DocumentCode
1572620
Title
Autonomous Time-Frequency Morphological Feature Extraction Algorithm for LPI Radar Modulation Classification
Author
Zilberman, E.R. ; Pace, P.E.
Author_Institution
Dept. of Electr. & Comput. Eng., Naval Postgraduate Sch., Monterey, CA, USA
fYear
2006
Firstpage
2321
Lastpage
2324
Abstract
An autonomous (no human operator intervention) feature extraction algorithm that can be used for classification of low probability of intercept (LPI) radar modulations using time-frequency (T-F) images is presented. The approach uses erosion and a new adaptive threshold binarization algorithm embedded within a recursive dilation process to autonomously determine the modulation energy centroid (radar´s carrier frequency). The modulation is then cropped from the original T-F image and the adaptive algorithm is used again to compute a binary feature vector for input into a multi-layer perceptron classification network. Classification results for five simulated radar modulations are shown to demonstrate the feature extraction approach and quantify the performance of the algorithm.
Keywords
feature extraction; image classification; modulation; multilayer perceptrons; radar imaging; time-frequency analysis; LPI radar modulation classification; T-F image; adaptive threshold binarization algorithm; autonomous morphological feature extraction; low probability of intercept; modulation energy centroid; multi-layer perceptron classification network; recursive dilation process; time-frequency image; Feature extraction; Frequency modulation; Humans; Image processing; Multilayer perceptrons; Radar detection; Radar imaging; Radar measurements; Signal processing algorithms; Time frequency analysis; CW radar; Multi-layer perceptrons; Pattern classification; Time-frequency analysis;
fLanguage
English
Publisher
ieee
Conference_Titel
Image Processing, 2006 IEEE International Conference on
Conference_Location
Atlanta, GA
ISSN
1522-4880
Print_ISBN
1-4244-0480-0
Type
conf
DOI
10.1109/ICIP.2006.312851
Filename
4107031
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