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Hand Vein Recognition Algorithm Based on NMF with Sparsity and Clustering Property Constraints in Feature Mapping Space

查看全文 作  者:JIA [1]Xu;SUN [1]Fuming;LI [2]Haojie;CAO [1]Yudong 高影响力作者 机构地区:[1]School of Electronics and Information Engineering,Liaoning University of Technology,Jinzhou 121001,China;[2]School of Software Technology,Dalian University of Technology,Dalian 116024,China高影响力机构 出  处:《Chinese Journal of Electronics》索引2019年第28卷第6期,共7页高影响力期刊 基  金:supported by the National Natural Science Foundation of China(No.61502216,No.61572244,No.51679116);Natural Science Foundation of Liaoning Province(No.2019-ZD-0700) 摘  要:Most of the existed vein features are lack of robustness to light intensity variation,and some algorithms rely on the specified vein data sets,which leads to the limitation of real applications.To solve the problems,we propose a novel vein recognition algorithm based on Nonnegative matrix factorization(NMF)with double regularization terms.The innovations of our algorithm are mainly reflected in the following two aspects:in order to improve feature robustness,a novel feature mapping function is designed to map the initial Histogram of oriented gradient(HOG)feature to a new space;to enhance the recognition performance,an effective NMF model is presented,which not only reduces feature dimension,but also optimizes the feature sparsity and clustering property simultaneously.Experiments show that the proposed algorithm can achieve satisfactory results in terms of False rejection rate(FRR)and False acceptance rate(FAR),which indicates that our algorithm is valuable for other classification problems. 关 键 词:VEIN recognition NONNEGATIVE matrix factorization(NMF) Mapping function Feature SPARSITY
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