Detection Model for Fake News in Bengali Language Using SVM and Random Forest

dc.contributor.authorKatha Chowdhury
dc.contributor.authorPoushali Sangma
dc.contributor.authorAl-Imtiaz
dc.contributor.authorImran Chowdhury
dc.contributor.authorMd. Khalid Mahbub Khan
dc.contributor.authorMd. Sohel Rana
dc.contributor.authorMd. Mijanur Rahman
dc.date.accessioned2026-04-29T07:36:19Z
dc.date.issued2025-05-31
dc.description.abstractIn the era of digital communication, fake news poses a critical challenge with significant real-world implications. In this study, the issue of Bangla fake news is addressed by developing and evaluating two machine learning models: random forest and support vector machine (SVM). The study begins by delving into the distinctive linguistic and cultural traits of Bangla fake news and curating a comprehensive dataset comprising both genuine and fake news articles. By implementing the random forest and SVM models, this study achieves detection accuracies of 97.2 and 96.21%, respectively, showcasing the effectiveness of these approaches in identifying Bangla fake news. Rigorous experimentation and evaluation metrics validate the models’ reliability and adaptability. Furthermore, a comparative study is carried out to better understand the merits and limitations of each model, providing valuable insights to researchers and practitioners in choosing the most suitable method.
dc.identifier.citationChowdhury, Katha, et al. "Detection model for fake news in bengali language using svm and random forest." World Conference on Information Systems for Business Management. Singapore: Springer Nature Singapore, 2024.
dc.identifier.issn23673370
dc.identifier.urihttp://dspace.uttarauniversity.edu.bd:4000/handle/123456789/1426
dc.language.isoen_US
dc.publisherLecture Notes in Networks and Systems
dc.subjectFake News Detection
dc.subjectNatural Language Processing (NLP)
dc.subjectBengali Language Processing
dc.subjectSupport Vector Machine (SVM)
dc.subjectMachine Learning
dc.titleDetection Model for Fake News in Bengali Language Using SVM and Random Forest
dc.typeArticle

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