Semi-Supervised Generative Modeling for Controllable Speech Synthesis
Raza Habib, Soroosh Mariooryad, Matt Shannon, Eric Battenberg, R. J. Skerry-Ryan, Daisy Stanton, David Kao, Tom Bagby
Abstract
We present a novel generative model that combines state-of-the-art neural text-to-speech (TTS) with semi-supervised probabilistic latent variable models. By providing partial supervision to some of the latent variables, we are able to force them to take on consistent and interpretable purposes, which previously hasn't been possible with purely unsupervised TTS models. We demonstrate that our model is able to reliably discover and control important but rarely labelled attributes of speech, such as affect and speaking rate, with as little as 1% (30 minutes) supervision. Even at such low supervision levels we do not observe a degradation of synthesis quality compared to a state-of-the-art baseline. Audio samples are available on the web.
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Install the CLIlune papers fulltext 9a1e3b95-1b3f-4cda-b15f-dfc72cd14337Cited by top-tier papers2
- Generative Pre-training for Speech with Flow MatchingAlexander H. Liu, Matthew Le, Apoorv Vyas, Bowen Shi et al.ICLR 2024 · 66 citations
- Text-Free Image-to-Speech Synthesis Using Learned Segmental UnitsWei-Ning Hsu, David Harwath, Tyler Miller, Christopher Song et al.ACL 2021
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