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A Monte-Carlo approach to lifespan failure performance analysis of the network fabric in modular data centers

机译:蒙特卡洛方法进行模块化数据中心网络结构的寿命失效性能分析

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Data centers have been evolved from a passive element of compute infrastructure to become an active, core part of any ICT solution. In particular, modular data centers (MDCs), which are a promising design approach to improve resiliency of data centers, can play a key role in deploying ICT infrastructure in remote and inhospitable environments in order to take advantage of low temperatures and hydro- and wind-electric capabilities. This is because of capability of the modular data centers to survive even in lack of continuous on site maintenance and support. The most critical part of a data center is its network fabric that could impede the whole system even if all other components are fully functional, assuming that other analyses have been already performed to ensure the reliability of the underlying infrastructure and support systems. In this work, a complete failure analysis of modular data centers using failure models of various components including servers, switches, and links is performed using a proposed Monte-Carlo approach. The proposed Monte-Carlo approach, which is based on the concept of snapshots, allows us to effectively calculate the performance of a design along its lifespan even up to the terminal stages. To show the capabilities of the proposed approach, various network topologies, such as FatTree, BCube, MDCube, and their modifications, are considered. The performance and also the lifespan of each topology design in the presence of failures of their components are studied against the topology parameters.
机译:数据中心已经从计算基础架构的被动元素发展成为任何ICT解决方案的主动核心部分。特别是,模块化数据中心(MDC)是提高数据中心弹性的一种有前途的设计方法,它可以在偏远和荒凉的环境中部署ICT基础架构以发挥低温,水电和风能的优势方面发挥关键作用电气功能。这是因为即使缺乏连续的现场维护和支持,模块化数据中心也能生存。数据中心最关键的部分是其网络结构,即使所有其他组件都可以正常运行,它也可能会妨碍整个系统,前提是已经进行了其他分析以确保基础架构和支持系统的可靠性。在这项工作中,使用提议的蒙特卡洛方法,使用包括服务器,交换机和链接在内的各种组件的故障模型对模块化数据中心进行了完整的故障分析。所提出的基于快照概念的蒙特卡洛方法使我们能够有效地计算设计在整个生命周期甚至终端阶段的性能。为了显示所提出方法的功能,考虑了各种网络拓扑,例如FatTree,BCube,MDCube及其修改。针对拓扑参数,研究了每个拓扑设计在组件故障时的性能以及使用寿命。

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