中国科学院机构知识库网格
Chinese Academy of Sciences Institutional Repositories Grid
Artificial neural network models for reference evapotranspiration in an arid area of northwest China

文献类型:SCI/SSCI论文

作者Huo Z. ; Feng S. ; Kang S. ; Dai X.
发表日期2012
关键词Climate factors Empirical equation Evapotranspiration estimation Penman-Monteith equation penman-monteith equation climate scale
英文摘要We trained and tested artificial neural network (ANN) models for reference evapotranspiration (ET0) using 50 years' meteorological data from three stations in northwest China. Multiple linear regressions (MLRs), the Penman equation, and two empirical equations were used to compare the performance of the ANNs. A connection weight method was used to quantify the importance of climate factors in performance. In addition, the error changes of the ANNs with seasons were evaluated according to absolute error, variance, and coefficient of variance. Results showed that in arid and semi-arid areas, the ANNs in which the climate data were used successfully estimated ET0, and the ANNs with five inputs were more accurate than those with four or three. Relative to the MLRs, the Penman equation, and empirical equations, the ANNs exhibited high precision. Maximum air temperature, minimum air temperature, and relative humidity were the most crucial input of ANN-based ET estimation for arid and semi-arid areas. In the study area, the importance of these three climate factors accounted respectively for 39.82-46.64%, 28.48-33.46%, and 10.73-26.17% to estimation of ET0. Generally, ANNs underestimated ET0 from January to July and overestimated it from August to December. Crown Copyright (C) 2012 Published by Elsevier Ltd. All rights reserved.
出处Journal of Arid Environments
82
81-90
收录类别SCI
语种英语
ISSN号0140-1963
源URL[http://ir.igsnrr.ac.cn/handle/311030/26896]  
专题地理科学与资源研究所_历年回溯文献
推荐引用方式
GB/T 7714
Huo Z.,Feng S.,Kang S.,et al. Artificial neural network models for reference evapotranspiration in an arid area of northwest China. 2012.

入库方式: OAI收割

来源:地理科学与资源研究所

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