基于人类进化模型的区间2型隶属函数的进化优化

R. Sepúlveda, O. Castillo, P. Melin, O. Montiel, L. Aguilar
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引用次数: 15

摘要

不确定性是用于实际应用的控制器的固有部分。使用新方法处理不完全信息在工程应用中具有根本的重要性。我们模拟了由1型和2型模糊逻辑控制器中的仪表元件产生的不确定性的影响,以在存在不确定性的情况下对系统的响应进行比较分析。本文提出了一种利用人类进化模型中两个1型系统的平均值来优化区间2型隶属函数的创新思路,并给出了优化方法的比较结果。我们发现优化后的2型系统输入的隶属度函数提高了系统在高噪声水平下的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evolutionary optimization of interval type-2 membership functions using the Human Evolutionary Model
Uncertainty is an inherent part in controllers used for real-world applications. The use of new methods for handling incomplete information is of fundamental importance in engineering applications. We simulated the effects of uncertainty produced by the instrumentation elements in type-1 and type-2 fuzzy logic controllers to perform a comparative analysis of the systems' response, in the presence of uncertainty. We are presenting an innovative idea to optimize interval type-2 membership functions using an average of two type-1 systems with the Human Evolutionary Model, and we show comparative results of the optimized proposed method. We found that the optimized membership functions for the inputs of a type-2 system increases the performance of the system for high noise levels.
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