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Control of the nonlinear building using an optimum inverse TSK model of MR damper based on modified grey wolf optimizer

机译:基于改进的灰狼优化器的MR DAMPER最佳逆TSK模型对非线性建筑的控制

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This paper proposes an inverse model of the magnetorheological (MR) damper, based on a new Takagi-Sugeno-Kang (TSK) model to estimate the required voltage for producing the MR force. Usually, a MATLAB toolbox function, adaptive neuro-fuzzy inference systems (ANFIS), is used to train the TSK models, which uses the gradient-based learning algorithms to tune the weights or membership functions parameters. The main drawback is that, these algorithms most often find themselves trapped in local minima, depending on the initial estimations. To overcome this issue, a grey wolf optimizer (GWO) is selected and modified to achieve the training task and called the model as an optimum modified grey wolf-TSK model (OMGT). Also, the superiority of the modified grey wolf optimizer over its standard one is investigated using some mathematical benchmark test functions. Moreover, the linear quadratic regulator (LQR) controller is designed to estimate the optimal control force of an MR damper. The effectiveness of this optimum inverse model in structural control is illustrated and verified using an eight-story nonlinear benchmark building. The performance of the designed OMGT model is compared with the different control algorithms such on (PON), clipped optimal control (COC), active control, and ANFIS under different earthquakes, which demonstrate an acceptable performance of the OMGT over these control algorithms.
机译:本文提出了一种基于新的Takagi-Sugeno-kang(TSK)模型来估计产生MR力的所需电压的磁流变学(MR)阻尼器的逆模型。通常,MATLAB工具箱功能,自适应神经模糊推理系统(ANFIS)用于训练TSK模型,它使用基于梯度的学习算法来调整权重或隶属函数参数。主要缺点是,这些算法最常发现自己在局部最小值中被困在初始估计中。为了克服这个问题,选择并修改了灰狼优化器(GWO)以实现训练任务并称为模型作为最佳改进的灰狼-TSK模型(OMGT)。此外,使用一些数学基准测试功能研究了改进的灰狼优化器在其标准的优势。此外,线性二次调节器(LQR)控制器旨在估计MR阻尼器的最佳控制力。用八层非线性基准建设说明和验证了这种最佳反向模型在结构控制中的有效性。将设计的OMGT模型的性能与不同地震(PON),剪裁最佳控制(COC),主动控制和ANFIS的不同控制算法进行了比较,这表明了OMGT在这些控制算法上的可接受性能。

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