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A real time approach to track humans in surveillance videos

机译:一种实时方法来监视监视视频中的人员

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Video surveillance is one of the recent research topics in computer vision. The goal of video surveillance is to gather information from videos by tracking the people involved in those videos and understanding the behavior of them. In general, Object tracking is an essential block in video surveillance system to identify and track objects present in it. After object identification, estimation of trajectories of the objects are crucial to understand and track its motion. In this paper, object tracking has been done through particle filter with likelihood function. Initially, Background has been modeled with the mixture of Gaussians using GMM. Later, using particle filters, trajectory has been drawn. This paper attempts to track a particular person in static and dynamic environments also. Results obtained through this tracking seems to be promising.
机译:视频监视是计算机视觉的最新研究主题之一。视频监视的目的是通过跟踪视频中涉及的人员并了解其行为来从视频中收集信息。通常,对象跟踪是视频监视系统中识别和跟踪其中存在的对象的重要模块。在物体识别之后,估计物体的轨迹对于理解和跟踪其运动至关重要。在本文中,目标跟踪是通过具有似然函数的粒子滤波来完成的。最初,使用GMM对高斯混合模型进行了背景建模。后来,使用粒子过滤器绘制了轨迹。本文还尝试在静态和动态环境中跟踪特定的人。通过这种跟踪获得的结果似乎很有希望。

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