Item Infomation


Title: 
Investigations on speaker adaptation using a continuous vocoder within recurrent neural network based text-to-speech synthesis
Authors: 
Ali Raheem, Mandeel
Mohammed Salah, Al-Radhi
Tamás Gábor, Csapó
Issue Date: 
2023
Publisher: 
Springer
Abstract: 
This paper presents an investigation of speaker adaptation using a continuous vocoder for parametric text-to-speech (TTS) synthesis. In purposes that demand low computational complexity, conventional vocoder-based statistical parametric speech synthesis can be preferable. While capable of remarkable naturalness, recent neural vocoders nonetheless fall short of the criteria for real-time synthesis. We investigate our former continuous vocoder, in which the excitation is characterized employing two one-dimensional parameters: Maximum Voiced Frequency and continuous fundamental frequency (F0).
Description: 
CC BY
URI: 
https://link.springer.com/article/10.1007/s11042-022-14005-5
https://dlib.phenikaa-uni.edu.vn/handle/PNK/7336
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