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Optimization-based workload distribution in geographically distributed data centers: A survey

机译:基于优化的工作量分布在地理分布式数据中心中:调查

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Summary Energy efficiency is a contemporary and challenging issue in geographically distributed data centers. These data centers consume significantly high energy and cast a negative impact on the energy resources and environment. To minimize the energy cost and the environmental impacts, Internet service providers use different approaches such as geographical load balancing (GLB). GLB refers to the placement of data centers in diverse geolocations to exploit variations in electricity prices with the objective to minimize the total energy cost. GLB helps to minimize the overall energy cost, achieve quality of service, and maximize resource utilization in geo‐distributed data centers by employing optimal workload distribution and resource utilization in the real time. In this paper, we summarize various optimization‐based workload distribution strategies and optimization techniques proposed in recent research works based on commonly used optimization factors such as workload type, load balancer, availability of renewable energy, energy storage, and data center server specification in geographically distributed data centers. The survey presents a systemized and a novel taxonomy of workload distribution in data centers. Moreover, we also debate various challenges and open research issues along with their possible solutions.
机译:总结能源效率是地理分布式数据中心的当代和具有挑战性的问题。这些数据中心消耗显着高的能量,对能源和环境产生负面影响。为了最大限度地减少能源成本和环境影响,互联网服务提供商使用不同的方法,如地理负载平衡(GLB)。 GLB是指在各种地理割礼中安置数据中心,以利用电价的变化,目的是最大限度地减少总能源成本。 GLB有助于最大限度地减少整体能源成本,实现服务质量,并通过在实时采用最佳工作量分配和资源利用来最大限度地利用地理分布式数据中心。在本文中,我们总结了基于常用优化因子(如工作负载类型,负载平衡器,可再生能源,能量存储和数据中心服务器规范)的常用优化因子,近期研究工作中提出的各种优化的工作量分发策略和优化技术。分布式数据中心。该调查介绍了数据中心的系统化和新的工作量分布分类。此外,我们还讨论了各种挑战和开放研究问题以及可能的解决方案。

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