首页> 外文会议>European Signal Processing Conference(EUSIPCO 2004) vol.2; 20040906-10; Vienna(AT) >DIRECT TIME DOMAIN FUNDAMENTAL FREQUENCY ESTIMATION OF SPEECH IN NOISY CONDITIONS
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DIRECT TIME DOMAIN FUNDAMENTAL FREQUENCY ESTIMATION OF SPEECH IN NOISY CONDITIONS

机译:嘈杂条件下语音的直接时域基本频率估计

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摘要

A new algorithm of direct time domain fundamental frequency estimation (DFE) and voiced/unvoiced (V/UV) classification of speech signal is presented in this paper. The DFE algorithm consists of spectral shaping, detection of significant extremes based on adaptive thresholding, and actual frequency estimation under several truth criteria. We propose a majority criterion for V/UV classification based on the detected frequencies consistency evaluation. Performance of the algorithm is tested on the Speecon database and compared to the Praat modified autocorrelation algorithm. In comparison to the Praat, the results indicate better properties of the DFE for clean speech and speech corrupted by additive noise to SNR about 10 dB. For lower SNR, sensitivity of the DFE to the speech component decreases rapidly while Praat fails to differentiate noise and unvoiced parts of speech from voiced parts.
机译:本文提出了一种新的直接时域基频估计(DFE)和语音信号清浊(V / UV)分类算法。 DFE算法包括频谱整形,基于自适应阈值的重要极端检测以及在多个真实标准下的实际频率估计。我们提出了基于检测到的频率一致性评估的V / UV分类的多数标准。该算法的性能在Speecon数据库上进行了测试,并与Praat修改后的自相关算法进行了比较。与Praat相比,结果表明DFE具有更好的纯净语音特性,并且由于SNR约10 dB的附加噪声而损坏了语音。对于较低的SNR,DFE对语音成分的敏感度会迅速降低,而Praat则无法区分语音中的噪声和清音部分。

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