DocumentCode :
1421198
Title :
Coherent Radar Target Detection in Heavy-Tailed Compound-Gaussian Clutter
Author :
Sangston, Kevin J. ; Gini, Fulvio ; Greco, Maria S.
Author_Institution :
Kilpatrick Stockton LLP, USA
Volume :
48
Issue :
1
fYear :
2012
Firstpage :
64
Lastpage :
77
Abstract :
This paper deals with the problem of detecting a radar target signal against correlated non-Gaussian clutter, which is modeled by the compound-Gaussian distribution. We prove that if the texture of compound-Gaussian clutter is modeled by an inverse-gamma distribution, the optimum detector is the optimum Gaussian matched filter detector compared to a data-dependent threshold that varies linearly with a quadratic statistic of the data. We call this optimum detector a linear-threshold detector (LTD). Then, we show that the compound-Gaussian model presented here varies parametrically from the Gaussian clutter model to a clutter model whose tails are evidently heavier than any K-distribution model. Moreover, we show that the generalized likelihood ratio test (GLRT), which is a popular suboptimum detector because of its constant false-alarm rate (CFAR) property, is an optimum detector for our clutter model in the limit as the tails get extremely heavy. The GLRT-LTD is tested against simulated high-resolution sea clutter data to investigate the dependence of its performance on the various clutter parameters.
Keywords :
Gaussian distribution; gamma distribution; radar clutter; radar tracking; target tracking; coherent radar target detection; compound-Gaussian distribution; generalized likelihood ratio test; heavy-tailed compound-Gaussian clutter; inverse-gamma distribution; k-distribution model; linear-threshold detector; optimum Gaussian matched filter detector; Clutter; Detectors; Noise; Radar clutter; Radar detection; Vectors;
fLanguage :
English
Journal_Title :
Aerospace and Electronic Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9251
Type :
jour
DOI :
10.1109/TAES.2012.6129621
Filename :
6129621
Link To Document :
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