ABEP of a NFV-based 5G network with L-branch SC diversity under combined effects of η-µ fading and η-µ CCI

Selena Vasić, S. Suljovic, D. Milic, N. Petrovic
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Abstract

In this paper we analyze the average bit error probability (ABEP) of a Network Function Virtualization (NFV)-based 5G system with an L-branch selection-combining (SC) receiver, in a composite η-µ fading and η-µ co-channel interference (CCI) environment. We derive closed-form expressions for cumulative distribution function (CDF) and moment generating function (MGF) and find the ABEP for the non-coherent binary frequency shift keying (BFSK) and binary differential phase shift keying (BDPSK) modulation. We present the numerical and simulation results for a different number of diversity branches and different values of parameters η and µ. Additionally, we introduce an approach to Quality of Service (QoS) estimation by leveraging supervised machine learning classification techniques in Java programming language relying on Weka API. The obtained ABEP value is considered as one of the input variables and QoS is compared for four different classification algorithms.
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η-µ衰落和η-µCCI联合作用下基于nfv的l支路SC分集5G网络的ABEP
本文分析了基于网络功能虚拟化(NFV)的l支路选择组合(SC)接收机在η- μ衰落和η- μ共信道干扰(CCI)复合环境下的平均误码率(ABEP)。我们推导了累积分布函数(CDF)和矩生成函数(MGF)的封闭表达式,并找到了非相干二进制移频键控(BFSK)和二进制微分移相键控(BDPSK)调制的ABEP。给出了不同分集分支数和不同η、µ参数值下的数值和仿真结果。此外,我们还介绍了一种服务质量(QoS)估计方法,该方法利用依赖于Weka API的Java编程语言中的监督机器学习分类技术。将得到的ABEP值作为输入变量之一,并对四种不同分类算法的QoS进行了比较。
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