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Energy-efficient adaptive networked datacenters for the QoS support of real-time applications

机译:高效节能的自适应联网数据中心,可为实时应用提供QoS支持

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摘要

In this paper, we develop the optimal minimum-energy scheduler for the adaptive joint allocation of the task sizes, computing rates, communication rates and communication powers in virtualized networked data centers (VNetDCs) that operate under hard per-job delay-constraints. The considered VNetDC platform works at the Middleware layer of the underlying protocol stack. It aims at supporting real-time stream service (such as, for example, the emerging big data stream computing (BDSC) services) by adopting the software-as-a-service (SaaS) computing model. Our objective is the minimization of the overall computing-plus-communication energy consumption. The main new contributions of the paper are the following ones: (ⅰ) the computing-plus-communication resources are jointly allotted in an adaptive fashion by accounting in real-time for both the (possibly, unpredictable) time fluctuations of the offered workload and the reconfiguration costs of the considered VNetDC platform; (ⅱ) hard per-job delay-constraints on the overall allowed computing-plus-communication latencies are enforced; and, (ⅲ) to deal with the inherently nonconvex nature of the resulting resource optimization problem, a novel solving approach is developed, that leads to the lossless decomposition of the afforded problem into the cascade of two simpler sub-problems. The sensitivity of the energy consumption of the proposed scheduler on the allowed processing latency, as well as the peak-to-mean ratio (PMR) and the correlation coefficient (i.e., the smoothness) of the offered workload is numerically tested under both synthetically generated and real-world workload traces. Finally, as an index of the attained energy efficiency, we compare the energy consumption of the proposed scheduler with the corresponding ones of some benchmark static, hybrid and sequential schedulers and numerically evaluate the resulting percent energy gaps.
机译:在本文中,我们针对在硬每作业延迟约束下运行的虚拟化网络数据中心(VNetDC)中的任务大小,计算速率,通信速率和通信功率的自适应联合分配,开发了最佳最小能量调度程序。所考虑的VNetDC平台在基础协议栈的中间件层工作。它旨在通过采用软件即服务(SaaS)计算模型来支持实时流服务(例如新兴的大数据流计算(BDSC)服务)。我们的目标是最大程度地减少总体计算加通信能耗。该论文的主要新贡献如下:(ⅰ)通过实时考虑所提供工作负载的(可能是不可预测的)时间波动和实时计算,以自适应方式联合分配计算加通信资源。所考虑的VNetDC平台的重新配置成本; (ⅱ)对总的允许的计算加通信延迟实施严格的每作业延迟限制; (ⅲ)为解决由此产生的资源优化问题的内在非凸性,开发了一种新颖的求解方法,该方法将所提供的问题无损分解为两个较简单的子问题。拟议的调度程序的能耗对允许的处理等待时间的敏感性以及所提供工作负载的峰均比(PMR)和相关系数(即平滑度)均在合成生成的两种情况下进行了数值测试和实际的工作负载跟踪。最后,作为获得的能源效率的指标,我们将拟议的调度程序的能耗与一些基准静态,混合和顺序调度程序中的相应能耗进行了比较,并通过数值评估了得出的能隙百分比。

著录项

  • 来源
    《Journal of supercomputing》 |2015年第2期|448-478|共31页
  • 作者单位

    Department of Information, Electrical and Telecommunication (DIET) engineering, 'Sapienza' University of Rome, Via Eudossiana 18, 00184 Rome, Italy;

    Department of Information, Electrical and Telecommunication (DIET) engineering, 'Sapienza' University of Rome, Via Eudossiana 18, 00184 Rome, Italy;

    Department of Information, Electrical and Telecommunication (DIET) engineering, 'Sapienza' University of Rome, Via Eudossiana 18, 00184 Rome, Italy;

    Department of Information, Electrical and Telecommunication (DIET) engineering, 'Sapienza' University of Rome, Via Eudossiana 18, 00184 Rome, Italy;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Big data stream computing (BDSC); Virtualized networked data centers; Real-time cloud computing; Adaptive resource management; Energy saving;

    机译:大数据流计算(BDSC);虚拟化的网络数据中心;实时云计算;自适应资源管理;节约能源;

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