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Geodesic Distances for 3D-3D and 2D-3D Face Recognition

机译:3D-3D和2D-3D人脸识别的测地距离

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In this paper, we propose an original framework for representing 2D and 3D face information using geodesic distances. This aims to define a representation enabling the direct comparison between 2D face images of an individual against its 3D face model. This representation is extracted by measuring geodesic distances in 2D and 3D. In 3D, the geodesic distance between two points on a surface is computed as the length of the shortest path connecting the two points. In 2D, the geodesic distance between two pixels is computed based on the differences of gray level intensities along the segment connecting the two pixels. Experimental results are shown to demonstrate the viability of the proposed solution.
机译:在本文中,我们提出了一种原始框架,用于使用测地距来表示2D和3D面部信息。这旨在定义一个表示,使得能够与其3D面部模型的个人的2D面部图像之间的直接比较。通过测量2D和3D中的测地距离来提取该表示。在3D中,表面上的两个点之间的测地距被计算为连接两点的最短路径的长度。在2D中,基于沿连接两个像素的段的段段强度的差异来计算两个像素之间的测地距。显示实验结果证明了所提出的解决方案的活力。

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