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3D Face Recognition Founded on the Structural Diversity of Human Faces

机译:3D面对人类脸部结构多样性的面貌识别

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We present a systematic procedure for selecting facial fiducial points associated with diverse structural characteristics of a human face. We identify such characteristics from the existing literature on anthropometric facial proportions. We also present three dimensional (3D) face recognition algorithms, which employ Euclidean/geodesic distances between these anthropometric fiducial points as features along with linear discriminant analysis classifiers. Furthermore, we show that in our algorithms, when anthropometric distances are replaced by distances between arbitrary regularly spaced facial points, their performances decrease substantially. This demonstrates that incorporating domain specific knowledge about the structural diversity of human faces significantly improves the performance of 3D human face recognition algorithms.
机译:我们提出了一种选择与人脸的不同结构特征相关的面部基准点的系统过程。我们识别现有文献中的现有文献对人类学表现比例的特征。我们还提出了三维(3D)面部识别算法,其在这些人类测量基准点之间使用欧几里德/测地距作为特征以及线性判别分析分类器。此外,我们表明,在我们的算法中,当距离任意定期间隔的面部点之间的距离取代时,它们的性能大幅下降。这证明了域具体知识关于人类面的结构多样性显着提高了3D人脸识别算法的性能。

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