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A Virtual Machine Migration Strategy Based on Time Series Workload Prediction Using Cloud Model

机译:基于云模型的时间序列工作量预测的虚拟机迁移策略

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Aimed at resolving the issues of the imbalance of resources and workloads at data centers and the overhead together with the high cost of virtual machine (VM) migrations, this paper proposes a new VM migration strategy which is based on the cloud model time series workload prediction algorithm. By setting the upper and lower workload bounds for host machines, forecasting the tendency of their subsequent workloads by creating a workload time series using the cloud model, and stipulating a general VM migration criterion workload-aware migration (WAM), the proposed strategy selects a source host machine, a destination host machine, and a VM on the source host machine carrying out the task of the VM migration. Experimental results and analyses show, through comparison with other peer research works, that the proposed method can effectively avoid VM migrations caused by momentary peak workload values, significantly lower the number of VM migrations, and dynamically reach and maintain a resource and workload balance for virtual machines promoting an improved utilization of resources in the entire data center.
机译:为了解决数据中心资源和工作负载不平衡以及开销增加以及虚拟机(VM)迁移成本高的问题,本文提出了一种基于云模型时间序列工作量预测的新VM迁移策略算法。通过设置主机的工作负载上下限,通过使用云模型创建工作负载时间序列来预测其后续工作负载的趋势,并规定通用的VM迁移标准工作负载感知迁移(WAM),该策略选择了源主机,目标主机以及执行虚拟机迁移任务的源主机上的VM。实验结果和分析表明,与其他同行研究相比,该方法可以有效避免瞬时工作负载峰值导致的虚拟机迁移,显着减少虚拟机迁移次数,并动态达到并维护虚拟机的资源和工作负载平衡机器可以提高整个数据中心的资源利用率。

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