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A prediction based energy conserving resources allocation scheme for cloud computing

机译:基于预测的云计算节能资源分配方案

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As new cloud computing technologies continue to be developed, the systems are more and more efficient. This has enriched the applications of cloud computing, ranging from industry, business, to scientific fields. Nowadays cloud computing has become one of the important research issues in the computing and computer network fields. A cloud computing system consists of several independent servers. By way of the virtualization technique, the system manages all of the computing resources efficiently to process each user demand. However, a great number of operating servers will bring considerable power consumption. Efficient resource allocation methods design is one of the important solution approaches to relieve this situation. A resource allocation method will generally allocate each arriving job to proper available computing resources (the virtual machines, VMs) based on the consideration of the related features (such as the job size, the arrival time, etc.) of jobs in the waiting queue. Although the future arrival jobs are unknown, they will significantly affect the resulting performance of the resource allocation. In this paper, we develop an Energy Conserving Resource Allocation Scheme with Prediction (ECRASP) for cloud computing systems. The prediction mechanism can predict the trend of arriving jobs (dense or sparse) in the near future and their related features, so as with help the system to make adequate decisions. Simulation results show that our proposed ECRASP method performs well compared to conventional resource allocation algorithms in the energy conserving comparisons.
机译:随着新的云计算技术的不断发展,系统变得越来越高效。这丰富了从行业,商业到科学领域的云计算应用。如今,云计算已成为计算和计算机网络领域的重要研究问题之一。云计算系统由几个独立的服务器组成。通过虚拟化技术,系统可以有效地管理所有计算资源,以处理每个用户需求。但是,大量运行中的服务器会带来可观的功耗。高效的资源分配方法设计是缓解这种情况的重要解决方案之一。资源分配方法通常会根据对等待队列中作业的相关功能(例如作业大小,到达时间等)的考虑,将每个到达的作业分配给适当的可用计算资源(虚拟机,VM) 。尽管未来的到来作业未知,但它们将显着影响资源分配的结果性能。在本文中,我们为云计算系统开发了一种带预测的节能资源分配方案(ECRASP)。预测机制可以预测近期内到达的工作(密集或稀疏)的趋势及其相关特征,从而帮助系统做出适当的决策。仿真结果表明,与传统的资源分配算法相比,本文提出的ECRASP方法在节能方面具有较好的性能。

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