Audio Based Disambiguation Of Music Genre Tags
September 19, 2018 Β· Declared Dead Β· π International Society for Music Information Retrieval Conference
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Authors
Romain Hennequin, Jimena Royo-Letelier, Manuel Moussallam
arXiv ID
1809.07256
Category
cs.IR: Information Retrieval
Citations
15
Venue
International Society for Music Information Retrieval Conference
Last Checked
4 months ago
Abstract
In this paper, we propose to infer music genre embeddings from audio datasets carrying semantic information about genres. We show that such embeddings can be used for disambiguating genre tags (identification of different labels for the same genre, tag translation from a tag system to another, inference of hierarchical taxonomies on these genre tags). These embeddings are built by training a deep convolutional neural network genre classifier with large audio datasets annotated with a flat tag system. We show empirically that they makes it possible to retrieve the original taxonomy of a tag system, spot duplicates tags and translate tags from a tag system to another.
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