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Building fuzzy inference systems with similarity reasoning : NSGAII-based fuzzy rule selection and evidential functions

机译:建立具有相似性推理的模糊推理系统:基于NSGAII的模糊规则选择和证据功能

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摘要

In our previous investigations, two Similarity Reasoning (SR)-based frameworks for tackling real-world problems have been proposed. In both frameworks, SR is used to deduce unknown fuzzy rules based on similarity of the given and unknown fuzzy rules for building a Fuzzy Inference System (FIS). In this paper, we further extend our previous findings by developing (1) a multi-objective evolutionary model for fuzzy rule selection; and (2) an evidential function to facilitate the use of both frameworks. The Non-Dominated Sorting Genetic Algorithms-p (NSGA-p) is adopted for fuzzy rule selection, in accordance with the Pareto optimal criterion. Besides that, two new evidential functions are developed, whereby given fuzzy rules are considered as evidence. Simulated and benchmark examples are included to demonstrate the applicability of these suggestions. Positive results were obtained.
机译:在我们之前的研究中,提出了两个基于相似性推理(SR)的框架来解决现实世界中的问题。在这两个框架中,SR用于根据给定和未知模糊规则的相似性推导未知模糊规则,以构建模糊推理系统(FIS)。在本文中,我们通过开发(1)用于模糊规则选择的多目标进化模型来进一步扩展以前的发现。 (2)促进两个框架使用的证据功能。根据帕累托最优准则,采用非支配排序遗传算法-p(NSGA-p)进行模糊规则选择。除此之外,还开发了两个新的证据功能,其中将给定的模糊规则视为证据。包括模拟示例和基准示例,以证明这些建议的适用性。获得了积极的结果。

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