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1. Two-Stage Short-Term Power Load Forecasting Based on RFECV Feature Selection Algorithm and a TCN–ECA–LSTM Neural Network.

2. A Novel Dual-Channel Temporal Convolutional Network for Photovoltaic Power Forecasting.

3. Revolutionizing Wind Power Prediction—The Future of Energy Forecasting with Advanced Deep Learning and Strategic Feature Engineering.

4. A Novel Photovoltaic Power Prediction Method Based on a Long Short-Term Memory Network Optimized by an Improved Sparrow Search Algorithm.

5. Short-Term Power Load Forecasting: An Integrated Approach Utilizing Variational Mode Decomposition and TCN–BiGRU.

6. Modeling Socioeconomic Determinants of Building Fires through Backward Elimination by Robust Final Prediction Error Criterion.

7. A Short-Term Photovoltaic Power Forecasting Method Combining a Deep Learning Model with Trend Feature Extraction and Feature Selection.

8. An Index Used to Evaluate the Applicability of Mid-to-Long-Term Runoff Prediction in a Basin Based on Mutual Information.

9. Forecasting of Solar and Wind Resources for Power Generation.

10. Low-Voltage Network Modeling and Analysis with Rooftop PV Forecasts: A Realistic Perspective from Queensland, Australia.

11. Forecasting Ionospheric foF2 Based on Deep Learning Method.

12. Land Surface Model Calibration Using Satellite Remote Sensing Data.

13. Application of Temporal Fusion Transformer for Day-Ahead PV Power Forecasting.

14. Prediction of Rainfall in Australia Using Machine Learning.

15. Short-Term Load Forecasting Based on the Transformer Model.