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Shadow removal for pedestrian detection and tracking in indoor environments

机译:在室内环境中去除阴影以进行行人检测和跟踪

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摘要

This paper presents a method of shadow removal to improve the accuracy of pedestrian detection and tracking in indoor environments. The proposed method can be divided into four steps: building a background model which can be automatically updated, extract moving objects region, eliminating moving objects shadows, classifying and track pedestrians. The background model is built with pixel value and the updating of Gussian. The approach for real time background-foreground extraction is used to extract pedestrian region that may contains multiple shadows. In the gray histogram space, based on the depth value of the gray images, a reasonable threshold is set to remove shadows from various pedestrians. In this work, we propose a methodology using the foreground frames without shadows to detect and track the pedestrians across training datasets. Comparative experimental results show that our method is capable of dealing with shadows and detecting moving pedestrians in cluttered environments.
机译:本文提出了一种阴影去除方法,以提高室内环境中行人检测和跟踪的准确性。所提出的方法可以分为四个步骤:建立可以自动更新的背景模型,提取运动对象区域,消除运动对象阴影,对行人进行分类和跟踪。使用像素值和Gussian更新建立背景模型。用于实时背景-前景提取的方法用于提取可能包含多个阴影的行人区域。在灰色直方图空间中,基于灰色图像的深度值,设置了合理的阈值以消除各种行人的阴影。在这项工作中,我们提出了一种使用前景框架而没有阴影的方法来检测和跟踪训练数据集上的行人。对比实验结果表明,我们的方法能够处理阴影并检测杂乱环境中的行人。

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