Title :
New approximate formulations for EM scattering by dielectric objects
Author :
Cui, Tie Jun ; Chew, Weng Cho ; Hong, Wei
Author_Institution :
Dept. of Radio Eng., Southeast Univ., Nanjing, China
fDate :
3/1/2004 12:00:00 AM
Abstract :
The extended Born approximation (ExBorn) has been shown an efficient formulation in the electromagnetic (EM) scattering by dielectric objects in both free-space and air-Earth half-space problems. In most cases, ExBorn is much more accurate than the conventional Born approximation at low frequencies. When the frequency is high or the contrast of dielectric objects is large, however, the ExBorn approximation becomes inaccurate. In this paper, new approximations are proposed for the EM scattering by dielectric objects buried in a lossy Earth, which are also suitable for the case of free space. It has been shown that the zeroth-order form of new approximations is completely equivalent to ExBorn. Hence, high-order approximations can be regarded as high-order ExBorn. Closed-form formulations are derived for the new approximations. Using the fast Fourier transform (FFT), these formulations can be implemented efficiently at a cost of CNlogN, where N is the number of unknowns and C is a small number. Numerical simulations show that high-order ExBorn approximations are much more accurate than the ExBorn approximation.
Keywords :
buried object detection; conjugate gradient methods; dielectric bodies; electromagnetic wave scattering; fast Fourier transforms; EM scattering; air-Earth half-space problem; approximate formulation; buried dielectric object; conjugate-gradient fast Fourier transform algorithm; electromagnetic scattering; extended Born approximation; free-space problem; high-order approximation; lossy Earth; low-frequency detection; zero-order form; Approximation methods; Buried object detection; Computational electromagnetics; Dielectric losses; Earth; Electromagnetic scattering; Fast Fourier transforms; Frequency; Integral equations; Landmine detection;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2004.825159