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Type-2 fuzzy neural networks with fuzzy clustering and differential evolution optimization

机译:具有模糊聚类和差分进化优化的2型模糊神经网络

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摘要

In many real-world problems involving pattern recognition, system identification and modeling, control, decision making, and forecasting of time-series, available data are quite often of uncertain nature. An interesting alternative is to employ type-2 fuzzy sets, which augment fuzzy models with expressive power to develop models, which efficiently capture the factor of uncertainty. The three-dimensional membership functions of type-2 fuzzy sets offer additional degrees of freedom that make it possible to directly and more effectively account for model's uncertainties. Type-2 fuzzy logic systems developed with the aid of evolutionary optimization forms a useful modeling tool subsequently resulting in a collection of efficient "If-Then" rules. The type-2 fuzzy neural networks take advantage of capabilities of fuzzy clustering by generating type-2 fuzzy rule base, resulting in a small number of rules and then optimizing membership functions of type-2 fuzzy sets present in the antecedent and consequent parts of the rules. The clustering itself is realized with the aid of differential evolution. Several examples, including a benchmark problem of identification of nonlinear system, are considered. The reported comparative analysis of experimental results is used to quantify the performance of the developed networks.
机译:在涉及模式识别,系统识别和建模,控制,决策和时间序列预测的许多现实问题中,可用数据通常具有不确定性。一个有趣的替代方法是使用类型2模糊集,该类型模糊集具有增强表达能力的模糊模型以开发模型,从而有效地捕获不确定性因素。类型2模糊集的三维隶属度函数提供了额外的自由度,使直接和更有效地考虑模型的不确定性成为可能。在进化优化的帮助下开发的2型模糊逻辑系统形成了有用的建模工具,随后产生了有效的“ If-Then”规则。 2型模糊神经网络通过生成2型模糊规则库来产生模糊规则,从而利用少量的模糊聚类能力,然后优化存在于该模型的前期和后续部分中的2型模糊集的隶属函数。规则。聚类本身是在差分进化的帮助下实现的。考虑了几个示例,包括识别非线性系统的基准问题。报告的实验结果比较分析用于量化已开发网络的性能。

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