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A Model of Customizing Electricity Retail Prices Based on Load Profile Clustering Analysis

机译:基于负荷曲线聚类分析的电力零售价格定制模型

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摘要

The problem of customizing electricity retail prices using data mining techniques is studied in this paper. The density-based spatial clustering of applications with noise is first applied to load profile analysis, in order to explore end-users' inherent electricity consumption patterns from their historical load data. Then, statistical analysis of end-users' historical consumption is conducted to better capture their consumption regularity. After extracting these load features, a mixed integer nonlinear programming model for customizing electricity retail prices is proposed. In the proposed model, both the structure of time-of-use (TOU) retail price and the price level are optimized once given the number of price blocks. It is among the first that the optimization of TOU price structure is studied in electricity retail pricing research. The proposed model is mathematically reformulated and solved by online commercial solvers provided by the network-enabled optimization system server. Electricity usage data collected by the smart grid, smart city project in Australia is used to demonstrate the feasibility and efficiency of the developed models and algorithms.
机译:本文研究了使用数据挖掘技术定制电力零售价格的问题。首先将基于噪声的应用程序基于密度的空间聚类应用于负载曲线分析,以便从最终用户的历史负载数据中探究其固有的用电量模式。然后,对最终用户的历史消费进行统计分析,以更好地掌握其消费规律。在提取了这些负荷特征之后,提出了一种用于定制电力零售价格的混合整数非线性规划模型。在提出的模型中,一旦给定价格块的数量,就可以优化使用时间(TOU)零售价格的结构和价格水平。在电力零售价格研究中,首先研究TOU价格结构的优化。所提出的模型在数学上被网络支持的优化系统服务器提供的在线商业求解器重新公式化并求解。澳大利亚智能城市项目智能电网收集的用电量数据用于证明开发的模型和算法的可行性和效率。

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