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Spatial variability of precipitation regimes over Turkey
Authors:Faize Sari?  David M Hannah  Warren J Eastwood
Institution:1. School of Geography, Earth and Environmental Sciences , University of Birmingham , Edgbaston, Birmingham, B15 2TT, UK;2. Department of Geography, Faculty of Sciences and Arts , ?anakkale Onsekiz Mart University , ?anakkale, 17020, Turkey fxs720@bham.ac.uk;4. School of Geography, Earth and Environmental Sciences , University of Birmingham , Edgbaston, Birmingham, B15 2TT, UK
Abstract:Abstract

This study aims to predict the daily precipitation from meteorological data from Turkey using the wavelet—neural network method, which combines two methods: discrete wavelet transform (DWT) and artificial neural networks (ANN). The wavelet—ANN model provides a good fit with the observed data, in particular for zero precipitation in the summer months, and for the peaks in the testing period. The results indicate that wavelet—ANN model estimations are significantly superior to those obtained by either a conventional ANN model or a multi linear regression model. In particular, the improvement provided by the new approach in estimating the peak values had a noticeably high positive effect on the performance evaluation criteria. Inclusion of the summed sub-series in the ANN input layer brings a new perspective to the discussions related to the physics involved in the ANN structure.
Keywords:precipitation climatology  rainfall  regimes  regionalization  classification  Turkey
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