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Local group relationship analysis for group activity recognition

机译:局部群体关系分析用于群体活动识别

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In this paper, we present an approach that exploits local group relationship to tackle the human group activity recognition problem. Specifically, rather than analyze every human motion, we first grouping individual human object into local groups to represent the relationship in the overall scene. The important movement information is maximized by modeling both each human motion and local group relationships. The gated recurrent unit model has been adopted to handle an arbitrary length of trajectory information with non-linear hidden units. In our experiment on public human group activity dataset, we compared the performance of proposed method with that of other competing methods and showed that the proposed method outperforms others.
机译:在本文中,我们提出了一种利用本地群体关系来解决人类群体活动识别问题的方法。具体来说,我们不分析任何人类动作,而是先将单个人类对象分组为局部组,以表示整个场景中的关系。通过对每个人体运动和局部群体关系进行建模,可以最大化重要的运动信息。门控循环单元模型已被采用来处理具有非线性隐藏单元的任意长度的轨迹信息。在我们对公众人群活动数据集的实验中,我们将提出的方法与其他竞争方法的性能进行了比较,结果表明,提出的方法优于其他方法。

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