Label Propagation Algorithm Based on Non-negative Sparse Representation

被引:16
作者
Yang, Nanhai [1 ]
Sang, Yuanyuan [1 ]
He, Ran [1 ]
Wang, Xiukun [1 ]
机构
[1] Dalian Univ Technol, Dept Comp Sci & Technol, Dalian 116024, Peoples R China
来源
LIFE SYSTEM MODELING AND INTELLIGENT COMPUTING | 2010年 / 6330卷
关键词
biometrics; nonnegative sparse representation; semi-supervised learning; sparse probability graph; label propagation; LEAST-SQUARES PROBLEMS;
D O I
10.1007/978-3-642-15615-1_42
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Graph-based semi-supervised learning strategy plays an important role in the semi-supervised learning area. This paper presents a novel label propagation algorithm based on nonnegative sparse representation (NSR) for bioinformatics and biometrics. Firstly, we construct a sparse probability graph (SPG) whose nonnegative weight coefficients are derived by nonnegative sparse representation algorithm. The weights of SPG naturally reveal the clustering relationship of labeled and unlabeled samples; meanwhile automatically select appropriate adjacency structure as compared to traditional semi-supervised learning algorithm. Then the labels of unlabeled samples are propagated until algorithm converges. Extensive experimental results on biometrics, UCI machine learning and TDT2 text datasets demonstrate that label propagation algorithm based on NSR outperforms the standard label propagation algorithm.
引用
收藏
页码:348 / 357
页数:10
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