Learning Audio - Sheet Music Correspondences for Score Identification and Offline Alignment
July 31, 2017 Β· Declared Dead Β· π International Society for Music Information Retrieval Conference
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Authors
Matthias Dorfer, Andreas Arzt, Gerhard Widmer
arXiv ID
1707.09887
Category
cs.IR: Information Retrieval
Cross-listed
cs.SD
Citations
43
Venue
International Society for Music Information Retrieval Conference
Last Checked
4 months ago
Abstract
This work addresses the problem of matching short excerpts of audio with their respective counterparts in sheet music images. We show how to employ neural network-based cross-modality embedding spaces for solving the following two sheet music-related tasks: retrieving the correct piece of sheet music from a database when given a music audio as a search query; and aligning an audio recording of a piece with the corresponding images of sheet music. We demonstrate the feasibility of this in experiments on classical piano music by five different composers (Bach, Haydn, Mozart, Beethoven and Chopin), and additionally provide a discussion on why we expect multi-modal neural networks to be a fruitful paradigm for dealing with sheet music and audio at the same time.
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