基于情感的隐马尔可夫模型建立印度尼西亚viseme序列

E. Setyati, Oki Susandono, Lukman Zaman, Y. Pranoto, S. Sumpeno, M. Purnomo
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引用次数: 3

摘要

每种语言都有不同的特点,其中之一就是如何发音。伴随着情绪表达的发音越来越呈现出不同的特点。本研究提出建立受情绪表达影响的自然印尼语序。该系统将印尼语句子的文本输入转换成受情感影响的印尼语语素序列。通过建立印尼语视觉模型,制作了嘴型和嘴唇运动的动画,以补充自然语音的可视化。采用的方法是利用统计方法,通过Viterbi算法建立隐马尔可夫模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Establishment of Indonesian viseme sequences using hidden Markov model based on affection
Every language has different characteristics, one of which is how to pronounce the language. Pronunciation accompanied by emotional expression are increasingly making different characteristics. This research proposes the establishment of natural Indonesian viseme order influenced by the expression of emotion. This system converts the text input of an Indonesian sentence into a sequence Indonesian viseme to be influenced by the affection. Animation of mouth shape and lip movements are made to complement the visualization of natural speech, which is resulted from the establishment Indonesian viseme model. The method used in the natural Indonesian viseme sequence, is using statistical approach through Viterbi algorithm Hidden Markov Model.
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