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Sparse Representation for Face Recognition Based on Constraint Sampling and Face Alignment 被引量:6
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作者 Jing Wang Guangda Su +4 位作者 Ying Xiong Jiansheng Chen Yan Shang jiongxin liu Xiaolong Ren 《Tsinghua Science and Technology》 SCIE EI CAS 2013年第1期62-67,共6页
Sparse Representation based Classification (SRC) has emerged as a new paradigm for solving recognition problems. This paper presents a constraint sampling feature extraction method that improves the SRC recognition ... Sparse Representation based Classification (SRC) has emerged as a new paradigm for solving recognition problems. This paper presents a constraint sampling feature extraction method that improves the SRC recognition rate. The method combines texture and shape features to significantly improve the recognition rate. Tests show that the combined constraint sampling and facial alignment achieves very high recognition accuracy on both the AR face database (99.52%) and the CAS-PEAL face database (99.54%). 展开更多
关键词 CLASSIFICATION face recognition feature extraction face alignment
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