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A genetic-algorithm approach for assessing the liquefaction potential of sandy soils

机译:评估砂土液化潜力的遗传算法

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The determination of liquefaction potential is required to take into account a large number of parameters, which creates a complex nonlinear structure of the liquefaction phenomenon. The conventional methods rely on simple statistical and empirical relations or charts. However, they cannot characterise these complexities. Genetic algorithms are suited to solve these types of problems. A genetic algorithm-based model has been developed to determine the liquefaction potential by confirming Cone Penetration Test datasets derived from case studies of sandy soils. Software has been developed that uses genetic algorithms for the parameter selection and assessment of liquefaction potential. Then several estimation functions for the assessment of a Liquefaction Index have been generated from the dataset. The generated Liquefaction Index estimation functions were evaluated by assessing the training and test data. The suggested formulation estimates the liquefaction occurrence with significant accuracy. Besides, the parametric study on the liquefaction index curves shows a good relation with the physical behaviour. The total number of misestimated cases was only 7.8% for the proposed method, which is quite low when compared to another commonly used method.
机译:确定液化潜力需要考虑大量参数,这会形成液化现象的复杂非线性结构。常规方法依赖于简单的统计和经验关系或图表。但是,它们无法描述这些复杂性。遗传算法适合解决这类问题。已经开发了一种基于遗传算法的模型,通过确认来自砂土案例研究的锥孔渗透测试数据集来确定液化潜力。已经开发了使用遗传算法进行参数选择和液化潜力评估的软件。然后,已从数据集中生成了几个评估液化指数的估计函数。通过评估培训和测试数据来评估生成的液化指数估算函数。建议的配方可以非常准确地估计液化的发生。此外,液化指数曲线的参数研究表明其与物理行为有良好的关系。提出的方法被错误估计的案例总数仅为7.8%,与另一种常用方法相比,这是相当低的。

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