2024
DOI: 10.1049/ell2.13135
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DOA estimation based on sparse Bayesian learning with moving synthetic virtual array

Chao Zhu,
Zhenmiao Deng

Abstract: In scenarios with constrained physical aperture sizes, aiming to enhance the resolution and accuracy of Direction of Arrival (DOA) estimation, this paper proposes a novel approach that integrates a moving synthetic virtual array with Sparse Bayesian Learning (SBL) for DOA estimation. Initially, a virtual array is constructed based on the motion characteristics of the target. Subsequently, the SBL method is employed to estimate the DOA of the target. Simulation experiments validate the effectiveness of this app… Show more

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References 17 publications
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