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Modeling Active Virtual Machines on IaaS Clouds Using an M/G/m/m+K Queue

机译:使用 M / G / m / m + K 队列在IaaS云上对活动虚拟机建模

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摘要

This paper develops a novel approximate analytical model to evaluate the performance of active virtual machines in IaaS clouds using an M/G/m/m+K queue. The proposed model, combined with the transform-based analytical approach, enables the computation of the probability distribution of the number of jobs in the system and subsequently a set of performance measures, including the mean number of jobs in the system, the mean response time, the probability of immediate service, and the blocking probability. Compared to the existing Markov models of cloud data centers, our approach can reflect the system behavior more accurately even when the service-time distribution has a large coefficient of variation (> 1.5) in a medium-sized IaaS cloud. Numerical results obtained from the proposed analytical model are verified through extensive simulations under various system parameter settings, and compared with the results from existing models.
机译:本文开发了一种新颖的近似分析模型,可以使用M / G / m / m + K队列评估IaaS云中活动虚拟机的性能。所提出的模型与基于变换的分析方法相结合,可以计算系统中作业数量的概率分布,并随后计算一组性能指标,包括系统中作业的平均数量,平均响应时间,立即服务的可能性和阻止的可能性。与现有的云数据中心的马尔可夫模型相比,即使在中型IaaS云中服务时间分布具有较大的变异系数(> 1.5)时,我们的方法也可以更准确地反映系统行为。在各种系统参数设置下,通过广泛的仿真验证了从所提出的分析模型获得的数值结果,并将其与现有模型的结果进行了比较。

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