LAPSE:2023.6247
Published Article
LAPSE:2023.6247
Review of Urban Drinking Water Contamination Source Identification Methods
Jinyu Gong, Xing Guo, Xuesong Yan, Chengyu Hu
February 23, 2023
Abstract
When drinking water flows into the water distribution network from a reservoir, it is exposed to the risk of accidental or deliberate contamination. Serious drinking water pollution events can endanger public health, bring about economic losses, and be detrimental to social stability. Therefore, it is obviously crucial to research the water contamination source identification problem, for which scholars have made considerable efforts and achieved many advances. This paper provides a comprehensive review of this problem. Firstly, some basic theoretical knowledge of the problem is introduced, including the water distribution network, sensor system, and simulation model. Then, this paper puts forward a new classification method to classify water contamination source identification methods into three categories according to the algorithms or methods used: solutions with traditional methods, heuristic methods, and machine learning methods. This paper focuses on the new approaches proposed in the past 5 years and summarizes their main work and technical challenges. Lastly, this paper suggests the future development directions of this problem.
Keywords
contamination source identification, heuristic algorithm, Machine Learning, water distribution network
Suggested Citation
Gong J, Guo X, Yan X, Hu C. Review of Urban Drinking Water Contamination Source Identification Methods. (2023). LAPSE:2023.6247
Author Affiliations
Gong J: School of Computer Science, China University of Geosciences, 430078 Wuhan, China
Guo X: School of Computer Science, China University of Geosciences, 430078 Wuhan, China
Yan X: School of Computer Science, China University of Geosciences, 430078 Wuhan, China
Hu C: School of Computer Science, China University of Geosciences, 430078 Wuhan, China
Journal Name
Energies
Volume
16
Issue
2
First Page
705
Year
2023
Publication Date
2023-01-07
ISSN
1996-1073
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Original Submission
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PII: en16020705, Publication Type: Review
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LAPSE:2023.6247
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https://doi.org/10.3390/en16020705
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