DocumentCode :
827410
Title :
Canonical Coordinates are the Right Coordinates for Low-Rank Gauss–Gauss Detection and Estimation
Author :
Pezeshki, A. ; Scharf, Louis L. ; Thomas, John K. ; Van Veen, Barry D.
Author_Institution :
Dept. of Stat., Colorado State Univ., Fort Collins, CO
Volume :
54
Issue :
12
fYear :
2006
Firstpage :
4817
Lastpage :
4820
Abstract :
In this correspondence, our aim is to establish a connection between low-rank detection, low-rank estimation, and canonical coordinates. The key to this connection is the observation that Gauss-Gauss detectors and estimators share canonical coordinates in the case where the underlying model is a signal-plus-noise model. We show that in Gauss-Gauss detection J-divergence is a function of squared canonical correlations, and hence is invariant to nonsingular transformations of the data channels. Further, we show that J-divergence has a special decomposition in canonical coordinates, impelling their use for rank-reduction. Canonical coordinates have been found earlier to be fundamental for low-rank estimation, as they decompose three important performance measures, namely the relative volume of error concentration ellipse, processing gain, and information rate. This correspondence shows that canonical coordinates are also fundamental for low-rank detection, making them more useful in signal processing and communication problems when low-rank modeling is required to achieve computational efficiency or robustness against noise and model uncertainties
Keywords :
Gaussian processes; signal detection; transforms; canonical coordinates; data channels; error concentration ellipse; information rate; low-rank Gauss-Gauss detection; low-rank Gauss-Gauss estimation; model uncertainty; nonsingular transformations; processing gain; signal processing; signal-plus-noise model; Computational efficiency; Coordinate measuring machines; Detectors; Gain measurement; Gaussian channels; Gaussian processes; Information rates; Performance gain; Signal processing; Volume measurement; $J$-divergence; Canonical coordinates; Gaussian random vectors; concentration ellipse; detection; estimation; information rate; mutual information;
fLanguage :
English
Journal_Title :
Signal Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1053-587X
Type :
jour
DOI :
10.1109/TSP.2006.881249
Filename :
4014390
Link To Document :
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