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Robust regional bounding spherical descriptor for 3D face recognition and emotion analysis

机译:用于3D人脸识别和情感分析的鲁棒区域边界球面描述符

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摘要

3D face recognition and emotion analysis play important roles in many fields of communication and edutainment An effective facial descriptor, with higher discriminating capability for face recognition and higher descriptiveness for facial emotion analysis, is a challenging issue. However, in the practical applications, the descriptiveness and discrimination are independent and contradictory to each other. 3D facial data provide a promising way to balance these two aspects. In this paper, a robust regional bounding spherical descriptor (RBSR) is proposed to facilitate 3D face recognition and emotion analysis. In our framework, we first segment a group of regions on each 3D facial point cloud by shape index and spherical bands on the human face. Then the corresponding facial areas are projected to regional bounding spheres to obtain our regional descriptor. Finally, a regional and global regression mapping (RGRM) technique is employed to the weighted regional descriptor for boosting the classification accuracy. Three largest available databases, FRGC v2, CASIA and BU-3DFE, are contributed to the performance comparison and the experimental results show a consistently better performance for 3D face recognition and emotion analysis. (C) 2015 Elsevier B.V. All rights reserved.
机译:3D面部识别和情感分析在沟通和娱乐的许多领域中都扮演着重要角色。有效的面部描述符具有较高的面部识别能力和面部情感分析的描述性,这是一个具有挑战性的问题。但是,在实际应用中,描述性和区分性是相互独立和矛盾的。 3D面部数据为平衡这两个方面提供了一种有前途的方法。在本文中,提出了一种鲁棒的区域边界球面描述符(RBSR),以促进3D人脸识别和情感分析。在我们的框架中,我们首先通过形状索引和人脸上的球形带在每个3D面部点云上分割出一组区域。然后将相应的面部区域投影到区域边界球上,以获得我们的区域描述符。最后,将区域和全局回归映射(RGRM)技术应用于加权区域描述符,以提高分类精度。三个最大的可用数据库FRGC v2,CASIA和BU-3DFE为性能比较做出了贡献,实验结果表明3D人脸识别和情感分析的性能始终如一。 (C)2015 Elsevier B.V.保留所有权利。

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