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Motion detection, tracking and classification for automated Video Surveillance

机译:自动视频监控的运动检测,跟踪和分类

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Moving object identification and tracking motion is the base source to extract vital information regarding moving objects from sequences in continuous image based surveillance systems. An advanced approach to motion detection for automatic video analysis has been presented in the paper. This achieves complete detection of moving object which is robust against of changes in brightness, dynamic variations in the surrounding environment and noise from the background. The proposed method is a pixel dependent and non-parametrized approach that is based on first frame to build the model. The detection of the foreground which represents the object and background which is the surrounding of the environment starts once the subsequent frame is captured. It utilizes unique tracking methodology that identifies and eliminates the ghost object from dissolving into the background of the frame. The proposed algorithm has been test implemented on several open source videos by imposing single set of variables to overcome shortcomings of relevant and recently developed techniques.
机译:移动对象识别和跟踪运动是基于基于连续图像的监视系统中的序列提取关于移动对象的重要信息的基础源。本文提出了一种用于自动视频分析的高级运动检测方法。这实现了对移动物体的完全检测,其稳健地抵抗亮度变化,周围环境的动态变化和背景的噪声。该方法是基于第一帧来构建模型的像素相关和非参数化方法。一旦捕获后续帧,就会检测表示环境的对象和背景的前景。它利用唯一的跟踪方法来识别和消除Ghost对象从溶解到帧的背景中。通过强制单组变量来克服相关和最近开发的技术的缺点,已经在几个开源视频上进行了测试。

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