Title :
A three-dimensional BCGS-FFT method for inhomogeneous anisotropic scatterers with high dielectric and magnetic contrasts
Author :
Zhiru Yu ; Wenji Zhang ; Qing Huo Liu
Author_Institution :
Dept. of Electr. & Comput. Eng., Duke Univ., Durham, NC, USA
Abstract :
Although computational capabilities have been substantially enhanced over the last few decades, fast and accurate forward solvers for scattering and imaging applications are still attracting much attentions with new advances. To deal with the scattering of dielectric objects, methods involving integral equations are attractive because of reduced number of unknowns. As a conventional way to solve integral equations, the method of moments (MOM) with N unknowns takes about O(N3) CPU time and O(N2) computer memory. This requirement is prohibitively expensive for large problems, especially for volume integral equations where N is proportional to the volume of the 3D inhomogeneous scatterer. CG-FFT method was proposed to reduce the computational complexity by employing the fast Fourier transform to calculate convolution operators in the integral equations. The resulting linear system is then solved by an iterative method, namely conjugate gradient (CG) method. Therefore, the requirements for CPU time and computer memory can be greatly reduced. Furthermore, CG-FFT method is accelerated by the stabilized biconjugate-gradient FFT (BCGS-FFT) method (X. Xu, Q.H. Liu, Z.Q. Zhang, J. Appl. Comput. Electromag. Soc. 17, 1, 97-103, 2002). However, most of the work mentioned above considers only homogeneous anisotropic scatterers and/or scatterers with non-magnetic materials with a low contrast.
Keywords :
conjugate gradient methods; dielectric materials; fast Fourier transforms; inhomogeneous media; magnetic materials; method of moments; scattering; 3D inhomogeneous scatterer; CPU time; computational complexity; computer memory; conjugate gradient method; dielectric objects; fast Fourier transform; forward solvers; high dielectric contrasts; inhomogeneous anisotropic scatterers; linear system; magnetic contrasts; method of moments; nonmagnetic materials; three dimensional BCGS FFT method; volume integral equations; Computers; Dielectrics; Integral equations; Magnetic resonance imaging; Nonhomogeneous media; Perpendicular magnetic anisotropy;
Conference_Titel :
Radio Science Meeting (Joint with AP-S Symposium), 2013 USNC-URSI
Conference_Location :
Lake Buena Vista, FL
Print_ISBN :
978-1-4799-1128-8
DOI :
10.1109/USNC-URSI.2013.6715410