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Modeling Energy Consumption Based on Resource Utilization

机译:基于资源利用的能源消耗建模

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Power management is an expensive and important issue for large computational infrastructures such as datacenters, large clusters, and computational grids. However, measuring energy consumption of scalable systems may be impractical due to both cost and complexity for deploying power metering devices on a large number of machines. In this paper, we propose the use of information about resource utilization (e.g. processor, memory, disk operations, and network traffic) as proxies for estimating power consumption. We employ machine learning techniques to estimate power consumption using such information which are provided by common operating systems. Experiments with linear regression, regression tree, and multilayer perceptron on data from different hardware resulted into a model with 99.94% of accuracy and 6.32 watts of error in the best case.
机译:对于大型计算基础架构(例如数据中心,大型集群和计算网格),电源管理是一个昂贵且重要的问题。但是,由于在大型机器上部署功率计量设备的成本和复杂性,测量可伸缩系统的能耗可能不切实际。在本文中,我们建议使用有关资源利用率的信息(例如处理器,内存,磁盘操作和网络流量)作为估计功耗的代理。我们采用机器学习技术来使用普通操作系统提供的此类信息来估计功耗。对来自不同硬件的数据进行线性回归,回归树和多层感知器的实验,得出的模型在最佳情况下的准确性为99.94%,误差为6.32瓦。

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