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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. Application of pavement temperature prediction algorithms in performance grade (PG) binder selection for Australia.

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

5. The development of Future Health Today: piloting a new platform for identification and management of chronic disease in general practice.

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

7. Short‐term load forecasting based on a generalized regression neural network optimized by an improved sparrow search algorithm using the empirical wavelet decomposition method.

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

9. Forecasting marine debris spill accumulation patterns in the south-eastern Australia water: an intercomparison between global ocean forecast models.

10. Energy forecasting in smart grid systems: recent advancements in probabilistic deep learning.

11. An Integrated Missing-Data Tolerant Model for Probabilistic PV Power Generation Forecasting.

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

13. Residential net load interval prediction based on stacking ensemble learning.

14. Unidirectional and Bidirectional LSTM Models for Short-Term Traffic Prediction.

15. Loss functions for spatial wildfire applications.

16. Forecasting and foreclosing futures: The temporal dissonance of advance care directives.

17. Water quality multivariate forecasting using deep learning in a West Australian estuary.

18. Multi-timescale photovoltaic power forecasting using an improved Stacking ensemble algorithm based LSTM-Informer model.

19. Multi-step least squares support vector machine modeling approach for forecasting short-term electricity demand with application.

20. Areal prediction of survey data using Bayesian spatial generalised linear models.

21. Development and evaluation of the cascade correlation neural network and the random forest models for river stage and river flow prediction in Australia.

22. Hybrid Ensemble Deep Learning for Deterministic and Probabilistic Low-Voltage Load Forecasting.

23. Forecasting small area populations with long short-term memory networks.

24. Psychiatric advance directives and consent to electroconvulsive therapy (ECT) in Australia: A legislative review and suggestions for the future.

25. Electric load prediction based on a novel combined interval forecasting system.

26. Deep neural network for forecasting of photovoltaic power based on wavelet packet decomposition with similar day analysis.

27. How often should general practitioners provide nutrition care to patients? A forecasting activity to determine the target frequency for chronic-disease management in Australia.

28. An ensemble forecasting system for short-term power load based on multi-objective optimizer and fuzzy granulation.

29. Power Management for Improved Dispatch of Utility-Scale PV Plants.

30. Novel hybrid deep learning model for satellite based PM10 forecasting in the most polluted Australian hotspots.

31. Scenarios modelling for forecasting day-ahead electricity prices: Case studies in Australia.

32. Experimental study of coal burst risk prediction using fractal dimension analysis of AE spatial distribution.

33. Machine learning based novel ensemble learning framework for electricity operational forecasting.

34. Forecasting Ionospheric foF2 Based on Deep Learning Method.

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

36. A fuzzy theory-based machine learning method for workdays and weekends short-term load forecasting.

37. Forecasting water temperature in lakes and reservoirs using seasonal climate prediction.

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

39. Probability density forecasts for steam coal prices in China: The role of high-frequency factors.

40. Predicting soil physical and chemical properties using vis-NIR in Australian cotton areas.

41. Improved quantile convolutional neural network with two-stage training for daily-ahead probabilistic forecasting of photovoltaic power.

42. Combining forecasts of day-ahead solar power.

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

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

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