An Intelligent Approach of Text-To-Speech Synthesizers for English and Sinhala Languages

P. Jayawardhana, A. Aponso, Naomi Krishnarajah, A. Rathnayake
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引用次数: 11

Abstract

This paper attempts to investigate novel Text-to-Speech algorithm based on Deep voice which is an attention based, fully convolutional mechanism. The procedure of producing speech synthesis involves with learning statistical model of the human vocal production mechanism which is eligible of taking some text and vocalize that as speech. This paper would reveal the route of the attempt where there is the destination of accuracy and realism. Serenity and fluency are the most important qualities which expect from a TTS. The idea is to give an outline of discourse amalgamation in the Sinhala language, compresses and replicates about the characteristics of different blend procedures utilized. The proposed TTS synthesizing with the neural network based approach to perform phonetic-to-acoustic mapping has described by the purpose of applying for multilingual synthesizers.
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英语和僧伽罗语文本语音合成器的智能方法
本文试图研究一种新的基于深度语音的文本到语音算法,这是一种基于注意的全卷积机制。语音合成的产生过程涉及到学习人类语音产生机制的统计模型,该模型有资格将某些文本作为语音发出。本文将揭示这一尝试的路径,其中有准确性和真实性的目标。平静和流利是TTS最重要的品质。本文的目的是对僧伽罗语的语篇融合进行概述,并对不同融合过程的特点进行压缩和复制。提出了一种基于神经网络的TTS合成方法,用于多语言合成器的声声映射。
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