A Study of Audio Mixing Methods for Piano Transcription in Violin-Piano Ensembles

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초록

While piano music transcription models have shown high performance for solo piano recordings, their performance de-grades when applied to ensemble recordings. This study aims to analyze the impact of different data augmentation methods on piano transcription performance, specifically focusing on mixing techniques applied to violin-piano ensembles. We apply mixing methods that consider both harmonic and temporal characteristics of the audio. To create datasets for this study, we generated the PFVN-synth dataset, which contains 7 hours of violin-piano ensemble audio by rendering MIDI files and corresponding labels, and also collected unaccompanied violin recordings and mixed them with the MAESTRO dataset. We evaluated the transcription results on both synthesized and real audio recordings datasets. © 2023 IEEE.

키워드

datasetmixing audiosPiano transcriptionviolin-piano ensemble
제목
A Study of Audio Mixing Methods for Piano Transcription in Violin-Piano Ensembles
저자
Kim, HyemiPark, JiyunKwon, TaegyunJeong, DasaemNam, Juhan
DOI
10.1109/ICASSP49357.2023.10095061
발행일
2023
유형
Conference Paper
저널명
ICASSP, IEEE International Conference on Acoustics, Speech and Signal Processing - Proceedings
2023-June