DocumentCode
1339634
Title
A Nonlinear-Phase Model-Based Human Detector for Radar
Author
Gürbüz, Sevgi Z. ; Melvin, William L. ; Williams, Douglas B.
Author_Institution
TUBITAK Space Technol. Res. Inst., Ankara, Turkey
Volume
47
Issue
4
fYear
2011
fDate
10/1/2011 12:00:00 AM
Firstpage
2502
Lastpage
2513
Abstract
Radar offers unique advantages over other sensors for the detection of humans, such as remote operation during virtually all weather and lighting conditions, increased range, and better coverage. Many current radar-based human detection systems employ some type of Fourier analysis, such as Doppler processing. However, in many environments, the signal-to-noise ratio (SNR) of human returns is quite low. Furthermore, Fourier-based techniques assume a linear variation in target phase over the aperture, whereas human targets have a highly nonlinear phase history. The resulting phase mismatch causes significant SNR loss in the detector itself. In this paper, human target modeling is used to derive a more accurate nonlinear approximation to the true target phase history. The likelihood ratio is optimized over unknown model parameters to enhance detection performance. Cramer-Rao bounds on parameter estimates and receiver operating characteristic curves are used to validate analytically the performance of the proposed method and to evaluate simulation results.
Keywords
Fourier analysis; approximation theory; nonlinear equations; parameter estimation; radar detection; Cramer-Rao bounds; Doppler processing; Fourier analysis; SNR; human target modeling; lighting conditions; nonlinear approximation; nonlinear-phase model-based human detector; parameter estimation; phase mismatch; radar-based human detection systems; signal-to-noise ratio; weather conditions; Approximation methods; Computational modeling; Human factors; Mathematical model; Nonlinear control systems; Radar detection; Sensors; Signal to noise ratio;
fLanguage
English
Journal_Title
Aerospace and Electronic Systems, IEEE Transactions on
Publisher
ieee
ISSN
0018-9251
Type
jour
DOI
10.1109/TAES.2011.6034647
Filename
6034647
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