Trajectory clustering for motion pattern extraction in aerial videos

T. Nawaz, A. Cavallaro, B. Rinner
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引用次数: 23

Abstract

We present an end-to-end approach for trajectory clustering from aerial videos that enables the extraction of motion patterns in urban scenes. Camera motion is first compensated by mapping object trajectories on a reference plane. Then clustering is performed based on statistics from the Discrete Wavelet Transform coefficients extracted from the trajectories. Finally, motion patterns are identified by distance minimization from the centroids of the trajectory clusters. The experimental validation on four datasets shows the effectiveness of the proposed approach in extracting trajectory clusters. We also make available two new real-world aerial video datasets together with the estimated object trajectories and ground-truth cluster labeling.
航拍视频中运动模式提取的轨迹聚类
我们提出了一种从航拍视频中提取轨迹聚类的端到端方法,该方法可以提取城市场景中的运动模式。相机运动首先通过在参考平面上映射物体轨迹来补偿。然后根据从轨迹中提取的离散小波变换系数的统计量进行聚类。最后,通过轨迹簇质心的距离最小化来识别运动模式。在4个数据集上的实验验证表明了该方法提取轨迹聚类的有效性。我们还提供了两个新的真实世界的航空视频数据集,以及估计的目标轨迹和地面真实聚类标记。
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