DocumentCode :
1099683
Title :
CFAR Outlier Detection With Forward Methods
Author :
Lehtomäki, Janne J. ; Vartiainen, Johanna ; Juntti, Markku ; SAARNISAARI, Harri
Author_Institution :
Oulu Univ., Oulu
Volume :
55
Issue :
9
fYear :
2007
Firstpage :
4702
Lastpage :
4706
Abstract :
Separation or classification of signal-present samples from noise-only samples is studied. The false-alarm probability implies how many noise-only samples are wrongly classified as outliers, and typically it should be smaller than some upper limit. The noise distribution parameters are not known a priori and have to be estimated. Multiple outliers have a strong influence to that estimation and may lead to uncontrollable false-alarm probability. The false-alarm probability control can be improved by robust estimators and/or by forward-detection methods. In this article, the false-alarm probability of the forward methods is analyzed. The forward consecutive mean excision (FCME) algorithm is enhanced to allow better false-alarm control. It is proposed that the forward method using the cell-averaging (CA) constant false-alarm rate (CFAR) technique can be applied for locating the outliers. The results show that its false-alarm probability stays close to the required value even in the presence of multiple outliers.
Keywords :
estimation theory; noise; probability; sampling methods; signal classification; signal detection; CFAR multiple outlier detection; cell-averaging constant false-alarm rate; false-alarm probability control; forward consecutive mean excision algorithm; forward-detection method; noise distribution parameter estimation; noise-only sample classification; robust estimator; signal-present sample classification; Decision making; Detectors; Light rail systems; Noise robustness; Probability; Radar detection; Robust control; Signal processing algorithms; Statistics; Testing; Cognitive radio; constant false-alarm rate (CFAR); detection threshold; signal detection;
fLanguage :
English
Journal_Title :
Signal Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1053-587X
Type :
jour
DOI :
10.1109/TSP.2007.896239
Filename :
4291864
Link To Document :
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