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Study on the Prediction Models of Temperature and Energy by using DCIM and Machine Learning to Support Optimal Management of Data Center

机译:使用DCIM和机器学习支持高温能量的预测模型,以支持数据中心的最优管理

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摘要

Data centers (DCs) are becoming increasingly important. Accordingly, highly efficient and reliable operation and management of DCs have been required. Conventional DCs operate information and communication technology (ICT) and facility management (FM) systems separately, which could lead to inefficient management. Nowadays, DCs have been focusing on the data center infrastructure management (DCIM) system, in which ICT equipment, power equipment, and other heating, ventilation, and air conditioning (HVAC) devices can be managed in an integrated manner. In this paper, we propose a method of designing rack and ICT placement as an example of initiatives that realize proper temperature management and energy saving effects using DCIM and machine learning (ML). Then models for predicting the temperature energy after enviroment chages by using machine learning are developed, and the results of verification and effectiveness in the verification room are reported.
机译:数据中心(DCS)变得越来越重要。因此,已经需要高效可靠的操作和管理。传统的DCS单独操作信息和通信技术(ICT)和设施管理(FM)系统,这可能导致管理层效率低下。如今,DCS一直专注于数据中心基础设施管理(DCIM)系统,其中ICT设备,电力设备和其他加热,通风和空调(HVAC)设备可以以集成的方式管理。在本文中,我们提出了一种设计机架和ICT放置的方法,作为实现使用DCIM和机器学习(ML)的适当温度管理和节能效果的倡议的示例。然后开发用于通过使用机器学习在环境芯片后预测温度的模型,并报告了验证室中验证和有效性的结果。

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