Title :
Surface-Wavefield Estimation From Coherent Marine Radars
Author :
Nwogu, Okey G. ; Lyzenga, David R.
Author_Institution :
Dept. of Naval Archit. & Marine Eng., Univ. of Michigan, Ann Arbor, MI, USA
Abstract :
One major impediment to using marine radars for real-time shipboard measurements of evolving ocean wavefields is the uncertainty in the transfer function that relates the radar cross section to sea-surface height. In this letter, a more direct approach is proposed to infer nonlinear sea-surface heights by using radial-velocity measurements from coherent marine radars. The radial velocities are initially integrated along range lines to obtain a scalar potential function. The velocity potential field is then differentiated with respect to time to yield the sea-surface height. Numerical simulations have been conducted to evaluate the sensitivity of the proposed scheme to sampling errors and noise. Under idealized conditions, the results demonstrate that the sea-surface elevation can be reliably estimated from the radial-velocity field provided that the antenna-rotation period is much smaller than a characteristic wave period.
Keywords :
Doppler radar; marine radar; ocean waves; surface waves (fluid); velocity measurement; coherent marine radars; ocean wavefields; radar cross section; radial-velocity measurements; real-time shipboard measurements; scalar potential function; surface-wavefield estimation; Doppler radar; Extraterrestrial measurements; Ocean waves; Radar antennas; Radar cross section; Radar imaging; Radar measurements; Radar remote sensing; Sea measurements; Transfer functions; Coherent-on-receive; Doppler radars; ocean currents; ocean waves; radial velocity; remote sensing;
Journal_Title :
Geoscience and Remote Sensing Letters, IEEE
DOI :
10.1109/LGRS.2010.2043712