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1. Introduction.

2. Part 1: Artificial neural network theory / Partie 1 : la théorie des réseaux neuronaux artificiels - Internal workings of feed-forward neural networks.

3. Application of artificial neural networks in wastewater treatment.

4. Part 4: Artificial neural network applications in other areas of environmental engineering and science / Partie 4 : les applications des réseaux neuronaux artificiels dans d’autres secteurs du génie et de la science de l’environnement - Artificial neural network modelling of oil sands extraction processes

5. Lime softening clarifier modeling with artificial neural networks.

6. Part 2: Artificial neural network applications in drinking water supply / Partie 2 : les applications des réseaux neuronaux artificiels à l’approvisionnement en eau potable - Implementing artificial neural network models for real-time water colour forecasting in a water treatment plant

7. Predicting total trihalomethane formation in finished water using artificial neural networks.

8. A comparison of artificial neural networks and multiple regression methods for the analysis of pilot-scale data.

9. Part 3: Artificial neural networks in drinking water and wastewater process control / Partie 3 : les réseaux neuronaux artificiels dans le contrôle des processus d’eau potable et d’eaux usées - Advanced process control techniques for water treatment using artificial neural networks

10. Effect of watershed subdivision on water-phase phosphorus modelling: An artificial neural network modelling application.

11. Artificial neural networks and time series modelling of TP concentration in boreal streams: a comparative approach.

12. El Niño southern-oscillation prediction using southern oscillation index and Niño3 as onset indicators: Application of artificial neural networks.

13. Acid deposition in the eastern United States and neural network predictions for the future.

14. Modelling approach for high flow rate in wastewater treatment operation.

15. Developing artificial neural network models of water treatment processes: a guide for utilities.

16. Application of back-propagation neural network modeling for free residual chlorine, total trihalomethanes and trihalomethanes speciation.

17. An exploration of artificial neural network rainfall-runoff forecasting combined with wavelet decomposition.

18. Modeling of hourly NOx concentrations using artificial neural networks.

19. A neural network approach to selecting indicators for a sustainable ecosystem.