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CAWSAC: Cost-Aware Workload Scheduling and Admission Control for Distributed Cloud Data Centers

机译:CAWSAC:分布式云数据中心的成本感知工作负载计划和准入控制

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Multiple heterogeneous applications concurrently run in distributed cloud data centers (CDCs) for better performance and lower cost. There is a highly challenging problem of how to minimize the total cost of a CDCs provider in a market where the bandwidth and energy cost show geographical diversity. To solve the problem, this paper first proposes a revenue-based workload admission control method to judiciously admit requests by considering factors including priority, revenue and the expected response time. Then, this paper presents a cost-aware workload scheduling method to jointly optimize the number of active servers in each CDC, and the selection of Internet service providers for the CDCs provider. Finally, trace-driven simulation results demonstrate that the proposed methods can greatly reduce the total cost and increase the throughput of the CDCs provider in comparison to existing methods.
机译:多个异构应用程序同时在分布式云数据中心(CDC)中运行,以提高性能和降低成本。在带宽和能源成本表现出地域差异的市场中,如何最大程度地降低CDC提供商的总成本存在着极富挑战性的问题。为了解决这个问题,本文首先提出了一种基于收益的工作量接纳控制方法,该方法通过考虑优先级,收益和预期响应时间等因素来明智地接纳请求。然后,本文提出了一种成本意识型工作负载调度方法,以共同优化每个CDC中活动服务器的数量,并为CDC提供者选择Internet服务提供者。最后,跟踪驱动的仿真结果表明,与现有方法相比,所提出的方法可以大大降低总成本,并提高CDC提供者的吞吐量。

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