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EDCAR: A knowledge representation framework to enhance automatic video surveillance

机译:EDCAR:知识表示框架,可增强自动视频监控

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The main purpose of video-based event recognition is to interpret activities or behaviors within video sequences, in order to detect and isolate specific events, which have to be readily recognized and prompted to the people responsible for their monitoring. In this paper, we present a knowledge representation framework and a system for automatic video surveillance, which analyzes record scenes in order to detect the occurrence of specific events defined as targets. The framework, named Elements and Descriptors of Context and Action Representations (EDCAR), enables the representation of relevant elements, general descriptors of the context, and actions that have to be captured, including the definition of action compositions and sequences, in order to monitor and recognize abnormal situations. EDCAR and the associated system also support video summarization of relevant scenes, providing an inference engine to handle complex queries. They have been used experimentally on several video surveillance scenarios, which enabled us to prove their effectiveness with respect to similar solutions described in the literature. (C) 2019 Elsevier Ltd. All rights reserved.
机译:基于视频的事件识别的主要目的是解释视频序列中的活动或行为,以便检测和隔离特定事件,这些事件必须易于识别并提示负责其监视的人员。在本文中,我们提供了一个知识表示框架和一个用于自动视频监视的系统,该系统可以分析记录场景以检测定义为目标的特定事件的发生。名为“上下文和动作表示的元素和描述符”(EDCAR)的框架使相关元素的表示,上下文的一般描述符以及必须捕获的动作(包括动作组成和顺序的定义)得以监视并识别异常情况。 EDCAR和相关的系统还支持相关场景的视频摘要,从而提供一个推理引擎来处理复杂的查询。它们已在几种视频监视场景中进行了实验性使用,这使我们能够证明其相对于文献中描述的类似解决方案的有效性。 (C)2019 Elsevier Ltd.保留所有权利。

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