不确定水质模型在城市河流水质模拟中的应用
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国家水体污染控制与治理重大专项(2008ZX07314-003);天津市科技创新专项资金资助项目(O6FZZDSH0090)


Application of Uncertain Model in Urban River Quality Simulation
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    摘要:

    鉴于城市景观河流受沿河排水污染,水质波动较大,建立了内嵌神经网络的一维不确定性水质模型,利用改进适应度函数的遗传算法,优化水质模型的参数解.经实例验证,不确定性水质模型拟合的精度更高,对排入污染物的波动更敏感,其对景观河流水质预测的平均准确度基本在80%以上,普遍高于确定性水质模型,尤其是在靠近污染源的监测断面,其不确定性水质模型预测优势更加明显,更能适应变化的景观河流水体环境.

    Abstract:

    Owing to the fluctuation of water quality in urban river which polluted by drainage along river, one-dimension uncertain water quality model embeded neural network is established. Genetic algorithms and a modified fitness function are used to optimize parameters of the uncertain model. Examples illustrate that the uncertain model has higher prediction accuracy with the average accuracy over 80% than the certain model, and is more sensitive to the fluctuation of pollutants discharged into the river. The uncertain model has a significant advantage of prediction and could better adapt to the changing urban water environment, especially at points close to the pollution sources.

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田一梅,刘扬,王彬蔚.不确定水质模型在城市河流水质模拟中的应用[J].土木与环境工程学报(中英文),2011,33(3):119-123. TIAN Yi-mei, LIU Yang, WANG Bin-wei. Application of Uncertain Model in Urban River Quality Simulation[J]. JOURNAL OF CIVIL AND ENVIRONMENTAL ENGINEERING,2011,33(3):119-123.10.11835/j. issn.1674-4764.2011.03.021

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  • 收稿日期:2010-03-10
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