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首页> 外文期刊>IEEE Transactions on Speech and Audio Proceessing >Speaker verification in noise using a stochastic version of theweighted Viterbi algorithm
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Speaker verification in noise using a stochastic version of theweighted Viterbi algorithm

机译:使用随机版本的加权维特比算法对噪声中的说话人进行验证

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摘要

This paper proposes the replacement of the ordinary output probability with its expected value if the addition of noise is modeled as a stochastic process, which in turn is merged with the hidden Markov model (HMM) in the Viterbi algorithm. This new output probability is analytically derived for the generic case of a mixture of Gaussians and can be seen as the definition of a stochastic version of the weighted Viterbi algorithm. Moreover, an analytical expression to estimate the uncertainty in noise canceling is also presented. The method is applied in combination with spectral subtraction to improve the robustness to additive noise of a text-dependent speaker verification system. Reductions as high as 30% or 40% in the error rates and improvements of 50% in the stability of the decision thresholds are reported
机译:如果将随机噪声建模为随机过程,则本文将普通输出概率替换为其期望值,然后将其与Viterbi算法中的隐马尔可夫模型(HMM)合并。这种新的输出概率是针对混合高斯的一般情况进行分析得出的,可以看作是加权维特比算法的随机版本的定义。此外,还提出了一种估计噪声消除不确定性的解析表达式。该方法与频谱减法结合使用,以提高对依赖文本的说话者验证系统的加性噪声​​的鲁棒性。据报告,错误率降低高达30%或40%,决策阈值的稳定性提高了50%

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