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TNT生化降解时间序列的人工神经网络预报模型
引用本文:黄 俊,周申范,唐婉莹.TNT生化降解时间序列的人工神经网络预报模型[J].环境科学研究,2000,13(2):3-5.
作者姓名:黄 俊  周申范  唐婉莹
作者单位:南京理工大学化工学院,江苏南京210094
摘    要:利用变步长BP算法,对白腐真菌生化降解实际TNT装药废水过程中TNT含量变化的时间序列建立了人工神经网络预报模型,并利用该模型对生化降解过程的变化规律及趋势进行了研究。结果表明,模型的计算值与实测值之间的误差很小,对未来时刻数据的预测精度也较高,模型较好地反映了TNT含量的变化规律。 

关 键 词:BP算法    TNT    生化降解
收稿时间:1999/4/13 0:00:00
修稿时间:1999-04-13

Artificial Neutral Network Predicting Model of TNT Biodegradation Time SeriesHUANG Jun, ZHOU Shen-fan, TANG Wan-ying
HUANG Jun,ZHOU Shen-fan and TANG Wan-ying.Artificial Neutral Network Predicting Model of TNT Biodegradation Time SeriesHUANG Jun, ZHOU Shen-fan, TANG Wan-ying[J].Research of Environmental Sciences,2000,13(2):3-5.
Authors:HUANG Jun  ZHOU Shen-fan and TANG Wan-ying
Institution:College of Chemical Engineering, Nanjing University of Science and Technology, Nanjing, Jiangsu 210094
Abstract:An artificial neutral network model was established based on the time series of TNT concentration data coming from TNT packing wastewater biodegradation process by white rot fungi, using the varied pace back propagation (BP) algorithm. The model was then used in the study on the changing rule of TNT concentration and the developing trend. The results showed high accuracy both for the present data and for the predicting data, which showed that the established ANN model had reflected the rule of TNT packing wastewater biodegradation process. The study proved that ANN is a novel and proper approach for the study of TNT biodegradation.
Keywords:back  propagation algorithm  TNT  biodegradation
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