Title :
A diagonalized multilevel fast multipole method with spherical harmonics expansion of the k-space Integrals
Author :
Eibert, Thomas F.
Author_Institution :
Inst. for High-Frequency Phys. & Radar Techniques, Wachtberg, Germany
Abstract :
Diagonalization of the fast multipole method (FMM) for the Helmholtz equation is usually achieved by expanding the multipole representation in propagating plane waves. The resulting k-space integral over the Ewald sphere is numerically evaluated. Storing the k-space quadrature samples of the method of moments (MoM) basis functions constitutes a large portion of the overall memory requirements of the resulting algorithm for solving the integral equations of scattering and radiation problems. In this paper, it is proposed to expand the k-space representation of the basis functions by spherical harmonics in order to reduce the sampling redundancy introduced by numerical quadrature rules. Aggregations, plane wave translations, and disaggregations in the realized multilevel fast multipole method (MLFMM) are carried out using the k-space samples of a numerical quadrature rule. However, the incoming plane waves on the finest MLFMM level are expanded in spherical harmonics again. Thus, due to the orthonormality of spherical harmonics, the testing integrals for the individual testing functions are simplified into series over products of spherical harmonics expansion coefficients. Overall, the resulting MLFMM can save a considerable amount of memory without compromising accuracy and numerical speed.
Keywords :
Helmholtz equations; electromagnetic wave propagation; electromagnetic wave scattering; integral equations; iterative methods; Ewald sphere; FMM; Helmholtz equation; diagonalization multilevel fast multipole method; integral equation; iterative method; k-space integral; plane wave propagation; quadrature sample; scattering-radiation problem; spherical harmonics expansion; spherical harmonics expansion coefficient; Electromagnetic radiation; Electromagnetic scattering; Integral equations; Iterative methods; Moment methods; Radar scattering; Redundancy; Robustness; Sampling methods; Testing; Fast integral methods; fast multipole methods; integral equations; iterative methods;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2004.841310