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Diffusion Approximation Models for Cloud Computations with Task Migrations

机译:具有任务迁移的云计算扩散近似模型

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This paper proposes a novel analytical model for performance evaluation of cloud computations using G/G/m/m+K queue. The cloud computing infrastructure allows to execute the computations on virtual machines, which can be deployed, turned off or migrated between the physical servers. The performance evaluation of such systems is complicated, since the job arrival process as well as service time may have different distributions. The approximation approach allows us to make previously presented in literature models more general by assumption of general input flows and allowing analytical approach to transient analysis.
机译:本文提出了一种使用G / G / m / m + K队列的云计算性能评估的新型分析模型。云计算基础架构允许在虚拟机上执行计算,可以在物理服务器之间部署,关闭或迁移这些虚拟机。这种系统的性能评估很复杂,因为工作到达过程以及服务时间可能具有不同的分布。近似方法使我们能够通过假设通用输入流并允许采用分析方法进行瞬态分析,从而使文献模型中先前介绍的方法更加通用。

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