A Beamspace-Based DOA Estimation Algorithm for 2D Massive MIMO Systems

Hongli Zhou, Yang Liu, Cheng Lv, Yuting Li, Jia Yu
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引用次数: 1

Abstract

Massive multiple-input multiple-output (MIMO) is significantly promising in the fifth generation (5G) mobile communication systems. The direction-of-arrival (DOA) is particularly crucial for base stations (BSs) to perform beam-forming in massive MIMO systems. Due to being equipped with hundreds of antennas at the BSs, the traditional DOA estimation algorithms such as MUSIC and ESPRIT algorithm have extremely high computational complexity and are not suitable for realistic massive MIMO systems. In this paper, a novel two-dimensional beamspace-based Propagator Method (2D BPM) algorithm with a uniform rectangular array (URA) for DOA estimation is proposed. We firstly utilize beamspace transform matrix to convert the steering matrix of the array space into the beamspace. And then DOA estimation is performed based on the PM algorithm. Therefore, the proposed algorithm can significantly decrease the dimension of the received signal vector and avoid eigenvalue decomposition (EVD) on a high-dimensional covariance matrix compared with subspace algorithms. The 2D BPM algorithm achieves better performance and lower computational complexity. Numerical simulation results clearly demonstrate that the proposed approach has not only a high DOA estimation precision but also a lower computational complexity in massive MIMO systems.
基于波束空间的二维海量MIMO系统DOA估计算法
大规模多输入多输出(MIMO)在第五代(5G)移动通信系统中具有重要的应用前景。在大规模MIMO系统中,到达方向(DOA)对基站进行波束形成至关重要。传统的DOA估计算法,如MUSIC和ESPRIT算法,由于在BSs处配置了数百根天线,计算复杂度极高,不适合实际的大规模MIMO系统。提出了一种基于均匀矩形阵列(URA)的二维波束空间传播法(2D BPM)估计方位的新算法。首先利用波束空间变换矩阵将阵列空间的导向矩阵转换为波束空间。然后基于PM算法进行DOA估计。因此,与子空间算法相比,该算法可以显著降低接收信号矢量的维数,避免高维协方差矩阵上的特征值分解(EVD)。二维BPM算法具有更好的性能和更低的计算复杂度。数值仿真结果表明,该方法在大规模MIMO系统中具有较高的DOA估计精度和较低的计算复杂度。
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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