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Attribute reduction based on background knowledge and its application in classification of astronomical spectra data 被引量:2

Attribute reduction based on background knowledge and its application in classification of astronomical spectra data
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摘要 To improve the efficiency of the attribute reduction, we present an attribute reduction algorithm based on background knowledge and information entropy by making use of background knowledge from research fields. Under the condition of known background knowledge, the algorithm can not only greatly improve the efficiency of attribute reduction, but also avoid the defection of information entropy partial to attribute with much value. The experimental result verifies that the algorithm is effective. In the end, the algorithm produces better results when applied in the classification of the star spectra data.
出处 《High Technology Letters》 EI CAS 2007年第4期422-427,共6页 高技术通讯(英文版)
基金 Supported by the National Natural Science Foundation of China(No. 60573075), the National High Technology Research and Development Program of China (No. 2003AA133060) and the Natural Science Foundation of Shanxi Province (No. 200601104).
关键词 rough set theory background knowledge intbrmation entropy attribute reduction astronomical spectra data 粗糙集合理论 平均信息量 天文光谱 计算机技术
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