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

2. Using assurance of learning data to assess business students' research skills.

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

4. Systematic comparison of 3D Deep learning and classical machine learning explanations for Alzheimer's Disease detection.

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

6. Evaluating Recalibrating AI Models for Breast Cancer Diagnosis in a New Context: Insights from Transfer Learning, Image Enhancement and High-Quality Training Data Integration.

7. Integrating a non-gridded space representation into a graph neural networks model for citywide short-term crash risk prediction.

8. Detection of marine oil-like features in Sentinel-1 SAR images by supplementary use of deep learning and empirical methods: Performance assessment for the Great Barrier Reef marine park.

9. Topology Detection in Power Distribution Networks: A PMU Based Deep Learning Approach.

10. Pre-Processing Training Data Improves Accuracy and Generalisability of Convolutional Neural Network Based Landscape Semantic Segmentation.

11. Multi-site cross-organ calibrated deep learning (MuSClD): Automated diagnosis of non-melanoma skin cancer.

12. Multi-phase hybrid bidirectional deep learning model integrated with Markov chain Monte Carlo bivariate copulas function for streamflow prediction.

13. De-identifying Australian hospital discharge summaries: An end-to-end framework using ensemble of deep learning models.

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

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

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

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

18. CNN Attention Guidance for Improved Orthopedics Radiographic Fracture Classification.

19. LSTM integrated with Boruta-random forest optimiser for soil moisture estimation under RCP4.5 and RCP8.5 global warming scenarios.

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

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

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

23. Comparison of unsupervised shallow and deep models for structural health monitoring.

24. U-Net Convolutional Neural Network for Mapping Natural Vegetation and Forest Types from Landsat Imagery in Southeastern Australia.

25. Process over product: Integrating ChatGPT as collaborator into an assessment design for academic integrity and digital literacy purposes.

26. Securing Cloud-Encrypted Data: Detecting Ransomware-as-a-Service (RaaS) Attacks through Deep Learning Ensemble.

27. Deep learning for monthly rainfall–runoff modelling: a large-sample comparison with conceptual models across Australia.

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

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

30. A Multifaceted Approach to Developing an Australian National Map of Protected Cropping Structures.

31. Deep semi-supervised learning using generative adversarial networks for automated seismic facies classification of mass transport complex.

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

33. Prediction of Water Quality in Reservoirs: A Comparative Assessment of Machine Learning and Deep Learning Approaches in the Case of Toowoomba, Queensland, Australia.

34. Towards a Deep-Learning-Based Framework of Sentinel-2 Imagery for Automated Active Fire Detection.

35. Forecasting Ionospheric foF2 Based on Deep Learning Method.

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

37. Unveiling bidding uncertainties in electricity markets: A Bayesian deep learning framework based on accurate variational inference.

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

39. Trichodesmium Around Australia: A View From Space.

40. Photovoltaic power forecasting with a long short-term memory autoencoder networks.

41. Prediction of Mean Sea Level with GNSS-VLM Correction Using a Hybrid Deep Learning Model in Australia.

42. Deep learning hybrid model with Boruta-Random forest optimiser algorithm for streamflow forecasting with climate mode indices, rainfall, and periodicity.

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

44. Convolutional Neural Network Shows Greater Spatial and Temporal Stability in Multi-Annual Land Cover Mapping Than Pixel-Based Methods.

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

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

47. Optimized Gated Recurrent Unit for Mid-Term Electricity Price Forecasting.

48. Forecasting solar photosynthetic photon flux density under cloud cover effects: novel predictive model using convolutional neural network integrated with long short-term memory network.

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

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