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Novel robust approach for constructing Mamdani-type fuzzy system based on PRM and subtractive clustering algorithm
  • ISSN号:1001-2095
  • 期刊名称:《电气传动》
  • 时间:0
  • 分类:TP18[自动化与计算机技术—控制科学与工程;自动化与计算机技术—控制理论与控制工程] TS64[轻工技术与工程]
  • 作者机构:[1]Jiangsu Province Laboratory of Electrical and Automation Engineering for Coal Mining, China University of Mining and Technology, Xuzhou 221116, China, [2]State Key Laboratory of Integrated Automation for Process Industries, Northeastem University, Shenyang 110819, China
  • 相关基金:Project(61473298)supported by the National Natural Science Foundation of China; Project(2015QNA65)supported by Fundamental Research Funds for the Central Universities,China
中文摘要:

A novel approach for constructing robust Mamdani fuzzy system was proposed, which consisted of an efficiency robust estimator(partial robust M-regression, PRM) in the parameter learning phase of the initial fuzzy system, and an improved subtractive clustering algorithm in the fuzzy-rule-selecting phase. The weights obtained in PRM, which gives protection against noise and outliers, were incorporated into the potential measure of the subtractive cluster algorithm to enhance the robustness of the fuzzy rule cluster process, and a compact Mamdani-type fuzzy system was established after the parameters in the consequent parts of rules were re-estimated by partial least squares(PLS). The main characteristics of the new approach were its simplicity and ability to construct fuzzy system fast and robustly. Simulation and experiment results show that the proposed approach can achieve satisfactory results in various kinds of data domains with noise and outliers. Compared with D-SVD and ARRBFN, the proposed approach yields much fewer rules and less RMSE values.

英文摘要:

A novel approach for constructing robust Mamdani fuzzy system was proposed, which consisted of an efficiency robust estimator(partial robust M-regression, PRM) in the parameter learning phase of the initial fuzzy system, and an improved subtractive clustering algorithm in the fuzzy-rule-selecting phase. The weights obtained in PRM, which gives protection against noise and outliers, were incorporated into the potential measure of the subtractive cluster algorithm to enhance the robustness of the fuzzy rule cluster process, and a compact Mamdani-type fuzzy system was established after the parameters in the consequent parts of rules were re-estimated by partial least squares(PLS). The main characteristics of the new approach were its simplicity and ability to construct fuzzy system fast and robustly. Simulation and experiment results show that the proposed approach can achieve satisfactory results in various kinds of data domains with noise and outliers. Compared with D-SVD and ARRBFN, the proposed approach yields much fewer rules and less RMSE values.

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期刊信息
  • 《电气传动》
  • 中国科技核心期刊
  • 主管单位:天津电气传动设计研究所
  • 主办单位:天津电气传动设计研究所 中国自动化学会
  • 主编:王建峰
  • 地址:天津市东丽开发区信通路6号
  • 邮编:300399
  • 邮箱:mde@tried.com.cn
  • 电话:022-84376191 84376124
  • 国际标准刊号:ISSN:1001-2095
  • 国内统一刊号:ISSN:12-1067/TP
  • 邮发代号:6-85
  • 获奖情况:
  • 第二届全国优秀科技期刊三等奖,1996-1998年度机...
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  • 被引量:9630