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Jorge Calvo-Zaragoza

3 accepted papers

2024

A Transformer Approach for Polyphonic Audio-to-Score Transcription

ICASSP 2024accepted

End-to-end Audio-to-Score (A2S) transcription aims to derive a score that represents the music content of an audio recording in a single step. While current state-of-the-art methods, which rely on Convolutional Recurrent Neural Networks trained with the Connectionist Temporal Classification loss fun…

Cited by 0SourceScholar
2022

Neural Audio-To-Score Music Transcription For Unconstrained Polyphony Using Compact Output Representations

ICASSP 2022accepted

Neural Audio-to-Score (A2S) Music Transcription systems have shown promising results with pieces containing a fixed number of voices. However, they still exhibit fundamental limitations that constrain their applicability in wider scenarios. This work aims at tackling two of them: we introduce a nove…

Cited by 0SourceScholar