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A clustering approach to domestic electricity load profile characterisation using smart metering data

Fintan McLoughlin, Aidan Duffy and Michael Conlon

Applied Energy, 2015, vol. 141, issue C, 190-199

Abstract: The availability of increasing amounts of data to electricity utilities through the implementation of domestic smart metering campaigns has meant that traditional ways of analysing meter reading information such as descriptive statistics has become increasingly difficult. Key characteristic information to the data is often lost, particularly when averaging or aggregation processes are applied. Therefore, other methods of analysing data need to be used so that this information is not lost. One such method which lends itself to analysing large amounts of information is data mining. This allows for the data to be segmented before such aggregation processes are applied. Moreover, segmentation allows for dimension reduction thus enabling easier manipulation of the data.

Keywords: Domestic electricity load profile; Segmentation; Clustering (search for similar items in EconPapers)
Date: 2015
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Citations: View citations in EconPapers (107)

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DOI: 10.1016/j.apenergy.2014.12.039

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