Regression Facial Attribute Classification via simultaneous dictionary learning

被引:5
|
作者
Moeini, Ali [1 ]
Moeini, Hossein [2 ]
Safai, Armon Matthew [3 ]
Faez, Karim [1 ]
机构
[1] Amirkabir Univ Technol, Dept Elect Engn, Tehran, Iran
[2] Semnan Univ, Dept Elect Engn, Semnan, Iran
[3] Univ Calif San Diego, Dept Comp Sci & Engn, San Diego, CA 92103 USA
关键词
Facial Attribute Classification; Regression classification; Sparse representation; Collaborative representation; KSVD; Face verification; GENDER CLASSIFICATION; FACE RECOGNITION; AGE;
D O I
10.1016/j.patcog.2016.08.031
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Recently, many researchers have attempted to classify Facial Attributes (FAs) by representing characteristics of FAs such as attractiveness, age, smiling and so on. In this context, recent studies have demonstrated that visual FAs are a strong background for many applications such as face verification, face search and so on. However, Facial Attribute Classification (FAC) in a wide range of attributes based on the regression representation-predicting of FAs as real-valued labels- is still a significant challenge in computer vision and psychology. In this paper, a regression model formulation is proposed for FAC in a wide range of FAs (e.g. 73 FAs). The proposed method accommodates real-valued scores to the probability of what percentage of the given FAs is present in the input image. To this end, two simultaneous dictionary learning methods are proposed to learn the regression and identity feature dictionaries simultaneously. Accordingly, a multi-level feature extraction is proposed for FAC. Then, four regression classification methods are proposed using a regression model formulated based on dictionary learning, SRC and CRC. Convincing results are acquired to handle a wide range of FAs and represent the probability of FAs on the PubFig, LFW, Groups and 10k US Adult Faces databases compared to several state-of-the-art methods. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:99 / 113
页数:15
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