JOURNAL ARTICLE

Forecasting Short-Term Electricity Load Using Validated Ensemble Learning

W. G. C. A. SankalpaSomsak KittipiyakulSeksan Laitrakun

Year: 2022 Journal:   Energies Vol: 15 (22)Pages: 8567-8567   Publisher: Multidisciplinary Digital Publishing Institute

Abstract

As short-term load forecasting is essential for the day-to-day operation planning of power systems, we built an ensemble learning model to perform such forecasting for Thai data. The proposed model uses voting regression (VR), producing forecasts with weighted averages of forecasts from five individual models: three parametric multiple linear regressors and two non-parametric machine-learning models. The regressors are linear regression models with gradient-descent (LR), ordinary least-squares (OLS) estimators, and generalized least-squares auto-regression (GLSAR) models. In contrast, the machine-learning models are decision trees (DT) and random forests (RF). To select the best model variables and hyper-parameters, we used cross-validation (CV) performance instead of the test data performance, which yielded overly good test performance. We compared various validation schemes and found that the Blocked-CV scheme gives the validation error closest to the test error. Using Blocked-CV, the test results show that the VR model outperforms all its individual predictors.

Keywords:
Random forest Ensemble learning Estimator Term (time) Linear regression Ensemble forecasting Computer science Contrast (vision) Ordinary least squares Decision tree Statistics Regression Parametric statistics Artificial intelligence Machine learning Mathematics

Metrics

12
Cited By
1.29
FWCI (Field Weighted Citation Impact)
33
Refs
0.77
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
Grey System Theory Applications
Social Sciences →  Decision Sciences →  Management Science and Operations Research
Stock Market Forecasting Methods
Social Sciences →  Decision Sciences →  Management Science and Operations Research
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