The waste of potable water is a problem that affects a population’s supply and the environment, raising the need for studies focusing on the adoption of efficient actions and modern technological resources, such as artificial intelligence (AI), for sustainable water management. However, in the literature there are few studies on the operational, economic and environmental benefits of using AI in dam management. In addition, no study has been found on this topic addressing the Cantareira system, located in the metropolitan region of São Paulo, Brazil, which is one of the largest water supply systems in the world. This work presents an approach combining an artificial neural network and the Monte Carlo simulation method for floodgate control in the Cantareira system. Furthermore, parameters are explored that make the simulations of water collection and distribution more realistic. The results (root mean squared error (RMSE) = 0.076 and R2 = 0.963) confirm the viability of using the proposed approach to minimize water waste and flood risks, as well as to increase efficiency in water resource management. Furthermore, this study advances the state of the art by presenting a set of operational, economic and environmental benefits directly associated with the adoption of AI in floodgate management.
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April 2025
Research Article|
December 04 2024
Applying neural networks combined with Monte Carlo simulation in dam operations to obtain operational, economic and environmental gains Available to Purchase
Geraldo C. de Oliveira Neto, PhD;
Geraldo C. de Oliveira Neto, PhD
Industrial Engineering Post Graduation Program, Federal University of ABC, São Bernardo do Campo, São Paulo, Brazil (corresponding author: geraldo.prod@gmail.com)
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Valdir H. Cardoso, MSc;
Valdir H. Cardoso, MSc
Business Administration and Industrial Engineering Post-Graduation Program, FEI University, Sao Paulo, Brazil
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Marcos G. Gomes, MSc;
Marcos G. Gomes, MSc
Business Administration and Industrial Engineering Post-Graduation Program, FEI University, Sao Paulo, Brazil
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Francisco E. Bezerra, PhD;
Francisco E. Bezerra, PhD
Faculdade Impacta Tecnologia, São Paulo, Brazil
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Saulo V. S. de Lima, MSc;
Saulo V. S. de Lima, MSc
Informatics and Knowledge Management Post-Graduation Program, Nove de Julho University (UNINOVE), São Paulo, Brazil
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Sidnei A. de Araújo, PhD
Sidnei A. de Araújo, PhD
Informatics and Knowledge Management Post-Graduation Program, Nove de Julho University (UNINOVE), São Paulo, Brazil
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Publisher: Emerald Publishing
Received:
July 26 2023
Accepted:
November 06 2024
Online ISSN: 1751-7729
Print ISSN: 1741-7589
Emerald Publishing Limited: All rights reserved
2025
Proceedings of the Institution of Civil Engineers - Water Management (2025) 178 (2): 115–125.
Article history
Received:
July 26 2023
Accepted:
November 06 2024
Citation
de Oliveira Neto GC, Cardoso VH, Gomes MG, Bezerra FE, de Lima SVS, de Araújo SA (2025), "Applying neural networks combined with Monte Carlo simulation in dam operations to obtain operational, economic and environmental gains". Proceedings of the Institution of Civil Engineers - Water Management, Vol. 178 No. 2 pp. 115–125, doi: https://doi.org/10.1680/jwama.23.00049
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