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Singing Voice Data Scaling-up: An Introduction to ACE-Opencpop and ACE-KiSing

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arxiv 2401.17619 v3 pith:YWIRI4NY submitted 2024-01-31 cs.SD eess.AS

classification cs.SDeess.AS
keywords voicesingingdatadatasetssynthesisace-kisingace-opencpopespnet
verification ladder T0 review T1 audit T2 compute T3 formal
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In singing voice synthesis (SVS), generating singing voices from musical scores faces challenges due to limited data availability. This study proposes a unique strategy to address the data scarcity in SVS. We employ an existing singing voice synthesizer for data augmentation, complemented by detailed manual tuning, an approach not previously explored in data curation, to reduce instances of unnatural voice synthesis. This innovative method has led to the creation of two expansive singing voice datasets, ACE-Opencpop and ACE-KiSing, which are instrumental for large-scale, multi-singer voice synthesis. Through thorough experimentation, we establish that these datasets not only serve as new benchmarks for SVS but also enhance SVS performance on other singing voice datasets when used as supplementary resources. The corpora, pre-trained models, and their related training recipes are publicly available at ESPnet-Muskits (\url{https://github.com/espnet/espnet})

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Neurodyne: Neural Pitch Manipulation with Representation Learning and Cycle-Consistency GAN

    cs.SD 2025-05 conditional novelty 6.0 of 10

    Neurodyne, a GAN-based singing voice pitch manipulator, uses adversarial representation learning and inversion plus composition cycle-consistency to improve pitch accuracy while preserving singer identity.

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