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Language-Independent Age Estimation from Speech Using Phonological and Phonemic Features

机译:使用语音和音素特征的语言 - 独立年龄估计

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Language-independent and alignment-free phonological and phonemic features were applied for automatic age estimation based on voice and speech properties. 110 persons (average: 75.7 years) read the German version of the text "The North Wind and the Sun". For comparison with the automatic approach, five listeners estimated the speakers' age perceptually. Support Vector Regression and feature selection were used to compute the best model of aging. This model was found to use the following features: (a) the percentage of voiced frames, (b) eight phonological features, representing vowel height, nasality in consonants, turbulence, and position of the lips, and finally, (c) seven phonemic features. The latter features might be relevant due to altered articulation because of dentures. The mean absolute error between computed and chronological age was 5.2 years (RMSE: 7.0). It was 7.7 years (RMSE: 9.6) for an optimistic trivial estimator and 10.5 years (RMSE: 11.9) for the average listener.
机译:基于语音和语音属性,应用了独立于独立的和一个对准语音和音素特征。 110人(平均:75.7岁)阅读德国版“北风和太阳”的文本。与自动方法相比,五个听觉人数估计了扬声器的年龄。支持向量回归和特征选择来计算老化的最佳模型。发现该模型使用以下特征:(a)浊音框架,(b)八个语音特征,代表元音高度,辅音,湍流和嘴唇的位置,最后,(c)七个音素特征。由于假牙因伪造而改变了后一种特征可能是相关的。计算和时间年龄之间的平均绝对误差为5.2年(RMSE:7.0)。它为乐观的微不足道估算器和10.5年(RMSE:11.9),为77年(RMSE:9.6)。

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