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An optimization framework for data centers to minimize electric bill under day-ahead dynamic energy prices while providing regulation services

机译:用于数据中心的优化框架,以最大限度地减少在提前的动态能源价格下的电信账单,同时提供规则服务

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Considering the growing number of Internet and cloud computing data centers in operation today and the high, yet flexible· data center electric load, data centers can be good candidates to offer ancillary services and respond to regulation signals in a smart grid This paper considers a problem whereby the smart grid employs both day-ahead dynamic energy prices and regulation signals to incentivize (cloud) data centers to simultaneously reduce their energy consumptions and participate in an ancillary service market A data center controller schedules task dispatch and performs resource allocation in order to minimize the overall cost, which is the total electricity cost based on time-of-use energy prices minus any monetary compensations that data center may receive due to offering ancillary services. Moreover, the data center must satisfy average latency requirements in processing requests as specified in service-level agreements with clients. A two-tier hierarchical solution is presented for the data center controller, which achieves optimality in minimizing the overall cost with polynomial time complexity. Experimental results on Google trace demonstrate the effectiveness of the proposed solution in minimizing the overall cost in the data center.
机译:考虑到今天的运营中越来越多的互联网和云计算数据中心和高但灵活·数据中心电负载,数据中心可以是良好的候选人,以提供辅助服务,并在智能电网中响应该文件的调节信号,这篇论文考虑了问题在那里,智能电网使用日前的动态能源价格和监管信号来激励(云)数据中心同时降低其能耗并参与辅助服务市场数据中心控制器时间表任务调度并执行资源分配以最小化整体成本,这是基于使用时间的能源价格的总电费减去数据中心可能因提供辅助服务而获得的任何货币补偿。此外,数据中心必须满足与客户端的服务级别协议中指定的处理请求中的平均延迟要求。为数据中心控制器提出了双层分层解决方案,其在最小化多项式时间复杂度最小化整体成本时实现了最佳性。 Google Trace上的实验结果证明了提出的解决方案在最小化数据中心的总体成本方面的有效性。

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