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A theoretically consistent method for minimum mean-square error estimation of mel-frequency cepstral features

机译:一种理论上一致的熔融频率谱特征的最小平均误差估计方法

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We propose a method for minimum mean-square error (MMSE) estimation of mel-frequency cepstral features for noise robust automatic speech recognition (ASR). The method is based on a minimum number of well-established statistical assumptions; no assumptions are made which are inconsistent with others. The strength of the proposed method is that it allows MMSE estimation of mel-frequency cepstral coefficients (MFCC's), cepstral mean-subtracted MFCC's (CMS-MFCC's), velocity, and acceleration coefficients. Furthermore, the method is easily modified to take into account other compressive non-linearities than the logarithmic which is usually used for MFCC computation. The proposed method shows estimation performance which is identical to or better than state-of-the-art methods. It further shows comparable ASR performance, where the advantage of being able to use mel-frequency speech features based on a power non-linearity rather than a logarithmic is demonstrated.
机译:我们提出了一种用于最小平均误差(MMSE)估计的方法,用于噪声鲁棒自动语音识别(ASR)。 该方法基于最小数量的良好良好的统计假设; 没有假设是与他人不一致的假设。 所提出的方法的强度是它允许MMSE估计MEL频率谱系数(MFCC),谱意味着的MFCC(CMS-MFCC),速度和加速度系数。 此外,该方法易于修改以考虑除了通常用于MFCC计算的对数的其他压缩非线性。 所提出的方法显示了与最先进的方法相同或更好的估计性能。 它进一步示出了可比的ASR性能,其中能够证明能够使用基于功率非线性而不是对数的熔体频率语音特征的优点。

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