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A Heat-Map-Based Algorithm for Recognizing Group Activities in Videos

机译:基于热图的视频群体活动识别算法

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摘要

In this paper, a new heat-map-based algorithm is proposed for group activity recognition. The proposed algorithm first models human trajectories as series of heat sources and then applies a thermal diffusion process to create a heat map (HM) for representing the group activities. Based on this HM, a new key-point-based (KPB) method is used for handling the alignments among HMs with different scales and rotations. A surface-fitting (SF) method is also proposed for recognizing group activities. Our proposed HM feature can efficiently embed the temporal motion information of the group activities while the proposed KPB and SF methods can effectively utilize the characteristics of the HM for activity recognition. Section IV demonstrates the effectiveness of our proposed algorithms.
机译:本文提出了一种新的基于热图的群体活动识别算法。所提出的算法首先将人类轨迹建模为一系列热源,然后应用热扩散过程创建代表团队活动的热图(HM)。基于此HM,使用新的基于关键点(KPB)的方法来处理具有不同比例和旋转度的HM之间的对齐方式。还提出了一种表面拟合(SF)方法来识别小组活动。我们提出的HM特征可以有效地嵌入小组活动的时间运动信息,而提出的KPB和SF方法可以有效地利用HM的特征进行活动识别。第四节演示了我们提出的算法的有效性。

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