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Evaluating Approaches for Performance Prediction in Virtualized Environments

机译:虚拟环境中性能预测的评估方法

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Performance management and performance prediction of services deployed in virtualized environments is a challenging task. On the one hand, the virtualization layer makes the estimation of performance model parameters difficult and inaccurate. On the other hand, it is difficult to model the hyper visor scheduler in a representative and practically feasible manner. In this paper, we describe how to obtain relevant parameters, such as the virtualization overhead, depending on the amount and type of available monitoring data. We adapt classical queueing-theory-based modeling techniques to make them usable for different configurations of virtualized environments. We provide answers how to include the virtualization overhead into queueing network models, and how to take the contention between different VMs into account. Finally, we evaluate our approach in representative scenarios based on the SPECjEnterprise2010 standard benchmark and XenServer 5.5, showing significant improvements in the prediction accuracy and discussing further open issues for performance prediction in virtualized environments.
机译:在虚拟化环境中部署的服务的性能管理和性能预测是一项艰巨的任务。一方面,虚拟化层使性能模型参数的估计变得困难且不准确。另一方面,很难以代表性且实际可行的方式对系统管理程序调度程序进行建模。在本文中,我们描述了如何根据可用监视数据的数量和类型获取相关参数,例如虚拟化开销。我们采用基于经典排队理论的建模技术,以使其可用于虚拟化环境的不同配置。我们提供了有关如何将虚拟化开销纳入排队网络模型的答案,以及如何考虑不同VM之间的竞争的答案。最后,我们基于SPECjEnterprise2010标准基准测试和XenServer 5.5在代表性方案中评估我们的方法,显示了预测准确性的显着提高,并讨论了虚拟环境中性能预测的其他未解决问题。

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