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Multiple-pattern parameter identification and uncertainty analysis approach for water quality modeling

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  • Zou, Rui
  • Lung, Wu-Seng
  • Wu, Jing

Abstract

This paper presents a multiple-pattern parameter identification and uncertainty analysis approach for robust water quality modeling using a neural network (NN) embedded genetic algorithm (GA). The modeling approach uses an adaptive NN–GA framework to inversely solve the governing equations in a water quality model for multiple parameter patterns, along with an alternating fitness method to maintain solution diversity. The procedure was demonstrated through a coupled 2D hydrodynamic and eutrophication model for Loch Raven Reservoir in Maryland. The inverse problem was formulated as a nonlinear optimization problem minimizing the degree of misfit (DOM) between model results and observed data. A set of NN models was developed to approximate the input-output response relationship of the Loch Raven Reservoir model and was incorporated into a GA framework in an adaptive fashion to search for near-optimal solutions minimizing the DOM. The numerical example showed that the adaptive NN–GA approach is capable of identifying multiple parameter patterns that reproduce the observed data equally well. The resulting parameter patterns were incorporated into the numerical model, and a multiple-pattern robust water quality modeling analysis, along with a compound margin of safety (CMOS) method, was proposed and applied to analyze the parameter pattern uncertainty.

Suggested Citation

  • Zou, Rui & Lung, Wu-Seng & Wu, Jing, 2009. "Multiple-pattern parameter identification and uncertainty analysis approach for water quality modeling," Ecological Modelling, Elsevier, vol. 220(5), pages 621-629.
  • Handle: RePEc:eee:ecomod:v:220:y:2009:i:5:p:621-629
    DOI: 10.1016/j.ecolmodel.2008.11.021
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    Cited by:

    1. Yi, Xuan & Zou, Rui & Guo, Huaicheng, 2016. "Global sensitivity analysis of a three-dimensional nutrients-algae dynamic model for a large shallow lake," Ecological Modelling, Elsevier, vol. 327(C), pages 74-84.
    2. Wang, Qian & Zou, Rui & Khalid, Alvi & Yang, Tao, 2020. "Uncertainty-based parameter estimation for urban pollutant buildup and washoff simulation using a multiple pattern inverse modeling approach," Mathematics and Computers in Simulation (MATCOM), Elsevier, vol. 175(C), pages 140-152.
    3. Turley, Marianne C. & Ford, E. David, 2009. "Definition and calculation of uncertainty in ecological process models," Ecological Modelling, Elsevier, vol. 220(17), pages 1968-1983.
    4. Li-kun, Yang & Sen, Peng & Xin-hua, Zhao & Xia, Li, 2017. "Development of a two-dimensional eutrophication model in an urban lake (China) and the application of uncertainty analysis," Ecological Modelling, Elsevier, vol. 345(C), pages 63-74.

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