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Modeling and Analysis of Wireless Channels via the Mixture of Gaussian Distribution

机译:高斯分布混合的无线信道建模与分析

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摘要

In this paper, we consider a unified approach to model wireless channels by the mixture of Gaussian (MoG) distribution. The proposed approach provides an accurate approximation for the envelope and the signal-to-noise ratio (SNR) distributions of wireless fading channels. Simulation results have shown that the proposed model can accurately characterize multipath and composite fading channels. We utilize the well-known expectation–maximization (EM) algorithm to estimate the parameters of the MoG distribution and further utilize the Bayesian information criterion (BIC) to determine the number of mixture components automatically. We employ the Kullback–Leibler (KL) divergence and the mean-square-error (MSE) criteria to demonstrate that the proposed distribution provides both high accuracy and low computational complexity. Additionally, we provide closed-form expressions or approximations for several performance metrics used in wireless communication systems, including the moment generating function (MGF), the raw moments, the amount of fading (AF), the outage probability, the average channel capacity, and the probability of energy detection for cognitive radio (CR). Numerical analysis and Monte Carlo simulation results are presented to corroborate the analytical results.
机译:在本文中,我们考虑采用混合的高斯(MoG)分布对无线信道进行建模的统一方法。所提出的方法为无线衰落信道的包络和信噪比(SNR)分布提供了精确的近似值。仿真结果表明,所提出的模型可以准确地表征多径和复合衰落信道。我们利用众所周知的期望最大化(EM)算法来估算MoG分布的参数,并进一步利用贝叶斯信息准则(BIC)自动确定混合物组分的数量。我们采用Kullback-Leibler(KL)散度和均方误差(MSE)标准来证明所提出的分布既提供了高精度又降低了计算复杂度。此外,我们提供了无线通信系统中使用的几种性能指标的闭式表达式或近似值,包括矩生成函数(MGF),原始矩,衰落量(AF),中断概率,平均信道容量,以及认知无线电(CR)能量检测的可能性。数值分析和蒙特卡洛模拟结果被提出来证实分析结果。

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