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Model Adaptation Algorithm Using Vector Taylor Series
基于矢量泰勒级数的模型自适应算法

Keywords: Speech recognition,Model adaptation,Vector Taylor series,Hidden Markov model
语音识别
,模型自适应,矢量泰勒级数,隐马尔可夫模型

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Abstract:

In actual environments the performance of speech recognition system may be degraded significantly because of the mismatch between the training and testing conditions. Model adaptation is an efficient approach that could reduce this mismatch, which adapts model parameters to new conditions by some adaptation data. In this paper, a new model adaptation using vector Taylor series is presented, which adapts the mean vector and covariance matrix of hidden Markov model. The experimental results show that the proposed algorithm is more effective than MLLR and the feature compensation algorithm based on vector Taylor series in various environments, especially in low signal-to-noise ratio environments.

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