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Towards Behaviour Recognition based Video Surveillance

机译:走向基于行为识别的视频监控

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摘要

We present the latest results on learnable stochastic temporal models for automatic event and behaviour recognition in CCTV surveillance video. We introduce a novel approach to modelling and recognising complex activities involving simultaneous movement of multiple objects. Our approach differs from most previous work in that the visual understanding of activity is based on visual event detection and reasoning instead of object tracking and trajectory matching. Dynamic probabilistic graph models are exploited for modelling the temporal relationships among a set of different object temporal events. Typical applications of this technology include automatic semantic video content analysis, profiling and indexing of salient event and behaviour captured in CCTV video, and the early recognition of atypical behaviour in scenes where such behaviour could lead to a threat to safety.
机译:我们介绍了可学习的随机时间模型的最新结果,用于CCTV监视视频中的自动事件和行为识别。我们介绍了一种新颖的方法来建模和识别涉及多个对象同时移动的复杂活动。我们的方法与以前的大多数工作不同,对活动的视觉理解基于视觉事件检测和推理,而不是对象跟踪和轨迹匹配。动态概率图模型被用于建模一组不同对象时间事件之间的时间关系。该技术的典型应用包括自动语义视频内容分析,对CCTV视频中捕获的显着事件和行为进行概要分析和索引,以及在此类行为可能对安全造成威胁的场景中对非典型行为的早期识别。

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