Title :
Performance Analysis for Matched-Field Source Localization: Simulations and Experimental Results
Author :
Xu, Wen ; Baggeroer, Arthur B. ; Schmidt, Henrik
Author_Institution :
Dept. of Ocean Eng., MIT, Cambridge, MA
fDate :
4/1/2006 12:00:00 AM
Abstract :
Matched-field methods concern estimation of source locations and/or ocean environmental parameters by exploiting full wave modeling of acoustic waveguide propagation. Typical estimation performance demonstrates two fundamental limitations. First, sidelobe ambiguities dominate the estimation at low signal-to-noise ratio (SNR), leading to a threshold performance behavior. Second, most matched-field algorithms show a strong sensitivity to environmental/system mismatch, introducing biased estimates at high SNR. In this paper, some theoretical developments on matched-field performance analysis are summarized, including Bayesian performance bounds and probabilistic ambiguity analysis, both incorporating environmental/system uncertainty/mismatch. Performance analysis is then implemented for source localization in a typical shallow water environment chosen from the Shallow Water Evaluation Cell Experiments (SWellEX). The performance predictions describe the simulations of the maximum-likelihood estimator (MLE) well, including the mean-square error (MSE) in all SNR regions as well as the bias at high SNR. The threshold SNR and bias predictions are also validated through SWellEX experimental data processing. The results suggest the current environmental, acoustic, and statistical modeling has developed to such a level that the optimum theoretical matched-field performance can be achieved in a well-controlled experiment
Keywords :
maximum likelihood estimation; mean square error methods; oceanographic techniques; underwater acoustic propagation; Bayesian performance bounds; acoustic waveguide propagation; environmental mismatch; environmental uncertainty; matched-field source localization; maximum-likelihood estimator; mean-square error; probabilistic ambiguity; shallow water evaluation cell experiments; sidelobe ambiguities; Acoustic propagation; Acoustic waveguides; Acoustic waves; Analytical models; Maximum likelihood estimation; Oceans; Performance analysis; Position measurement; Signal to noise ratio; Water resources; Environmental mismatch; environmental uncertainty; matched-field processing; performance analysis;
Journal_Title :
Oceanic Engineering, IEEE Journal of
DOI :
10.1109/JOE.2006.875106