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CPT-based probabilistic evaluation of seismic soil liquefaction potential using multi-gene genetic programming

机译:基于CPT的多基因遗传规划概率性地震液化潜力评估

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摘要

In this paper, liquefaction potential of soil is evaluated within a probabilistic framework based on the post-liquefaction cone penetration test (CPT) data using an evolutionary artificial intelligence technique, multi-gene genetic programming (MGGP). Based on the developed limit state function using MGGP, a relationship is given between probability of liquefaction (P_L) and factor of safety against liquefaction using Bayesian theory. This Bayesian mapping function is further used to develop a P_L-based design chart for evaluation of liquefaction potential of soil. Using an independent database of 200 cases, the efficacy of the present MGGP-based probabilistic method is compared with that of the available probabilistic methods based on artificial neural network (ANN) and statistical methods. The proposed method is found to be more efficient in terms of rate of successful prediction of liquefaction and non-liquefaction cases, in three different ranges of P_L values compared to ANN and statistical methods.
机译:在本文中,使用进化人工智能技术,多基因遗传规划(MGGP),基于液化后锥孔渗透试验(CPT)数据,在概率框架内评估土壤的液化潜力。基于使用MGGP开发的极限状态函数,利用贝叶斯理论给出了液化的可能性(P_L)与抗液化的安全系数之间的关系。该贝叶斯映射函数还用于开发基于P_L的设计图,以评估土壤的液化潜力。使用200个病例的独立数据库,将本基于MGGP的概率方法的有效性与基于人工神经网络(ANN)和统计方法的可用概率方法的有效性进行比较。与人工神经网络和统计方法相比,在三种不同的P_L值范围内,发现的方法在液化和非液化案例的成功预测率方面更为有效。

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