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Off-grid DOA estimation with nonconvex regularization via joint sparse representation

delete2017-11-01
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刘祺 封面图
刘祺 (Qi Liu) *
H
Hing Cheung So
Y
Yuantao Gu
DOI:10.1016/j.sigpro.2017.05.020delete
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摘要

摘要

En 中文
In this paper, we address the problem of direction-of-arrival (DOA) estimation using sparse representation. As the performance of on-grid DOA estimation methods will degrade when the unknown DOAs are not on the angular grids, we consider the off-grid model via Taylor series expansion, but dictionary mismatch is introduced. The resulting problem is nonconvex with respect to the sparse signal and perturbation matrix. We develop a novel objective function regularized by the nonconvex sparsity-inducing penalty for off-grid DOA estimation, which is jointly convex with respect to the sparse signal and perturbation matrix. Then alternating minimization is applied to tackle this joint sparse representation of the signal recovery and perturbation matrix. Numerical examples are conducted to verify the effectiveness of the proposed method, which achieves more accurate DOA estimation performance and faster implementation than the conventional sparsity-aware and state-of-the-art off-grid schemes. (C) 2017 Elsevier B.V. All rights reserved.
Keyword:
DOA estimation
Off-grid model
Sparse representation
Nonconvex regularization
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期刊

Signal Processing 封面图
Signal Processing
IF:
3.6
论文数:
10.0K
被引数:
1.7W

机构

T
tsinghua university
学者数:
11.9W
论文数: 10.0W
被引数: 137
C
City University of Hong Kong
学者数:
2.3W
论文数: 3.0W
被引数: 6.1W
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