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A genetic algorithm for slope stability analyses with concave slip surfaces using custom operators

机译:使用自定义算子的具有凹面滑动面的边坡稳定性分析的遗传算法

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摘要

Heuristic methods are popular tools to find critical slip surfaces in slope stability analyses. A new genetic algorithm (GA) is proposed in this work that has a standard structure but a novel encoding and generation of individuals with custom-designed operators for mutation and crossover that produce kinematically feasible slip surfaces with a high probability. In addition, new indices to assess the efficiency of operators in their search for the minimum factor of safety (FS) are proposed. The proposed GA is applied to traditional benchmark examples from the literature, as well as to a new practical example. Results show that the proposed GA is reliable, flexible and robust: it provides good minimum FS estimates that are not very sensitive to the number of nodes and that are very similar for different replications
机译:启发式方法是在边坡稳定性分析中找到关键滑动面的常用工具。在这项工作中提出了一种新的遗传算法(GA),该算法具有标准的结构,但是具有个性化编码和生成个体的功能,该个体具有针对突变和交叉的自定义设计的运算符,从而很有可能产生运动学​​上可行的滑动面。此外,提出了新的指数来评估运营商寻找最小安全系数(FS)的效率。拟议的遗传算法可应用于文献中的传统基准示例以及新的实际示例。结果表明,所提出的遗传算法是可靠,灵活且健壮的:它提供了良好的最小FS估计值,该估计值对节点数不是很敏感,并且对于不同的复制非常相似

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