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Speech enhancement and features compensation algorithms for continuous speech recognition

机译:语音增强和特征补偿算法,用于连续语音识别

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The degradation of the speech signal due to adverse conditions generates low accuracy rates in speech recognition systems. The authors propose mixing two methods: pre-extraction of features for speech enhancement and post-extraction of features for features compensation. According to their main focus, they are fundamentally oriented to minimize the misfit caused by noise insertion in the speech signal. These methods will be applied before and after the extraction of features, respectively, therefore allowing the best possible estimation of the clear signal from its degraded version.
机译:由于不利条件而导致的语音信号降级会在语音识别系统中产生较低的准确率。作者提出了两种混合方法:用于语音增强的特征提取前和用于特征补偿的特征提取后。根据它们的主要关注点,它们的基本定位是将语音信号中的噪声插入所引起的失配降至最低。这些方法将分别在特征提取之前和之后应用,因此可以从其降级版本中对清晰信号进行最佳估计。

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