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自适应特征熵权模糊C均值聚类算法的研究
引用本文:黄海新,孔畅,于海斌,文峰.自适应特征熵权模糊C均值聚类算法的研究[J].系统工程理论与实践,2016,36(1):219-223.
作者姓名:黄海新  孔畅  于海斌  文峰
作者单位:1. 沈阳理工大学 信息科学与工程学院, 沈阳 110159;2. 中国科学院 沈阳自动化研究所, 沈阳 110016
基金项目:国家自然科学基金(6123307)
摘    要:特征权重算法对聚类效果有很大的影响,而传统的特征权重算法忽略了特征项在类间和类内的分布情况.因此,研究聚类后样本特征属性表现的有序性程度对聚类结果的影响,分析聚类后样本特征属性的分布情况,提出了一种自适应特征熵权模糊C均值聚类算法.该算法以聚类后的特征熵和信息增益作为准则调整特征权值,通过聚类与权重更新逐步迭代优化,直至获得最优的特征权值.实验表明,自适应特征熵权模糊C均值聚类算法能够有效地区分各个特征属性对聚类效果的重要程度;较于其它加权模糊C均值聚类算法,该算法能够得到更高的聚类准确率.

关 键 词:模糊C均值聚类  自适应  特征权重    
收稿时间:2014-05-28

Research on adaptive entropy weight fuzzy c-means clustering algorithm
HUANG Haixin,KONG Chang,YU Haibin,WEN Feng.Research on adaptive entropy weight fuzzy c-means clustering algorithm[J].Systems Engineering —Theory & Practice,2016,36(1):219-223.
Authors:HUANG Haixin  KONG Chang  YU Haibin  WEN Feng
Institution:1. School of Information Science and Engineering, Shenyang Ligong University, Shenyang 110159, China;2. Shenyang Institute of Automation, Chinese Academy of Sciences, Shenyang 110016, China
Abstract:Feature weight algorithm has great impact on the classification results. Traditional algorithms didn't consider distribution information among and inside classes. Therefore, study the impact of ordering degree of feature attributes after clustering, and analyse the distribution of feature attributes, named as adaptive feature entropy weight fuzzy C-means clustering algorithm (AEWFCM), is proposed. Both the clustering features entropy and the information gain are the criteria to adjust feature weights. By clustering iterative optimization weight gradually and continuously updated until the best feature weights obtained. Experimental results show that the AEWFCM algorithm can effectively distinguish the features attributes on the importance of clustering results; and compared with other famous fuzzy C-means clustering algorithms, it can get a higher accuracy in clustering with the same sample.
Keywords:fuzzy C-means clustering  adaptive  feature weighting  entropy
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