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1. A Survey on Deep Learning Techniques for Stereo-Based Depth Estimation.

2. Automated land valuation models: A comparative study of four machine learning and deep learning methods based on a comprehensive range of influential factors.

3. An automated prediction of remote sensing data of Queensland-Australia for flood and wildfire susceptibility using BISSOA-DBMLA scheme.

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

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

6. Advanced extreme learning machines vs. deep learning models for peak wave energy period forecasting: A case study in Queensland, Australia.

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

8. A novel approach based on integration of convolutional neural networks and echo state network for daily electricity demand prediction.

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

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

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

12. Deep learning for pollen allergy surveillance from twitter in Australia.