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Prediction of maximum wave-induced liquefaction in porous seabed using multi-artificial neural network model

机译:基于多人工神经网络模型的多孔海床最大波致液化预测

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摘要

In the last few decades, considerable efforts have been devoted to the phenomenon of wave-induced liquefactions, because it is one of the most important factors for analysing the seabed and designing marine structures. Although numerous studies of wave-induced liquefaction have been carried out, comparatively little is known about the impact of liquefaction on marine structures. Furthermore, most previous researches have focused on complicated mathematical theories and some laboratory work. In the present study, a data dependent approach for the prediction of the wave-induced liquefaction depth in a porous seabed is proposed, based on a multi-artificial neural network (MANN) method. Numerical results indicate that the MANN model can provide an accurate prediction of the wave-induced maximum liquefaction depth with 10% of the original database. This study demonstrates the capacity of the proposed MANN model and provides coastal engineers with another effective tool to analyse the stability of the marine sediment.
机译:在过去的几十年中,由于波浪状液化现象是分析海床和设计海洋结构的最重要因素之一,因此已经做出了大量的努力。尽管已经进行了许多有关波浪引起的液化的研究,但对液化对海洋结构的影响知之甚少。此外,以前的大多数研究都集中在复杂的数学理论和一些实验室工作上。在本研究中,基于多人工神经网络(MANN)方法,提出了一种基于数据的方法来预测多孔海底中的波诱导液化深度。数值结果表明,MANN模型可以以原始数据库的10%准确预测波浪引起的最大液化深度。这项研究证明了拟议的MANN模型的功能,并为沿海工程师提供了另一种有效的工具来分析海洋沉积物的稳定性。

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