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An information-theoretic perspective on feature selection in speaker recognition

机译:说话人识别中特征选择的信息论视角

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摘要

This letter studies feature selection in speaker recognition from an information-theoretic view. We closely tie the performance, in terms of the expected classification error probability, to the mutual information between speaker identity and features. Information theory can then help us to make qualitative statements about feature selection and performance. We study various common features used for speaker recognition, such as mel-warped cepstrum coefficients and various parameterizations of linear prediction coefficients. The theory and experiments give valuable insights in feature selection and performance of speaker-recognition applications.
机译:这封信从信息论的角度研究说话人识别中的特征选择。根据预期的分类错误概率,我们将性能与说话人身份和功能之间的相互信息紧密联系在一起。信息论可以帮助我们对特征选择和性能做出定性陈述。我们研究了用于说话人识别的各种常用功能,例如,翘曲的倒谱系数和线性预测系数的各种参数化。该理论和实验为说话人识别应用程序的功能选择和性能提供了宝贵的见解。

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