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

2. Probabilistic feature selection for improved asset lifetime estimation in renewables. Application to transformers in photovoltaic power plants.

3. Modeling M(3000)F2 based on extreme learning machine.

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

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

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

7. Application of the extreme learning machine algorithm for the prediction of monthly Effective Drought Index in eastern Australia.

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

9. Acoustic index-based models for determining time of day in long duration environmental audio recordings.