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Detection of groups in crowd considering their activity state

机译:考虑人群的活动状态来检测人群

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In this paper, we focus on the problem of group detection in crowd, which is a task of partitioning a set of pedestrians in a scene into small subsets called groups based on their trajectories. Most of previous methods use only a single model for representing a relationship between trajectories of pedestrians who belong to the same group. However, such relationship would vary depending on the activity state (e.g. walking together, approaching, splitting, and so on) of the group. In this paper, we propose a novel group detection method which can cope with a variation of groups' activity state. The proposed method constructs different models for each activity state in order to appropriately evaluate the relationship of pedestrians' trajectories. In addition, our method regards groups' activity state as hidden variables and estimates their probability distributions, which is used for integrating the constructed models. The proposed method outperforms existing methods in the experiment on the public dataset.
机译:在本文中,我们关注人群中的群体检测问题,这是将场景中的行人集根据其轨迹划分为称为小组的小子集的任务。大多数以前的方法仅使用单个模型来表示属于同一组的行人的轨迹之间的关系。但是,这种关系将根据小组的活动状态(例如,一起散步,靠近,分裂等)而变化。在本文中,我们提出了一种新颖的群体检测方法,可以应对群体活动状态的变化。所提出的方法针对每个活动状态构造不同的模型,以便适当地评估行人轨迹的关系。此外,我们的方法将群体的活动状态视为隐藏变量,并估计其概率分布,用于集成所构建的模型。在公开数据集上,该方法优于实验中的现有方法。

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