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Spectral Stability Feature Based Novel Method for Discriminating Speech and Laughter
基于谱稳定性特征的语音与笑声区分新方法

Keywords: Spontaneous speech recognition,Speech laugh discrimination,Spectral stability,Speech events
自然口语语音识别
,语音笑声区分,谱稳定性,语音事件,定性特征,声区,方法,Speech,Method,Novel,Based,Feature,能力,正确率,参数区,情况,非特定人,结果,实验条件,性能,基音频率,感知线性预测,频率倒谱系数,比较

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Abstract:

This paper proposes a novel method which uses spectral stability as feature parameter to discriminate speech and laugh. It is found that the spectral stability of speech is obviously smaller than that of laugh, which indicates that the spectral stability can be used as a feature parameter to discriminate speech and laugh. The performance of discriminating speech and laugh by using Spectral Stability (SS), Mel-Frequency Cepstrum Coefficients (MFCC), Perceptual Linear Prediction (PLP) and pitch, are compared to each other in the same experiment conditions. The experiment results show that the accuracy are respectively 90.74% and 73.63% by using spectral stability as feature parameter to discriminate speech and laugh in the speaker-dependent and speaker-independent conditions, and the discrimination power of spectral stability is superior to the counterparts of other feature parameters.

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