format. | |
| * GIoU is a similarity metric used to measure the overlap between bounding boxes, to associate detections with tracks. | |
| * | |
| * @param atlbrs Vector of bounding boxes (e.g., existing tracks). | |
| * @param btlbrs Vector of bounding boxes (e.g., new detections). | |
| * | |
| * @return A 2D vector representing the GIoU matrix, where element [i][j] is the IoU between atlbrs[i] and btlbrs[j]. | |
| * Returns an empty matrix if either input is empty. | |
| */ | |
| vector<vector<float>> BYTETracker::gious(vector<vector<float>> &atlbrs, vector<vector<float>> &btlbrs) { | |
| vector<vector<float>> gious; | |
| if (atlbrs.empty() || btlbrs.empty()) | |
| return gious; | |
| gious.resize(atlbrs.size(), vector<float>(btlbrs.size(), 0.0f)); | |
| for (int i = 0; i < atlbrs.size(); ++i) { | |
| float x1_a = atlbrs[i][0], y1_a = atlbrs[i][1]; | |
| float x2_a = atlbrs[i][2], y2_a = atlbrs[i][3]; | |
| float area_a = (x2_a - x1_a + 1) * (y2_a - y1_a + 1); | |
| for (int j = 0; j < btlbrs.size(); ++j) { | |
| float x1_b = btlbrs[j][0], y1_b = btlbrs[j][1]; | |
| float x2_b = btlbrs[j][2], y2_b = btlbrs[j][3]; | |
| float area_b = (x2_b - x1_b + 1) * (y2_b - y1_b + 1); | |
| // Intersection | |
| float inter_w = max(0.0f, min(x2_a, x2_b) - max(x1_a, x1_b) + 1); | |
| float inter_h = max(0.0f, min(y2_a, y2_b) - max(y1_a, y1_b) + 1); | |
| float inter_area = inter_w * inter_h; | |
| // Union | |
| float union_area = area_a + area_b - inter_area; | |
| // IoU | |
| float iou = (union_area > 0) ? inter_area / union_area : 0.0f; | |
| // Smallest enclosing box (for GIoU) | |
| float x1_c = min(x1_a, x1_b); | |
| float y1_c = min(y1_a, y1_b); | |
| float x2_c = max(x2_a, x2_b); | |
| float y2_c = max(y2_a, y2_b); | |
| float convex_area = (x2_c - x1_c + 1) * (y2_c - y1_c + 1); | |
| // GIoU | |
| float giou = iou - (convex_area - union_area) / convex_area; | |
| giou = (giou + 1.0)/2.0; // resize from (-1,1) to (0,1) | |
| gious[i][j] = giou; | |
| } | |
| } | |
| return gious; | |
| } | |
| /** | |
| * @brief Computes the IoU-based distance matrix between two sets of tracks. | |
| * | |
| * This function calculates the Intersection over Union (IoU) distance between two sets of tracks using their bounding boxes. | |
| * The IoU distance is defined as 1 - IoU, where lower IoU values indicate greater distance (less overlap). | |
| * The resulting cost matrix is used for track-to-detection assignment in tracking algorithms. It also updates the sizes of the input track sets. | |
| * | |
| * @param atracks Vector of pointers to STrack objects representing the first set of tracks (existing tracks). | |
| * @param btracks Vector of STrack objects representing the second set of tracks (new detections). | |
| * @param dist_size Output parameter to store the number of tracks in atracks. | |
| * @param dist_size_size Output parameter to store the number of tracks in btracks. | |
| * | |
| * @return A 2D vector representing the cost matrix, where each element [i][j] is the IoU distance (1 - IoU) | |
| * between atracks[i] and btracks[j]. Returns empty matrix if either input is empty. | |
| */ | |
| vector <vector<float>> | |
| BYTETracker::iou_distance(vector<STrack *> &atracks, vector <STrack> &btracks, int &dist_size, int &dist_size_size, bool giou) { | |
| vector <vector<float>> cost_matrix; | |
| if (atracks.size() * btracks.size() == 0) { | |
| dist_size = atracks.size(); | |
| dist_size_size = btracks.size(); | |
| return cost_matrix; | |
| } | |
| vector <vector<float>> atlbrs, btlbrs; | |
| for (int i = 0; i < atracks.size(); i++) { | |
| atlbrs.push_back(atracks[i]->tlbr); | |
| } | |
| for (int i = 0; i < btracks.size(); i++) { | |
| btlbrs.push_back(btracks[i].tlbr); | |
| } | |
| dist_size = atracks.size(); | |
| dist_size_size = btracks.size(); | |
| vector <vector<float>> _ious = giou? gious(atlbrs, btlbrs) : ious(atlbrs, btlbrs); | |
| for (int i = 0; i < _ious.size(); i++) { | |
| vector<float> _iou; | |
| for (int j = 0; j < _ious[i].size(); j++) { | |
| _iou.push_back(1 - _ious[i][j]); | |
| } | |
| cost_matrix.push_back(_iou); | |
| } | |
| return cost_matrix; | |
| } | |
| /** | |
| * @brief Calculates the IoU-based distance matrix between two sets of tracks. | |
| * | |
| * This function computes the Intersection over Union (IoU) distance between two sets of tracks based on their bounding | |
| * boxes (Top, Left, Bottom, Right). The IoU distance is defined as 1 - IoU, where lower IoU values indicate greater | |
| * distance (less overlap). The resulting cost matrix is used for removing duplicate tracks between two sets of tracks. | |
| * | |
| * @param atracks Vector of STrack objects representing the first set of tracks (existing tracks). | |
| * @param btracks Vector of STrack objects representing the second set of tracks ( new detections). | |
| * | |
| * @return A 2D vector representing the cost matrix, where each element [i][j] is the IoU distance (1 - IoU) | |
| * between atracks[i] and btracks[j]. | |
| */ | |
| vector <vector<float>> BYTETracker::iou_distance(vector <STrack> &atracks, vector <STrack> &btracks) { | |
| vector <vector<float>> atlbrs, btlbrs; | |
| for (int i = 0; i < atracks.size(); i++) { | |
| atlbrs.push_back(atracks[i].tlbr); | |
| } | |
| for (int i = 0; i < btracks.size(); i++) { | |
| btlbrs.push_back(btracks[i].tlbr); | |
| } | |
| vector <vector<float>> _ious = ious(atlbrs, btlbrs); | |
| vector <vector<float>> cost_matrix; | |
| for (int i = 0; i < _ious.size(); i++) { | |
| vector<float> _iou; | |
| for (int j = 0; j < _ious[i].size(); j++) { | |
| _iou.push_back(1 - _ious[i][j]); | |
| } | |
| cost_matrix.push_back(_iou); | |
| } | |
| return cost_matrix; | |
| } | |
| /** | |
| * @brief Solves the Linear Assignment Problem using the Jonker-Volgenant algorithm. | |
| * | |
| * Computes optimal row-to-column assignments to minimize total cost, supporting non-square matrix extension and cost limits. | |
| * Used in tracking to associate detections (columns) with tracks (rows). | |
| * | |
| * @param cost 2D vector of costs where cost[i][j] is the cost of assigning row i to column j. | |
| * @param rowsol Vector storing column indices assigned to each row (-1 for no assignment). | |
| * @param colsol Vector storing row indices assigned to each column (-1 for no assignment). | |
| * @param extend_cost If true, extends non-square matrices to square ones; else, exits on non-square input. | |
| * @param cost_limit Max cost for assignments; if < LONG_MAX, fills extended matrix with cost_limit / 2.0. | |
| * @param return_cost If true, returns total assignment cost; else, returns 0.0. | |
| * | |
| * @return Total cost of assignments if return_cost is true; else, 0.0. | |
| */ | |
| double BYTETracker::lapjv(const vector <vector<float>> &cost, vector<int> &rowsol, vector<int> &colsol, | |
| bool extend_cost, float cost_limit, bool return_cost) { | |
| vector <vector<float>> cost_c; | |
| cost_c.assign(cost.begin(), cost.end()); | |
| vector <vector<float>> cost_c_extended; | |
| int n_rows = cost.size(); | |
| int n_cols = cost[0].size(); | |
| rowsol.resize(n_rows); | |
| colsol.resize(n_cols); | |
| int n = 0; | |
| if (n_rows == n_cols) { | |
| n = n_rows; | |
| } else { | |
| if (!extend_cost) { | |
| cout << "set extend_cost=True" << endl; | |
| system("pause"); | |
| exit(0); | |
| } | |
| } | |
| if (extend_cost || cost_limit < LONG_MAX) { | |
| n = n_rows + n_cols; | |
| cost_c_extended.resize(n); | |
| for (int i = 0; i < cost_c_extended.size(); i++) | |
| cost_c_extended[i].resize(n); | |
| if (cost_limit < LONG_MAX) { | |
| for (int i = 0; i < cost_c_extended.size(); i++) { | |
| for (int j = 0; j < cost_c_extended[i].size(); j++) { | |
| cost_c_extended[i][j] = cost_limit / 2.0; | |
| } | |
| } | |
| } else { | |
| float cost_max = -1; | |
| for (int i = 0; i < cost_c.size(); i++) { | |
| for (int j = 0; j < cost_c[i].size(); j++) { | |
| if (cost_c[i][j] > cost_max) | |
| cost_max = cost_c[i][j]; | |
| } | |
| } | |
| for (int i = 0; i < cost_c_extended.size(); i++) { | |
| for (int j = 0; j < cost_c_extended[i].size(); j++) { | |
| cost_c_extended[i][j] = cost_max + 1; | |
| } | |
| } | |
| } | |
| for (int i = n_rows; i < cost_c_extended.size(); i++) { | |
| for (int j = n_cols; j < cost_c_extended[i].size(); j++) { | |
| cost_c_extended[i][j] = 0; | |
| } | |
| } | |
| for (int i = 0; i < n_rows; i++) { | |
| for (int j = 0; j < n_cols; j++) { | |
| cost_c_extended[i][j] = cost_c[i][j]; | |
| } | |
| } | |
| cost_c.clear(); | |
| cost_c.assign(cost_c_extended.begin(), cost_c_extended.end()); | |
| } | |
| double **cost_ptr = new double *[n]; | |
| for (int i = 0; i < n; i++) | |
| cost_ptr[i] = new double[n]; | |
| for (int i = 0; i < n; i++) { | |
| for (int j = 0; j < n; j++) { | |
| cost_ptr[i][j] = cost_c[i][j]; | |
| } | |
| } | |
| int *x_c = new int[sizeof(int) * n]; | |
| int *y_c = new int[sizeof(int) * n]; | |
| int ret = lapjv_internal(n, cost_ptr, x_c, y_c); | |
| if (ret != 0) { | |
| cout << "Calculate Wrong!" << endl; | |
| system("pause"); | |
| exit(0); | |
| } | |
| double opt = 0.0; | |
| if (n != n_rows) { | |
| for (int i = 0; i < n; i++) { | |
| if (x_c[i] >= n_cols) | |
| x_c[i] = -1; | |
| if (y_c[i] >= n_rows) | |
| y_c[i] = -1; | |
| } | |
| for (int i = 0; i < n_rows; i++) { | |
| rowsol[i] = x_c[i]; | |
| } | |
| for (int i = 0; i < n_cols; i++) { | |
| colsol[i] = y_c[i]; | |
| } | |
| if (return_cost) { | |
| for (int i = 0; i < rowsol.size(); i++) { | |
| if (rowsol[i] != -1) { | |
| //cout << i << "\t" << rowsol[i] << "\t" << cost_ptr[i][rowsol[i]] << endl; | |
| opt += cost_ptr[i][rowsol[i]]; | |
| } | |
| } | |
| } | |
| } else if (return_cost) { | |
| for (int i = 0; i < rowsol.size(); i++) { | |
| opt += cost_ptr[i][rowsol[i]]; | |
| } | |
| } | |
| for (int i = 0; i < n; i++) { | |
| delete[]cost_ptr[i]; | |
| } | |
| delete[]cost_ptr; | |
| delete[]x_c; | |
| delete[]y_c; | |
| return opt; | |
| } | |
| // Generates a unique RGB color for a given object identity index using modular arithmetic | |
| Scalar BYTETracker::get_color(int idx) { | |
| idx += 3; | |
| return Scalar(37 * idx % 255, 17 * idx % 255, 29 * idx % 255); | |
| } |