DocumentCode :
73971
Title :
Amplitude scintillation effects on SAR
Author :
Belcher, D.P. ; Cannon, P.S.
Author_Institution :
Univ. of Birmingham, Birmingham, UK
Volume :
8
Issue :
6
fYear :
2014
fDate :
Jul-14
Firstpage :
658
Lastpage :
666
Abstract :
Space-based low-frequency synthetic aperture radar (SAR) is affected by the ionosphere, which induces both phase and amplitude fluctuations, known as scintillation, into the radar signal. This paper describes the effect of amplitude scintillation on SAR imagery. The two-way amplitude and intensity probability density functions (pdf) for both monostatic and bistatic SAR are derived from the one-way Nakagami-m distribution. The moments are then used to determine the SAR radiometric calibration error and image contrast from the one-way S4 index. It is also shown that monostatic SAR experiences an S4-dependent radar cross-section (RCS) enhancement that is not experienced by bistatic SAR. The anisotropy of the ionospheric irregularities strongly affects the degree to which amplitude scintillation will be visible in SAR imagery. The description of anisotropic effects is reviewed and extended to cover SAR. The variation over the Earth is illustrated, showing that a sun-synchronous satellite will experience the strongest effect near Brazil. Two PALSAR images of the same area of Brazilian rainforest are compared, one of which shows azimuthal streaking, corresponding to an amplitude modulation of ± 1 dB. The one-way S4 index is determined from this imagery using both the RCS enhancement and image contrast measures of S4, which produce similar results.
Keywords :
calibration; probability; radar cross-sections; radar imaging; radiometry; scintillation; synthetic aperture radar; Brazilian rainforest; PALSAR images; PDF; RCS enhancement; S4-dependent radar cross-section enhancement; SAR imagery; SAR radiometric calibration error; amplitude fluctuations; amplitude modulation; amplitude scintillation effects; azimuthal streaking; bistatic SAR; image contrast measures; intensity probability density functions; ionospheric irregularitybanisotropy; monostatic SAR; one-way Nakagami-m distribution; one-way S4 index; phase fluctuations; radar signal; space-based low-frequency synthetic aperture radar; sun-synchronous satellite; two-way amplitude probability density functions;
fLanguage :
English
Journal_Title :
Radar, Sonar & Navigation, IET
Publisher :
iet
ISSN :
1751-8784
Type :
jour
DOI :
10.1049/iet-rsn.2013.0168
Filename :
6846230
Link To Document :
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