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An Automatic 3D Facial Landmarking Algorithm Using 2D Gabor Wavelets

机译:使用2D Gabor小波的自动3D人脸地标算法

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In this paper, we present a novel approach to automatic 3D facial landmarking using 2D Gabor wavelets. Our algorithm considers the face to be a surface and uses map projections to derive 2D features from raw data. Extracted features include texture, relief map, and transformations thereof. We extend an established 2D landmarking method for simultaneous evaluation of these data. The method is validated by performing landmarking experiments on two data sets using 21 landmarks and compared with an active shape model implementation. On average, landmarking error for our method was 1.9 mm, whereas the active shape model resulted in an average landmarking error of 2.3 mm. A second study investigating facial shape heritability in related individuals concludes that automatic landmarking is on par with manual landmarking for some landmarks. Our algorithm can be trained in 30 min to automatically landmark 3D facial data sets of any size, and allows for fast and robust landmarking of 3D faces.
机译:在本文中,我们提出了一种使用2D Gabor小波自动进行3D面部标记的新颖方法。我们的算法将人脸视为表面,并使用地图投影从原始数据中导出2D特征。提取的特征包括纹理,浮雕图及其变换。我们扩展了既定的2D标志性方法,用于同时评估这些数据。该方法通过使用21个界标在两个数据集上执行界标实验进行了验证,并与主动形状模型实现进行了比较。平均而言,我们方法的界标误差为1.9 mm,而活动形状模型的平均界标误差为2.3 mm。另一项调查相关个体面部形状遗传力的研究得出的结论是,自动标记与某些标记的手动标记是同等的。我们的算法可以在30分钟内进行训练,以自动标记任意大小的3D面部数据集,并可以对3D面部进行快速而强大的标记。

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