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MFCC and SVM Based Recognition of Chinese Vowels

机译:MFCC和基于SVM的中国元音识别

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摘要

The recognition of vowels in Chinese speech is very important for Chinese speech recognition and understanding. However, it is rather difficult and there has been no efficient method to solve it yet. In this paper, we propose a new approach to the recognition of Chinese vowels via the support vector machine (SVM) with the Mel-Frequency Cepstral Coefficients (MFCCs) as the vowel's features. It is shown by the experiments that this method can reach a high recognition accuracy on the given vowels database and outperform the SVM with the Linear Prediction Coding Cepstral (LPCC) coefficients as the vowel's features.
机译:对中国言论的元音的认可对于中国语音识别和理解非常重要。但是,它是相当困难的,并且还没有有效的方法来解决它。在本文中,我们提出了一种新的方法来通过支持向量机(SVM)具有熔融频率谱系数(MFCC)作为元音的特征来识别中国元音。通过实验所示,该方法可以在给定元音数据库上达到高识别精度,并且与线性预测编码谱(LPCC)系数越优于SVM,作为元音的特征。

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