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Resolving hand over face occlusion

机译:解决手遮盖脸部问题

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The ability to segment or track the hand is an important problem in computer vision. While various solutions have been proposed, many methods do not work against complex or cluttered backgrounds. Solving these cases is essential to solving many problems in the domain of computer vision such as, human-computer interaction (HCI), surveillance, and virtual reality (i.e., augmented desks). This paper presents a method to segment the hand over complex backgrounds, such as the face. The similar colors and texture of the hand and face make the problem particularly challenging. The method is not restricted to only segmenting hands across faces and uses no knowledge of hands. Our method is based on the underlying concept of an image force field. In this representation change is measured through how particles move through the field. Each individual image location consists of a vector value which is a nonlinear combination of the remaining pixels in the image. We introduce and develop a novel physics-based feature that is able to measure regional structure in the image thus avoiding the problem of local pixel-based analysis, which breaks down under our conditions. The regional image structure changes in the occluded region during occlusion, while elsewhere the regional structure remains relatively constant. We model the regional image structure at all image locations over time using a mixture of Gaussians (MoG) to detect the occluded region in the image. We have tested the method on a number of sequences demonstrating the versatility of the proposed approach.
机译:分割或跟踪手的能力是计算机视觉中的重要问题。虽然已经提出了各种解决方案,但是许多方法在复杂或混乱的背景下不起作用。解决这些问题对于解决计算机视觉领域中的许多问题至关重要,例如人机交互(HCI),监视和虚拟现实(即增强办公桌)。本文提出了一种方法来分割诸如背景等复杂背景的手。手和脸的相似颜色和纹理使该问题特别具有挑战性。该方法不限于仅将手在面部上分割并且不使用手的知识。我们的方法基于图像力场的基本概念。在这种表示形式中,通过粒子如何在场中移动来测量变化。每个单独的图像位置都包含一个矢量值,该矢量值是图像中其余像素的非线性组合。我们介绍并开发了一种新颖的基于物理的功能,该功能能够测量图像中的区域结构,从而避免了在我们的条件下无法解决的基于局部像素的分析问题。在遮挡期间,遮挡区域中的区域图像结构发生了变化,而在其他地方,区域结构则保持相对恒定。我们使用高斯混合(MoG)随时间推移对所有图像位置处的区域图像结构进行建模,以检测图像中的遮挡区域。我们已经在许多序列上测试了该方法,证明了该方法的多功能性。

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