DocumentCode
1926891
Title
Dismount modeling and detection from small aperture moving radar platforms
Author
Hersey, Ryan K. ; Melvin, William L. ; Culpepper, Edwin
Author_Institution
Sensors & Electromagn. Applic. Lab., Georgia Tech Res. Inst., Atlanta, GA
fYear
2008
fDate
26-30 May 2008
Firstpage
1
Lastpage
6
Abstract
Future advanced radar systems must detect targets of diminishing radar cross section (RCS) at low radial velocity, in demanding clutter and interference environments. Presently, a deficiency in radar detection performance exists between the capabilities of synthetic aperture radar (SAR) for fixed target indication and space-time adaptive processing (STAP) for ground moving target indication (GMTI) of targets with low ground track velocity. Dismounts, individuals or groups running, walking, or crawling, constitute a class of targets that falls into this netherworld between SAR and STAP. While possessing low RCS levels and radial velocities, dismount detection is rendered even more challenging due to their complicated non-linear phase histories that give rise to significant micro-Doppler energies. In this paper we develop a physiological human-gait model for multi-channel moving radar platforms. We characterize the dismount detection performance of a notational UAV system using linear phase, quadratic phase and sinusoidal phase filters. Finally, we summarize our results and present areas of future work.
Keywords
radar cross-sections; space-time adaptive processing; synthetic aperture radar; target tracking; Doppler energies; UAV system; dismount modeling; fixed target indication; ground moving target indication; linear phase; multi-channel moving radar platforms; physiological human-gait model; quadratic phase; radar cross section; radar systems; sinusoidal phase filters; small aperture moving radar platforms; space-time adaptive processing; synthetic aperture radar; History; Interference; Legged locomotion; Phase detection; Radar clutter; Radar cross section; Radar detection; Radar tracking; Synthetic aperture radar; Target tracking; Modeling; Radar; Space-time adaptive processing;
fLanguage
English
Publisher
ieee
Conference_Titel
Radar Conference, 2008. RADAR '08. IEEE
Conference_Location
Rome
ISSN
1097-5659
Print_ISBN
978-1-4244-1538-0
Electronic_ISBN
1097-5659
Type
conf
DOI
10.1109/RADAR.2008.4720724
Filename
4720724
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