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Improving Video Segmentation by Fusing Depth Cues and the Visual Background Extractor (ViBe) Algorithm

机译:通过融合深度提示和视觉背景提取器(ViBe)算法改善视频分割

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摘要

Depth-sensing technology has led to broad applications of inexpensive depth cameras that can capture human motion and scenes in three-dimensional space. Background subtraction algorithms can be improved by fusing color and depth cues, thereby allowing many issues encountered in classical color segmentation to be solved. In this paper, we propose a new fusion method that combines depth and color information for foreground segmentation based on an advanced color-based algorithm. First, a background model and a depth model are developed. Then, based on these models, we propose a new updating strategy that can eliminate ghosting and black shadows almost completely. Extensive experiments have been performed to compare the proposed algorithm with other, conventional RGB-D (Red-Green-Blue and Depth) algorithms. The experimental results suggest that our method extracts foregrounds with higher effectiveness and efficiency.
机译:深度感应技术已经导致了廉价的深度相机的广泛应用,这些相机可以捕获三维空间中的人体运动和场景。可以通过融合颜色和深度提示来改进背景减法算法,从而可以解决经典颜色分割中遇到的许多问题。在本文中,我们提出了一种新的融合方法,它将基于深度的基于颜色的算法结合深度和颜色信息进行前景分割。首先,开发背景模型和深度模型。然后,基于这些模型,我们提出了一种新的更新策略,可以几乎完全消除重影和黑色阴影。已经进行了广泛的实验,以将提出的算法与其他常规RGB-D(红绿蓝和深度)算法进行比较。实验结果表明,我们的方法能够以更高的效率和效率提取前景。

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