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Neural network model for the prediction of wave-induced liquefaction potential

机译:神经网络模型预测波致液化势

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The prediction of wave-induced liquefaction has been recognised by coastal geotechnical engineers as an important factor when considering the design of marine structures. All existing models have been based on conventional approaches of engineering mechanics with limited laboratory work. In this study, we propose an alternative approach for the prediction of the maximum liquefaction depth, based on neural network (NN). Unlike previous engineering mechanics approaches, the proposed NN model is based on data learning knowledge, rather than on knowledge of mechanisms. Numerical examples demonstrate the capacity of the proposed NN model for the prediction of wave-induced liquefaction depth, which provides civil engineers with another effective tool.
机译:波浪波引起的液化的预测已被沿海岩土工程师确认为考虑海洋结构设计的重要因素。所有现有模型均基于工程力学的常规方法,并且实验室工作量有限。在这项研究中,我们提出了一种基于神经网络(NN)的最大液化深度预测方法。与以前的工程力学方法不同,所提出的NN模型基于数据学习知识,而不是机制知识。数值算例表明了所提出的神经网络模型预测波浪引起的液化深度的能力,这为土木工程师提供了另一种有效的工具。

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