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3D face recognition with asymptotic cones based principal curvatures

机译:3D与基于渐近锥体的主要曲线的人脸识别

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The classical curvatures of smooth surfaces (Gaussian, mean and principal curvatures) have been widely used in 3D face recognition (FR). However, facial surfaces resulting from 3D sensors are discrete meshes. In this paper, we present a general framework and define three principal curvatures on discrete surfaces for the purpose of 3D FR. These principal curvatures are derived from the construction of asymptotic cones associated to any Borel subset of the discrete surface. They describe the local geometry of the underlying mesh. First two of them correspond to the classical principal curvatures in the smooth case. We isolate the third principal curvature that carries out meaningful geometric shape information. The three principal curvatures in different Borel subsets scales give multi-scale local facial surface descriptors. We combine the proposed principal curvatures with the LNP-based facial descriptor and SRC for recognition. The identification and verification experiments demonstrate the practicability and accuracy of the third principal curvature and the fusion of multi-scale Borel subset descriptors on 3D face from FRGC v2.0.
机译:平滑表面(高斯,平均值和主曲线)的经典曲率已广泛用于3D面部识别(FR)。然而,由3D传感器产生的面部表面是离散网格。在本文中,我们展示了一般框架,并在离散表面上定义了三个主曲线,以便用于3D FR的目的。这些主曲率来自于与离散表面的任何硼梁子集相关联的渐近锥体的构造。他们描述了底层网格的局部几何形状。它们中的前两个对应于平滑情况下的经典主曲率。我们隔离执行有意义的几何形状信息的第三个主曲率。不同BOREL子集中的三个主要曲率尺度提供多尺度本地面部表面描述符。我们将所提出的主曲率与基于LNP的面部描述符和SRC结合起来进行识别。识别和验证实验证明了第三主曲率的实用性和准确性以及来自FRGC V2.0的3D面上的多尺度BOREL子集描述符的融合。

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