DocumentCode :
30403
Title :
Parameter Estimation for Peaky Altimetric Waveforms
Author :
Halimi, Abderrahim ; Mailhes, Corinne ; Tourneret, Jean-Yves ; Thibaut, Pierre ; Boy, Francois
Author_Institution :
Inst. de Rech. en Inf. de Toulouse, Univ. of Toulouse, Toulouse, France
Volume :
51
Issue :
3
fYear :
2013
fDate :
Mar-13
Firstpage :
1568
Lastpage :
1577
Abstract :
Much attention has been recently devoted to the analysis of coastal altimetric waveforms. When approaching the coast, altimetric waveforms are sometimes corrupted by peaks caused by high reflective areas inside the illuminated land surfaces or by the modification of the sea state close to the shoreline. This paper introduces a new parametric model for these peaky altimetric waveforms. This model assumes that the received altimetric waveform is the sum of a Brown echo and an asymmetric Gaussian peak. The asymmetric Gaussian peak is parameterized by a location, an amplitude, a width, and an asymmetry coefficient. A maximum-likelihood estimator is studied to estimate the Brown plus peak model parameters. The Cramér-Rao lower bounds of the model parameters are then derived providing minimum variances for any unbiased estimator, i.e., a reference in terms of estimation error. The performance of the proposed model and the resulting estimation strategy are evaluated via many simulations conducted on synthetic and real data. Results obtained in this paper show that the proposed model can be used to retrack efficiently standard oceanic Brown echoes as well as coastal echoes corrupted by symmetric or asymmetric Gaussian peaks. Thus, the Brown with Gaussian peak model is useful for analyzing altimetric measurements closer to the coast.
Keywords :
altimeters; geophysical signal processing; maximum likelihood estimation; remote sensing; Brown echo; Cramer-Rao lower bound; asymmetric Gaussian peak; coastal altimetric waveforms; maximum likelihood estimator; parameter estimation; peaky altimetric waveforms; sea state; variance; Computational modeling; Mathematical model; Maximum likelihood estimation; Noise; Sea measurements; Vectors; Brown model; Cramér–Rao bounds (CRBs); coastal altimetry; maximum likelihood (ML); peaks;
fLanguage :
English
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
Publisher :
ieee
ISSN :
0196-2892
Type :
jour
DOI :
10.1109/TGRS.2012.2205697
Filename :
6261545
Link To Document :
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