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Method for forming an acoustic model using the maximum likelihood criterion, data for training and system to form an acoustic model.

机译:使用最大似然准则形成声学模型的方法,用于训练的数据以及形成声学模型的系统。

摘要

A system and method are presented for selectively biased linear discriminant analysis in automatic speech recognition systems. Linear Discriminant Analysis (LDA) may be used to improve the discrimination between the hidden Markov model (HMM) tied-states in the acoustic feature space. The between-class and within-class covariance matrices may be biased based on the observed recognition errors of the tied-states, such as shared HMM states of the context dependent tri-phone acoustic model. The recognition errors may be obtained from a trained maximum-likelihood acoustic model utilizing the tied-states which may then be used as classes in the analysis.
机译:提出了一种用于自动语音识别系统中的选择性偏置线性判别分析的系统和方法。线性判别分析(LDA)可用于改善声学特征空间中隐马尔可夫模型(HMM)束缚态之间的区别。可以基于观察到的束缚状态的识别误差来对类间和类内协方差矩阵进行偏倚,例如依赖于上下文的三电话声学模型的共享HMM状态。可以使用束缚态从训练的最大似然声模型中获得识别错误,然后将其用作分析中的类。

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