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Diagonal Recurrent Neural Networks For Mdof Structural Vibration Control

机译:Mdof结构振动控制的对角递归神经网络

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In recent years, considerable attention has been paid to the development of theories and applications associated with structural vibration control. Integrating the nonlinear mapping ability with the dynamic evolution capability, diagonal recurrent neural network (DRNN) meets the needs of the demanding control requirements in increasingly complex dynamic systems because of its simple and recurrent architecture. This paper presents numerical studies of multiple degree-of-freedom (MDOF) structural vibration control based on the approach of the backpropagation algorithm to the DRNN control method. The controller's stability and convergence and comparisons of the DRNN method with conventional control strategies are also examined. The numerical simulations show that the structural vibration responses of linear and nonlinear MDOF structures are reduced by between 78% and 86%, and between 52% and 80%, respectively, when they are subjected to El Centro, Kobe, Hachinohe, and Northridge earthquake processes. The numerical simulation shows that the DRNN method outperforms conventional control strategies, which include linear quadratic regulator (LQR), linear quadratic Gaussian (LQG) (based on the acceleration feedback), and pole placement by between 20% and 30% in the case of linear MDOF structures. For nonlinear MDOF structures, in which the conventional controllers are ineffective, the DRNN controller is still effective. However, the level of reduction of the structural vibration response of nonlinear MDOF structures achievable is reduced by about 20% in comparison to the reductions achievable with linear MDOF structures.
机译:近年来,已经对与结构振动控制有关的理论和应用的发展给予了相当大的关注。对角递归神经网络(DRNN)将非线性映射能力与动态演化能力相结合,由于其简单且递归的架构,可以满足日益复杂的动态系统中苛刻的控制要求。本文基于反向传播算法到DRNN控制方法的方法,对多自由度(MDOF)结构振动控制进行了数值研究。还研究了控制器的稳定性和收敛性,以及DRNN方法与常规控制策略的比较。数值模拟表明,在遭受El Centro,神户,八户和北岭地震时,线性和非线性MDOF结构的结构振动响应分别降低了78%至86%和52%至80%。流程。数值仿真表明,DRNN方法优于常规控制策略,包括线性二次调节器(LQR),线性二次高斯(LQG)(基于加速度反馈)和极点布置(在情况下为20%到30%)线性MDOF结构。对于传统控制器无效的非线性MDOF结构,DRNN控制器仍然有效。然而,与线性MDOF结构可实现的降低相比,可实现的非线性MDOF结构的结构振动响应的降低水平降低了约20%。

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