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Word boundary detection through frame classification using bispectral analysis

机译:使用双谱分析通过帧分类进行单词边界检测

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This paper presents a word boundary detection technique based on frame classification using the nonlinear characteristics of speech. Bispectral analysis was used to classify speech frames into voiced, unvoiced and noise segments. To improve classification accuracy, bispectral features were combined with other features such as short time energy, zero-crossing rate, autocorrelation and high-to-low frequency ratio. Experimental results indicate that classification error decreases when bispectrum is combined with other features. Thus bispectral features can be used as supplementary to augment simple time domain features for demarcating word boundaries in speech. Validation of results was carried out by manual verification.
机译:本文提出了一种利用语音非线性特性的基于帧分类的词边界检测技术。使用双谱分析将语音帧分为有声,无声和噪声段。为了提高分类精度,将双谱特征与其他特征(例如短时能量,过零率,自相关和高/低频比)组合在一起。实验结果表明,当双谱与其他特征结合使用时,分类误差减小。因此,双谱特征可以用作补充,以扩展简单的时域特征,以划分语音中的单词边界。通过人工验证进行结果验证。

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