Title :
An Improved Weak-Form BCGS-FFT Combined With DCIM for Analyzing Electromagnetic Scattering by 3-D Objects in Planarly Layered Media
Author :
Zhang, Yun Hua ; Xiao, Bo Xun ; Zhu, Guo Qiang
Author_Institution :
Sch. of Electron. Inf., Wuhan Univ.
Abstract :
Fast algorithms for electrically large objects buried in layered media are mainly hindered by two time-consuming processes. One is the table filling of Green\´s function, and the other is the solving of the impedance matrix equation. For the first, to accelerate the evaluation of the time-consuming Sommerfeld integral in the dyadic Green\´s function (DGF), the discrete complex image method (DCIM) is introduced to get a closed-form DGF. To further accelerate the calculation of DGF for the volume electric field integral equation (EFIE), DGF is split before applying DCIM. For the second, the iterative solver stabilized biconjugate gradient fast Fourier transform (BCGS-FFT) is combined with DCIM for solving the matrix equations. Meanwhile, the closed-form DGF enables the "spherical-mean" Green\´s function, which eliminates the singularity of Green\´s function. Numerical results show that the weaker singularity results in a faster and steadier convergence rate for iterative solvers
Keywords :
Green´s function methods; buried object detection; electromagnetic wave scattering; fast Fourier transforms; geophysical techniques; inhomogeneous media; DCIM; Sommerfeld integral; biconjugate gradient fast Fourier transform; convergence rate; discrete complex image method; dyadic Green function; electromagnetic scattering; impedance matrix equation; iterative solvers; matrix equations; planarly layered media; volume electric field integral equation; weak-form BCGS-FFT; Acceleration; Convergence of numerical methods; Electromagnetic analysis; Electromagnetic scattering; Fast Fourier transforms; Filling; Green´s function methods; Impedance; Integral equations; Nonhomogeneous media; Discrete complex image method (DCIM); electromagnetic scattering; multilayered media; stabilized biconjugate gradient fast Fourier transform (BCGS-FFT); weak form;
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
DOI :
10.1109/TGRS.2006.881124