Experimental study of active control using neural networks

H. M. Chen, G. Qi, J. S. Yang, F. Amini
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引用次数: 3

Abstract

Significant progress has been achieved in the active control of civil engineering structures in recent years. Although many control algorithms has been proposed, only few experiments in active structural control have been performed. In this paper, active structural control experiments were carried out using a scaled model structure simulating a three-story steel frame building. The model was subjected to a base motion on a shake table. A neural network based controller was implemented to control the response of the structure. This trained neural controller was implemented to control the response of the structure. It is experimentally verified that the neural network is able to generalized to new inputs, i.e. a properly trained neural network is capable of providing sensible outputs when presented with input data that has never been used during training. Results from this experimental study indicate great promise for the control of civil engineering structures under dynamic loadings using the artificial neural network controller.
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基于神经网络的主动控制实验研究
近年来,土木工程结构主动控制研究取得了重大进展。虽然提出了许多控制算法,但在主动结构控制方面的实验很少。本文采用三层钢框架建筑的比例模型进行了主动结构控制试验。该模型在振动台上进行了基础运动。采用基于神经网络的控制器对结构的响应进行控制。利用训练好的神经控制器对结构的响应进行控制。实验证明,神经网络能够泛化到新的输入,也就是说,经过适当训练的神经网络能够在训练过程中从未使用过的输入数据出现时提供合理的输出。实验结果表明,人工神经网络控制器在动荷载作用下的土木工程结构控制中具有广阔的应用前景。
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