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Load Profiling and Its Application to Demand Response: A Review
Yi Wang Qixin Chen Chongqing Kang Mingming Zhang Ke Wang Yun Zhao
Tsinghua science and technology, 2015-04, Vol.20 (2), p.117-129
[Periódico revisado por pares]
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Título:
Load Profiling and Its Application to Demand Response: A Review
Autor:
Yi Wang Qixin Chen Chongqing Kang Mingming Zhang Ke Wang Yun Zhao
Assuntos:
基础设施
;
展望
;
应用
;
数据挖掘技术
;
电力行业
;
负荷曲线
;
负载分析
;
需求响应
É parte de:
Tsinghua science and technology, 2015-04, Vol.20 (2), p.117-129
Notas:
11-3745/N
The smart grid has been revolutionizing electrical generation and consumption through a two-way flow of power and information. As an important information source from the demand side, Advanced Metering Infrastructure (AMI) has gained increasing popularity all over the world. By making full use of the data gathered by AMI, stakeholders of the electrical industry can have a better understanding of electrical consumption behavior. This is a significant strategy to improve operation efficiency and enhance power grid reliability. To implement this strategy, researchers have explored many data mining techniques for load profiling. This paper performs a state-of-the-art, comprehensive review of these data mining techniques from the perspectives of different technical approaches including direct clustering, indirect clustering, clustering evaluation criteria, and customer segmentation. On this basis, the prospects for implementing load profiling to demand response applications, price-based and incentivebased, are further summarized. Finally, challenges and opportunities of load profiling techniques in future power industry, especially in a demand response world, are discussed.
load profiling; demand response; data mining; customer segmentation; Advanced Metering Infrastructure (AMI)
Descrição:
The smart grid has been revolutionizing electrical generation and consumption through a two-way flow of power and information. As an important information source from the demand side, Advanced Metering Infrastructure (AMI) has gained increasing popularity all over the world. By making full use of the data gathered by AMI, stakeholders of the electrical industry can have a better understanding of electrical consumption behavior. This is a significant strategy to improve operation efficiency and enhance power grid reliability. To implement this strategy, researchers have explored many data mining techniques for load profiling. This paper performs a state-of-the-art, comprehensive review of these data mining techniques from the perspectives of different technical approaches including direct clustering, indirect clustering, clustering evaluation criteria, and customer segmentation. On this basis, the prospects for implementing load profiling to demand response applications, price-based and incentivebased, are further summarized. Finally, challenges and opportunities of load profiling techniques in future power industry, especially in a demand response world, are discussed.
Idioma:
Inglês
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