Unsupervised feature selection with structured graph optimization
Nie, Feiping1; Zhu, Wei1; Li, Xuelong2
2016
会议名称30th aaai conference on artificial intelligence, aaai 2016
会议日期2016-02-12
会议地点phoenix, az, united states
关键词Artificial intelligence Clustering algorithms Human computer interaction Learning systems Matrix algebra
页码1302-1308
英文摘要

since amounts of unlabelled and high-dimensional data needed to be processed, unsupervised feature selection has become an important and challenging problem in machine learning. conventional embedded unsupervised methods always need to construct the similarity matrix, which makes the selected features highly depend on the learned structure. however real world data always contain lots of noise samples and features that make the similarity matrix obtained by original data can't be fully relied. we propose an unsupervised feature selection approach which performs feature selection and local structure learning simultaneously, the similarity matrix thus can be determined adaptively. moreover, we constrain the similarity matrix to make it contain more accurate information of data structure, thus the proposed approach can select more valuable features. an efficient and simple algorithm is derived to optimize the problem. experiments on various benchmark data sets, including handwritten digit data, face image data and biomedical data, validate the effectiveness of the proposed approach. © 2016, association for the advancement of artificial intelligence (www.aaai.org). all rights reserved.

收录类别EI
产权排序2
会议录30th aaai conference on artificial intelligence, aaai 2016
会议录出版者aaai press
学科主题artificial intelligence ; information sources and analysis ; algebra
语种英语
ISBN号9781577357605
内容类型会议论文
源URL[http://ir.opt.ac.cn/handle/181661/28585]  
专题西安光学精密机械研究所_光学影像学习与分析中心
作者单位1.Center for OPTical IMagery Analysis and Learning (OPTIMAL), School of Computer Science, Northwestern Polytechnical University, Xi'an, Shaanxi; 710072, China
2.Center for OPTical IMagery Analysis and Learning (OPTIMAL), Xi'an Institute of Optics and Precision Mechanics, Chinese Academy of Sciences, Xi'an, Shaanxi; 710119, China
推荐引用方式
GB/T 7714
Nie, Feiping,Zhu, Wei,Li, Xuelong. Unsupervised feature selection with structured graph optimization[C]. 见:30th aaai conference on artificial intelligence, aaai 2016. phoenix, az, united states. 2016-02-12.
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