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Linguistic Analysis of Sinhala YouTube Comments on Sinhala Music Videos: A Dataset Study Cover

Linguistic Analysis of Sinhala YouTube Comments on Sinhala Music Videos: A Dataset Study

Open Access
|Jun 2025

Abstract

This research investigates the area of Mu-sic Information Retrieval (MIR) and Music Emotion Recognition (MER) in relation to Sinhala songs, an underexplored field in music studies. The purpose of this study is to analyze the behavior of Sinhala comments on YouTube Sinhala song videos using social media comments as the primary data sources. These included comments from 27 YouTube videos containing 20 different Sinhala songs, which were carefully selected so that strict linguistic reliability would be maintained and relevancy ensured. This process led to a total of 93,116 comments being gathered upon which the dataset was refined further using advanced filtering methods and transliteration mechanisms resulting into 63,471 Sinhala comments. Additionally, 964 stop-words specific the Sinhala language were algorithmically de-rived out of which 182 matched exactly with English stop-words from the NLTK corpus once translated. Also comparisons were made between general domain corpora in Sinhala against the YouTube Comment Cor-pus in Sinhala confirming latter as good representation of general domain. The meticulously curated dataset as well as the derived stop-words form important re-sources for future research in the fields of MIR and MER, since they demonstrate the potential of that there are possibilities with computational techniques to address complex musical experiences across varied cultural traditions
Language: English
Page range: 121 - 130
Published on: Jun 13, 2025
Published by: University of Colombo School of Computing
In partnership with: Paradigm Publishing Services

© 2025 W. M. Yomal De Mel, Nisansa de Silva, published by University of Colombo School of Computing
This work is licensed under the Creative Commons Attribution 4.0 License.