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A Survey of Machine Learning Applications for Energy-Efficient Resource Management in Cloud Computing Environments

机译:云计算环境中节能资源管理机器学习应用调查

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Ensuring energy efficiency in data centers is a crucial objective in modern cloud computing because it reduces operating costs and complies with the goals of green computing. Researchers strive to develop optimal policies for resource management in the cloud, which has many components such as virtual machine placement, task scheduling, workload consolidation, and so on. Machine learning has a major role to play in these efforts. In this paper, we provide a detailed survey of recent works in the literature which have employed machine learning (ML) to offer solutions for energy efficiency in cloud computing environments. We also present a comparative classification of the proposed methods. Furthermore, we enrich this survey by studying non-ML proposals to energy conservation in data centers, and also how ML has been applied towards other objectives in the cloud.
机译:确保数据中心的能效是现代云计算中的一个至关重要的目标,因为它降低了运营成本并符合绿色计算的目标。研究人员努力在云中开发最佳的资源管理策略,其中有许多组件如虚拟机放置,任务调度,工作负载整合等。机器学习在这些努力中发挥着重要作用。在本文中,我们对近期工程的详细调查,这些作品已经采用了机器学习(ML),为云计算环境中的能效提供解决方案。我们还提出了拟议方法的比较分类。此外,我们通过将非ML提案进行资料中心的非ML提案来丰富本调查,以及ML已将ML已被应用于云中的其他目标。

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