DocumentCode :
1774450
Title :
Electricity information big data based load curve clustering
Author :
Haiyan Zheng ; Nong Jin ; Zheng Xiong ; Cong Ji ; Chao Fang ; Chunlin Zhong
Author_Institution :
Jiangsu Frontier Electr. Technol. Co. Ltd., Nanjing, China
fYear :
2014
fDate :
23-26 Sept. 2014
Firstpage :
912
Lastpage :
915
Abstract :
Clustering analysis of load curves on basis of electricity information big data is an important basis of load characterisitic and electricity consumption ha bits analysis of large users. In view of the slow speed of traditional K-means clustering algorithm in the background of big data, a parallel K-means clustering algorithm is proposed to speed up the clustering procedure. Firstly, all the load curves are de-noised by wavelet decomposing in order to reduce the influence of small fluctuations. Secondly, a multi-core parallel technology based K-means clustering algorithm is applied to load curve clustering. Thirdly, more than 40,000 load curves are clustered by the multi-core parallel technology based K-means clustering algorithm. Test results show that the proposed parallel K-means clustering algorithm can speed up clustering procedure effectively.
Keywords :
Big Data; load management; multiprocessing systems; pattern clustering; power engineering computing; signal denoising; wavelet transforms; electricity consumption habits analysis; electricity information acquisition improvement; electricity information big data based load curve clustering analysis; load characteristic; multicore parallel technology; parallel K-means clustering algorithm; wavelet decomposition; wavelet denoising; Abstracts; Clustering algorithms; Noise reduction; Software; K-means clustering algorithm; big data; load curve cluster; multi-core paralleltechnology; wavelet denoising;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Electricity Distribution (CICED), 2014 China International Conference on
Conference_Location :
Shenzhen
Type :
conf
DOI :
10.1109/CICED.2014.6991841
Filename :
6991841
Link To Document :
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