DocumentCode :
1460369
Title :
Mutual and conditional mutual informations for optimizing distributed Bayes detectors
Author :
Han, Yong In ; Kim, Taejeong
Author_Institution :
Samsung Electron., Kiheung, South Korea
Volume :
37
Issue :
1
fYear :
2001
fDate :
1/1/2001 12:00:00 AM
Firstpage :
147
Lastpage :
157
Abstract :
This paper considers optimization of distributed detectors under the Bayes criterion. A distributed detector consists of multiple local detectors and a fusion center that combines the local decision results to obtain a final decision. Introduced first are distributional distance measures, the mutual information (MI) and the conditional mutual information (CMI), that are obtained by applying information theoretic concepts to detection problems. Error bound analyses show that these distance measures approximate the Bayesian probability of error better than the conventional ones regardless of the operational environments. Then, a new optimization technique is proposed for distributed Bayes detectors. The method uses the distributional distances instead of the original Bayes criterion to avoid the complexity barrier of the optimization problem. Numerical examples show that the proposed distance measures yield solutions far better than the existing ones
Keywords :
Bayes methods; Gaussian distribution; error statistics; optimisation; sensor fusion; signal detection; Bayesian probability of error; complexity barrier; conditional mutual information; distributed Bayes detectors; distributional distance measures; error bound analyses; fusion center; fusion rule; hypothesis testing; local decision results; local thresholds; multiple local detectors; mutual information; optimization; weighting functions; Bayesian methods; Detectors; Error analysis; Information processing; Mutual information; Optimization methods; Probability distribution; Random variables; Sensor systems; Surveillance;
fLanguage :
English
Journal_Title :
Aerospace and Electronic Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9251
Type :
jour
DOI :
10.1109/7.913674
Filename :
913674
Link To Document :
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