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MU-MIMO Downlink Capacity Analysis and Optimum Code Weight Vector Design for 5G Big Data Massive Antenna Millimeter Wave Communication

机译:5G大数据大规模天线毫米波通信的MU-MIMO下行链路容量分析和最佳代码权重矢量设计

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Multiuser multiple input multiple output (MU-MIMO) wireless communication system provides substantial downlink throughput in millimeter wave (mmWave) communication by allowing multiple users to communicate at the same frequency and time slots. However, the design of the optimum beam-vector for each user to minimise interference from other users is challenging. In this paper, based on the concept of signal-to-leakage plus noise ratio (SLNR), we analyze the ergodic sum-rate capacity using statistical Eigen-mode (SE) and zero-forcing (ZF) models with Ricean fading channel. In the analysis, the orthogonality of channel vectors between users is assumed to guarantee interference cancelation from other cochannel users. The impact of the number of antenna elements on the achievable sum-rate capacity obtained by dirty paper coding (DPC) method considered as a nonlinear scheme for approximating average system capacity is studied. A power iterative precoding scheme that iteratively finds the most dominant eigenvector (optimum weight vector) for minimising cochannel interference (CCI), that is, maximising the SLNR for all users simultaneously, is designed resulting in enhancement of average system capacity. The average system capacities achieved by the proposed power iterative technique in this study compared with the singular value decomposition (SVD) method are in the ranges of 5–11 bps/Hz and 1–6 bps/Hz, respectively. Therefore, the proposed power iterative method achieves higher performance than the SVD regarding achievable sum-rate capacity.
机译:多用户多输入多输出(MU-MIMO)无线通信系统通过允许多个用户以相同的频率和时隙进行通信,在毫米波(mmWave)通信中提供了可观的下行链路吞吐量。然而,为每个用户设计最佳波束矢量以最小化来自其他用户的干扰是具有挑战性的。在本文中,基于信噪比与噪声比(SLNR)的概念,我们使用具有Ricean衰落信道的统计本征模式(SE)和零强迫(ZF)模型来分析遍历总和速率容量。在分析中,假设用户之间的信道矢量正交,以确保消除其他同信道用户的干扰。研究了天线元件数量对通过脏纸编码(DPC)方法获得的可实现的总速率容量的影响,该方法被视为近似平均系统容量的非线性方案。设计了一种功率迭代预编码方案,该方案迭代找到最主要的特征向量(最佳权重向量)以最小化共信道干扰(CCI),即同时为所有用户最大化SLNR,从而提高了平均系统容量。与奇异值分解(SVD)方法相比,通过本研究中提出的功率迭代技术获得的平均系统容量分别在5-11bps / Hz和1-6bps / Hz的范围内。因此,就可实现的总速率容量而言,所提出的功率迭代方法比SVD具有更高的性能。

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