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Unified Cross-modal Translation of Score Images, Symbolic Music, and Performance Audio

About

Music exists in various modalities, such as score images, symbolic scores, MIDI, and audio. Translations between each modality are established as core tasks of music information retrieval, such as automatic music transcription (audio-to-MIDI) and optical music recognition (score image to symbolic score). However, most past work on multimodal translation trains specialized models on individual translation tasks. In this paper, we propose a unified approach, where we train a general-purpose model on many translation tasks simultaneously. Two key factors make this unified approach viable: a new large-scale dataset and the tokenization of each modality. Firstly, we propose a new dataset that consists of more than 1,300 hours of paired audio-score image data collected from YouTube videos, which is an order of magnitude larger than any existing music modal translation datasets. Secondly, our unified tokenization framework discretizes score images, audio, MIDI, and MusicXML into a sequence of tokens, enabling a single encoder-decoder Transformer to tackle multiple cross-modal translation as one coherent sequence-to-sequence task. Experimental results confirm that our unified multitask model improves upon single-task baselines in several key areas, notably reducing the symbol error rate for optical music recognition from 24.58% to a state-of-the-art 13.67%, while similarly substantial improvements are observed across the other translation tasks. Notably, our approach achieves the first successful score-image-conditioned audio generation, marking a significant breakthrough in cross-modal music generation.

Jongmin Jung, Dongmin Kim, Sihun Lee, Seola Cho, Hyungjoon Soh, Irmak Bukey, Chris Donahue, Dasaem Jeong• 2025

Related benchmarks

TaskDatasetResultRank
Image-to-Audio GenerationBPSD
Onset F1 (50ms)50.91
6
Optical Music RecognitionOLiMPiC Synth (test)
SER9.72
4
Optical Music RecognitionOLiMPiC Scanned (test)
SER13.67
4
Optical Music RecognitionBPSD Scanned (test)
SER23.36
4
Automatic Music TranscriptionMAESTRO (test)
Note Onset F189.45
4
Image-to-Audio GenerationYTSV T11 (test)
Onset F1 (50ms)52.66
4
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