conference-paper

Clustering Sinhala News Articles Using Corpus-Based Similarity Measures

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Abstract

News aggregators help readers to handle large numbers of news items in a convenient manner by collecting them into a single place with meaningful groupings. Such news aggregators/clusters are available for English and some other popular languages. However, no such tools are available for Sinhala language. To address this void, this paper presents a system to collect news articles published across the web and group related articles using corpus-based similarity measures. Despite the simplicity of the technique and morphological richness of Sinhala, we achieved very promising results that prove the viability of the presented technique.

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Publication details

DOI
10.1109/mercon.2018.8421890
OpenAlex
W2886308453
Document type
conference-paper
Language
EN
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