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Fisher's linear discriminant ratio based threshold for moving human detection in thermal video

机译:基于费舍尔线性判别比率的阈值,用于在热视频中移动人体检测

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摘要

In video surveillance, the moving human detection in thermal video is a critical phase that filters out redundant information to extract relevant information. The moving object detection is applied on thermal video because it penetrate challenging problems such as dynamic issues of background and illumination variation. In this work, we have proposed a new background subtraction method using Fisher's linear discriminant ratio based threshold. This threshold is investigated automatically during run-time for each pixel of every sequential frame. Automatically means to avoid the involvement of external source such as programmer or user for threshold selection. This threshold provides better pixel classification at run-time. This method handles problems generated due to multiple behavior of background more accurately using Fisher's ratio. It maximizes the separation between object pixel and the background pixel. To check the efficacy, the performance of this work is observed in terms of various parameters depicted in analysis. The experimental results and their analysis demonstrated better performance of proposed method against considered peer methods. (C) 2016 Elsevier B.V. All rights reserved.
机译:在视频监视中,热视频中的移动人员检测是至关重要的阶段,该阶段会过滤掉冗余信息以提取相关信息。将运动物体检测应用于热视频,是因为它可以穿透具有挑战性的问题,例如背景动态变化和照明变化。在这项工作中,我们提出了一种新的基于Fisher线性判别比阈值的背景扣除方法。对于运行中的每个顺序帧的每个像素,将自动检查此阈值。自动意味着避免使用外部源(例如程序员或用户)进行阈值选择。此阈值可在运行时提供更好的像素分类。此方法使用费舍尔比率更准确地处理由于背景的多种行为而产生的问题。它将对象像素和背景像素之间的距离最大化。为了检查疗效,根据分析中描述的各种参数观察了这项工作的执行情况。实验结果及其分析表明,该方法相对于同等方法具有更好的性能。 (C)2016 Elsevier B.V.保留所有权利。

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