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Two-Dimensional Channel Parameter Estimation for Millimeter-Wave Systems Using Butler Matrices

机译:用管家矩阵的毫米波系统的二维信道参数估计

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摘要

In this paper, a novel two-dimensional parameter estimation method is proposed for frequency-selective millimeter-wave (mmWave) channels by probing a limited number of Kronecker products of discrete Fourier transform (DFT) beams, which are efficiently implemented in the analog domain by a novel combination of Butler matrices. The proposed strategy firstly estimates the channel parameters by using a modified parameter estimation via interpolation based on a DFT grid (PREIDG) algorithm. In a second step, high-resolution channel parameter estimation is achieved even in the low signal-to-noise-ratio (SNR) using the space-alternating generalized expectation-maximization (SAGE) algorithm. The proposed modified PREIDG algorithm outperforms state-of-the-art methods, e.g., the auxiliary beam pair (ABP) method while the SAGE algorithm achieves the derived Cramer-Rao lower bound (CRLB). Numerical results demonstrate that excellent estimation performance can be achieved for angle of departure (AoD) azimuth and elevation with addition to delay and complex path gain of each path even in the low SNR regime.
机译:在本文中,通过探测分立的傅里叶变换(DFT)波束的有限数量的Kronecker产品,提出了一种新的二维参数估计方法,该频率选择性毫米波(MMWAVE)信道是在模拟域中有效地实现的通过Butler矩阵的新组合。所提出的策略首先通过基于DFT网格(PRIDG)算法的插值来估计通道参数。在第二步骤中,即使使用空格的广义期望 - 最大化(SAGE)算法,即使在低信噪比(SNR)中也可以实现高分辨率信道参数估计。所提出的修改的预先识别算法优于最先进的方法,例如,辅助梁对(ABP)方法,而SAGE算法实现派生的CRAMER-RAO下限(CRLB)。数值结果表明,对于偏离(AOD)方位角和升降的角度来实现优异的估计性能,以及即使在低SNR状态下也可以实现每个路径的延迟和复杂路径增益。

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