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一种基于改进神经网络的高效模糊聚类算法
引用本文:陈秀敏,邹开其,闫忠文,祝美宁,付长青,杨艳萍,阎丹丹. 一种基于改进神经网络的高效模糊聚类算法[J]. 计算机应用, 2008, 28(5): 1190-1193
作者姓名:陈秀敏  邹开其  闫忠文  祝美宁  付长青  杨艳萍  阎丹丹
作者单位:大连大学,信息工程学院,辽宁,大连,116622;河北科技师范学院,计算机系,河北,秦皇岛,066600;大连大学,信息工程学院,辽宁,大连,116622;河北科技师范学院,计算机系,河北,秦皇岛,066600;昌黎职教中心,河北,秦皇岛,066600
摘    要:针对利用自组织特征映射(SOFM)神经网络进行模糊聚类时出现的一些问题,提出改进结构的神经网络,采用自适应的聚类初值,能够实现高维数据和任意形状族的聚类,与具有同样聚类效果的其他算法相比,具有较低的时间复杂度。仿真实验结果表明,该聚类算法比单个的神经网络聚类算法和同类其他算法更有效。

关 键 词:聚类  自组织特征映射  拓扑相似度  自适应
文章编号:1001-9081(2008)05-1190-04
收稿时间:2007-11-29
修稿时间:2007-11-29

Highly effective fuzzy clustering algorithm based on improved network
CHEN Xiu-min,ZOU Kai-qin,YAN Zhong-wen,ZHU Mei-ning,FU Chang-qing,YANG Yan-ping,YAN Dan-dan. Highly effective fuzzy clustering algorithm based on improved network[J]. Journal of Computer Applications, 2008, 28(5): 1190-1193
Authors:CHEN Xiu-min  ZOU Kai-qin  YAN Zhong-wen  ZHU Mei-ning  FU Chang-qing  YANG Yan-ping  YAN Dan-dan
Affiliation:CHEN Xiu-min1,2,ZOU Kai-qin1,YAN Zhong-wen2ZHU Mei-ning2,FU Chang-qing1,YANG Yan-ping2,YAN Dan-dan3(1.College of Information Engineering,Dalian University,Dalian Liaoning 116622,China,2.Department of Computer,Hebei Normal University of Science , Technology,Qinhuangdao Hebei 066600,3.Changli Vocational Education Center,China)
Abstract:In order to solve the problems in fuzzy clustering by using Self-Organizing Feature Map (SOFM) network, this paper introduced an improved structural self-organizing feature map network and adopted self-adapting initial condition. It can handle the clustering problem of high dimensional data and the clusters with arbitrary shapes. Compared with other algorithms with the same clustering effect, it has lower clustering time complexity. Experiments indicate this algorithm has better clustering effect compared to single SOFM network and other kin algorithms.
Keywords:clustering  self-organizing feature map (SOFM)  topological similarity  self-adaptive
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