Please use this identifier to cite or link to this item: https://publication.npru.ac.th/jspui/handle/123456789/2323
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dc.contributor.authorSripisuth, Kharawan-
dc.contributor.authorHayamin, Natcha-
dc.contributor.authorKularbphettong, Kunyanuth-
dc.date.accessioned2025-09-01T07:01:03Z-
dc.date.available2025-09-01T07:01:03Z-
dc.date.issued2025-08-21-
dc.identifier.isbn978-974-7063-48-6-
dc.identifier.urihttps://publication.npru.ac.th/jspui/handle/123456789/2323-
dc.description.abstractThe study aims to develop a provincial flood prediction model for Thailand in 2025, employing projected rainfall data and flood statistics from 2021 to 2023. The model is essential for catastrophe preparedness and future risk management strategies. This study utilizes statistical analysis alongside machine learning methodologies employing the Random Forest algorithm to develop a highly accurate model for forecasting flood-prone regions. The analytical procedure include data preprocessing, including the identification of missing values, the management of data redundancy, and the preparation of the dataset prior to model training and testing. The data include monthly precipitation forecasts for the forthcoming six months and yearly flood statistics. The findings of this study can be utilized to enhance decision-making and risk management regarding floods by pertinent agencies. The findings establish a basis for the future advancement of more efficient predictive algorithms.en_US
dc.publisherThe 17th NPRU National Academic Conference Nakhon Pathom Rajabhat Universityen_US
dc.relation.ispartofseriesProceedings of the 17th NPRU National Academic Conference;375-382-
dc.subjectFlooden_US
dc.subjectrainfallen_US
dc.subjectRandom Forest algorithmen_US
dc.subjectmachine learningen_US
dc.titleDevelopment of a Provincial Flood Prediction Model for Thailand in 2025 Using Machine Learning Techniquesen_US
dc.title.alternativeการพัฒนาแบบจำลองการพยากรณ์อุทกภัยรายจังหวัดในประเทศไทย ด้วยเทคนิคการเรียนรู้ของเครื่องจักรen_US
dc.typeOtheren_US
Appears in Collections:Proceedings of the 17th NPRU National Academic Conference

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