Securing drinking water supply in smart cities: an early warning system based on online sensor network and machine learning

Author:

Lu Haiyan12ORCID,Ding Ao23,Zheng Yi23,Jiang Jiping23,Zhang Jingjie23,Zhang Zhidong2,Xu Peng2,Zhao Xue2,Quan Feng2,Gao Chuanzi2,Jiang Shijie2,Xiong Rui2,Men Yunlei2,Shi Liangsheng1

Affiliation:

1. a School of Water Resources and Hydropower Engineering, Wuhan University, Wuhan 430072, China

2. b School of Environmental Science and Engineering, Southern University of Science and Technology, Shenzhen 518055, China

3. c Shenzhen Municipal Engineering Lab of Environmental IoT Technologies, Southern University of Science and Technology, Shenzhen 518055, China

Abstract

Abstract To enhance the quality of life and ensure sustainability in crowded cities, safe management of drinking water using cutting-edge technologies is a priority. This study developed an intelligent early warning system (EWS) for alarming and controlling risks from bacteria and disinfection byproducts in a drinking water distribution system (DWDS), named BARCS (Bacterial Risk Controlling System). BARCS adopts an artificial intelligence (AI) approach to data-driven prediction and considers total chlorine (TCl) concentration as the pivot indicator for risk identification and control. First, the machine learning-based AI model in BARCS can provide a reliable prediction of TCl concentration in a DWDS, with an average R2 of 0.64 for the validation set, while offering great flexibility for BARCS to adapt to various conditions. Second, TCl concentration was proven to be a good indicator of bacterial risk in a DWDS, as well as a cost-effective surrogate variable to assess disinfection byproduct risk. Third, the robustness analysis demonstrates that with state-of-the-art water quality monitoring technologies, online implementation of BARCS in real-world settings is feasible. Overall, BARCS represents a promising solution to the safe management of drinking water in future smart cities.

Funder

Science, Technology and Innovation Commission of Shenzhen Municipality

Collaborative Innovation Center for Water Treatment Technology and Materials

The National Natural Science Foundation of China

Publisher

IWA Publishing

Subject

Management, Monitoring, Policy and Law,Pollution,Water Science and Technology,Ecology,Civil and Structural Engineering,Environmental Engineering

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