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Shadow elimination for effective moving object detection by Gaussian shadow modeling

机译:通过高斯阴影建模消除阴影,有效检测运动物体

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This paper presents a novel approach for eliminating unexpected shadows from multiple pedestrians from a static and textured background using Gaussian shadow modeling. First, a set of moving regions are segmented from the static background using a background subtraction technique. The extracted moving region may contain multiple shadows from various pedestrians. In order to remove these unwanted shadows completely, a histogram-based method is proposed for isolating each pedestrian from the extracted moving region. Based on the results, a coarse-to-fine shadow modeling process is then applied for eliminating the unwanted shadow from the detected pedestrian. At the coarse stage, a moment-based method is first used for obtaining the rough shadow boundaries. Then, the rough approximation of the shadow region can be further refined through Gaussian shadow modeling. The chosen shadow model is parameterized with several features including the orientation, mean intensity, and center position of a shadow region. With these features, the chosen model can precisely model different shadows at different conditions and provide good capabilities for completely eliminating the unexpected shadows from the scene background. Due to the simplicity of the proposed method, all the shadows can be eliminated immediately (in less than 0.5 s). Experiments demonstrate that approximately 94% of shadows can be successfully eliminated from the scene background.
机译:本文提出了一种新颖的方法,该方法使用高斯阴影建模从静态和带纹理的背景中消除多个行人的意外阴影。首先,使用背景减法技术从静态背景中分割出一组运动区域。提取的运动区域可以包含来自各种行人的多个阴影。为了完全消除这些不需要的阴影,提出了一种基于直方图的方法,用于将每个行人与提取的运动区域隔离。基于结果,然后应用从粗到细的阴影建模过程,以从检测到的行人中消除不需要的阴影。在粗糙阶段,首先使用基于矩的方法获得粗糙阴影边界。然后,可以通过高斯阴影建模进一步完善阴影区域的粗略近似。选定的阴影模型具有多个特征,包括阴影区域的方向,平均强度和中心位置。借助这些功能,所选模型可以在不同条件下精确建模不同的阴影,并提供了良好的功能,可以完全消除场景背景中的意外阴影。由于所提出方法的简单性,所有阴影都可以立即消除(小于0.5 s)。实验表明,可以从场景背景中成功消除约94%的阴影。

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