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Optimization of gaussian fuzzy membership functions and evaluation of the monotonicity property of fuzzy inference systems

机译:高斯模糊隶属函数的优化和模糊推理系统的单调性评估

摘要

In this paper, two issues relating to modeling of a monotonicity-preserving Fuzzy Inference System (FIS) are examined. The first is on designing or tuning of Gaussian Membership Functions (MFs) for a monotonic FIS. Designing Gaussian MFs for an FIS is difficult because of its spreading and curvature characteristics. In this study, the sufficient conditions are exploited, and the procedure of designing Gaussian MFs is formulated as a constrained optimization problem. The second issue is on the testing procedure for a monotonic FIS. As such, a testing procedure for a monotonic FIS model is proposed. Applicability of the proposed approach is demonstrated with a real world industrial application, i.e., Failure Mode and Effect Analysis. The results obtained are analysis and discussed. The outcomes show that the proposed approach is useful in designing a monotonicity-preserving FIS model.
机译:在本文中,研究了与保持单调性的模糊推理系统(FIS)建模有关的两个问题。首先是为单调FIS设计或调整高斯隶属函数(MF)。由于FIS的扩展和曲率特性,很难为FIS设计高斯MF。在这项研究中,利用了充分的条件,并将设计高斯MF的过程公式化为约束优化问题。第二个问题是关于单调FIS的测试程序。因此,提出了单调FIS模型的测试程序。所提出的方法的适用性在实际的工业应用中得到了证明,即失效模式和效果分析。获得的结果将进行分析和讨论。结果表明,所提出的方法可用于设计保持单调性的FIS模型。

著录项

  • 作者

    Tay Kai Meng; Lim Chee Peng;

  • 作者单位
  • 年度 2011
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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