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A Universal Splitting Estimator for the Performance Evaluation of Wireless Communications Systems

机译:用于无线通信系统性能评估的通用分割估计

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摘要

We propose a unified rare-event estimator for the performance evaluation of wireless communication systems. The estimator is derived from the well-known multilevel splitting algorithm. In its original form, the splitting algorithm cannot be applied to the simulation and estimation of time-independent problems, because splitting requires an underlying continuous-time Markov process whose trajectories can be split. We tackle this problem by embedding the static problem of interest within a continuous-time Markov process, so that the target time-independent distribution becomes the distribution of the Markov process at a given time instant. The main feature of the proposed multilevel splitting algorithm is its large scope of applicability. For illustration, we show how the same algorithm can be applied to the problem of estimating the cumulative distribution function (CDF) of sums of random variables (RVs), the CDF of partial sums of ordered RVs, the CDF of ratios of RVs, and the CDF of weighted sums of Poisson RVs. We investigate the computational efficiency of the proposed estimator via a number of simulation studies and find that it compares favorably with existing estimators.
机译:我们提出了一个统一的稀有事件估计,用于无线通信系统的性能评估。估算器来自众所周知的多级分裂算法。在其原始形式中,拆分算法不能应用于模拟和估计时间无关的问题,因为分裂需要底层连续时间马尔可夫过程,其轨迹可以分割。我们通过将静态问题嵌入连续时间马尔可夫过程中的静态问题来解决这个问题,使得目标时间 - 独立分布成为马尔可夫过程的分布在给定的时间瞬间。所提出的多级分裂算法的主要特点是其适用性的大范围。出于说明,我们展示了如何应用于估计随机变量(RVS)和的累积分布函数(CDF)的问题的问题,其中有序RV的部分和的CDF,RV的CDF,以及泊松RVS加权和加权和的CDF。我们通过多种模拟研究调查所提出的估计器的计算效率,并发现它与现有估计有利。

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