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Stalker Retrieval on Surveillance Videos Using Spatio-Temporal Coappearance

机译:使用时空截留的监视视频在监视视频中的追踪者检索

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Stalking is a distinctive form of criminal activity that consists of repeated following, watching, tracking and/or harassing by one person against another. Stalking victims are reported many daily happenings, thus stalking has attracted widespread public concern in recent years. It results in that stalking analysis becomes a significant social problem in criminology. Meanwhile, nowadays surveillance camera has become a ubiquitous aspect of the modern urban landscape, widely installed for security purposes. Video data generated by surveillance cameras are recognized as reliable sources for crime prevention and investigation, definitely useful for stalking analysis. However, since stalking behaviors have complicated variants, it is too difficult to directly analyze stalking behaviors in surveillance videos in terms of behavior analysis. In the state of the art, even there is no existing technology that can handle such analysis. Hence, motivated by this and inspired by the distinctive characteristics of stalking behaviors, in this paper, we define a new query type, stalker query, to retrieve potential stalkers. We then propose efficient algorithms to handle the stalker query, and conduct extensive experiments based on real surveillance videos to evaluate the efficiency and scalability of our algorithms. The experimental results show that our approach outperforms the baseline method over two orders of magnitude to return stalker candidates. Besides, we also examine the high accuracy of retrieval by a data set containing simulated real stalkers. This data set will be contributed to academic communities for attracting continuous effort to tackle remaining open problems with high social impact.
机译:缠扰行为是由重复以下,看,跟踪和/或对另一一个人骚扰的犯罪活动的特殊形式。缠扰受害者报道了许多每天发生的事情,因此,跟踪已吸引近几年广泛关注。这导致在跟踪分析成为犯罪一显著的社会问题。同时,时下监控摄像头已经成为现代城市景观的无处不在的方面,出于安全考虑,广泛安装。通过监控摄像机生成的视频数据被认为是预防犯罪和调查可靠的来源,跟踪分析肯定是有用的。然而,由于缠扰行为具有复杂的变种,实在是太难了,直接分析监控视频缠扰行为在行为分析方面。在现有技术的状态下,即使没有现成的技术,可以处理这样的分析。因此,通过这种激励和启发缠扰行为的鲜明特点,在本文中,我们定义了一个新的查询类型,死缠烂打的查询,检索潜在的潜行者。然后,我们提出了有效的算法来处理死缠烂打查询,并进行基于真实监控录像来评估我们的算法的效率和可扩展性广泛的实验。实验结果表明,我们的方法比基线法在两个数量级来回报死缠烂打的候选人。此外,我们还研究通过模拟含有真正的潜行者的数据集检索精度高。该数据集将学术社区出资为吸引持续的努力,以解决剩余未解决的问题具有较高的社会影响。

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