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Pareto-Based Multi-objective Optimization for Fractional Order PI~λ Speed Control of Induction Motor by Using Elman Neural Network

机译:基于普拉夫·神经网络的帕累托的多目标优化,采用ELMAN神经网络对感应电动机的速度控制

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摘要

This paper presents Pareto-based multi-objective optimization for speed control of induction motor with fractional order proportional integral () controller. The aim of this study is to find optimum values of tuning parameters of by using Elman neural network (ENN) and Pareto-based multi-objective optimization. In this context, proportional gain , integral gain and the order of fractional integral are selected as tuning parameters while settling time and overshoot are chosen as objective functions. Firstly, experiments have been carried out to obtain training and test data. Then, ENN has been trained to construct mathematical model which is necessary for multi-objective optimization. In the next step, accuracy and reliability of ENN model are tested by using test data taken from experimental set-up. Finally, Pareto-based multi-objective optimization method has been used to find the optimum values of tuning parameters that minimize both and values. The different three conditions of the Pareto solution set are applied to the experimental set-up to verify the effectiveness of the proposed method. Results show that ENN is well modelled for induction motor and Pareto solution is an effective method to find optimal values of controller coefficients according to desired and values.
机译:本文介绍了基于帕累托的多目标优化,具有分数比例积分()控制器的感应电动机速度控制。本研究的目的是找到通过使用Elman神经网络(ENN)和基于帕累托的多目标优化的优化参数值。在这种情况下,选择比例增益,积分增益和分数积分的顺序作为调谐参数,同时选择稳定时间和过冲作为客观函数。首先,已经进行了实验以获得培训和测试数据。然后,enn已经接受培训以构建多目标优化所需的数学模型。在下一步中,通过使用从实验设置所取出的测试数据来测试ENN模型的准确性和可靠性。最后,基于帕累托的多目标优化方法已经用于找到最小化两者和值的调谐参数的最佳值。帕累托溶液组的不同三种条件应用于实验设置,以验证所提出的方法的有效性。结果表明,ENN为感应电机和Pareto解决方案建模良好,是根据所需和值找到控制器系数最佳值的有效方法。

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