Linear ESPRIT-Like Algorithms for Fast Directions of Arrival Estimation with Real Structure

S. Akkar, F. Harabi, A. Gharsallah
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引用次数: 4

Abstract

This paper proposes two Linear ESPRIT-like algorithms for Directions of Arrival (DoA) estimation problem. The assumed constraints are the same as those imposed onto the standard ESPRIT algorithm. We introduce a new approach, for both signal subspace and eigenvalues estimation, that can efficiently replace the requirement for the classic Eigenvalue Decomposition techniques. This approach, requiring only linear operations, makes the DoAs estimator faster while maintaining comparable estimation accuracy. The proposed algorithms allow high resolution capabilities with reduced computational cost and lower processing time as compared with existing schemes. The Cramer Rao Bound on the variance of DoAs estimated by the proposed algorithms is analysed. The simulation results confirm that high resolution on DoAs estimation can be achieved by the developed methods and prove the validity of our approach.
真实结构下快速到达方向估计的类线性esprit算法
提出了两种类似线性esprit的到达方向估计算法。假设的约束与标准ESPRIT算法上的约束相同。针对信号子空间和特征值估计,我们提出了一种新的方法,可以有效地取代传统的特征值分解方法。这种方法只需要线性操作,使DoAs估计器更快,同时保持相当的估计精度。与现有方案相比,所提出的算法在降低计算成本和缩短处理时间的情况下具有高分辨率能力。分析了该算法估计的doa方差的Cramer - Rao界。仿真结果表明,该方法可以获得高分辨率的DoAs估计,证明了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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