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Facial shape-from-shading and recognition using principal geodesic analysis and robust statistics

机译:使用主要测地线分析和可靠的统计数据从阴影中识别出面部形状

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The aim in this paper is to use principal geodesic analysis to model the statistical variations for sets of facial needle maps. We commence by showing how to represent the distribution of surface normals using the exponential map. Shape deformations are described using principal geodesic analysis on the exponential map. Using ideas from robust statistics we show how this deformable model may be fitted to facial images in which there is significant self-shadowing. Moreover, we demonstrate that the resulting shape-from-shading algorithm can be used to recover accurate facial shape and albedo from real world images. In particular, the algorithm can effectively fill-in the facial surface when more than 30% of its area is subject to self-shadowing. To investigate the utility of the shape parameters delivered by the method, we conduct experiments with illumination insensitive face recognition. We present a novel recognition strategy in which similarity is measured in the space of the principal geodesic parameters. We also use the recovered shape information to generate illumination normalized prototype images on which recognition can be performed. Finally we show that, from a single input image, we are able to generate the basis images employed by a number of well known illumination-insensitive recognition algorithms. We also demonstrate that the principal geodesics provide an efficient parameterization of the space of harmonic basis images.
机译:本文的目的是使用主测地线分析来建模面部针图集的统计变化。我们首先说明如何使用指数图表示表面法线的分布。形状变形是使用指数图上的主测地线分析来描述的。使用来自可靠统计数据的想法,我们展示了该可变形模型如何适合于存在明显自我阴影的面部图像。此外,我们证明了所得的“从阴影生成形状”算法可用于从真实世界图像中恢复准确的面部形状和反照率。特别是,当超过30%的区域受到自遮蔽时,该算法可以有效地填充面部。为了研究该方法传递的形状参数的实用性,我们进行了对光照不敏感的面部识别的实验。我们提出了一种新颖的识别策略,其中在主要测地线参数的空间中测量了相似性。我们还使用恢复的形状信息来生成可以对其进行识别的照明标准化原型图像。最后,我们表明,从单个输入图像中,我们能够生成许多众所周知的对光照不敏感的识别算法所采用的基本图像。我们还证明了主要测地线提供了谐波基图像空间的有效参数化。

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