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@@ -4,4 +4,31 @@ metrics:
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  - accuracy
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  - roc_auc
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  ---
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- See https://medium.com/data-and-beyond/building-a-free-advanced-music-genre-classification-pipeline-using-machine-learning-654b0de7cc3e and https://www.kaggle.com/code/dima806/music-genre-classification-wav2vec2-base-960h for details.
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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  - accuracy
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  - roc_auc
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  ---
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+ [Music genre](https://en.wikipedia.org/wiki/Music_genre) classification is a fundamental and versatile application in many various domains. Some possible use cases for music genre classification include:
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+ - music recommendation systems;
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+ - content organization and discovery;
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+ - radio broadcasting and programming;
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+ - music licensing and copyright management;
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+ - music analysis and research;
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+ - content tagging and metadata enrichment;
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+ - audio identification and copyright protection;
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+ - music production and creativity;
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+ - healthcare and therapy;
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+ - entertainment and gaming.
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+
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+ The model is trained based on publicly available dataset of labeled music data — [GTZAN Dataset](https://www.kaggle.com/datasets/andradaolteanu/gtzan-dataset-music-genre-classification) — that contains 1000 sample 30-second audio files evenly split among 10 genres:
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+
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+ - blues;
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+ - classical;
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+ - country;
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+ - disco;
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+ - hip-hop;
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+ - jazz;
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+ - metal;
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+ - pop;
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+ - reggae;
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+ - rock.
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+
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+ The final code is available as a [Kaggle notebook](https://www.kaggle.com/code/dima806/music-genre-classification-wav2vec2-base-960h).
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+ See also [my Medium article](https://medium.com/data-and-beyond/building-a-free-advanced-music-genre-classification-pipeline-using-machine-learning-654b0de7cc3e) for more details.