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Channel Estimation for Massive MIMO-OFDM Systems by Tracking the Joint Angle-Delay Subspace

机译:跟踪联合角延迟子空间的大规模MIMO-OFDM系统信道估计

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摘要

In this paper, we propose joint angle-delay subspace based channel estimation in single cell for broadband massive multiple-input and multiple-output (MIMO) systems employing orthogonal frequency division multiplexing (OFDM) modulation. Based on a parametric channel model, we present a new concept of the joint angle-delay subspace which can be tracked by the low-complexity low-rank adaptive filtering (LORAF) algorithm. Then, we investigate an interference-free transmission condition that the joint angle-delay subspaces of the users reusing the same pilots are non-overlapping. Since the channel statistics are usually unknown, we develop a robust minimum mean square error (MMSE) estimator under the worst precondition of pilot decontamination, considering that the joint angle-delay subspaces of the interfering users fully overlap. Furthermore, motivated by the interference-free transmission criteria, we present a novel low-complexity greedy pilot scheduling algorithm to avoid the problem of initial value sensitivity. Simulation results show that the joint angle-delay subspace can be estimated effectively, and the proposed pilot reuse scheme combined with robust MMSE channel estimation offers significant performance gains.
机译:在本文中,我们针对采用正交频分复用(OFDM)调制的宽带大规模多输入多输出(MIMO)系统,提出了在单小区中基于联合角度延迟子空间的信道估计方法。基于参数通道模型,我们提出了可以通过低复杂度低秩自适应滤波(LORAF)算法跟踪的联合角度延迟子空间的新概念。然后,我们研究了无干扰的传输条件,即重复使用相同导频的用户的联合角延迟子空间是不重叠的。由于信道统计信息通常是未知的,因此考虑到干扰用户的联合角度延迟子空间完全重叠,我们在导频去污的最坏前提下开发了鲁棒的最小均方误差(MMSE)估计器。此外,受无干扰传输标准的启发,我们提出了一种新颖的低复杂度贪婪导频调度算法,以避免初始值敏感性问题。仿真结果表明,可以有效地估计联合角延迟子空间,并且所提出的导频重用方案与鲁棒的MMSE信道估计相结合,可以显着提高性能。

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