Please use this identifier to cite or link to this item: https://hdl.handle.net/2440/2458
Citations
Scopus Web of Science® Altmetric
?
?
Type: Journal article
Title: Experimental evaluation of adaptive beamforming methods and interference models for high frequency over-the-horizon radar systems
Author: Fabrizio, G.
Gray, D.
Turley, M.
Citation: Multidimensional Systems and Signal Processing, 2003; 14(1-3):241-263
Publisher: Kluwer Academic Publ
Issue Date: 2003
ISSN: 0923-6082
Statement of
Responsibility: 
G. A. Fabrizio, D. A. Gray and M. D. Turley
Abstract: This paper experimentally evaluates the interference cancellation performance of different adaptive beamforming schemes applicable to high frequency (HF) over-the-horizon (OTH) radar systems. Such systems are known to receive multipath and diffusely scattered radio frequency interference produced as a result of reflection from the stratified, dynamic and spatially inhomogeneous ionospheric propagation medium. Apart from quantifying the effectiveness of operational adaptive beamformers in the HF (3–30 MHz) environment, realistic interference models are described and experimentally evaluated in terms of their ability to predict the observed interference cancellation performance which is not well represented by traditional models. Adaptive beamforming algorithms with robustness against jammer motion are also described and their effectiveness is experimentally demonstrated using interference data collected by 32 narrowband receivers of the very wide aperture (2.8 km) Jindalee OTH radar uniform linear array located near Alice Springs in central Australia.
Description: The original publication can be found at www.springerlink.com
DOI: 10.1023/A:1022237528629
Published version: http://www.springerlink.com/content/n1018125g5536ghm/?p=3d58658ccebe40948e3078f317e9f20d&pi=13
Appears in Collections:Aurora harvest 2
Electrical and Electronic Engineering publications

Files in This Item:
There are no files associated with this item.


Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.