Weather Forecasting 2021
DOI: 10.5772/intechopen.98226
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Prediction of Relative Humidity in a High Elevated Basin of Western Karakoram by Using Different Machine Learning Models

Abstract: Accurate and reliable prediction of relative humidity is of great importance in all fields concerning global climate change. The current study has employed Multivariate Adaptive Regression Spline (MARS) and M5 Tree (M5T) models to predict the relative humidity in the Hunza River basin, Pakistan. Both the models provided the best prediction for the input scenario S6 (RHt-1, RHt-2, RHt-3, Tt-1, Tt-2, Tt-3). The statistical analysis displayed that the MARS model provided a better prediction of relative humidity a… Show more

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Cited by 13 publications
(6 citation statements)
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“…Moreover, accurate weather information and accurate humidity forecasting are frequently essential for warning about natural disasters induced by sudden changes in climatic conditions (Adnan et al. 2021 ). The above discussion emphasizes the urgency of monitoring and predicting relative humidity throughout the year in developing countries like India.…”
Section: Introductionmentioning
confidence: 99%
“…Moreover, accurate weather information and accurate humidity forecasting are frequently essential for warning about natural disasters induced by sudden changes in climatic conditions (Adnan et al. 2021 ). The above discussion emphasizes the urgency of monitoring and predicting relative humidity throughout the year in developing countries like India.…”
Section: Introductionmentioning
confidence: 99%
“…According to the data record from 1998 to 2012, the maximum relative humidity in the eastern part (Hunza) of the Gilgit River basin varies from 59% (March) to 91% (August) whereas the minimum relative humidity varies from 23% (March) to 52% (December). The basin receives a large number of solar radiation in May (5148 W/m 2 ) and small numbers of solar radiation in December (2563 W/m 2 ) (Adnan et al, 2021). The land-cover classification of the Gilgit River basin is displayed in Supplementary Figure S2.…”
Section: Study Areamentioning
confidence: 99%
“…The main steps of the suggested machine-learning techniques shown in Fig. 4 can be expressed as follows (Adnan et al, 2021):…”
Section: Case Study and Data Preparationmentioning
confidence: 99%
“…A machine learning method was used to estimate RH in the Hunza river basin in Pakistan. It has been determined that the error rates in the results obtained using the method are quite low, and thus the MARS method can be easily used in the estimation of relative humidity (Adnan et al, 2021). Due to its highly complex and non-linear nature, research on relative humidity estimation is limited.…”
Section: Introductionmentioning
confidence: 99%