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Intelligent Video Analysis Technology for Elevator Cage Abnormality Detection in Computer Vision

机译:用于计算机视觉的电梯笼异常检测的智能视频分析技术

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The crime in the elevator cage is always a constant concern. Thus, security problem should get more attention. This paper proposes an intelligent video analysis technology for elevator cage abnormality detection in computer vision. By collecting, processing, and analyzing video images in real time, the feature vectors including the variation of foreground pixels, the variation of length and width of foreground regionȁ9;s enclosing rectangle and the variation of enclosing rectangleȁ9;s center of mass are obtained. Then these feature data are processed via K-Means clustering to get observation sequences, which are used to model a Hidden Markov Model (HMMs) for the normal activity. Last, the abnormalities are identified by the log-likelihood difference from normal activity mode, and the standard value is predetermined by observing series of normal activity sequence. This paper mainly presents an overview of the technology and significant results so far achieved.
机译:电梯轿厢内的犯罪始终是人们一直关注的问题。因此,安全问题应引起更多关注。提出了一种用于计算机视觉中电梯轿厢异常检测的智能视频分析技术。通过实时采集,处理和分析视频图像,获得了包括前景像素变化,前景区域的长度和宽度的变化ȁ9包围矩形和包围矩形的ȁ9质心变化的特征向量。然后,这些特征数据通过K-Means聚类进行处理以获得观察序列,这些观察序列用于为正常活动建模隐马尔可夫模型(HMM)。最后,通过与正常活动模式的对数似然差来识别异常,并通过观察一系列正常活动序列来确定标准值。本文主要介绍了该技术的概述以及迄今为止取得的重要成果。

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