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Glottal parameter estimation by wavelet transform for voice biometry

机译:用语音生物法小波变换的光泽参数估计

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Voice biometry is classically based on the parameterization and patterning of speech features mainly. The present approach is based on the characterization of phonation features instead (glottal features). The intention is to reduce intra-speaker variability due to the ‘text’. Through the study of larynx biomechanics it may be seen that the glottal correlates constitute a family of 2-nd order gaussian wavelets. The methodology relies in the extraction of glottal correlates (the glottal source) which are parameterized using wavelet techniques. Classification and pattern matching was carried out using Gaussian Mixture Models. Data of speakers from a balanced database and NIST SRE HASR2 were used in verification experiments. Preliminary results are given and discussed.
机译:语音生物学基于主要的参数化和主要的语音功能。本方法基于声音特征的表征(名称的特征)。由于“文本”,目的是降低扬声器内变异性。通过对喉生物力学的研究,可以看出,引物相关性构成了一个2-ND阶层高斯小波的家庭。该方法依赖于使用小波技术进行参数化的引物相关(光源源)的提取。使用高斯混合模型进行分类和模式匹配。来自平衡数据库和NIST SRE HASR2的扬声器数据用于验证实验。给出并讨论了初步结果。

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