DocumentCode :
1762874
Title :
Time-of-Flight Estimation in the Presence of Outliers. Part II—Multiple Echo Processing
Author :
Apartsin, Alexander ; Cooper, Leon N. ; Intrator, Nathan
Author_Institution :
Blavatnik Sch. of Comput. Sci., Tel Aviv Univ., Tel Aviv, Israel
Volume :
52
Issue :
7
fYear :
2014
fDate :
41821
Firstpage :
3843
Lastpage :
3850
Abstract :
The mean squared error of the classical maximum likelihood time-of-flight (ToF) estimator increases dramatically when the signal-to-noise ratio falls below a certain threshold. For narrow-band signals, this well-known threshold effect occurs largely due to the biased outliers which are induced by the local maxima of the source signal autocorrelation function. In our previous work (Part I), we have described a machine learning biosonar-inspired method for reducing the effect of the outlier bias on the accuracy of a single-echo estimate. In this paper, we extend this approach by introducing a method for combining multiple echo signals into a robust ToF estimator which is resilient to outliers. The individual bias-corrected estimates are combined together using the optimal weighted averaging (OWA) scheme which takes into account the uncertainties associated with inlier and outlier measurements. As in the single-echo case, a weak classifier and a bank of phase-shifted unmatched filters are used for estimating the probabilities of appearance of a specific outlier class in a single-echo estimate. Combined with the previously introduced single-echo bias-reduction method, the OWA scheme results in significant improvement in the ToF estimation accuracy.
Keywords :
correlation methods; echo; geophysical signal processing; geophysical techniques; maximum likelihood estimation; signal classification; sonar signal processing; OWA scheme; bias-corrected estimate; biased outliers; inlier measurement; local maxima; machine learning biosonar-inspired method; maximum likelihood ToF estimation; maximum likelihood time-of-flight estimation; mean squared error; multiple echo processing; narrow-band signals; optimal weighted averaging scheme; outlier measurement; phase-shifted unmatched filters; probability; signal-to-noise ratio; single-echo bias-reduction method; single-echo estimate; source signal autocorrelation function; Correlation; Maximum likelihood estimation; Measurement uncertainty; Robustness; Signal to noise ratio; Weight measurement; Biosonar; fusion of estimates; sonar; threshold effect; time-of-flight (ToF) estimation;
fLanguage :
English
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
Publisher :
ieee
ISSN :
0196-2892
Type :
jour
DOI :
10.1109/TGRS.2013.2276919
Filename :
6587072
Link To Document :
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