Energy efficient workload processing in distributed computing environment modeling

L. Globa, Nataliia Gvozdetska
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Abstract

Global digital transformation requires more productive large scale distributed systems. Such systems should meet lots of requirements, such as high availability, low latency, reliability. However, new challenges become more and more important nowadays. One of them is energy efficiency of large scale computing systems. Many service providers prefer to use cheap commodity servers in their distributed infrastructure, what makes the problem of energy efficiency even harder because of hardware inhomogeneity. In this chapter an approach to finding balance between performance and energy efficiency requirements within inhomogeneous distributed computing environment is proposed. The main idea of the proposed approach is to use each node’s individual energy consumption models in order to generate distributed system scaling patterns based on the statistical daily workload, and then adjust these patterns to match the current workload, while using PCPB scheduling strategy to optimize hardware utilization. An approach is tested using Matlab modelling. As a result of applying the proposed approach, large-scale distributed computing systems save energy while maintaining a fairly high level of performance and meeting the requirements of the service level agreement (SLA).
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分布式计算环境建模中的高效工作负载处理
全球数字化转型需要更高效的大规模分布式系统。这样的系统应该满足很多需求,比如高可用性、低延迟、可靠性。然而,如今新的挑战变得越来越重要。其中之一是大规模计算系统的能源效率。许多服务提供商更喜欢在他们的分布式基础设施中使用廉价的商品服务器,这使得由于硬件的不同质性,能源效率问题变得更加困难。在本章中,提出了一种在非均匀分布式计算环境中寻找性能和能源效率需求之间平衡的方法。该方法的主要思想是利用每个节点的单个能耗模型,根据统计的每日工作负载生成分布式系统扩展模式,然后根据当前工作负载对这些模式进行调整,同时使用PCPB调度策略优化硬件利用率。采用Matlab建模对该方法进行了测试。由于采用了所提出的方法,大规模分布式计算系统在保持相当高的性能水平和满足服务水平协议(SLA)要求的同时节省了能源。
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