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Evaluation of time domain features for voiced/non-voiced classification of speech

机译:评估时域特征的浊音/非浊音分类

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In this paper, we have performed an evaluation of several time domain features for voiced/non-voiced classification of speech signal. We have chosen in a seamless way three features: autocorrelation function (ACF), average magnitude difference function (AMDF) and weighted ACF (WACF) to form three different classifiers. Experimental results were conducted on TIMIT database in clean and noisy environments. The white noise extracted from the NOISEX92 database has been incorporated to validate the developed classifiers. We have established an overall ranking of these classifiers based on the average value of the percentage of classification accuracy (Pc).
机译:在本文中,我们对语音信号的浊音/非浊音分类进行了几个时域特征进行了评估。我们已以无缝方式选择三个特征:自相关函数(ACF),平均幅度差函数(AMDF)和加权ACF(WACF)形成三种不同的分类器。实验结果是在清洁和嘈杂环境中的速度数据库进行。已纳入诊断X92数据库中提取的白噪声以验证开发的分类器。我们根据分类准确率(PC)百分比的平均值建立了整体排名。

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