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An Efficient Vision-Based Group Detection Framework in Crowded Scene

机译:拥挤场景中有基于视觉的基于视觉群体检测框架

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Visual surveillance systems are now widely used for monitoring the events. The challenging task in these events is effectively analyzing the crowd and its behavior. For better understanding the behavior of crowd or analyzing it, the group is considered as the basic element. The exigent task in a crowded scene is to distinguish between the groups and individuals. In this paper, we have proposed a video-based framework that efficiently identifies the group of people from the crowd. The framework is composed on boundary extraction of a group called contours in the literature. The proposed approach makes use of background subtraction algorithm called ViBe, to extract the relevant features and incur contours in the video frames. Further we detect the group in a crowd on the basis of threshold frames obtained by calculating the area and distance between them. Analysis has been carried out on a self-gathered dataset from the university campus. The proposed framework is able to distinguish the group and no group with an average accuracy of 86.06%.
机译:目视监控系统现在广泛用于监控事件。这些事件中的具有挑战性的任务是有效分析人群及其行为。为了更好地理解人群的行为或分析它,该组被视为基本要素。一个拥挤的场景中的简历任务是区分群体和个人。在本文中,我们提出了一种基于视频的框架,可有效地识别来自人群的人群。该框架是在文献中称为轮廓的群体的边界提取。所提出的方法利用了名为Vibe的背景减法算法,以提取视频帧中的相关特征和承担轮廓。此外,我们根据通过计算区域和它们之间的距离而获得的阈值帧来检测人群中的组。已经在大学校园的自集数据集中进行了分析。拟议的框架能够区分群体,没有群体的平均准确性为86.06%。

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