基于三维卷积神经网络的印尼语元音音素唇动识别

Maxalmina, Satria Kahfi, Kurniawan Nur Ramadhani, A. Arifianto
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引用次数: 1

摘要

唇动识别是一种解释视觉数据的技术,主要集中在嘴部区域,旨在识别唇动。唇动识别的发展有望用于开发与聋人的交流工具,并实现语音到文本的视觉自动化过程。在印尼语中,元音音素的存在是产生声音的必要条件,印尼语中的单词和句子才能形成。本文提出了一个可以识别印尼语元音音素(/a/, /i/, /u/, /e/和/o/)的唇形模型。我们提出了一个使用三维卷积神经网络的模型。本文将数据调整为112x56像素分辨率,然后进行数据增强,将数据水平反转,并对数据进行模糊处理。实验结果表明,基于唇动的元音音素识别模型准确率最高,达到84%。
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Lip Motion Recognition for Indonesian Vowel Phonemes Using 3D Convolutional Neural Networks
Lip motion recognition is a technique for interpreting visual data that focuses on the mouth area and aims to recognize lip movement. The development of lip motion recognition is expected to be used to develop communication tools with deaf people and to automate the speech-to-text process visually. In the Indonesian language, the existence of vowel phonemes is needed to produce sounds so that words and sentences in the Indonesian language can be formed. This paper proposes a model that can recognize Indonesian vowel phonemes (/a/, /i/, /u/, /e/, and /o/) in lip movements. We proposed a model that uses 3D Convolutional Neural Networks. The data in this paper were processed by resizing into 112x56 pixel resolution then, proceed to the data augmentation by reversing the data horizontally and add blur to the data. The results of the testing of the vowel phoneme recognition model on lip motion show the highest accuracy rate of 84%.
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