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Data-Informed Decomposition for Localized Uncertainty Quantification of Dynamical Systems

机译:用于局部不确定量的动态系统的数据通知分解

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Industrial dynamical systems often exhibit multi-scale responses due to material heterogeneity and complex operation conditions. The smallest length-scale of the systems dynamics controls the numerical resolution required to resolve the embedded physics. In practice however, high numerical resolution is only required in a confined region of the domain where fast dynamics or localized material variability is exhibited, whereas a coarser discretization can be sufficient in the rest majority of the domain. Partitioning the complex dynamical system into smaller easier-to-solve problems based on the localized dynamics and material variability can reduce the overall computational cost. The region of interest can be specified based on the localized features of the solution, user interest, and correlation length of the material properties. For problems where a region of interest is not evident, Bayesian inference can provide a feasible solution. In this work, we employ a Bayesian framework to update the prior knowledge of the localized region of interest using measurements of the system response. Once, the region of interest is identified, the localized uncertainty is propagate forward through the computational domain. We demonstrate our framework using numerical experiments on a three-dimensional elastodynamic problem.
机译:由于材料异质性和复杂的操作条件,工业动态系统通常表现出多尺度反应。系统动态的最小长度级别控制解析嵌入物理所需的数值分辨率。然而,在实践中,只有在域的狭窄区域中才能表现出快速动态或局部材料变异性的高数值分辨率,而较粗糙的离散化可以足够的域中的域中。根据本地化动态和材料可变性将复杂的动态系统划分为更小的更容易解决的问题,可以降低整体计算成本。可以基于解决方案,用户兴趣和材料属性的相关长度的本地化特征来指定感兴趣区域。对于感兴趣区域不明显的问题,贝叶斯推理可以提供可行的解决方案。在这项工作中,我们使用贝叶斯框架使用系统响应的测量来更新本地利益区域的先验知识。一旦识别出感兴趣区域,局部不确定性通过计算域向前传播。我们展示了我们使用数值实验对三维弹性动力学问题的框架。

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