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Investigating on Incorporating Pretrained and Learnable Speaker Representations for Multi-Speaker Multi-Style Text-to-Speech

Citation Author(s):
Jheng-Hao Lin, Chien-yu Huang, Po-chun Hsu, Hung-yi Lee
Submitted by:
Chung-Ming Chien
Last updated:
22 June 2021 - 1:22am
Document Type:
Presentation Slides
Document Year:
2021
Event:
Presenters:
Chung-Ming Chien
Paper Code:
CHLG-3.1
 

The few-shot multi-speaker multi-style voice cloning task is to synthesize utterances with voice and speaking style similar to a reference speaker given only a few reference samples. In this work, we investigate different speaker representations and proposed to integrate pretrained and learnable speaker representations. Among different types of embeddings, the embedding pretrained by voice conversion achieves the best performance. The FastSpeech 2 model combined with both pretrained and learnable speaker representations shows great generalization ability on few-shot speakers and achieved 2nd place in the one-shot track of the ICASSP 2021 M2VoC challenge.

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