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Performance of massive MIMO Systems for Future Generation Wireless Systems

机译:大规模MIMO系统在下一代无线系统中的性能

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Research into 5G enabling technologies has seen much increased activity of late. Among the proposed technologies with much potential for becoming an important underlying aspect of 5G is massive multiple-input multiple-output (MIMO). This paper seeks to evaluate the performance of linear signal processing methods applicable to massive MIMO so as to propose suitable signal processing methods for these applications, and to determine suitable antenna array sizes for a given number of users in a massive MIMO cell. A single cell, and a 16 square cell grid network, were modeled in a MATLAB enviroment with base stations placed at the centre of the 1Km × 1Km square cells and users were randomly deployed in each cell. Monte Carlo simulations were applied with Rayleigh fading channels. Obtainable sum spectral efficiency for various linear signal processing methods were then obtained. Minimum Mean Square Error (MMSE), Zero Forcing (ZF), Regularized Zero Forcing (RZF) and Maximal Ratio Combining (MR) linear detection methods were evaluated. The aim of the Monte Carlo simulations were to determine the achievable spectral efficiency as a function of the ratio between the number of antennas at a base station and the number of users in a cell. This was done initially for a single cell and then extended to a 16 cell network. Pilot reuse factors, which is the ratio between the pilots allocated to a cell and users in a cell, were varied and spectral efficiency evaluated as a function of increasing number of antennas. The results obtained show that the MMSE has the best performance. As antenna array size increase, RZF and ZF monotonically increase so at to coincide when the ratio of antennas to users increases. MR combining method had the least performance among the four receive combining methods looked at.
机译:最近,对支持5G的技术的研究大大增加了活动。所提出的具有成为5G重要基础方面的巨大潜力的技术包括大规模多输入多输出(MIMO)。本文旨在评估适用于大规模MIMO的线性信号处理方法的性能,以便为这些应用提出合适的信号处理方法,并为大规模MIMO小区中给定数量的用户确定合适的天线阵列尺寸。在MATLAB环境中对单个单元和16平方单元的网格网络进行了建模,将基站置于1Km×1Km方形单元的中心,并且在每个单元中随机部署了用户。蒙特卡罗模拟应用于瑞利衰落信道。然后获得了各种线性信号处理方法可获得的总频谱效率。评估了最小均方误差(MMSE),零强迫(ZF),正则零强迫(RZF)和最大比率组合(MR)线性检测方法。蒙特卡洛模拟的目的是确定可实现的频谱效率,该效率是基站天线数量与小区用户数量之比的函数。最初是针对单个小区完成的,然后扩展到16个小区的网络。改变了导频重用因子,即分配给一个小区的导频与一个小区中用户之间的比率,并根据天线数量的增加来评估频谱效率。获得的结果表明,MMSE具有最佳性能。随着天线阵列尺寸的增加,RZF和ZF单调增加,因此当天线与用户的比例增加时,RZF和ZF也会重合。在所查看的四种接收合并方法中,MR合并方法的性能最低。

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