基于基音同步分析方法和Fisher准则的说话人识别

Yumin Zeng, Huayu Wu, Rongchun Gao
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引用次数: 4

摘要

提出了一种与文本无关的说话人识别系统。在该系统中,基于基音同步分析的方法,从分段语音中提取5帧范围内的12阶感知线性预测倒谱及其δ系数。使用Fisher比率评价语音特征的有效性,并选择原25维特征向量的部分维数组成新的13维特征向量。采用高斯混合模型对扬声器进行建模。实验结果表明,该系统具有良好的性能,其识别精度明显优于其他基于13维特征的系统,略优于或与25维特征系统相当,但算法复杂度远低于25维特征系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pitch Synchronous Analysis Method and Fisher Criterion Based Speaker Identification
A novel text independent speaker identification system is proposed. In the proposed system, the 12-order perceptual linear predictive cepstrum and their delta coefficients in the span of five frames are extracted from segmented speech based on the method of pitch synchronous analysis. The Fisher ratio is used to evaluate the effectiveness of speech feature and select the part dimensions of the original 25-dimensional feature vector to form the new 13-dimensional feature vector. The Gaussian mixture model is applied to model the speakers. The experimental results show that the proposed system gives very good performances, which the identification accuracy is significantly better than that of the other 13-dimensional feature based systems and is a little bit better than or just the same as the 25-dimensional feature based system, but the algorithm complexity is much less than that of the 25-dimensional features based system.
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