Direct content-based retrieval from music scores images 文章

ArXiv CS.CV2026-05-29NEWSen作者: Noelia Luna-Barahona, Antonio R\'ios-Vila, F\'elix Fuentes-Hurtado, David Rizo, Jorge Calvo-Zaragoza

摘要

arXiv:2605.22255v2 Announce Type: replace Abstract: The digitization of musical scores plays a crucial role in their preservation and accessibility, yet information retrieval still depends mainly on metadata searches, such as by title or composer. Content based search in music score images remains underexplored compared to text documents, despite its potential value for musicians, musicologists, and educators. This work contributes to the field by first studying which characteristics of a score are most relevant for search and by defining a systematic method to build query datasets from any annotated corpus. We also consider diverse methods for content-based search on music score images, ranging from transcription-based approaches relying on Optical Music Recognition (OMR), to a transcription-free Transformer model trained to recognize queries directly from score images, and a text-prompted Large Language Model.

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Direct content-based retrieval from music scores images
2026-05-29PRODUCT_LAUNCH影响: MEDIUM

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