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Abnormal behavior recognition for intelligent video surveillance systems: A review

机译:智能视频监控系统的异常行为识别:综述

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摘要

With the increasing number of surveillance cameras in both indoor and outdoor locations, there is a grown demand for an intelligent system that detects abnormal events. Although human action recognition is a highly reached topic in computer vision, abnormal behavior detection is lately attracting more research attention. Indeed, several systems are proposed in order to ensure human safety. In this paper, we are interested in the study of the two main steps composing a video surveillance system which are the behavior representation and the behavior modeling. Techniques related to feature extraction and description for behavior representation are reviewed. Classification methods and frameworks for behavior modeling are also provided. Moreover, available datasets and metrics for performance evaluation are presented. Finally, examples of existing video surveillance systems used in real world are described. (C) 2017 Elsevier Ltd. All rights reserved.
机译:随着室内和室外场所监控摄像头的数量不断增加,对检测异常事件的智能系统的需求日益增长。尽管在计算机视觉中,人类动作识别是一个非常受关注的话题,但异常行为检测近来吸引了更多的研究关注。实际上,提出了几种系统以确保人身安全。在本文中,我们对构成视频监视系统的两个主要步骤的研究感兴趣,这两个步骤分别是行为表示和行为建模。审查了有关特征提取和行为表示描述的技术。还提供了行为建模的分类方法和框架。此外,介绍了用于性能评估的可用数据集和度量。最后,描述了现实世界中使用的现有视频监视系统的示例。 (C)2017 Elsevier Ltd.保留所有权利。

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