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3D Face Recognition by Modeling the Arrangement of Concave and Convex Regions

机译:通过对凹凸区域的排列进行建模来进行3D人脸识别

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摘要

In this paper, we propose an original framework for three dimensional face representation and similarity matching. Basic traits of a face are encoded by extracting convex and concave regions from the surface of a face model. A compact graph representation is then constructed from these regions through an original modeling technique capable to quantitatively measure spatial relationships between regions in a three dimensional space and to encode this information in an attributed relational graph. In this way, the structural similarity between two face models is evaluated by matching their corresponding graphs. Experimental results on a 3D face database show that the proposed solution attains high retrieval accuracy and is reasonably robust to facial expression and pose changes.
机译:在本文中,我们提出了用于三维人脸表示和相似度匹配的原始框架。通过从面部模型的表面提取凸凹区域来对面部的基本特征进行编码。然后,通过原始建模技术从这些区域构造一个紧凑的图形表示形式,该技术能够定量测量三维空间中各区域之间的空间关系,并将此信息编码为属性关系图。通过这种方式,通过匹配两个人脸模型的对应图来评估两个人脸模型之间的结构相似性。在3D人脸数据库上的实验结果表明,所提出的解决方案具有较高的检索精度,并且对人脸表情和姿势变化具有相当强的鲁棒性。

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