一种使用动态数据交换的云数据中心优化方法

Efstratios Rappos, Stephan Robert, R. Riedi
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引用次数: 4

摘要

分布式数据中心体系结构是为了更高效、更经济地存储数据而发展起来的。在许多分布式存储模型中,目标是以这样一种方式存储数据,以便将存储成本降至最低,并保持增加的冗余需求。但是,许多方法没有充分考虑与向最终用户交付数据相关的问题以及由此产生的相关成本。我们提出了一个整数规划优化模型,用于确定云数据服务器网络中数据组件的最佳分配,从而使额外存储的总成本、估计的数据检索成本和网络延迟惩罚最小化。该方法适用于云数据服务器的周期性动态重新配置,以便在发生本地化数据请求峰值时,可以将数据移动到更近或更便宜的数据服务器,从而降低成本并提高效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Cloud data center optimization approach using dynamic data interchanges
Distributed data center architectures have been recently developed for a more efficient and economical storage of data. In many models of distributed storage, the aim is to store the data in such a way so that the storage costs are minimized and increased redundancy requirements are maintained. However, many approaches do not fully consider issues relating to delivering the data to the end user and the associated costs that this creates. We present an integer programming optimization model for determining the optimal allocation of data components among a network of Cloud data servers in such a way that the total costs of additional storage, estimated data retrieval costs and network delay penalties is minimized. The method is suitable for periodic dynamic reconfiguration of the Cloud data servers, so that the when localized data request spikes occur the data can be moved to a closer or cheaper data server for cost reduction and increased efficiency.
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