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Data-Driven Motion Pattern Segmentation in a Crowded Environments

机译:拥挤环境中的数据驱动运动模式分段

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Motion is a strong clue for unsupervised grouping of individuals in a crowded environment. We show that collective motion in the crowd can be discovered by temporal analysis of points trajectories. First k-NN graph is constructed to represent the topological structure of point trajectories detected in crowd. Then the data-driven graph segmentation and clustering helps to reveal the interaction of individuals even when mixed motion is presented in data. The method was evaluated against the latest state-of-the-art methods and achieved better performance by more than 20 %.
机译:动议是一个强大的线索,用于在拥挤的环境中对个人的无监督分组。我们表明,通过点轨迹的时间分析,可以发现人群中的集体运动。构建第一K-NN图形以表示在人群中检测到的点轨迹的拓扑结构。然后,数据驱动的图形分割和聚类有助于揭示个体的交互,即使在数据中呈现混合运动时也是如此。该方法评估了最新的最新方法,并实现了更好的性能超过20%。

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