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

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

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

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

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

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

7. Forecasting Ionospheric foF2 Based on Deep Learning Method.

8. Prediction of Solar Power Using Near-Real Time Satellite Data.

9. Subseasonal Forecasts of the Northern Queensland Floods of February 2019: Causes and Forecast Evaluation.

10. Integrating Landsat-8 and Sentinel-2 Time Series Data for Yield Prediction of Sugarcane Crops at the Block Level.

11. A Combination Prediction Model of Long-Term Ionospheric foF2 Based on Entropy Weight Method.

12. Research and Application of a Novel Hybrid Model Based on a Deep Neural Network for Electricity Load Forecasting: A Case Study in Australia.