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用TM影像进行湖泊水色反演研究的人工神经网络模型
引用本文:王建平,程声通,贾海峰,王志石,邓宇华.用TM影像进行湖泊水色反演研究的人工神经网络模型[J].环境科学,2003,24(2):73-76.
作者姓名:王建平  程声通  贾海峰  王志石  邓宇华
作者单位:1. 清华大学环境科学与工程系,北京,100084
2. 澳门大学科技学院,澳门
基金项目:国家自然科学基金资助项目(49971058);国家杰出青年基金资助项目(49525102)
摘    要:利用人工神经网络技术进行了湖泊水色遥感的反演研究,在同步实验的基础上了构造了包含一个隐含层的BP神经网络模型,利用TM卫星影像反演悬浮物、CODMn、溶解氧、总磷、总氮和叶绿素浓度反演精度较高,相对误差基本在25%以下,同时分析了该人工神经网络反演模型的误差来源,改进措施以及应用前景.研究表明,在进行小规模的同步监测的基础上,此模型可用于湖泊水质调查、分析和评价.

关 键 词:人工神经网络  环境遥感  水色遥感  反演  湖泊
文章编号:0250-3301(2003)02-04-0073
收稿时间:2002/3/28 0:00:00
修稿时间:6/4/2002 12:00:00 AM

An Artificial Neural Network Model for Lake Color Inversion Using TM Imagery
Wang Jianping,Cheng Shengtong,Jia Haifeng,Wang Zhishi and Tang U Wa.An Artificial Neural Network Model for Lake Color Inversion Using TM Imagery[J].Chinese Journal of Environmental Science,2003,24(2):73-76.
Authors:Wang Jianping  Cheng Shengtong  Jia Haifeng  Wang Zhishi and Tang U Wa
Institution:Department of Environmental Science and Engineering, Tsinghua University, Beijing 100084, China.
Abstract:The technology of artificial neural network was used for inversing water quality parameters from TM imagery data in the paper in order to study water quality and eutrophic status of lake. On the basis of satellite synchronous monitoring experiment, a BP neural network model was constructed, in which concentrations of SS, CODMn, DO, T-N, T-P and chlo a were inversed from Landsat TM data and the accuracy of which was good, the relative error of which could be controlled below 25%. Moreover, the reasons of simulating error, ways of improving model and applications of the model were also analyzed in detail. The results of this research told that based on a small scale of satellite synchronous experiment, the model could be applied successfully in investigation, analysis and estimation of lake water quality.
Keywords:artificial neural network  environmental remote sensing  water color remote sensing  inversion  lake
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