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All-In-One Metrical And Functional Structure Analysis With Neighborhood Attentions on Demixed Audio

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arxiv 2307.16425 v1 pith:ZPRH4NQW submitted 2023-07-31 eess.AS

classification eess.AS
keywords modelattentionsall-in-onecapturedependenciesfunctionalhierarchicalmusic
verification ladder T0 review T1 audit T2 compute T3 formal
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Music is characterized by complex hierarchical structures. Developing a comprehensive model to capture these structures has been a significant challenge in the field of Music Information Retrieval (MIR). Prior research has mainly focused on addressing individual tasks for specific hierarchical levels, rather than providing a unified approach. In this paper, we introduce a versatile, all-in-one model that jointly performs beat and downbeat tracking as well as functional structure segmentation and labeling. The model leverages source-separated spectrograms as inputs and employs dilated neighborhood attentions to capture temporal long-term dependencies, along with non-dilated attentions for local instrumental dependencies. Consequently, the proposed model achieves state-of-the-art performance in all four tasks on the Harmonix Set while maintaining a relatively lower number of parameters compared to recent state-of-the-art models. Furthermore, our ablation study demonstrates that the concurrent learning of beats, downbeats, and segments can lead to enhanced performance, with each task mutually benefiting from the others.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. JAM: A Tiny Flow-based Song Generator with Fine-grained Controllability and Aesthetic Alignment

    cs.SD 2025-07 conditional novelty 6.0 of 10

    JAM is a 530M-parameter flow-matching song generator that adds word- and phoneme-level timing control and duration control, achieving strong lyric fidelity and musicality scores when ground-truth timings are provided.

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