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Web-based Application for Detecting Indonesian Clickbait Headlines using IndoBERT

2021-02-21 13:28:52
Muhammad Noor Fakhruzzaman, Sie Wildan Gunawan

Abstract

With increasing usage of clickbaits in Indonesian Online News, newsworthy articles sometimes get buried among clickbaity news. A reliable and lightweight tool is needed to detect such clickbaits on-the-go. Leveraging state-of-the-art natural language processing model BERT, a RESTful API based application is developed. This study offloaded the computing resources needed to train the model on the cloud server, while the client-side application only needs to send a request to the API and the cloud server will handle the rest. This study proposed the design and developed a web-based application to detect clickbait in Indonesian using IndoBERT as a language model. The application usage is discussed and available for public use with a performance of mean ROC-AUC of 89%.

Abstract (translated)

URL

https://arxiv.org/abs/2102.10601

PDF

https://arxiv.org/pdf/2102.10601.pdf


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