DocumentCode :
2512870
Title :
Hyper-fuzzy modeling and control for bio-inspired radar processing
Author :
Salim, Omar M. ; Abdel-Aty-Zohdy, Hoda S. ; Zohdy, Mohamad A.
Author_Institution :
High Inst. of Technol., Benha Univ., Benha, Egypt
fYear :
2010
fDate :
14-16 July 2010
Firstpage :
392
Lastpage :
395
Abstract :
Modern RF Radar signal processing has been receiving much attention for wide range of domains that include industrial, environmental, and military applications. Inherently, the received raw spatial-temporal signals can be 1-D, 2-D, or 3-D and are usually of uncertain nature, because of changing conditions and optical background variations. In this paper, we apply novel concepts for hyper-neural theory that allow for incorporation of variables attribute definitions and uncertainties for the purpose of effective evidential learning and subsequent key output features determination in the radar processing. Application to wide-band angle of arrival data sets at several carrier frequencies has been carried out in order to illustrate the strengths as well weakness of the approach. Using interval set-based operations together with segmentation of the data is proved useful and gave good sensitivity of detection.
Keywords :
bio-inspired materials; radar signal processing; RF radar signal processing; bio inspired radar processing; hyper fuzzy modeling; hyper neural theory; spatial temporal signal; Arrays; Artificial neural networks; Frequency measurement; Noise; Phase measurement; Receivers; Time measurement; Fuzzy Logic; Membership function; Neural Networks;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Aerospace and Electronics Conference (NAECON), Proceedings of the IEEE 2010 National
Conference_Location :
Fairborn, OH
ISSN :
0547-3578
Print_ISBN :
978-1-4244-6576-7
Type :
conf
DOI :
10.1109/NAECON.2010.5712983
Filename :
5712983
Link To Document :
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