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Minimizing Electricity Cost: Optimization of Distributed Internet Data Centers in a Multi-Electricity-Market Environment

机译:最小化电费:在多电市场环境中优化分布式Internet数据中心

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The study of Cyber-Physical System (CPS) has been an active area of research. Internet Data Center (IDC) is an important emerging Cyber-Physical System. As the demand on Internet services drastically increases in recent years, the power used by IDCs has been skyrocketing. While most existing research focuses on reducing power consumptions of IDCs, the power management problem for minimizing the total electricity cost has been overlooked. This is an important problem faced by service providers, especially in the current multi-electricity market, where the price of electricity may exhibit time and location diversities. Further, for these service providers, guaranteeing quality of service (i.e. service level objectives-SLO) such as service delay guarantees to the end users is of paramount importance. This paper studies the problem of minimizing the total electricity cost under multiple electricity markets environment while guaranteeing quality of service geared to the location diversity and time diversity of electricity price. We model the problem as a constrained mixed-integer programming and propose an efficient solution method. Extensive evaluations based on real-life electricity price data for multiple IDC locations illustrate the efficiency and efficacy of our approach.
机译:网络物理系统(CPS)的研究一直是活跃的研究领域。 Internet数据中心(IDC)是重要的新兴网络物理系统。近年来,随着对Internet服务的需求急剧增加,IDC所使用的功能正在飞速增长。尽管大多数现有研究都集中在降低IDC的功耗上,但是使总电力成本最小化的电源管理问题却被忽略了。这是服务提供商面临的重要问题,尤其是在当前的多电市场中,在该市场中,电价可能表现出时间和位置的多样性。此外,对于这些服务提供商而言,保证服务质量(即,服务水平目标-SLO),例如对最终用户的服务延迟保证,是至关重要的。本文研究了在多重电力市场环境下使总电力成本最小化的问题,同时又要保证适应电价的地区多样性和时间多样性的服务质量。我们将该问题建模为约束混合整数规划,并提出了一种有效的解决方法。根据真实的多个IDC地点的电价数据进行的广泛评估说明了我们方法的效率和功效。

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