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1. Deep learning framework with Bayesian data imputation for modelling and forecasting groundwater levels.

2. A comparative climate-resilient energy design: Wildfire Resilient Load Forecasting Model using multi-factor deep learning methods.

3. A Convolutional Neural Network approach for image-based anomaly detection in smart agriculture.

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

5. DeepGR4J: A deep learning hybridization approach for conceptual rainfall-runoff modelling.

6. IRMAC: Interpretable Refined Motifs in Binary Classification for smart grid applications.

7. Air quality monitoring based on chemical and meteorological drivers: Application of a novel data filtering-based hybridized deep learning model.

8. An intelligent deep learning based prediction model for wind power generation.

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

10. Boosting solar radiation predictions with global climate models, observational predictors and hybrid deep-machine learning algorithms.

11. Hybrid deep CNN-SVR algorithm for solar radiation prediction problems in Queensland, Australia.

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

13. Very short-term forecasting of wind power generation using hybrid deep learning model.