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Information-Theoretic Pilot Design for Downlink Channel Estimation in FDD Massive MIMO Systems

机译:FDD大型MIMO系统下行链路通道估计信息的信息 - 理论导频设计

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Massive multiple-input multiple-output (MIMO) is one of the most promising techniques for next generation wireless communications due to its superior capability to provide high spectrum and energy efficiency. Considering the very large number of antennas employed at the base station, however, the pilot overhead for downlink channel estimation becomes unaffordable in frequency division duplex (FDD) multiuser massive MIMO systems. In this paper, we propose an information-theoretic metric to design the pilot for downlink channel estimation in FDD multiuser massive MIMO systems. By exploiting the low-rank nature of the channel covariance matrix, we first derive the minimum number of pilot symbols required to ensure perfect channel recovery, which is much less than the number of antennas at the base station. Further, under a general channel model that the channel vector of each user follows a Gaussian mixture distribution, the pilot symbols are designed by maximizing the weighted sum of the Shannon mutual information between the measurements of the users and their corresponding channel vectors on the complex Grassmannian manifold. Simulation results demonstrate the effectiveness of the proposed information-theoretic pilot design for the downlink channel estimation in FDD massive MIMO systems.
机译:由于其优异的能力提供高频谱和能量效率,巨大的多输入多输出(MIMO)是下一代无线通信最有希望的技术之一。然而,考虑到基站采用的大量天线,但是,用于下行链路信道估计的导频开销在频分双工(FDD)多用户大量MIMO系统中变得无法实现。在本文中,我们提出了一种信息 - 理论度量来设计FDD多用户大规模MIMO系统中的下行链路信道估计的导频。通过利用信道协方差矩阵的低级性质,我们首先导出确保完美信道恢复所需的最小导频符号数,这远小于基站的天线数量。此外,在每个用户的信道向量遵循高斯混合分布的通用频道模型下,通过在复杂的基地诺尼亚的用户的测量和它们的相应信道矢量之间最大化ShannOn互信息的加权之和来设计导频符号。歧管。仿真结果证明了建议信息 - 理论导频设计的有效性,用于FDD大规模MIMO系统中的下行链路信道估计。

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