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Robust speech recognition using singular value decomposition based speech enhancement

机译:基于奇异值分解的语音增强的强大语音识别

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Speech recognition systems work reasonably well in laboratory conditions, but their performance deteriorates drastically when they are deployed in practical situations where the speech is corrupted by additive noise. One way to improve the performance of a speech recognition system in the presence of noise, is to enhance the speech prior to its recognition. Two singular value decomposition based techniques have been proposed for speech enhancement. In these techniques, singular value decomposition has been applied to an over-determined, over-extended data matrix formed from the noisy speech signal. A noise-free, low rank approximation was obtained by retaining a specific number of singular values. This technique was applied as a preprocessor for recognising speech in the presence of noise. It was found to improve the recognition performance significantly for signal-to-noise ratios less than 15 dB.
机译:语音识别系统在实验室条件下合理地工作,但它们的性能在讲话损坏的实际情况下部署时,它们的性能急剧恶化。在存在噪声存在下提高语音识别系统性能的一种方法是在识别之前增强语音。已经提出了两种奇异值分解的技术进行语音增强。在这些技术中,奇异值分解已经应用于由噪声语音信号形成的过判,过扩展的数据矩阵。通过保持特定数量的奇异值来获得无噪声的低秩近似。该技术被应用为预处理器,用于识别出噪声存在的语音。发现它显着提高识别性能,对于低于15 dB的信号 - 噪声比率。

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