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Application of artificial neural networks to the response prediction of geometrically nonlinear truss structures

机译:人工神经网络在几何非线性桁架结构响应预测中的应用

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摘要

This paper examines the application of artificial neural networks (ANN) to the response prediction of geometrically nonlinear truss structures. Two types of analysis (deterministic and probabilistic analyses) are considered. A three-layer feed-forward backpropagation network with three input nodes, five hidden layer nodes and two output nodes is firstly developed for the deterministic response analysis. Then a back propagation training algorithm with Bayesian regularization is used to train the network. The trained network is then successfully combined with a direct Monte Carlo Simulation (MCS) to perform a probabilistic response analysis of geometrically nonlinear truss structures. Finally, the proposed ANN is applied to predict the response of a geometrically nonlinear truss structure. It is found that the proposed ANN is very efficient and reasonable in predicting the response of geometrically nonlinear truss structures.
机译:本文研究了人工神经网络(ANN)在几何非线性桁架结构的响应预测中的应用。考虑了两种类型的分析(确定性分析和概率分析)。首先建立了具有三个输入节点,五个隐藏层节点和两个输出节点的三层前馈反向传播网络,用于确定性响应分析。然后使用具有贝叶斯正则化的反向传播训练算法来训练网络。然后,将训练后的网络成功与直接蒙特卡罗模拟(MCS)结合以执行几何非线性桁架结构的概率响应分析。最后,将所提出的人工神经网络应用于预测几何非线性桁架结构的响应。发现所提出的人工神经网络在预测几何非线性桁架结构的响应方面非常有效和合理。

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