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Computation of Electromagnetic Fields Scattered From Objects With Uncertain Shapes Using Multilevel Monte Carlo Method

机译:多层蒙特卡罗方法计算形状不确定的物体散射的电磁场

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摘要

Computational tools for characterizing electromagnetic scattering from objects with uncertain shapes are needed in various applications ranging from remote sensing at microwave frequencies to Raman spectroscopy at optical frequencies. Often, such computational tools use the Monte Carlo (MC) method to sample a parametric space describing geometric uncertainties. For each sample, which corresponds to a realization of the geometry, a deterministic electromagnetic solver computes the scattered fields. However, for an accurate statistical characterization, the number of MC samples has to be large. In this paper, to address this challenge, the continuation multilevel Monte Carlo (CMLMC) method is used together with a surface integral equation solver. The CMLMC method optimally balances statistical errors due to sampling of the parametric space, and numerical errors due to the discretization of the geometry using a hierarchy of discretizations, from coarse to fine. The number of realizations of finer discretizations can be kept low, with most samples computed on coarser discretizations to minimize computational cost. Consequently, the total execution time is significantly reduced, in comparison to the standard MC scheme.
机译:从微波频率的遥感到光频率的拉曼光谱,各种应用都需要用于表征形状不确定的物体的电磁散射的计算工具。通常,此类计算工具使用蒙特卡洛(MC)方法对描述几何不确定性的参数空间进行采样。对于对应于几何实现的每个样本,确定性电磁求解器计算散射场。但是,为了进行准确的统计表征,MC样本的数量必须很大。在本文中,为解决这一挑战,将连续多级蒙特卡洛(CMLMC)方法与表面积分方程求解器一起使用。 CMLMC方法可以最佳地平衡由于参数空间采样而导致的统计误差与由于使用从粗糙到精细的离散化层次结构对几何体进行离散化而导致的数值误差。更好的离散化的实现次数可以保持较低,大多数样本是在粗糙化的离散化条件下计算的,以最大程度地减少计算成本。因此,与标准MC方案相比,总执行时间显着减少。

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