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Estimation of Drought Trends and Comparison Between SPI and SPEI with Prediction Using Machine Learning Models in Rangpur, Bangladesh

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dc.contributor.author Akter, Mst. Labony
dc.contributor.author Rahman, Md. Naimur
dc.contributor.author Azim, Syed Anowerul
dc.contributor.author Rony, Md. Rakib Hasan
dc.contributor.author Sohel, Md. Salman
dc.contributor.author Abdo, Hazem Ghassan
dc.date.accessioned 2024-05-26T08:24:43Z
dc.date.available 2024-05-26T08:24:43Z
dc.date.issued 2023-09-09
dc.identifier.uri http://dspace.daffodilvarsity.edu.bd:8080/handle/123456789/12488
dc.description.abstract This study investigates drought trends, SPI-SPEI comparisons, and predictions in Rangpur, Bangladesh, from 1979 to 2020. We employed Modified Mann-Kendall for trend analysis, SPI and SPEI for drought assessment, and Pearson Correlation Coefficient and Simple Linear Regression for evaluating SPI and SPEI relationships. Additionally, we utilized ANN, SVM, and RF for prediction. The study revealed notable negative trends in seasonal and annual drought, with the highest z statistics observed for SPI 06 (-2.75), SPI 09 (-4.50), SPI 12 (5.60), SPI 24 (-8.40), SPEI 06 (-5.13), SPEI 09 (-6.82), SPEI 12 (-8.04), and SPEI 24 (-11.20). Strong correlations were identified across all SPI and SPEI indices, with coefficients peaking at 97%, 98%, 98%, and 97% for 06, 09, 12, and 24-month periods, respectively. The comparative assessment favored SPEI over SPI, highlighting its superiority and accuracy. The ANN prediction model showed significant results for short-term and seasonal drought forecasts, projecting SPEI 03 and SPEI 06 increases of 0.02 and 0.24, respectively. However, long-term drought estimation exhibited insignificant performance across all predictive models. This emphasizes the need for developing essential predictive tools for future drought variability. en_US
dc.language.iso en_US en_US
dc.publisher Taylor & Francis Group en_US
dc.subject Machine learning en_US
dc.title Estimation of Drought Trends and Comparison Between SPI and SPEI with Prediction Using Machine Learning Models in Rangpur, Bangladesh en_US
dc.type Article en_US


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