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A Prediction Based Server Cluster Capacity Planning Strategy

机译:基于预测的服务器集群容量规划策略

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Cloud computing is an Internet-based service which provides shared virtual resource and data to accomplish certain computation. In order for the servers to have sufficient resources when the request arrives, as well as save server resources as much as possible, we propose a prediction-based server capacity planning and dynamic scheduling algorithm. There are mainly three steps in our capacity planning algorithm. The first step characterizes the given data on several indices and then present an effective model in order to predict the oncoming demands in the near future. The second step generates the workload of servers combined with the predicted demands and then make capacity planning based on this workload. Thus it's obvious that the effectiveness of capacity planning depends on the accuracy of prediction to a great extent. Finally, a demand prediction based strategy on workload allocation is brought out. A dynamic resource allocation strategy is given to ensure the quality of service at any moment in future meanwhile taking energy consumption into consideration. The results of the experiment show that the required server number decreases by 33% after the prediction-based capacity planning applying on server scheduling.
机译:云计算是基于Internet的服务,它提供共享的虚拟资源和数据来完成某些计算。为了使服务器在请求到达时有足够的资源,并尽可能节省服务器资源,我们提出了一种基于预测的服务器容量规划和动态调度算法。我们的容量规划算法主要包括三个步骤。第一步在几个指标上表征给定的数据,然后提出一个有效的模型,以便预测不久的将来的需求。第二步生成服务器的工作负载并结合预测的需求,然后根据此工作负载进行容量规划。因此,很明显,容量规划的有效性在很大程度上取决于预测的准确性。最后,提出了基于需求预测的工作量分配策略。在考虑能源消耗的同时,提出了一种动态的资源分配策略,以确保将来任何时候的服务质量。实验结果表明,将基于预测的容量规划应用于服务器调度后,所需的服务器数量减少了33%。

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