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首页> 外文期刊>IEEE Transactions on Parallel and Distributed Systems >Application Scheduling, Placement, and Routing for Power Efficiency in Cloud Data Centers
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Application Scheduling, Placement, and Routing for Power Efficiency in Cloud Data Centers

机译:应用调度,放置和路由,以提高云数据中心的电源效率

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Increased power usage and network performance degradation due to best-effort bandwidth sharing significantly affect tenancy cost, cloud adoption, and data center efficiencies. In this article, we propose a novel Sliding-Scheduled Tenant request model which enables tenants to specify the required duration of their application within a certain window, in addition to its resource requirement graph. We investigate the sliding-scheduled application placement and routing problem, which selects the start-time of requests within their specified time-window to reserve both server and network resources for their required duration, and therefore provide resource guarantees with predictable performance. Using the multi-component utilization-based power model, we formulate the problem as an optimization problem that maximizes the acceptance rate while consuming as low power as possible. We develop fast online heuristics that adopt power, acceptance and adaptive spread-based scheduling policies while allocating the resources with the consideration of request duration and current shutdown-time of the devices. We demonstrate the effectiveness of the proposed algorithms in terms of power saving and acceptance rate, 1) for small data centers, by comparing their performance with the numerical results obtained from solving the optimization problem using CPLEX and 2) for large data centers using comprehensive simulation results.
机译:由于尽力而为的带宽共享而导致的用电量增加和网络性能下降,极大地影响了租赁成本,云采用和数据中心效率。在本文中,我们提出了一种新颖的按计划调度的租户请求模型,除了其资源需求图之外,该模型还使租户可以在某个窗口内指定其应用程序的要求持续时间。我们研究了滑动调度的应用程序放置和路由问题,该问题选择请求在其指定时间窗口内的开始时间,以在所需的持续时间内保留服务器和网络资源,从而为资源保证提供可预测的性能。使用基于多组件利用率的功率模型,我们将该问题公式化为一个优化问题,该问题可以在最大程度地降低功耗的同时最大化接受率。我们开发快速的在线启发式方法,该方法采用功率,接受和基于自适应扩展的调度策略,同时在分配资源时要考虑设备的请求持续时间和当前关闭时间。我们通过节电和验收率来证明所提出算法的有效性,1)通过将其性能与使用CPLEX解决优化问题所获得的数值结果进行比较,并比较其性能; 2)使用综合仿真来解决大型数据中心的问题。结果。

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