CoFAR Clutter Channel Estimation via Sparse Bayesian Learning

被引:0
|
作者
Rajput, Kunwar Pritiraj [1 ]
Shankar, M. R. Bhavani [1 ]
Mishra, Kumar Vijay [2 ]
Rangaswamy, Muralidhar [3 ]
Ottersten, Bjorn [1 ]
机构
[1] Univ Luxembourg, Interdisciplinary Ctr Secur Reliabil & Trust, Luxembourg, Luxembourg
[2] United States CCDC Army Res Lab, Adelphi, MD USA
[3] US Air Force, Res Lab, Wright Patterson AFB, OH 45433 USA
关键词
Bayesian Cramer-Rao bound; clutter map; cognitive fully adaptive radar; RFView; sparse Bayesian learning; RADAR;
D O I
10.1109/RADARCONF2351548.2023.10149624
中图分类号
TP7 [遥感技术];
学科分类号
081102 ; 0816 ; 081602 ; 083002 ; 1404 ;
摘要
A cognitive fully adaptive radar (CoFAR) alters its behavior autonomously to accomplish desired tasks. The knowledge of the target environment is essential to the efficient operation of CoFAR. In this work, we consider the enhanced environment sensing aspect and study the problem of clutter channel impulse response (CIR) estimation in CoFAR. Using the high-fidelity modeling and simulation tool RFView, we show that the clutter CIR is sparse. Subsequently, we propose a sparse Bayesian learning (SBL) framework for estimating the underlying sparse clutter CIR, which does not require the a priori knowledge of the unknown clutter CIR's sparsity profile. Further, we derive the Bayesian CramerRao bound (BCRB) for the proposed method and show the effectiveness of the proposed SBL-based clutter channel estimation method by comparing its performance with the derived BCRB.
引用
收藏
页数:5
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