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Energy-efficient and thermal-aware resource management for heterogeneous datacenters

机译:异构数据中心的节能和热感知资源管理

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We propose in this paper to study the energy-, thermal- and performance-aware resource management in heterogeneous datacenters. Witnessing the continuous development of heterogeneity in datacenters, we are confronted with their different behaviors in terms of performance, power consumption and thermal dissipation: indeed, heterogeneity at server level lies both in the computing infrastructure (computing power, electrical power consumption) and in the heat removal systems (different enclosure, fans, thermal sinks). Also the physical locations of the servers become important with heterogeneity since some servers can (over)heat others. While many studies address independently these parameters (most of the time performance and power or energy), we show in this paper the necessity to tackle all these aspects for an optimal resource management of the computing resources. This leads to improved energy usage in a heterogeneous datacenter including the cooling of the computer rooms. We build our approach on the concept of heat distribution matrix to handle the mutual influence of the servers, in heterogeneous environments, which is novel in this context. We propose a heuristic to solve the server placement problem and we design a generic greedy framework for the online scheduling problem. We derive several single-objective heuristics (for performance, energy, cooling) and a novel fuzzy-based priority mechanism to handle their tradeoffs. Finally, we show results using extensive simulations fed with actual measurements on heterogeneous servers.
机译:我们建议在本文中研究异构数据中心中的能源,热能和性能感知资源管理。见证数据中心异构性的不断发展,我们在性能,功耗和散热方面面临着不同的行为:确实,服务器级别的异构性既存在于计算基础架构(计算能力,电力消耗)中,也存在于散热系统(不同的机壳,风扇,散热器)。此外,服务器的物理位置对于异构性也变得很重要,因为某些服务器可能会(另一些)过热。尽管许多研究独立地解决了这些参数(大多数时间性能和功率或能量),但我们在本文中显示了解决所有这些方面的必要性,以实现对计算资源的最佳资源管理。这样可以改善异构数据中心的能源使用情况,包括计算机机房的冷却。我们基于热分布矩阵的概念来构建方法,以处理异构环境中服务器的相互影响,这在此情况下是新颖的。我们提出一种启发式方法来解决服务器放置问题,并为在线调度问题设计一个通用的贪婪框架。我们推导了几种单目标启发式算法(针对性能,能量,冷却)和一种新颖的基于模糊的优先级机制来权衡它们的取舍。最后,我们使用广泛的模拟显示结果,这些模拟提供了异构服务器上的实际测量结果。

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