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The Analysis and Prediction of Power Consumption in Industry Based on Machine Learning

机译:基于机器学习的工业用电分析与预测

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Electricity consumption analysis and prediction are of great significance for power grid planning and the management of enterprise resources. Based on the historical power consumption data collected by the cloud platform of Fujian Huatuo energy management system, this paper analyzes the power consumption of the three floors of Fujian Huatuo Automation Technology. The results show that the biggest influencing factors are weather conditions and working days. Observing the fact that the pattern of power consumption has a great difference when the temperature grows larger than a threshold, this paper proposes a clustering-based prediction mechanism to predict the power consumption with different models. The experimental results show that the proposed mechanism can effectively improve the prediction accuracy of power consumption.
机译:用电量的分析和预测对电网规划和企业资源管理具有重要意义。基于福建华拓能源管理系统云平台收集的历史用电量数据,对福建华拓自动化技术三层楼的能耗进行了分析。结果表明,最大的影响因素是天气条件和工作日。观察温度大于阈值时功耗模式差异较大的事实,提出了一种基于聚类的预测机制,用于预测不同模型的功耗。实验结果表明,该机制可以有效提高功耗的预测精度。

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