SPACE-TIME ADAPTIVE PROCESSING WITH MULTIPLE MEASUREMENT VECTORS BASED ON TSBL FOR AIRBORNE RADAR

被引:0
|
作者
Cui, Jun-Hao [1 ]
Chen, Zhang-Xin [1 ]
Liang, Jing [1 ]
机构
[1] Univ Elect Sci & Technol China, Sch Informat & Commun Engn, Chengdu, Peoples R China
关键词
STAP; TSBL; correlation; off-grid problem;
D O I
10.1109/IGARSS52108.2023.10281773
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Sparse recovery based space-time adaptive processing (SR-STAP) algorithms can achieve superior clutter suppression performance with limited training samples. However, most SR-STAP algorithms focus on modeling the sparsity of training samples from nearby range bins independently, ignoring the correlation between samples. In this paper, we devise a set of matrices to capture the correlations within the multiple measurement vectors (MMV), and find the optimal solution based on the temporal sparse Bayesian learning (TSBL) framework iteratively, called temporal MMV sparse Bayesian learning STAP algorithm (TMSBL-STAP). Moreover, we analyze the common off-grids problem in SR-STAP, and consider a prior dictionary that adds clutter ridge prior information to alleviate the off-grids problem. Numerical simulations are provided to validate the prior dictionary, and the effectiveness of the proposed algorithm is verified based on simulation and measured data.
引用
收藏
页码:4780 / 4783
页数:4
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