Artificial neural network models for forecasting intermittent monthly precipitation in arid regions

被引:27
作者
Dahamsheh, Ahmad [2 ]
Aksoy, Hafzullah [1 ]
机构
[1] Istanbul Tech Univ, Hydraul Div, Dept Civil Engn, TR-34469 Istanbul, Turkey
[2] Jordan Meteorol Dept, Amman 11134, Jordan
关键词
artificial neural networks; linear regression; feed-forward back propagation; intermittent precipitation; Jordan; monthly precipitation; SUMMER FLOOD OCCURRENCE; LONG-TERM CHANGES; RAINFALL PATTERNS; TIME-SERIES; MONSOON RAINFALL; PREDICTION; VARIABILITY; TRENDS; CLIMATOLOGY; TURKEY;
D O I
10.1002/met.127
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
Forecasting monthly precipitation in and regions is investigated by means of feed forward back propagation (FFBP) artificial neural networks (ANNs) and compared to the linear regression technique with multiple inputs (MLR). Four meteorological stations from different geographical regions in Jordan are selected. The ANNs and MLR processes are analysed based on the mean square error, relative/absolute error, determination coefficient as well as the central statistical moments such as mean, standard deviation, and minimum and maximum values. It is found that whilst on one hand the ANNs are slightly better than the MLR in forecasting the monthly total precipitation, on the other hand, both are found with to have limitations which should be improved by means of either changing the type and architecture of the ANNs or incorporating modelling tools such as Markov chains into the forecast model. Copyright (C) 2009 Royal Meteorological Society
引用
收藏
页码:325 / 337
页数:13
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