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ParrotTTS: Text-to-Speech synthesis by exploiting self-supervised representations (2303.01261v3)

Published 1 Mar 2023 in cs.CL, cs.SD, and eess.AS

Abstract: We present ParrotTTS, a modularized text-to-speech synthesis model leveraging disentangled self-supervised speech representations. It can train a multi-speaker variant effectively using transcripts from a single speaker. ParrotTTS adapts to a new language in low resource setup and generalizes to languages not seen while training the self-supervised backbone. Moreover, without training on bilingual or parallel examples, ParrotTTS can transfer voices across languages while preserving the speaker specific characteristics, e.g., synthesizing fluent Hindi speech using a French speaker's voice and accent. We present extensive results in monolingual and multi-lingual scenarios. ParrotTTS outperforms state-of-the-art multi-lingual TTS models using only a fraction of paired data as latter.

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Authors (6)
  1. Neil Shah (87 papers)
  2. Saiteja Kosgi (4 papers)
  3. Vishal Tambrahalli (3 papers)
  4. Neha Sahipjohn (3 papers)
  5. Niranjan Pedanekar (6 papers)
  6. Vineet Gandhi (41 papers)
Citations (4)