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Deep Learning based Multiple Regression to Predict Total Column Water Vapor (TCWV) from Physical Parameters in West Africa by using Keras Library

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Author :  Daouda DIOUF, Awa Niang and Sylvie Thiria

Affiliation :  Université Cheikh Anta Diop de Dakar BP

Country :  Sénégal

Category :  Data Mining

Volume, Issue, Month, Year :  9, 6, November, 2019

Abstract :


Total column water vapor is an important factor for the weather and climate. This study apply deep learning based multiple regression to map the TCWV with elements that can improve spatiotemporal prediction. In this study, we predict the TCWV with the use of ERA5 that is the fifth generation ECMWF atmospheric reanalysis of the global climate. We use an appropriate deep learning based multiple regression algorithm using Keras library to improve nonlinear prediction between Total Column water vapor and predictors as Mean sea level pressure, Surface pressure, Sea surface temperature, 100 metre U wind component, 100 metre V wind component, 10 metre U wind component, 10 metre V wind component, 2 metre dew point temperature, 2metre temperature. The results obtained permit to build a predictor which modelling TCWV with a mean abs error (MAE) equal to 3.60 kg/m2 and a coefficient of determination R2 equal to 0.90.

Keyword :  Deep Learning

Journal/ Proceedings Name :  International Journal of Data Mining & Knowledge Management Process (IJDKP)

URL :  https://aircconline.com/ijdkp/V9N6/9619ijdkp02.pdf

User Name : tania
Posted 09-07-2025 on 21:16:46 AEDT



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