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Joint DoA-Range Estimation Using Space-Frequency Virtual Difference Coarray

Signal Processing 2022-06-29 v2

Abstract

In this paper, we address the problem of joint direction-of-arrival (DoA) and range estimation using frequency diverse coprime array (FDCA). By incorporating the coprime array structure and coprime frequency offsets, a two-dimensional space-frequency virtual difference coarray corresponding to uniform array and uniform frequency offset is considered to increase the number of degrees-of-freedom (DoFs). However, the reconstruction of the doubly-Toeplitz covariance matrix is computationally prohibitive. To solve this problem, we propose an interpolation algorithm based on decoupled atomic norm minimization (DANM), which converts the coarray signal to a simple matrix form. On this basis, a relaxation-based optimization problem is formulated to achieve joint DoA-range estimation with enhanced DoFs. The reconstructed coarray signal enables application of existing subspace-based spectral estimation methods. The proposed DANM problem is further reformulated as an equivalent rank-minimization problem which is solved by cyclic rank minimization. This approach avoids the approximation errors introduced in nuclear norm-based approach, thereby achieving superior root-mean-square error which is closer to the Cramer-Rao bound. The effectiveness of proposed method is confirmed by theoretical analyses and numerical simulations.

Keywords

Cite

@article{arxiv.2204.07324,
  title  = {Joint DoA-Range Estimation Using Space-Frequency Virtual Difference Coarray},
  author = {Zihuan Mao and Shengheng Liu and Yimin D. Zhang and Leixin Han and Yongming Huang},
  journal= {arXiv preprint arXiv:2204.07324},
  year   = {2022}
}
R2 v1 2026-06-24T10:48:53.733Z