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混合智能算法在引水冲污方案优选中的应用
引用本文:林高松,李适宇,陈璟璇.混合智能算法在引水冲污方案优选中的应用[J].水资源保护,2009,25(4):31-36.
作者姓名:林高松  李适宇  陈璟璇
作者单位:1. 深圳市环境科学研究所,广东,深圳,518001;中山大学环境科学与工程学院,广东,广州,510275
2. 中山大学环境科学与工程学院,广东,广州,510275
基金项目:广东省"科技计划百项工程"资助项目 
摘    要:考虑水质、经济和生态环境影响等因素,建立佛山水道的引水规划优化模型。利用河网水环境数学模型模拟多组引水冲污方案的水质,将输入输出数据作为样本用于人工训练神经网络;将训练好的网络嵌入遗传算法,形成混合智能算法,求解引水规划优化模型。结果表明,混合智能算法能够自动求出不同引水流量下的最优方案,精度较高,无需人工试算,运算速度快,不必对遗传算法与河网模型进行接口处理,具有普遍适用性,为求解耦合复杂模拟模型的优化问题提供了一种理想的工具。

关 键 词:人工神经网络  遗传算法  引水冲污  优化  感潮河网
修稿时间:2009/8/31 0:00:00

Application of a hybrid intelligent algorithm in scheme optimization of water diversion to flush out pollutants
LIN Gao-song,LI Shi-yu,CHEN Jing-xuan.Application of a hybrid intelligent algorithm in scheme optimization of water diversion to flush out pollutants[J].Water Resources Protection,2009,25(4):31-36.
Authors:LIN Gao-song  LI Shi-yu  CHEN Jing-xuan
Affiliation:LIN Gao-song, LI Shi-yu, CHEN Jing-xuan(1. Shenzhen Institute of Environmental Science, Shenzhen 518001, China; 2. School of Environmental Science and Engineering, Sun Yat-Sen University, Guangzhou 510275, China)
Abstract:Taking into account factors including water quality, economy and enviromnental impact, an optimal water diversion programming model was developed for the Foshan Channel. A river network water environment simulation model was utilized to predict the water quality of several water diversion schemes, and the input/output data were used as samples for training an artificial neural network (ANN). A hybrid intelligent algorithm (HIA) coupling a genetic algorithm (GA) with the trained ANN was employed to solve the optimal water diversion p~g model. The results showed that the HIA can automatically fred the optimal water diversion scheme for different quantifies of diverted water with high accuracy and without trial periods. Furthermore, the HIA ran quickly and did not need to couple the GA with the river network simulation model, which is a universal algorithm and provides an ideal tool for solving optimal problems linked with a complicated numerical simulation model.
Keywords:artificial neural network  genetic algorithm  diverting water to flush out pollutants  optimization  tidal fiver networks
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