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一种新的模糊规则提取方法
引用本文:吴淑芳,吴耿锋,王炜. 一种新的模糊规则提取方法[J]. 计算机工程, 2005, 31(6): 157-159,181
作者姓名:吴淑芳  吴耿锋  王炜
作者单位:上海大学计算机工程与科学学院,上海,200072;上海地震局,上海,200062
基金项目:上海市教委发展基金资助项目(2000A29)
摘    要:提出了一种新的模糊规则提取方法,该方法先采用基于山峰函数的减法聚类法自适应地确定初始的聚类中心,然后由此构造动态自组织神经网络进行学习,在学习的过程中可根据情况适当地合并或分裂神经元,并重构神经网络继续学习,最后按聚类中心确定模糊子集数目和隶属函数并形成模糊规则集.实验结果表明,通过网络结构和神经元的动态自适应变化能够获取样本集中的模糊信息,形成直观的模糊规则.

关 键 词:模糊规则提取  自组织特征映射  减法聚类法
文章编号:1000-3428(2005)06-0157-03

A New Method for Fuzzy Rule Extraction
WU Shufang,WU Gengfeng,WANG Wei. A New Method for Fuzzy Rule Extraction[J]. Computer Engineering, 2005, 31(6): 157-159,181
Authors:WU Shufang  WU Gengfeng  WANG Wei
Affiliation:WU Shufang1,WU Gengfeng1,WANG Wei2
Abstract:A new method for extracting the fuzzy rules is proposed, which uses subtraction clustering based mountain function to automatically find out the original clustering centers. IT also can construct a dynamic neural network for learning. During the training , the network can automatically divide or incorporate nerve cell ,and then reconstructs itself to learn again. Finally, on the basis of clustering centers , it can acquire the membership functions and fuzzy rules. The experimental results show that the method can acquire the fuzzy information of sample set and extract the fuzzy rules.
Keywords:Fuzzy rule extracting  Self-organizing feature map (SOFM)  Subtraction clustering
本文献已被 CNKI 维普 万方数据 等数据库收录!
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