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Missing-feature approaches in speech recognition

机译:语音识别中缺少特征的方法

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摘要

In this article we have reviewed a wide variety of techniques based on the identification of missing spectral features that have proved effective in reducing the error rates of automatic speech recognition systems. These approaches have been conspicuously effective in ameliorating the effects of transient maskers such as impulsive noise or background music. We described two broad classes of missing feature algorithms: feature-vector imputation algorithms (which restore unreliable components of incoming feature vectors) and classifier-modification algorithms (which dynamically reconfigure the classifier itself to cope with the effects of unreliable feature components). We reviewed the mathematics of four major missing feature techniques: the feature-imputation techniques of cluster-based reconstruction and covariance-based reconstruction, and the classifier-modification methods of class-conditional imputation and marginalization. We also discussed the ways in which the common feature extraction procedures of cepstral analysis, temporal-difference features, and mean subtraction can be handled by speech recognition systems that make use of missing feature techniques. We concluded with a discussion of a small number of selected experimental results. These results confirm the effectiveness of all types of missing feature approaches discussed in ameliorating the effects of both stationary and transient noise, as well as the particular effectiveness of both soft masks and fragment decoding.
机译:在本文中,我们基于识别丢失的频谱特征,回顾了各种各样的技术,这些技术已被证明可以有效地减少自动语音识别系统的错误率。这些方法在改善瞬态掩蔽器(如脉冲噪声或背景音乐)的影响方面非常有效。我们描述了两大类缺失的特征算法:特征向量插补算法(用于还原传入特征向量的不可靠分量)和分类器修改算法(可动态重新配置分类器本身,以应对不可靠的特征分量的影响)。我们回顾了四种主要缺失特征技术的数学原理:基于聚类的重构和基于协方差的重构的特征输入技术,以及基于类条件的归类和边缘化的分类器修改方法。我们还讨论了通过使用缺失特征技术的语音识别系统来处理倒谱分析,时差特征和均值减法的常见特征提取过程的方法。最后,我们讨论了一些选定的实验结果。这些结果证实了所有类型的缺失特征方法在改善平稳噪声和瞬态噪声的影响以及软掩膜和片段解码的特殊有效性方面均有效。

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