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Robust Virtual Machine Consolidation for Efficient Energy and Performance in Virtualized Data Centers

机译:强大的虚拟机整合,可在虚拟数据中心实现高效能源和性能

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摘要

Cloud providers use virtualization technologies to provide an isolated execution environment and agile resource provisioning. However, virtualized data centers consume huge amounts of energy, which increases the operational costs. To optimize resource usage and reduce energy consumption of Infrastructure as a Service (IaaS) Cloud, it needs a continuous monitoring and consolidation of VMs using live migration and switching idle hosts to the sleep state. In this paper, we propose a robust consolidation approach to achieve equilibrium between energy and performance. The proposed approach consists of three algorithms: over-utilized host detection, VM selection, and VM placement. Additionally, we implement an adaptive historical window selection algorithm for reducing ineffective VM migration. To validate our approach, we implemented it using Cloud Sim simulator and conducted simulations for different days of a real workload trace of Planet Lab. The results show that our approach reduced the number of power change, the number of migrations, and average SLA violations by 38%, 74.8%, and 31.8%, respectively. Furthermore, it can decrease the energy consumption of network that results from VM migration.
机译:云提供商使用虚拟化技术来提供隔离的执行环境和敏捷的资源配置。但是,虚拟化数据中心会消耗大量能源,从而增加了运营成本。为了优化资源使用并减少基础架构即服务(IaaS)云的能耗,它需要使用实时迁移并将空闲主机切换到睡眠状态来持续监视和整合VM。在本文中,我们提出了一种稳健的合并方法来实现能源和绩效之间的平衡。所提出的方法包括三种算法:过度使用的主机检测,VM选择和VM放置。此外,我们实现了自适应历史窗口选择算法,以减少无效的VM迁移。为了验证我们的方法,我们使用Cloud Sim Simulator实施了该方法,并针对Planet Lab的实际工作负载跟踪的不同日期进行了模拟。结果表明,我们的方法分别减少了38%,74.8%和31.8%的电源更改次数,迁移次数和平均违反SLA的次数。此外,它可以减少由于VM迁移而导致的网络能耗。

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