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A comparative study of the least squares method and the genetic algorithm in deducing peak ground acceleration attenuation relationships

机译:最小二乘法与遗传算法推导峰值地面加速度衰减关系的比较研究

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摘要

In engineering applications, the development of attenuation relationships in a seismic hazard analysis is a useful way to plan for earthquake hazard mitigation. However, finding an optimal solution is difficult using traditional mathematical methods because of the nonlinearity of many relationships. Furthermore, using unweighted regression analysis in which each recording carries an equal weight is often problematic because of the non-uniform distribution of the data with respect to distance. In this study, the least squares method (LSM) and a genetic algorithm (GA) were employed as optimization methods for an attenuation model to compare the robustness and prediction accuracy of the two methods. Different (equal and unequal) weights of each recording were used to compare the adaptability of the weighting for practical application. The unequal weights of each recording were defined as functions of the hypocentral distance or the shortest distance from a station to the fault on the earth's surface. Finally, regression analysis of horizontal peak ground acceleration (PGA) attenuation model in southwest Taiwan was shown.
机译:在工程应用中,开发地震危险性分析中的衰减关系是规划减轻地震危险性的有用方法。但是,由于许多关系的非线性,使用传统的数学方法很难找到最佳解决方案。此外,由于数据相对于距离的分布不均匀,因此使用每个记录均具有相同权重的非加权回归分析通常会带来问题。在这项研究中,最小二乘法(LSM)和遗传算法(GA)被用作衰减模型的优化方法,以比较两种方法的鲁棒性和预测精度。每个记录的权重不同(相等和不相等)用于比较权重在实际应用中的适应性。每个记录的不相等权重定义为距中心的距离或从站点到地球表面断层的最短距离的函数。最后,显示了台湾西南部水平峰值地面加速度(PGA)衰减模型的回归分析。

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