International Journal of Advanced Multidisciplinary Research and Studies
Volume 4, Issue 4, 2024
Optimizing Water Distribution Networks using Machine Learning and AI Algorithms: Case Studies and Best Practices
Author(s): David Adedayo Akokodaripon, Precious Osobhalenewie Okoruwa, Odunayo Mercy Babatope
Abstract:
This paper aims to explore the utilization of machine learning (ML) and artificial intelligence (AI) algorithms as innovative solutions to optimize water distribution networks. Through the analysis of case studies and best practices, we examine various methodologies and techniques employed in leveraging ML and AI for network optimization. The paper discusses key aspects of the optimization process, starting from data collection and preprocessing to model development and deployment. Emphasis is placed on understanding the intricacies of water distribution systems and how ML and AI algorithms can be tailored to address specific challenges within these networks. Real-world examples are presented to illustrate the practical application of ML and AI in optimizing water distribution networks, the paper outlines future opportunities and directions for research in this field. It discusses emerging technologies, novel approaches, and potential collaborations aimed at further advancing the optimization of water distribution networks using ML and AI algorithms. By providing insights from case studies and best practices, this paper seeks to contribute to the ongoing efforts to enhance the efficiency and sustainability of water distribution systems worldwide through the application of ML and AI techniques. Furthermore, we discuss the challenges and future opportunities in utilizing ML and AI algorithms for enhancing the resilience and efficiency of water distribution systems. Moreover, Water distribution networks are crucial for delivering clean and safe water to communities globally. However, these networks encounter challenges such as aging infrastructure, rising demand, and climate variability. To tackle these issues and optimize water distribution network performance, there's a growing interest in utilizing machine learning (ML) and artificial intelligence (AI) algorithms. We investigate various methodologies for data collection, preprocessing, model development, and implementation, supported by real-world instances showcasing successful applications.
Keywords: Water Distribution Networks, Machine Learning, AI Algorithms, Optimization, Case Studies, Best Practices
Pages: 1560-1566
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