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On the Efficient Simulation of the Distribution of the Sum of Gamma–Gamma Variates With Application to the Outage Probability Evaluation Over Fading Channels

机译:伽玛-伽玛变量的和分布的高效仿真及其在衰落信道中断概率评估中的应用

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摘要

The Gamma–Gamma distribution has recently emerged in a number of applications ranging from modeling scattering and reverberation in sonar and radar systems to modeling atmospheric turbulence in wireless optical channels. In this respect, assessing the outage probability achieved by some diversity techniques over this kind of channels is of major practical importance. In many circumstances, this is related to the difficult question of analyzing the statistics of a sum of Gamma–Gamma random variables. Answering this question is not a simple matter. This is essentially because outage probabilities encountered in practice are often very small, and hence, the use of classical Monte Carlo methods is not a reasonable choice. This lies behind the main motivation of this paper. In particular, this paper proposes a new approach to estimate the left tail of the sum of Gamma–Gamma variates. More specifically, we propose robust importance sampling schemes that efficiently evaluates the outage probability of diversity receivers over Gamma–Gamma fading channels. The proposed estimators satisfy the well-known bounded relative error criterion for both maximum ratio combining and equal gain combining cases. We show the accuracy and the efficiency of our approach compared with naive Monte Carlo via some selected numerical simulations.
机译:从声纳和雷达系统中的散射和混响建模到无线光信道中的大气湍流建模,Gamma-Gamma分布最近在许多应用中出现。在这方面,评估通过某些分集技术在此类通道上实现的中断概率具有重大的实际意义。在许多情况下,这与分析Gamma–Gamma随机变量之和的统计数据这一难题有关。回答这个问题不是一件容易的事。这主要是因为在实践中遇到的中断概率通常很小,因此,使用经典的蒙特卡洛方法不是一个合理的选择。这是本文主要动机的背后。特别是,本文提出了一种估计Gamma-Gamma变量总和的左尾的新方法。更具体地说,我们提出了鲁棒的重要性采样方案,可以有效地评估Gamma–Gamma衰落信道上分集接收机的中断概率。对于最大比率合并和等增益合并情况,所提出的估计器均满足众所周知的有界相对误差准则。通过一些选定的数值模拟,我们证明了与朴素的蒙特卡洛相比,我们的方法的准确性和效率。

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