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Nonlinear Adaptive Beamforming Algorithms and Bit Error Rate Analysis for MU MIMO m mWave Communication System

机译:MU MIMO m mWave通信系统的非线性自适应波束形成算法和误码率分析

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Multiuser-multiple input multiple outputs (MUMIMO) can provide a substantial performance for cellular networks by applying a beamforming technique to direct signals in specific required directions. Therefore, this paper presents a basic idea of steering the incoming signals into the signal of interest (SOI) and signal not of interest (SNOI) directions. Moreover, different adaptive beamforming algorithms such as least mean square (LMS), recursive least square (RLS) and constant module algorithm (CMA) are analyzed and evaluated regarding the interference cancelation and steering of incoming data signal. In this regard, to calculate the received output signal, the optimal weight elements of a uniform linear array (ULA) antenna are computed and updated based on the incoming array sensor signals. Furthermore, the paper shows the effect of the beamforming on a bit error rate (BER) when applied a different number of antenna elements at base station (BS). The simulation results confirm that the algorithms likely have the same performance in the interference cancelation. However, the RLS algorithm shows a little enhancement compared with SMI and CMA algorithms. Besides, the results indicate that the beamforming with the different number of antenna elements has a significant impact on the BER performance. Hence, this work can be extended to a higher frequency of mmWave communication with a massive number of antenna elements, which can meet requirement of fifth generation (5G) network systems.
机译:多用户多输入多输出(MUMIMO)通过应用波束成形技术将信号定向到特定的所需方向,可以为蜂窝网络提供实质性的性能。因此,本文提出了将输入信号控制为感兴趣信号(SOI)和不感兴趣信号(SNOI)方向的基本思想。此外,针对干扰消除和输入数据信号的控制,分析和评估了不同的自适应波束成形算法,例如最小均方(LMS),递归最小二乘(RLS)和恒定模块算法(CMA)。在这方面,为了计算接收到的输出信号,基于输入的阵列传感器信号,计算并更新均匀线性阵列(ULA)天线的最佳权重元素。此外,本文显示了在基站(BS)上使用不同数量的天线元件时,波束成形对误码率(BER)的影响。仿真结果证实,该算法在干扰消除方面可能具有相同的性能。但是,与SMI和CMA算法相比,RLS算法显示出一些增强。此外,结果表明,使用不同数量天线元件的波束成形对BER性能有重大影响。因此,这项工作可以扩展到具有大量天线元件的毫米波通信的更高频率,可以满足第五代(5G)网络系统的要求。

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