Calibrating activated sludge models through hyperparameter optimization: a new framework for wastewater treatment plant simulation
Traditional calibration of Activated Sludge Models (ASM) is often manual, expert-dependent, and inefficient. This study introduces a hyperparameter optimisation framework using Optuna to automate the calibration of the ASM2d model. Built on Python, the model integrates the Tree-structured Parzen Est...
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| Published in | npj clean water Vol. 8; no. 1; pp. 80 - 12 |
|---|---|
| Main Authors | , , , , , |
| Format | Journal Article |
| Language | English |
| Published |
London
Nature Publishing Group UK
23.08.2025
Nature Publishing Group Nature Portfolio |
| Subjects | |
| Online Access | Get full text |
| ISSN | 2059-7037 2059-7037 |
| DOI | 10.1038/s41545-025-00513-y |
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| Abstract | Traditional calibration of Activated Sludge Models (ASM) is often manual, expert-dependent, and inefficient. This study introduces a hyperparameter optimisation framework using Optuna to automate the calibration of the ASM2d model. Built on Python, the model integrates the Tree-structured Parzen Estimator (TPE) for single-objective and NSGA-II for multi-objective optimisation. A 50-day dataset from a full-scale wastewater treatment plant in Shenzhen, China, validates the approach. Compared to traditional methods, TPE reduced average relative errors for TN and COD from 4.587 and 24.846% to 0.798 and 15.291%, respectively, while decreasing iterations by 15–20%. NSGA-II lowered TN and COD errors to 4.72 and 15.17%, further improving to 0.095% and 8.43% with full-parameter tuning. Calibration efficiency increased by 65–75%. By effectively exploring parameter interdependencies, TPE and NSGA-II enhance calibration robustness and generalisation. This automated optimisation method significantly improves the accuracy and efficiency of ASM calibration, advancing intelligent wastewater process modelling. |
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| AbstractList | Abstract Traditional calibration of Activated Sludge Models (ASM) is often manual, expert-dependent, and inefficient. This study introduces a hyperparameter optimisation framework using Optuna to automate the calibration of the ASM2d model. Built on Python, the model integrates the Tree-structured Parzen Estimator (TPE) for single-objective and NSGA-II for multi-objective optimisation. A 50-day dataset from a full-scale wastewater treatment plant in Shenzhen, China, validates the approach. Compared to traditional methods, TPE reduced average relative errors for TN and COD from 4.587 and 24.846% to 0.798 and 15.291%, respectively, while decreasing iterations by 15–20%. NSGA-II lowered TN and COD errors to 4.72 and 15.17%, further improving to 0.095% and 8.43% with full-parameter tuning. Calibration efficiency increased by 65–75%. By effectively exploring parameter interdependencies, TPE and NSGA-II enhance calibration robustness and generalisation. This automated optimisation method significantly improves the accuracy and efficiency of ASM calibration, advancing intelligent wastewater process modelling. Traditional calibration of Activated Sludge Models (ASM) is often manual, expert-dependent, and inefficient. This study introduces a hyperparameter optimisation framework using Optuna to automate the calibration of the ASM2d model. Built on Python, the model integrates the Tree-structured Parzen Estimator (TPE) for single-objective and NSGA-II for multi-objective optimisation. A 50-day dataset from a full-scale wastewater treatment plant in Shenzhen, China, validates the approach. Compared to traditional methods, TPE reduced average relative errors for TN and COD from 4.587 and 24.846% to 0.798 and 15.291%, respectively, while decreasing iterations by 15–20%. NSGA-II lowered TN and COD errors to 4.72 and 15.17%, further improving to 0.095% and 8.43% with full-parameter tuning. Calibration efficiency increased by 65–75%. By effectively exploring parameter interdependencies, TPE and NSGA-II enhance calibration robustness and generalisation. This automated optimisation method significantly improves the accuracy and efficiency of ASM calibration, advancing intelligent wastewater process modelling. |
| ArticleNumber | 80 |
| Author | Wang, Yue Li, Tan Qu, Dan Qu, Fangshu Yu, Huarong Gan, Qibo |
| Author_xml | – sequence: 1 givenname: Huarong surname: Yu fullname: Yu, Huarong organization: School of Civil Engineering and Transportation, Guangzhou University, Key Laboratory for Water Quality and Conservation of the Pearl River Delta, Guangzhou University – sequence: 2 givenname: Yue surname: Wang fullname: Wang, Yue organization: School of Civil Engineering and Transportation, Guangzhou University – sequence: 3 givenname: Tan surname: Li fullname: Li, Tan organization: School of Civil Engineering and Transportation, Guangzhou University – sequence: 4 givenname: Qibo surname: Gan fullname: Gan, Qibo organization: School of Civil Engineering and Transportation, Guangzhou University – sequence: 5 givenname: Dan surname: Qu fullname: Qu, Dan email: qudan@bjfu.edu.cn organization: College of Environmental Science and Engineering, Beijing Forestry University – sequence: 6 givenname: Fangshu surname: Qu fullname: Qu, Fangshu email: qufs@gzhu.edu.cn organization: Key Laboratory for Water Quality and Conservation of the Pearl River Delta, Guangzhou University, School of Environment and Energy Engineering, Beijing University of Civil Engineering and Architecture |
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| SubjectTerms | 704/172 704/172/169 Accuracy Activated sludge Aquatic Pollution Automation Calibration Denitrification Earth and Environmental Science Efficiency Effluents Environment Errors Genetic algorithms Libraries Machine learning Methods Nanotechnology Optimization Parameters Pareto optimum Python Reproducibility Sensitivity analysis Simulation Waste Water Technology Wastewater treatment Wastewater treatment plants Water Industry/Water Technologies Water Management Water Pollution Control Water Quality/Water Pollution |
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| Title | Calibrating activated sludge models through hyperparameter optimization: a new framework for wastewater treatment plant simulation |
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