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MODEL REDUCTION FOR LARGE-SCALE EARTHQUAKE SIMULATION IN AN UNCERTAIN 3D MEDIUM

机译:不确定3D介质中大型地震仿真的模型减少

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摘要

In this paper, we are interested in the seismic wave propagation into an uncertain medium. To this end, we performed an ensemble of 400 large-scale simulations that requires 4 million core-hours of CPU time. In addition to the large computational load of these simulations, solving the uncertainty propagation problem requires dedicated procedures to handle the complexities inherent to large dataset size and the low number of samples. We focus on the peak ground motion at the free surface of the 3D domain, and our analysis utilizes a surrogate model combining two key ingredients for complexity mitigation: (i) a dimension reduction technique using empirical orthogonal basis functions, and (ii) a functional approximation of the uncertain reduced coordinates by polynomial chaos expansions. We carefully validate the resulting surrogate model by estimating its predictive error using bootstrap, truncation, and cross-validation procedures. The surrogate model allows us to compute various statistical information of the uncertain prediction, including marginal and joint probability distributions, interval probability maps, and 2D fields of global sensitivity indices.
机译:在本文中,我们对地震波传播感兴趣地进入不确定的媒体。为此,我们执行了400个大型模拟的集合,需要400万核心的CPU时间。除了这些模拟的大型计算负荷之外,解决不确定性传播问题需要专用程序来处理固有的大型数据集大小和较少的样本所固有的复杂性。我们专注于3D域自由表面的峰值接地运动,我们的分析利用了两个关键成分的替代模型,用于复杂性缓解:(i)使用经验正交基函数的尺寸减少技术,(i)功能多项式混沌扩展近似不确定坐标的近似。我们通过使用Bootstrap,截断和交叉验证程序估计其预测错误来仔细验证生成的代理模型。代理模型允许我们计算不确定预测的各种统计信息,包括边缘和联合概率分布,间隔概率图和全局敏感指数的2D字段。

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