Efficient Strategies of VMs Scheduling Based on Physicals Resources and Temperature Thresholds

Djouhra Dad, Ghalem Belalem
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引用次数: 3

Abstract

Cloud computing offers a variety of services, including the dynamic availability of computing resources. Its infrastructure is designed to support the accessibility and availability of various consumer services via the Internet. The number of data centers allow the allocation of the applications, and the process of data in the cloud is increasing over time. This implies high energy consumption, thus contributing to large emissions of CO2 gas. For this reason, solutions are needed to minimize this power consumption, such as virtualization, migration, consolidation, and efficient traffic-aware virtual machine scheduling. In this article, the authors propose two efficient strategies for VM scheduling. SchedCT approach is based on dynamic CPU utilization and temperature thresholds. SchedCR approach takes into consideration dynamic CPU utilization, RAM capacity, and temperature thresholds. These approaches have efficiently decreased the energy consumption of the data centers, the number of VM migrations, and SLA violations, and this reduces, therefore, the emission of CO2 gas.
基于物理资源和温度阈值的高效虚拟机调度策略
云计算提供各种服务,包括计算资源的动态可用性。它的基础设施旨在通过Internet支持各种消费者服务的可访问性和可用性。数据中心的数量允许应用程序的分配,并且云中的数据处理随着时间的推移而增加。这意味着高能耗,从而导致大量二氧化碳气体排放。出于这个原因,需要最小化这种功耗的解决方案,例如虚拟化、迁移、整合和高效的流量感知虚拟机调度。在本文中,作者提出了两种有效的虚拟机调度策略。SchedCT方法基于动态CPU利用率和温度阈值。SchedCR方法考虑了动态CPU利用率、RAM容量和温度阈值。这些方法有效地降低了数据中心的能耗、VM迁移数量和SLA违规,从而减少了CO2气体的排放。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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