JOURNAL ARTICLE

Input variable selection for ANN-based short-term load forecasting

I. DrezgaSaifur Rahman

Year: 1998 Journal:   IEEE Transactions on Power Systems Vol: 13 (4)Pages: 1238-1244   Publisher: Institute of Electrical and Electronics Engineers

Abstract

This paper describes a novel method for input variable selection for artificial neural network (ANN) based short-term load forecasting (STLF). The method is based on the phase-space embedding of a load time-series. The accuracy of the method is enhanced by the addition of temperature and cycle variables. To test the viability of the method, real load data for two US-based electric utilities were used. Only 15 input variables were identified in both cases and used for 24-hour ahead load forecasting. Results compare favorably to the ones reported in the literature, indicating that more parsimonious set of input variables can be used in STLF without sacrificing the accuracy of the forecast. This allows more compact ANNs, smaller training sets and easier training. Consequently, the method represents a step forward in determining a general procedure for input variable selection for ANN-based STLF.

Keywords:
Artificial neural network Term (time) Feature selection Variable (mathematics) Selection (genetic algorithm) Computer science Set (abstract data type) Time series Artificial intelligence Machine learning Mathematics

Metrics

159
Cited By
3.55
FWCI (Field Weighted Citation Impact)
21
Refs
0.94
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Energy Load and Power Forecasting
Physical Sciences →  Engineering →  Electrical and Electronic Engineering
Hydrological Forecasting Using AI
Physical Sciences →  Environmental Science →  Environmental Engineering
Neural Networks and Applications
Physical Sciences →  Computer Science →  Artificial Intelligence

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