Learning the Spherical Harmonic Features for 3-D Face Recognition
文献类型:期刊论文
作者 | Peijiang Liu; Yunhong Wang; Di Huang; Zhaoxiang Zhang![]() |
刊名 | IEEE TRANSACTIONS ON IMAGE PROCESSING
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出版日期 | 2012-10-04 |
卷号 | 22期号:3页码:914-925 |
关键词 | Spherical Harmonics 3-d Face Recognition Feature Selection Spherical Depth Map |
英文摘要 | In this paper, a competitive method for 3-D face recognition (FR) using spherical harmonic features (SHF) is proposed. With this solution, 3-D face models are characterized by the energies contained in spherical harmonics with different frequencies, thereby enabling the capture of both gross shape and fine surface details of a 3-D facial surface. This is in clear contrast to most 3-D FR techniques which are either holistic or feature based, using local features extracted from distinctive points. First, 3-D face models are represented in a canonical representation, namely, spherical depth map, by which SHF can be calculated. Then, considering the predictive contribution of each SHF feature, especially in the presence of facial expression and occlusion, feature selection methods are used to improve the predictive performance and provide faster and more cost-effective predictors. Experiments have been carried out on three public 3-D face datasets, SHREC2007, FRGC v2.0, and Bosphorus, with increasing difficulties in terms of facial expression, pose, and occlusion, and which demonstrate the effectiveness of the proposed method. |
源URL | [http://ir.ia.ac.cn/handle/173211/13208] ![]() |
专题 | 自动化研究所_智能感知与计算研究中心 |
通讯作者 | Zhaoxiang Zhang |
推荐引用方式 GB/T 7714 | Peijiang Liu,Yunhong Wang,Di Huang,et al. Learning the Spherical Harmonic Features for 3-D Face Recognition[J]. IEEE TRANSACTIONS ON IMAGE PROCESSING,2012,22(3):914-925. |
APA | Peijiang Liu,Yunhong Wang,Di Huang,Zhaoxiang Zhang,&Liming Chen.(2012).Learning the Spherical Harmonic Features for 3-D Face Recognition.IEEE TRANSACTIONS ON IMAGE PROCESSING,22(3),914-925. |
MLA | Peijiang Liu,et al."Learning the Spherical Harmonic Features for 3-D Face Recognition".IEEE TRANSACTIONS ON IMAGE PROCESSING 22.3(2012):914-925. |
入库方式: OAI收割
来源:自动化研究所
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