Abstract
We consider the problem of Bayesian tracking of radar cross section. The adopted observation model employs the gamma family, which covers all Swerling cases in a unified framework. State dynamics are modeled using a nonstationary autoregressive gamma process. The principal component of the proposed solution is a nontrivial gamma approximation, applied during the time update recursion. The superior performance of the proposed approach is confirmed using simulations and a realworld dataset.
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- Copyright (2018 IEEE)
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- Category:
- Articles
- Type:
- artykuł w czasopiśmie wyróżnionym w JCR
- Published in:
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IEEE TRANSACTIONS ON AEROSPACE AND ELECTRONIC SYSTEMS
no. 55,
pages 1756 - 1768,
ISSN: 0018-9251 - Language:
- English
- Publication year:
- 2018
- Bibliographic description:
- Meller M.: On Bayesian Tracking and Prediction of Radar Cross Section// IEEE TRANSACTIONS ON AEROSPACE AND ELECTRONIC SYSTEMS. -Vol. 55, iss. 4 (2018), s.1756-1768
- DOI:
- Digital Object Identifier (open in new tab) 10.1109/taes.2018.2875572
- Verified by:
- Gdańsk University of Technology
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