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Importance Sampling for a Markov Modulated Queuing Network with Customer Impatience until the End of Service

机译:马尔科夫调制排队网络在客户不耐烦的情况下的重要性抽样,直到服务终止

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For more than two decades, there has been a growing of interest in fast simulation techniques for estimating probabilities of rare events in queuing networks. Importance sampling is a variance reduction method for simulating rare events. The present paper carries out strict deadlines to the paper by Dupuis et al for a two node tandem network with feedback whose arrival and service rates are modulated by an exogenous finite state Markov process. We derive a closed form solution for the probability of missing deadlines. Then we have employed the results to an importance sampling technique to estimate the probability of total population overflow which is a rare event. We have also shown that the probability of this rare event may be affected by various deadline values.
机译:在过去的二十多年中,人们对快速仿真技术越来越感兴趣,这些技术用于估计排队网络中稀有事件的概率。重要性采样是一种用于减少稀有事件的方差减少方法。本文对Dupuis等人针对具有反馈的两节点串联网络的论文执行了严格的截止日期,该反馈的到达和服务速率由外生有限状态Markov过程进行调制。我们针对缺少最后期限的可能性导出了封闭式解决方案。然后,我们将结果应用于重要性采样技术,以估计总人口溢出的可能性,这是罕见的事件。我们还表明,此罕见事件的可能性可能会受到各种截止日期值的影响。

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