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Optimal Load Balancing and Energy Cost Management for Internet Data Centers in Deregulated Electricity Markets

机译:放松管制的电力市场中互联网数据中心的最佳负载平衡和能源成本管理

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Along with the rapid increasing energy consumption, the energy cost of Internet data centers (IDCs) has been skyrocketing. A novel scheme of geographical load balancing was proposed to reduce electricity bills for service providers. However, one important challenge faced by service providers has not been considered properly. In service systems, the service delay faced by consumers includes the queuing delay and the transmission delay. While existing work only consider the queuing delay, the transmission delay introduced by geographical load balancing has been overlooked. It is one of the most important factors affecting the quality of service for real-time service systems. In this paper, we take the transmission delay into our design consideration and formulate a mixed-integer nonlinear programming (MINLP) problem with coupled constraint to achieve the optimal load balancing and energy cost management for IDCs while meeting the service-level agreements (SLA) of consumers. A novel heuristic based branch and bound with feedback (HBBF) algorithm is proposed to decouple the MINLP problem with coupled constraint efficiently. Extensive performance evaluations based on real electricity price data and site-to-site transmission delay data demonstrate the effectiveness of our proposed algorithm.
机译:随着能源消耗的快速增长,互联网数据中心(IDC)的能源成本一直在飞涨。提出了一种新的地理负载平衡方案,以减少服务提供商的电费。但是,服务提供商面临的一项重要挑战尚未得到适当考虑。在服务系统中,消费者面临的服务延迟包括排队延迟和传输延迟。尽管现有工作仅考虑排队延迟,但地理负载平衡引入的传输延迟已被忽略。这是影响实时服务系统的服务质量的最重要因素之一。在本文中,我们将传输延迟纳入设计考虑,并制定了具有耦合约束的混合整数非线性规划(MINLP)问题,以在满足服务水平协议(SLA)的同时实现IDC的最佳负载平衡和能源成本管理的消费者。提出了一种新颖的基于启发式反馈的分支与边界(HBBF)算法,以有效解耦具有耦合约束的MINLP问题。基于实际电价数据和站点间传输延迟数据的广泛性能评估证明了该算法的有效性。

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