Unified model in identity subspace for face recognition

被引:0
|
作者
Pin Liao
Li Shen
Yi-Qiang Chen
Shu-Chang Liu
机构
[1] The Chinese Academy of Sciences,Institute of Computing Technology
[2] Beijing University of Posts and Telecommunications,Multimedia Information Technology Teaching Center, School of Information
关键词
pattern recognition; face recognition; identity subspace; unified model;
D O I
暂无
中图分类号
学科分类号
摘要
Human faces have two important characteristics: (1) They are similar objects and the specific, variations of each face are similar to each other; (2) They are nearly bilateral symmetric. Exploiting the two important properties, we build a unified model in identity subspace (UMIS) as a novel technique for face recognition from only one example image per person. An identity subspace spanned by bilateral symmetric bases, which compactly encodes identity information. is presented. The unified model, trained on an obtained training set with multiple samples per class from a known people groupA, can be generalized well to facial images of unknown individuals, and can be used to recognize facial images from an unknown people groupB with only one sample per subject. Extensive experimental results on two public databases (the Yale database and the Bern database) and our own database (the ICT-JDL database) demonstrate that the UMIS approach is significantly effective and robust for face recognition.
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页码:684 / 690
页数:6
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