An Energy-saving Data Transmission Approach Based on Migrating Virtual Machine Technology to Cloud Computing

IF 0.6 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC Recent Advances in Electrical & Electronic Engineering Pub Date : 2023-07-13 DOI:10.2174/2352096516666230713163440
Pundru Chandra Shaker Reddy, Y. Sucharitha
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Abstract

Over the past few years, researchers have greatly focused on increasing the electrical efficiency of large computer systems. Virtual machine (VM) migration helps data centers keep their pages' content updated on a regular basis, which speeds up the time it takes to access data. Offline VM migration is best accomplished by sharing memory without requiring any downtime. The objective of the paper was to reduce energy consumption and deploy a unique green computing architecture. The proposed virtual machine is transferred from one host to another through dynamic mobility. The proposed technique migrates the maximally loaded virtual machine to the least loaded active node, while maintaining the performance and energy efficiency of the data centers. Taking into account the cloud environment, the use of electricity could continue to be critical. These large uses of electricity by the internet information facilities that maintain computing capacity are becoming another major concern. Another way to reduce resource use is to relocate the VM. Using a non-linear forecasting approach, the research presents improved decentralized virtual machine migration (IDVMM) that could mitigate electricity consumption in cloud information warehouses. It minimizes violations of support agreements in a relatively small number of all displaced cases and improves the efficiency of resources. The proposed approach further develops two thresholds to divide overloaded hosts into massively overloaded hosts, moderately overloaded hosts, and lightly overloaded hosts. The migration decision of VMs in all stages pursues the goal of reducing the energy consumption of the network during the migration process. Given ten months of data, actual demand tracing is done through PlanetLab and then assessed using a cloud service.
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一种基于虚拟机技术向云计算迁移的节能数据传输方法
在过去的几年里,研究人员一直致力于提高大型计算机系统的电气效率。虚拟机(VM)迁移可以帮助数据中心定期更新页面内容,从而加快访问数据的时间。脱机VM迁移最好通过共享内存来完成,而不需要任何停机时间。本文的目标是减少能源消耗并部署独特的绿色计算架构。所提出的虚拟机通过动态迁移从一台主机转移到另一台主机。该技术将负载最大的虚拟机迁移到负载最小的活动节点,同时保持数据中心的性能和能源效率。考虑到云环境,电力的使用可能仍然至关重要。这些大量使用电力的互联网信息设施维持计算能力正成为另一个主要问题。另一种减少资源使用的方法是重新定位虚拟机。使用非线性预测方法,研究提出了改进的分散虚拟机迁移(IDVMM),可以减少云信息仓库的电力消耗。它最大限度地减少了在相对少数的流离失所案件中违反支助协定的情况,并提高了资源的效率。该方法进一步发展了两个阈值,将过载主机分为重度过载主机、中度过载主机和轻度过载主机。各个阶段vm的迁移决策都以降低迁移过程中的网络能耗为目标。给定10个月的数据,实际需求跟踪是通过PlanetLab完成的,然后使用云服务进行评估。
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来源期刊
Recent Advances in Electrical & Electronic Engineering
Recent Advances in Electrical & Electronic Engineering ENGINEERING, ELECTRICAL & ELECTRONIC-
CiteScore
1.70
自引率
16.70%
发文量
101
期刊介绍: Recent Advances in Electrical & Electronic Engineering publishes full-length/mini reviews and research articles, guest edited thematic issues on electrical and electronic engineering and applications. The journal also covers research in fast emerging applications of electrical power supply, electrical systems, power transmission, electromagnetism, motor control process and technologies involved and related to electrical and electronic engineering. The journal is essential reading for all researchers in electrical and electronic engineering science.
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