Title :
A LBI based emitter location estimator with platform trajectory optimality
Author :
Ren, Ran ; Fowler, Mark L.
Author_Institution :
Dept. of Electr. & Comput. Eng., State Univ. of New York at Binghamton, Binghamton, NY, USA
Abstract :
When trying to estimate the location of a non-cooperative non-coherent emitter using intercepted signal measurements from a single airborne platform, the Doppler-based techniques, such as the Frequency of Arrival (FOA) is not applicable. In this paper, we propose a single platform long baseline interferometry (LBI) based emitter location estimator which achieves optimal estimation accuracy on average without any prior information such as a rough emitter location estimate or a reference point. The novelty of the proposed approach is that it tackles the ¿phase wrapping¿ problem inherited in the LBI by exploring the spatial diversity and requiring the platform to fly along a spiral-shaped trajectory. We demonstrate that an arbitrary platform trajectory can be evaluated in terms of the ability of getting accurate estimation using an entropy-based diversity measure. The robustness of the proposed scheme is also explored. This work intends to provide a different angle for single platform emitter location estimation accuracy improvements.
Keywords :
direction-of-arrival estimation; diversity reception; interferometry; Doppler-based technique; LBI based emitter location estimator; entropy-based diversity measure; frequency of arrival; long baseline interferometry; phase wrapping problem; platform trajectory optimality; spatial diversity; spiral-shaped trajectory; Antenna measurements; Costs; Frequency estimation; Frequency measurement; Interferometry; Phase estimation; Phase measurement; Radio access networks; State estimation; Wrapping;
Conference_Titel :
Signals, Systems and Computers, 2009 Conference Record of the Forty-Third Asilomar Conference on
Conference_Location :
Pacific Grove, CA
Print_ISBN :
978-1-4244-5825-7
DOI :
10.1109/ACSSC.2009.5469702