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Real time Background Subtraction techniques for detection of moving objects in video surveillance system

机译:用于视频监控系统中运动物体检测的实时背景减法技术

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摘要

Background Subtraction is one of the important image processing steps for video surveillance and many computer vision problems such as recognition, classification, activity analysis & tracking. Detection of moving objects in video streams is the first relevant step of information extraction in many computer vision applications. This paper deals with the performance of different techniques of Background Subtraction. Mainly there are three features has been extracted from each moving objects such as centroid, area, average luminance. The proposed approach compare the Frame difference, Approximate Median and Mixture of Gaussian method and this attempt proves that the chosen method has good performance under dynamic circumstances for real time tracking. Finally the similarity function is applied to tracking.
机译:背景减法是视频监控和许多计算机视觉问题(例如识别,分类,活动分析和跟踪)的重要图像处理步骤之一。视频流中运动对象的检测是许多计算机视觉应用程序中信息提取的第一个相关步骤。本文讨论了背景减法不同技术的性能。主要从每个运动对象中提取了三个特征,例如质心,面积,平均亮度。所提出的方法比较了帧差,近似中值和高斯混合方法,这一尝试证明了所选择的方法在动态环境下具有良好的实时跟踪性能。最后,将相似度函数应用于跟踪。

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