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A Study on Altering the Latent Space of Pretrained Text to Speech Models for Improved Expressiveness

Published 17 Nov 2023 in cs.CL and cs.AI | (2311.10804v1)

Abstract: This report explores the challenge of enhancing expressiveness control in Text-to-Speech (TTS) models by augmenting a frozen pretrained model with a Diffusion Model that is conditioned on joint semantic audio/text embeddings. The paper identifies the challenges encountered when working with a VAE-based TTS model and evaluates different image-to-image methods for altering latent speech features. Our results offer valuable insights into the complexities of adding expressiveness control to TTS systems and open avenues for future research in this direction.

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