DocumentCode :
1368135
Title :
A phase matrix for a dense discrete random medium: evaluation of volume scattering coefficient
Author :
Chuah, Hean-Teik ; Tjuatja, Saibun ; Fung, Adrian K. ; Bredow, Jonathan W.
Author_Institution :
Dept. of Electr. Eng., Texas Univ., Arlington, TX, USA
Volume :
34
Issue :
5
fYear :
1996
fDate :
9/1/1996 12:00:00 AM
Firstpage :
1137
Lastpage :
1143
Abstract :
In the derivation of the conventional scattering phase matrix of a discrete random medium, the far-field approximation is usually assumed. In this paper, the phase matrix of a dense discrete random medium is developed by relaxing the far-field approximation and accounting for the effect of volume fraction and randomness properties characterized by the variance and correlation function of scatterer positions within the medium. The final expression for the phase matrix differs from the conventional one in two major aspects: there is an amplitude and a phase correction. The concept used in the derivation is analogous to the antenna array theory. The phase matrix for a collection of scatterers is found to be the Stokes matrix of the single scatterer multiplied by a dense medium phase correction factor. The close spacing amplitude correction appears inside the Stokes matrix. When the scatterers are uncorrelated, the phase correction factor approaches unity. The phase matrix is used to calculate the volume scattering coefficients for a unit volume of spherical scatterers, and the results are compared with calculations from other theories, numerical simulations, and laboratory measurements. Results indicate that there should be a distinction between physically dense medium and electrically dense medium
Keywords :
S-matrix theory; backscatter; geophysical techniques; radar cross-sections; radar theory; remote sensing by radar; S-matrix; Stokes matrix; amplitude; backscatter; dense discrete random medium; electrically dense medium; geophysical measurement technique; land surface; phase correction; phase matrix; radar scattering theory; remote sensing; scattering matrix; terrain mapping; volume scattering coefficient; Antenna arrays; Antenna theory; Electromagnetic measurements; Electromagnetic scattering; Laboratories; Numerical simulation; Phase measurement; Phased arrays; Sea measurements; Volume measurement;
fLanguage :
English
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
Publisher :
ieee
ISSN :
0196-2892
Type :
jour
DOI :
10.1109/36.536529
Filename :
536529
Link To Document :
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