DocumentCode
1263824
Title
Demand forecasting in power distribution systems using nonparametric probability density estimation
Author
Charytoniuk, W. ; Chen, M.-S. ; Kotas, P. ; Van Olinda, P.
Author_Institution
Energy Syst. Res. Center, Texas Univ., Arlington, TX, USA
Volume
14
Issue
4
fYear
1999
fDate
11/1/1999 12:00:00 AM
Firstpage
1200
Lastpage
1206
Abstract
Customer demand data are required by power flow programs to accurately simulate the behavior of electric distribution systems. At present, economic constraints limit widespread customer monitoring, resulting in a need to forecast these demands for distribution system analysis. This paper presents the application of nonparametric probability density estimation to the problem of customer demand forecasting using information readily available at most utilities. The method utilizes demand survey information, including weather conditions, to build a probabilistic demand model that expresses both the random nature of demand and its temperature dependence. The paper describes a procedure for developing such a model and its application for demand forecasting based on customer energy usage and outside temperature
Keywords
distribution networks; load flow; load forecasting; probability; customer demand forecasting; customer energy usage; demand forecasting; demand survey information; distribution system analysis; economic constraints; electric distribution systems; kernal density estimator; nonparametric probability density estimation; outside temperature; power distribution systems; power flow programs; probabilistic demand model; temperature dependence; weather conditions; widespread customer monitoring; Demand forecasting; Economic forecasting; Energy consumption; Power distribution; Power generation economics; Power system economics; Power system modeling; Predictive models; Temperature; Weather forecasting;
fLanguage
English
Journal_Title
Power Systems, IEEE Transactions on
Publisher
ieee
ISSN
0885-8950
Type
jour
DOI
10.1109/59.801873
Filename
801873
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