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Discrimination Capability of Prosodic and Spectral Features for Emotional Speech Recognition

机译:韵律和频谱特征对语音识别的辨别能力

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摘要

The paper addresses the research question of automatic emotional speech recognition for Serbian. It integrates two research issues: (i) selection of an appropriate feature set, and (ii) investigation of different classification techniques. The paper reports a set of experiments with three feature sets: (i) the prosodic feature set, (ii) the spectral feature set, and (iii) the set of both spectral and prosodic features. The linear Bayes, the perceptron rule and the kNN classifier were considered in all three experiments. The experimental results show that the highest recognition accuracy of 91.5% was obtained with the third feature set using the linear Bayes classifier.
机译:该文解决了塞尔维亚人自动语音识别的研究问题。它整合了两个研究问题:(i)选择合适的特征集,以及(ii)研究不同的分类技术。该论文报告了一组具有三个特征集的实验:(i)韵律特征集,(ii)光谱特征集和(iii)光谱特征和韵律特征集。在所有三个实验中都考虑了线性贝叶斯,感知器规则和kNN分类器。实验结果表明,使用线性贝叶斯分类器的第三个特征集获得了最高的识别精度,为91.5%。

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