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Unattended object intelligent analyzer for consumer video surveillance

机译:用于消费者视频监控的无人值守对象智能分析仪

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摘要

Consumer video camera surveillance with the continuous advancements of image processing technologies is emerging for consumer world of applications. Technology for detecting objects left unattended in consumer world such as shopping malls, airports, railways stations has resulted in successful commercialization, worldwide sales and the winning of international awards. However, as a consumer video application the need is now greater than ever for a surveillance system that is robustly and effectively automated. In this paper, we propose an intelligent vision based analyzer for semantic analysis of objects left unattended relation with human behaviors from a monocular surveillance video, captured by a consumer camera through cluttered environments. Our analyzer employs visual cues to robustly and efficiently detect unattended objects which are usually considered as potential security breach in public safety from terrorist explosive attacks. The proposed system consists of three processing steps: (i) object extraction, involving a new background subtraction algorithm based on combination of periodic background models with shadow removal and quick lighting change adaptation,(ii) extracted objects classification as stationary or dynamic objects, and (iii) classified objects investigation by using running average about the static foreground masks to calculate a confidence score for the decision making about event (either unattended or very still person). We show attractive experimental results, highlighting the system efficiency and classification capability by using our real-time consumer video surveillance system for public safety application in big cities.
机译:随着图像处理技术的不断发展,消费类摄像机监视正在面向消费类应用领域出现。用于检测消费者世界中无人看管的物体的技术,例如购物中心,机场,火车站等,已经成功实现了商业化,全球销售并赢得了国际大奖。但是,作为消费类视频应用程序,现在比以往任何时候都需要更强大,更有效地自动化的监视系统。在本文中,我们提出了一种基于智能视觉的分析器,用于从单眼监控视频中对与人的行为无关的对象进行语义分析,该视频由消费类相机通过杂乱的环境捕获。我们的分析仪利用视觉提示来稳健而有效地检测无人看管的物体,这些物体通常被认为是恐怖爆炸袭击在公共安全中的潜在安全隐患。所提出的系统包括三个处理步骤:(i)对象提取,包括基于周期性背景模型与阴影去除和快速照明变化自适应相结合的新背景扣除算法;(ii)提取对象分类为固定对象还是动态对象;以及(iii)通过使用有关静态前景蒙版的移动平均数来对物体进行调查,以计算有关事件(无人值守或非常静止的人)的决策的置信度得分。我们展示了诱人的实验结果,通过将我们的实时消费者视频监视系统用于大城市的公共安全应用,突出了系统效率和分类能力。

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