Spatial electric load forecasting using an evolutionary heuristic

A method for spatial electric load forecasting using elements from evolutionary algorithms is presented. The method uses concepts from knowledge extraction algorithms and linguistic rules' representation to characterize the preferences for land use into a spatial database. The future land use preferences in undeveloped zones in the electrical utility service area are determined using an evolutionary heuristic, which considers a stochastic behavior by crossing over similar rules. The method considers development of new zones and also redevelopment of existing ones. The results are presented in future preference maps. The tests in a real system from a midsized city show a high rate of success when results are compared with information gathered from the utility planning department. The most important features of this method are the need for few data and the simplicity of the algorithm, allowing for future scalability.

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Bibliographic Details
Main Authors: Carreno,E. M., Padilha-Feltrin,A., Leal,A. G.
Format: Digital revista
Language:English
Published: Sociedade Brasileira de Automática 2010
Online Access:http://old.scielo.br/scielo.php?script=sci_arttext&pid=S0103-17592010000400005
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