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Advances in Elastic Graph Matching for Frontal Face Verification

机译:用于正面人脸验证的弹性图匹配技术的进展

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Elastic graph matching is one of the most well known techniques for frontal face recognition/verification and one of the few techniques that can be combined successfully with fully automatic face localization and alignment methods. In this paper we propose a series of techniques that enhance the performance of elastic graph matching in frontal face verification by exploiting the individuality of human facial features in many ways. First the use of discriminant analysis in the feature vectors of the graph nodes is explored. The use of the node deformation for discrimination is also proposed. Moreover, the local similarity values at the nodes of the elastic graph, are weighted by coefficients that are also derived from some discriminant analysis in order to form a total similarity measure between faces. We present an algorithm that combines all the above discriminant steps. Moreover, we propose an algorithm for finding the most discriminant landmarks upon a person''s face and a person-specific graph is placed in the spatial coordinates that correspond to these discriminant features. We illustrate the improvements in performance by the proposed advances in frontal face verification using the XM2VTS database
机译:弹性图匹配是用于正面人脸识别/验证的最著名技术之一,也是可以与全自动人脸定位和对齐方法成功结合的少数技术之一。在本文中,我们提出了一系列技术,可通过多种方式利用人脸特征的个性来增强正面图验证中的弹性图匹配性能。首先,探讨了判别分析在图节点特征向量中的使用。还提出了使用节点变形进行判别。此外,在弹性图的节点处的局部相似度值也由也从一些判别分析得出的系数加权,以形成面之间的整体相似度。我们提出了一种结合以上所有判别步骤的算法。此外,我们提出了一种算法,用于查找人脸上最有区别的地标,并将特定于人的图形放置在与这些有区别的特征相对应的空间坐标中。我们通过使用XM2VTS数据库进行正面人脸验证的拟议进展说明了性能上的改进

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