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Smart meter data analytics for optimal customer selection in demand response programs

机译:智能仪表数据分析,以实现需求响应计划的最佳客户选择

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This paper describes a methodology to predict customers' eligibility to participate in Demand Response (DR) programs using real electricity data collected from customers over time by smart meters. These types of programs have been proposed to improve generation capacity as load demand increases and the two-way communications (between utilities and users) are enabled. Instead of installing new power plants in smart grids, utilities encourage users to shift their electricity consumption from peak hours to off-peak hours. The number of successfully recruited customers participating in demand response programs is usually low, and resources are wasted on recruitment efforts. The results of our research reflect that it is possible to predict with more than 90% accuracy which customers are good targets for DR program participation based on their consumption patterns and lifestyles. These data could ultimately improve the recruitment process for DR programs.
机译:本文介绍了一种方法,以预测客户在智能电表随时间从客户收集的实际电力数据参与需求响应(DR)计划的方法。已经提出了这些类型的程序,以提高生成容量,因为负载需求增加,并启用双向通信(在实用程序和用户之间)。 Utilities在智能电网中安装新电厂,而不是在智能电网中安装新的电厂,鼓励用户将其电力消耗从高峰时间转移到偏远的时间。参加需求响应计划的成功招聘客户的数量通常很低,资源浪费在招聘工作中。我们的研究结果反映出,可以预测超过90%的准确性,客户是基于其消费模式和生活方式博士参与博士的良好目标。这些数据最终可能改善DR程序的招聘过程。

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