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Prior-free Guided TTS: An Improved and Efficient Diffusion-based Text-Guided Speech Synthesis

Authors
Choi, Won-GookKim, So-JeongKim, TaeHoChang, Joon-Hyuk
Issue Date
Aug-2023
Publisher
International Speech Communication Association
Keywords
diffusion model; guided score; text-to-speech
Citation
Proceedings of the Annual Conference of the International Speech Communication Association, INTERSPEECH, v.2023-August, pp.4289 - 4293
Indexed
SCOPUS
Journal Title
Proceedings of the Annual Conference of the International Speech Communication Association, INTERSPEECH
Volume
2023-August
Start Page
4289
End Page
4293
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/191797
DOI
10.21437/Interspeech.2023-506
ISSN
2308-457X
Abstract
Recently, diffusion models have exhibited higher sample quality with guidance, such as classifier guidance and classifier-free guidance. However, these guidances have limitations: they require extra classifiers or joint training, and incur additional sampling cost. In this study, we propose prior-free guidance diffusion model and prior-free guided text-to-speech (PfGuided-TTS) that can generate a speech at a quality as high as other guidances without extra training resources and computational cost. PfGuided-TTS can generate higher human perceptual quality speech than the existing autoregressive (AR) and non-AR models, including diffusion-based TTS on LJSpeech. In addition, we provide a schematic describing why and how classifier- and prior-free guided scores produce high-fidelity samples.
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