DocumentCode :
1092746
Title :
Multistatic Response Matrix of Spherical Scatterers and the Back-Propagation of Singular Fields
Author :
Iakovleva, Ekaterina ; Lesselier, Dominique
Author_Institution :
Commissariat a l´´Energie Atomique (CEA), Gif-sur-Yvette
Volume :
56
Issue :
3
fYear :
2008
fDate :
3/1/2008 12:00:00 AM
Firstpage :
825
Lastpage :
833
Abstract :
In view of the development of multiple signal classification-type, non-iterative imaging procedures based on the singular value decomposition of the multistatic response (MSR) matrix of a collection of inclusions, the full 3-D electromagnetic case with arbitrary contrasts of permeability and permittivity (including perfectly electric conducting or perfectly magnetic conducting limit cases) is studied. The structure of the MSR matrix of a single inclusion (or a set of well-separated ones) is analyzed. Emphasis is on a far-field situation, in which one considers an electric dipole array operated in the transmit/receive mode at a single frequency. Back-propagated electric and magnetic fields associated to the singular vectors of the MSR matrix for a single spherical inclusion (or again for well-separated ones) are given in closed form and their leading-order values are exhibited. Numerical illustrations (cross-sectional maps of back-propagated fields computed from a singular value decomposition of the MSR matrix) are presented, for one and two inclusions, to illustrate this behavior as a function of the geometric and electromagnetic parameters of the configuration in a possibly noisy case.
Keywords :
dipole antenna arrays; electromagnetic wave scattering; matrix algebra; signal classification; singular value decomposition; asymptotic formulation; back-propagation; electric dipole array; electric field; electromagnetic parameters; far-field situation; full 3D electromagnetic case; geometric parameters; magnetic field; multiple signal classification-type; multistatic response matrix; noniterative imaging procedures; perfectly electric conducting limit case; perfectly magnetic conducting limit case; permeability; permittivity; singular fields; singular value decomposition; spherical scatterers; time harmonic 3D electromagnetic scattering; transmit/receive mode; Electromagnetic fields; Electromagnetic interference; Electromagnetic scattering; Frequency; Magnetic analysis; Magnetic fields; Matrix decomposition; Permeability; Permittivity; Singular value decomposition; Asymptotic formulation; back-propagation; multistatic response (MSR) matrix; singular value decomposition (SVD); time-harmonic 3-D electromagnetic scattering;
fLanguage :
English
Journal_Title :
Antennas and Propagation, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-926X
Type :
jour
DOI :
10.1109/TAP.2008.916913
Filename :
4463899
Link To Document :
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