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A Foundation Model for Music Informatics

About

This paper investigates foundation models tailored for music informatics, a domain currently challenged by the scarcity of labeled data and generalization issues. To this end, we conduct an in-depth comparative study among various foundation model variants, examining key determinants such as model architectures, tokenization methods, temporal resolution, data, and model scalability. This research aims to bridge the existing knowledge gap by elucidating how these individual factors contribute to the success of foundation models in music informatics. Employing a careful evaluation framework, we assess the performance of these models across diverse downstream tasks in music information retrieval, with a particular focus on token-level and sequence-level classification. Our results reveal that our model demonstrates robust performance, surpassing existing models in specific key metrics. These findings contribute to the understanding of self-supervised learning in music informatics and pave the way for developing more effective and versatile foundation models in the field. A pretrained version of our model is publicly available to foster reproducibility and future research.

Minz Won, Yun-Ning Hung, Duc Le• 2023

Related benchmarks

TaskDatasetResultRank
Structure AnalysisHookTheory Linear Probing
Accuracy59.8
15
Genre ClassificationGTZAN Linear Probing
Accuracy84.1
15
Rhythm AnalysisGTZAN Linear Probing
F1Beat90.2
15
Key DetectionHookTheory Linear Probing
Refined Accuracy71.8
15
Key DetectionGS (GiantSteps) Linear Probing
Refined Accuracy63
15
Music TaggingMTT (MagnaTagATune) Linear Probing
ROC AUC90.9
15
Emotional AnalysisEMO (EmoMusic) Linear Probing
R2 Score (Valence)57.2
15
Music TaggingMTG Global MoodTheme MARBLE (test)
ROC AUC74.9
15
Music TaggingMTG Global Genre MARBLE benchmark (test)
ROC AUC85.3
15
Music TaggingMTG Global Top50 MARBLE benchmark (test)
ROC AUC81.9
15
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