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Rank Minimization-Based Toeplitz Reconstruction for DoA Estimation Using Coprime Array

机译:使用CopRime阵列排名基于最小化的Toeplitz重建DOA估计

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摘要

In this letter, we address the problem of direction finding using coprime array, which is one of the most preferred sparse array configurations. Motivated by the fact that non-uniform element spacing hinders full utilization of the underlying information in the receive signals, we propose a direction-of-arrival (DoA) estimation algorithm based on low-rank reconstruction of the Toeplitz covariance matrix. The atomic-norm representation of the measurements from the interpolated virtual array is considered, and the equivalent dual-variable rank minimization problem is formulated and solved using a cyclic optimization approach. The recovered covariance matrix enables the application of conventional subspace-based spectral estimation algorithms, such as MUSIC, to achieve enhanced DoA estimation performance. The estimation performance of the proposed approach, in terms of the degrees-of-freedom and spatial resolution, is examined. We also show the superiority of the proposed method over the competitive approaches in the root-mean-square error sense.
机译:在这封信中,我们解决了使用CopRime阵列找到方向查找的问题,这是最优选的稀疏阵列配置之一。由于非均匀元素间距阻碍了接收信号中的底层信息的事实,我们提出了一种基于Toeplitz协方差矩阵的低秩重建的到达方向(DOA)估计算法。考虑来自插值虚拟阵列的测量的原子标准表示,并使用循环优化方法制定和解决等效的双变量最小化问题。恢复的协方差矩阵使得能够应用传统的基于子空间的谱估计算法,例如音乐,以实现增强的DOA估计性能。考虑了拟议方法的估计性能,就自由度和空间分辨率而言。我们还展示了在根均方误差感的竞争方法中提出了所提出的方法的优越性。

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