cs.AI updates on arXiv.org 10月09日 12:05
音乐内容演变:深度学习分析流行音乐歌词
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本文利用深度学习方法分析美国Billboard音乐排行榜过去七十年歌曲歌词,通过情感分析和滥用检测,探讨流行音乐中不当内容的演变趋势,揭示社会规范和语言使用的变化。

arXiv:2510.06266v1 Announce Type: cross Abstract: There is no doubt that there has been a drastic increase in abusive and sexually explicit content in music, particularly in Billboard Music Charts. However, there is a lack of studies that validate the trend for effective policy development, as such content has harmful behavioural changes in children and youths. In this study, we utilise deep learning methods to analyse songs (lyrics) from Billboard Charts of the United States in the last seven decades. We provide a longitudinal study using deep learning and language models and review the evolution of content using sentiment analysis and abuse detection, including sexually explicit content. Our results show a significant rise in explicit content in popular music from 1990 onwards. Furthermore, we find an increasing prevalence of songs with lyrics containing profane, sexually explicit, and otherwise inappropriate language. The longitudinal analysis of the ability of language models to capture nuanced patterns in lyrical content, reflecting shifts in societal norms and language use over time.

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相关标签

深度学习 流行音乐 歌词分析 不当内容 社会规范
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