DocumentCode
1051892
Title
Estimates of ocean wavelength and direction from X-and L-band synthetic aperture radar data collected during the Marineland experiment
Author
Shuchman, Robert A. ; Lyden, James D. ; Lyzenga, David R.
Author_Institution
Environmental Research Institute of Michigan, Ann Arbor, MI, USA
Volume
8
Issue
2
fYear
1983
fDate
4/1/1983 12:00:00 AM
Firstpage
90
Lastpage
96
Abstract
Simultaneously obtained
- and
-band synthetic aperture radar (SAR) data collected during the Marineland Experiment were spectrally analyzed by fast Fourier transform (FFT) techniques to estimate ocean wavelength and direction. An eight-sided flight pattern was flown over the same ocean area in order to study the sensitivity of the spectral estimate on radar look direction. These spectral estimates were compared with in situ wave measurements made by a pitch-and-roll buoy. The comparison revealed that the
-band SAR detected all gravity waves independent of radar look direction, while the
-band SAR detected all range-traveling gravity waves but failed to detect waves in three of four cases in which the waves were traveling within 25° of the azimuth direction. The analysis also indicates that azimuth-traveling waves appear longer and more range-traveling in the SAR imagery than observed by in situ instrumentation. It is postulated that degraded azimuth resolution due to scatterer motion is responsible for these observations.
- and
-band synthetic aperture radar (SAR) data collected during the Marineland Experiment were spectrally analyzed by fast Fourier transform (FFT) techniques to estimate ocean wavelength and direction. An eight-sided flight pattern was flown over the same ocean area in order to study the sensitivity of the spectral estimate on radar look direction. These spectral estimates were compared with in situ wave measurements made by a pitch-and-roll buoy. The comparison revealed that the
-band SAR detected all gravity waves independent of radar look direction, while the
-band SAR detected all range-traveling gravity waves but failed to detect waves in three of four cases in which the waves were traveling within 25° of the azimuth direction. The analysis also indicates that azimuth-traveling waves appear longer and more range-traveling in the SAR imagery than observed by in situ instrumentation. It is postulated that degraded azimuth resolution due to scatterer motion is responsible for these observations.Keywords
DFT; Discrete Fourier transforms (DFT´s); Sea surface electromagnetic scattering; Spectral analysis; Synthetic-aperture radar; Azimuth; Fast Fourier transforms; Gravity; Image analysis; L-band; Oceans; Radar detection; Sea measurements; Synthetic aperture radar; Wavelength measurement;
fLanguage
English
Journal_Title
Oceanic Engineering, IEEE Journal of
Publisher
ieee
ISSN
0364-9059
Type
jour
DOI
10.1109/JOE.1983.1145551
Filename
1145551
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