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SHOULD WE CONSIDER THE USERS IN CONTEXTUAL MUSIC AUTO-TAGGING MODELS?

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Résumé

Music tags are commonly used to describe and categorize music. Various auto-tagging models and datasets have been proposed for the automatic music annotation with tags. However, the past approaches often neglect the fact that many of these tags largely depend on the user, especially the tags related to the context of music listening. In this paper, we address this problem by proposing a user-aware music auto-tagging system and evaluation protocol. Specifically, we use both the audio content and user information extracted from the user listening history to predict contextual tags for a given user/track pair. We propose a new dataset of music tracks annotated with contextual tags per user. We compare our model to the traditional audio-based model and study the influence of user embeddings on the classification quality. Our work shows that explicitly modeling the user listening history into the automatic tagging process could lead to more accurate estimation of contextual tags.

langue originaleAnglais
titreProceedings of the 21st International Society for Music Information Retrieval Conference, ISMIR 2020
rédacteurs en chefJulie Cumming, Jin Ha Lee, Brian McFee, Markus Schedl, Johanna Devaney, Johanna Devaney, Cory McKay, Eva Zangerle, Timothy de Reuse
EditeurInternational Society for Music Information Retrieval
Pages748-755
Nombre de pages8
ISBN (Electronique)9780981353708
étatPublié - 1 janv. 2020
Evénement21st International Society for Music Information Retrieval Conference, ISMIR 2020 - Virtual, Online, Canada
Durée: 11 oct. 202016 oct. 2020

Série de publications

NomProceedings of the 21st International Society for Music Information Retrieval Conference, ISMIR 2020

Une conférence

Une conférence21st International Society for Music Information Retrieval Conference, ISMIR 2020
Pays/TerritoireCanada
La villeVirtual, Online
période11/10/2016/10/20

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