DocumentCode
1224551
Title
Aperture error mitigation via local-state estimation for frequency-based emitter location
Author
Wu, N. Eva ; Fowler, Mark L.
Author_Institution
Dept. of Electr. & Comput. Eng., State Univ. of New York, Binghamton, NY, USA
Volume
39
Issue
2
fYear
2003
fDate
4/1/2003 12:00:00 AM
Firstpage
414
Lastpage
429
Abstract
This paper considers the problem of locating a stationary coherent emitter via a single moving platform making frequency measurements in the presence of aperture state uncertainty. It is shown that the estimated emitter location is most sensitive to the receiving aperture velocity uncertainty. The required aperture velocity accuracy is determined through a noninfinitesimal perturbation analysis. A solution to location accuracy enhancement with a minimal hardware addition is attempted. It is shown that this can be achieved by mounting a high-resolution tri-axis microelectromechanical systems (MEMS) accelerometer at the aperture to measure its velocity, which can deviate significantly from that estimated by the on-board navigation system. The Doppler shifts of the GPS signal carrier frequency, whenever it can be acquired through the aperture, are also considered as a way to aid the aperture velocity measurement. A decentralized, federated processing method for the aperture velocity estimate referenced at the aperture, integrating all measurement data, is presented. An upper bound for the error of aperture velocity estimate is derived. The potential for significant accuracy enhancement for emitter location is demonstrated.
Keywords
Doppler effect; Global Positioning System; accelerometers; aircraft navigation; frequency measurement; microsensors; military avionics; perturbation techniques; radio direction-finding; velocity measurement; GPS signal carrier frequency Doppler shifts; aperture error mitigation; aperture mounted MEMS accelerometers; aperture state uncertainty; aperture velocity estimate error upper bounds; aperture velocity measurement; decentralized federated processing methods; emitter location estimation; frequency measurements; frequency-based emitter location; high-resolution tri-axis microelectromechanical systems accelerometers; local-state estimation; location accuracy enhancement; moving platform emitter location; noninfinitesimal perturbation analysis; on-board navigation systems; receiving aperture velocity uncertainty; stationary coherent emitter location; Accelerometers; Apertures; Doppler shift; Frequency estimation; Frequency measurement; Hardware; Microelectromechanical systems; Micromechanical devices; Navigation; Velocity measurement;
fLanguage
English
Journal_Title
Aerospace and Electronic Systems, IEEE Transactions on
Publisher
ieee
ISSN
0018-9251
Type
jour
DOI
10.1109/TAES.2003.1207254
Filename
1207254
Link To Document