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Time series prediction using ensembles of ANFIS models with genetic optimization of interval type-2 and type-1 fuzzy integrators

机译:使用区间2型和1型模糊积分器进行遗传优化的ANFIS模型集成进行时间序列预测

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摘要

This paper describes an optimization of interval type-2 and type-1 fuzzy integrators in ensembles of ANFIS models with genetic algorithms (GAs), this with emphasis on its application to the prediction of chaotic time series, where the goal is to minimize the prediction error. The Mackey-Glass time series was considered to validate the proposed ensemble approach. The methods used for the integration of the ensembles of ANFIS are: type-1 and interval type-2 Mamdani fuzzy inference systems (FIS). Genetic Algorithms are used for optimization of the membership function parameters of the FIS in each integrator. In the experiments we changed the type of the membership functions for each type-1 and interval type-2 FIS, thereby increasing the complexity of the training, The output (Forecast) generated by each integrator is calculated with the RMSE (root mean square error) to minimize the prediction error, therefore we compared the performance obtained by each FIS.
机译:本文介绍了使用遗传算法(GA)对ANFIS模型集合中的区间2型和1型模糊积分器进行的优化,重点是将其应用于混沌时间序列的预测,其目的是使预测最小化错误。 Mackey-Glass时间序列被认为可以验证所提出的集成方法。用于集成ANFIS集成的方法有:1型和区间2型Mamdani模糊推理系统(FIS)。遗传算法用于优化每个积分器中FIS的隶属函数参数。在实验中,我们更改了每个类型1和间隔类型2 FIS的隶属函数的类型,从而增加了训练的复杂性,每个积分器生成的输出(预测)均使用RMSE(均方根误差)进行计算)以最小化预测误差,因此我们比较了每个FIS所获得的性能。

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