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A novel approach for combining fuzzy rules using mean operators for effective rule reduction

机译:一种使用均值算子组合模糊规则以有效减少规则的新方法

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摘要

This paper will present a novel method based on harmonic mean, geometric mean, arithmetic mean and root mean square to help reduce fuzzy rules. The objective of the new method proposed is to produce fuzzy models with both a small number of interpretable rules and sufficiently high precision. Comparisons will be made between systems utilizing reduced rules and original rules to verify efficacy of the new methods in terms of the defuzzified outputs. As a practical example of a nonlinear system, an inverted pendulum will be controlled by a minimal set of rules to illustrate the performance and applicability of the proposed method.
机译:本文将提出一种基于谐波均值,几何均值,算术均值和均方根的新方法,以帮助减少模糊规则。提出的新方法的目的是产生具有少量可解释规则和足够高精度的模糊模型。将对使用简化规则和原始规则的系统进行比较,以根据去模糊化输出验证新方法的有效性。作为非线性系统的一个实际示例,倒立摆将受一组最小规则的控制,以说明所提出方法的性能和适用性。

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