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Real-Time Video Surveillance System for Traffic Management with Background Subtraction Using Codebook Model and Occlusion Handling

机译:使用码本模型和遮挡处理的背景减法交通管理实时视频监控系统

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Abstract > The scope of this paper is a video surveillance system constituted of three principal modules, segmentation module, vehicle classification and vehicle counting. The segmentation is based on a background subtraction by using the Codebooks method. This step aims to define the regions of interest associated with vehicles. To classify vehicles in their type, our system uses the histograms of oriented gradient followed by support vector machine. Counting and tracking vehicles will be the last task to be performed. The presence of partial occlusion involves the decrease of the accuracy of vehicle segmentation and classification, which directly impacts the robustness of a video surveillance system. Therefore, a novel method to handle the partial occlusions based on vehicle classification process have developed. The results achieved have shown that the accuracy of vehicle counting and classification exceeds the accuracy measured in some existing systems.
机译:摘要 >本文的范围是一个视频监视系统,它由三个主要模块组成:分割模块,车辆分类和车辆计数。分割基于使用Codebooks方法的背景减法。此步骤旨在定义与车辆关联的感兴趣区域。为了对车辆进行分类,我们的系统使用定向梯度直方图,后跟支持向量机。计数和跟踪车辆将是最后要执行的任务。部分遮挡的存在会导致车辆分割和分类的准确性降低,从而直接影响视频监控系统的鲁棒性。因此,已经开发了一种基于车辆分类过程来处理部分遮挡的新方法。取得的结果表明,车辆计数和分类的准确性超过了某些现有系统中测得的准确性。

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