A new linear predictive method for spectral estimation of voiced speech

P. Alku, S. Varho
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引用次数: 3

Abstract

A new linear predictive method for analysis of voiced speech is presented. The new technique, Separated Linear Prediction (SLP), is based on predicting sample x(n) from its previous samples as in conventional Linear Prediction (LP). SLP, when compared to conventional LP-analysis, separates p+1 previous samples into two groups: (a) x(n-1) and (b) x(n-1-i), 1/spl les/i/spl les/p. Sample x(n-1) is treated differently since it most likely has the highest correlation with sample x(n). By using linear extrapolation between x(n-1) and each of the samples in group (b) a new prediction model is formulated. By minimizing the square of the prediction error an optimal SLP-predictor is derived. When analyzing voiced speech it shown that SLP yields more accurate higher formants in comparison to conventional LP.
一种新的浊音谱估计线性预测方法
提出了一种新的用于浊音分析的线性预测方法。新技术,分离线性预测(SLP),是基于预测样本x(n)从其先前的样本在传统的线性预测(LP)。与传统的lp分析相比,SLP将p+1个先前的样本分为两组:(a) x(n-1)和(b) x(n-1-i), 1/spl les/i/spl les/p。样本x(n-1)被区别对待,因为它很可能与样本x(n)具有最高的相关性。通过x(n-1)与组(b)中每个样本之间的线性外推,建立了一个新的预测模型。通过最小化预测误差的平方,得到了最优的slp预测器。在分析语音语音时,结果表明,与传统LP相比,SLP能产生更准确的高共振峰。
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