基于MFCC和DWT的语音情感识别在安防系统中的应用

S. T. Saste, S. Jagdale
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引用次数: 38

摘要

语音情感识别是近年来人机交互研究的热点之一。有许多不同的研究人员用不同的系统研究从语音中识别情感。本文尝试从语言独立的语音中进行情感识别。使用情感语音样本库进行特征提取。对于特征提取,使用了MFCC和DWT这两种不同的算法。对于愤怒、快乐、恐惧、中性等不同情绪的分类,采用SVM分类器进行分类。分类是基于两种算法融合形成的特征向量。将此分类情感应用于ATM安全系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Emotion recognition from speech using MFCC and DWT for security system
In recent years the emotion recognition from speech is area of more interest in human computer interaction. There are many different researchers which worked on emotion recognition from speech with different systems. This paper attempts emotion recognition from speech which is language independent. The emotional speech samples database is used for feature extraction. For feature extraction MFCC and DWT these two different algorithms are used. For classification of different emotions like angry, happy, scared and neutral state SVM classifier is used. The classification is based on the feature vector formed by fusion of two algorithms. This classified emotion is used for ATM security system.
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