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基于BP神经网络的杨梅大棚内气温预测模型研究
引用本文:金志凤,符国槐,黄海静,潘永地,杨再强,李仁忠.基于BP神经网络的杨梅大棚内气温预测模型研究[J].中国农业气象,2011,32(3):362-367.
作者姓名:金志凤  符国槐  黄海静  潘永地  杨再强  李仁忠
作者单位:1. 浙江省气候中心,杭州,310017
2. 慈溪市气象局,慈溪,315300
3. 南京信息工程大学应用气象学院,南京,210044
4. 温州市气象局,温州,325027
基金项目:公益性行业(气象)科研专项,科技部农业科技成果转化资金项目,浙江省科技厅科技计划
摘    要:利用2009年12月-2010年5月塑料大棚内外观测的气象数据,构建了基于BP神经网络的杨梅生产大棚内的最高、最低气温预测模型,根据逐时转化系数计算出棚内相应的逐时气温,达到逐时预报大棚内气温的目的。通过模拟回代和对独立试验数据的验证,基于BP神经网络模型对大棚内日最低气温、日最高气温和逐时气温预测值与实际值的回归估计标准误差(RMSE)分别为0.8℃、1.4℃和0.7℃,精度明显高于同时利用逐步回归法建立的模型。该模型所需参数少,实用性强,模拟精度高,可为设施杨梅气象服务和环境调控提供依据。

关 键 词:神经网络  气温  模拟模型  设施杨梅栽培

Simulation and Forecast of Air Temperature inside the Greenhouse Planted Myica rubra Based on BP Neural Network
JIN Zhi-feng,FU Guo-huai,HUANG Hai-jing,PAN Yong-di,YANG Zai-qiang,LI Ren-zhong.Simulation and Forecast of Air Temperature inside the Greenhouse Planted Myica rubra Based on BP Neural Network[J].Chinese Journal of Agrometeorology,2011,32(3):362-367.
Authors:JIN Zhi-feng  FU Guo-huai  HUANG Hai-jing  PAN Yong-di  YANG Zai-qiang  LI Ren-zhong
Institution:1.Zhejiang Climate Center,Hangzhou 310017,China;2.Cixi Meteorological Bureau,Cixi,315300;3.College of Applied Meteorology, Nanjing University of Information Science and Technology,Nanjing 210044;4.Wenzhou Meteorological Bureau,Wenzhou 325027)
Abstract:The minimum and maximum temperature prediction model inside greenhouse planted Myica rubra was established based on BP neural network,by using meteorological data both inside and outside the greenhouse from December 2009 to June 2010 in Wenzhou of Zhejiang province.Using the independent experimental data and simulation back generations to verify the model,the results indicated that the root mean square error(RMSE) between the predicted value and measured value based on 1∶ 1 line for the minimum and maximum and hourly inside air temperature were 0.8℃,1.4℃ and 0.7℃,respectively.The precision of BP neural network model was higher than that of the stepwise regression model obviously.The model,with few parameters,could predict the greenhouse temperature more accurately,which could provide scientific basis for facility meteorological service and environment regulation of greenhouse Myrica rubra cultivation.
Keywords:Neural network  Air temperature  Simulation model  Greenhouse planted Myrica rubra
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