基于模糊IF-THEN规则和遗传算法的诊断

A. Rotshtein, H. Rakytyanska
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引用次数: 1

摘要

本文提出了一种利用模糊IF-THEN规则描述对象的未观测参数和观测参数(因果关系)之间相互联系的反问题求解方法。该方法的实质在于制定和解决优化问题,一方面找到与IF-THEN规则相对应的模糊逻辑方程的根,另一方面根据现有的实验数据对模糊模型进行调整。提出了遗传算法求解优化问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Diagnosis based on fuzzy IF-THEN rules and genetic algorithms
This paper proposes an approach for inverse problem solving based on the description of the interconnection between unobserved and observed parameters of an object (causes and effects) with the help of fuzzy IF-THEN rules. The essence of the approach proposed consists in formulating and solving the optimization problems, which, on the one hand, find the roots of fuzzy logical equations, corresponding to IF-THEN rules, and on the other hand, tune the fuzzy model on the readily available experimental data. The genetic algorithms are proposed for the optimization problems solving.
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