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首页> 外文期刊>Antennas and Propagation, IEEE Transactions on >3-D Scattering From a PEC Target Buried Beneath a Dielectric Rough Surface: An Efficient PILE-ACA Algorithm for Solving a Hybrid KA-EFIE Formulation
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3-D Scattering From a PEC Target Buried Beneath a Dielectric Rough Surface: An Efficient PILE-ACA Algorithm for Solving a Hybrid KA-EFIE Formulation

机译:从PEC目标埋在电介质粗糙表面下的3D散射:解决混合KA-EFIE公式的高效PILE-ACA算法

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摘要

An efficient hybrid KA-EFIE formulation is deployed to analyze the electromagnetic (EM) scattering from a 3-D perfectly electric conducting (PEC) object buried beneath a 2-D dielectric rough surface. In this approach, the electric and magnetic current densities on the rough surface are analytically obtained through the current-based Kirchhoff approximation (KA), whereas the electric current density on the buried object is rigorously determined by solving the electric field integral equation (EFIE) using the Galerkin’s method of moments (MoM) with Rao–Wilton–Glisson (RWG) basis functions. The KA-EFIE matrix system is then efficiently solved by the iterative propagation-inside-layer-expansion (PILE) method combined with the algebraic adaptive cross approximation (ACA). The current densities on the dielectric rough surface are thereafter used to handle the bistatic normalized radar cross-section (NRCS) patterns. The proposed hybrid approach allows a significant reduction in computation time and memory requirements compared to the rigorous Poggio–Miller–Chang–Harrington–Wu (PMCHW)-EFIE formulation which requires solving a large MoM matrix equation. Moreover, the hybridization of the ACA algorithm with the PILE method improves further the computational cost thanks to the rank-deficient propriety of the coupling matrices. To validate the hybrid approach, we compare its results with those of the rigorous PMCHW-EFIE approach.
机译:部署了一种有效的混合KA-EFIE公式来分析来自埋在2D电介质粗糙表面下的3D完美导电(PEC)对象的电磁(EM)散射。通过这种方法,可以通过基于电流的基尔霍夫近似(KA)来解析获得粗糙表面上的电流和磁场电流密度,而通过求解电场积分方程(EFIE)来严格确定掩埋物体上的电流密度。使用Galerkin矩量法(MoM)和Rao–Wilton–Glisson(RWG)基函数。 KA-EFIE矩阵系统然后通过迭代传播内层扩展(PILE)方法与代数自适应交叉逼近(ACA)相结合而得到有效解决。此后,将电介质粗糙表面上的电流密度用于处理双基地归一化雷达横截面(NRCS)模式。与严格的Poggio-Miller-Chang-Harrington-Wu(PMCHW)-EFIE公式(需要求解大型MoM矩阵方程)相比,提出的混合方法可以显着减少计算时间和内存需求。此外,由于耦合矩阵的秩不足,使得ACA算法与PILE方法的混合进一步提高了计算成本。为了验证混合方法,我们将其结果与严格的PMCHW-EFIE方法的结果进行比较。

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