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Traffic Intensity Estimation in Finite Markovian Queueing Systems

机译:有限马尔可夫排队系统中的交通强度估计

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摘要

In many everyday situations in which a queue is formed, queueing models may play a key role. By using such models, which are idealizations of reality, accurate performance measures can be determined, such as traffic intensity (rho), which is defined as the ratio between the arrival rate and the service rate. An intermediate step in the process includes the statistical estimation of the parameters of the proper model. In this study, we are interested in investigating the finite-sample behavior of some well-known methods for the estimation of rho for single-server finite Markovian queues or, in Kendall notation, M/M/1/K queues, namely, the maximum likelihood estimator, Bayesian methods, and bootstrap corrections. We performed extensive simulations to verify the quality of the estimators for samples up to 200. The computational results show that accurate estimates in terms of the lowest mean squared errors can be obtained for a broad range of values in the parametric space by using the Jeffreys' prior. A numerical example is analyzed in detail, the limitations of the results are discussed, and notable topics to be further developed in this research arca are presented.
机译:在许多形成队列的日常情况下,排队模型可能起着关键作用。通过使用这些模型,它们是现实的理想化,可以确定准确的性能指标,例如交通强度(rho),它被定义为到达率和服务率之间的比率。该过程的中间步骤包括对适当模型的参数进行统计估计。在这项研究中,我们有兴趣研究一些众所周知的方法的有限样本行为,这些方法用于估计单服务器有限Markovian队列或以Kendall表示法的M / M / 1 / K队列的rho,即最大似然估计器,贝叶斯方法和自举校正。我们进行了广泛的仿真,以验证多达200个样本的估计量的质量。计算结果表明,通过使用Jeffreys's,可以在参数空间中的广泛范围内获得关于最低均方误差的准确估计。优先。数值例子进行了详细分析,讨论了结果的局限性,并提出了本研究领域有待进一步发展的重要课题。

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  • 来源
    《Mathematical Problems in Engineering》 |2018年第7期|3018758.1-3018758.15|共15页
  • 作者单位

    Univ Fed Minas Gerais, Dept Estat, BR-31270901 Belo Horizonte, MG, Brazil;

    Univ Fed Para, Proreitoria Planejamento & Desenvolvimento, BR-66075110 Belem, PA, Brazil;

    Univ Estadual Montes Claros, Dept Ciencia Comp, BR-39401089 Montes Claros, MG, Brazil;

    Eindhoven Univ Technol, Dept Ind Engn & Innovat Sci, NL-5600 MB Eindhoven, Netherlands;

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