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Small Group Detection in Crowds using Interaction Information

机译:使用交互信息在人群中进行小群检测

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Small group detection is still a challenging problem in crowds. Traditional methods use the trajectory information to measure pairwise similarity which is sensitive to the variations of group density and interactive behaviors. In this paper, we propose two types of information by simultaneously incorporating trajectory and interaction information, to detect small groups in crowds. The trajectory information is used to describe the spatial proximity and motion information between trajectories. The interaction information is designed to capture the interactive behaviors from video sequence. To achieve this goal, two classifiers are exploited to discover interpersonal relations. The assumption is that interactive behaviors often occur in group members while there are no interactions between individuals in different groups. The pairwise similarity is enhanced by combining the two types of information. Finally, an efficient clustering approach is used to achieve small group detection. Experiments show that the significant improvement is gained by exploiting the interaction information and the proposed method outperforms the state-of-the-art methods.
机译:在人群中,小团体检测仍然是一个具有挑战性的问题。传统方法使用轨迹信息来测量成对相似性,这对群体密度和互动行为的变化很敏感。在本文中,我们通过同时结合轨迹和交互信息来提出两种类型的信息,以检测人群中的小群体。轨迹信息用于描述轨迹之间的空间接近度和运动信息。交互信息旨在捕获视频序列中的交互行为。为了实现这一目标,利用两个分类器来发现人际关系。假定交互行为通常发生在组成员中,而不同组中的个体之间没有交互。通过组合两种类型的信息,可以增强成对相似性。最后,使用有效的聚类方法来实现小组检测。实验表明,通过利用交互信息可以显着提高性能,并且所提出的方法优于最新方法。

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