首页> 外文会议>International conference on signal processing;ICSP'96 >REDUCING THE ENVIRONMENTAL SENSITIVITY OF CEPSTRAL FEATURES FOR SPEAKER RECOGNITION
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REDUCING THE ENVIRONMENTAL SENSITIVITY OF CEPSTRAL FEATURES FOR SPEAKER RECOGNITION

机译:降低说话人识别的倒谱特征的环境敏感性

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This paper investigates the robustness of cepstral based features with respect to additive noise, and details two methods of increasing the robustness with minimal need for a-priori knowledge of the noise statistics.The first approach is a form of noise masking which adds a fisted offset to the linear spectral estimate.The second is a form of sub-band filtering, again in the linear domain, which estimates the dynamic content of the speech using Fourier transforms. This avoids negative values normally inherent in such filtering and which presents difficulties in deriving log estimates.Both methods are shown to provide useful levels of robustness to additive noise, for example, speaker identification error rates in SNR mis-matched conditions of 15 dB are reduced from 60.5% for standard mel cepstra to 13.8% and 24.1% for the two approaches respectively, a relative reduction in error of 77% and 60.1%.
机译:本文研究了基于倒频谱的特征相对于加性噪声的鲁棒性,并详细介绍了两种在不需先验噪声统计知识的情况下提高鲁棒性的方法。 第一种方法是噪声掩蔽的一种形式,它在线性频谱估计中增加了第一偏移。 第二种是子带滤波的形式,也是在线性域中,它使用傅立叶变换来估计语音的动态内容。这避免了通常在这种滤波中固有的负值,并且在推导对数估计时会带来困难。 两种方法都显示出对附加噪声有用的鲁棒性水平,例如,SNR不匹配条件下15 dB的说话者识别错误率从标准mel cepstra的60.5%降低到两种方法的13.8%和24.1% ,相对误差减少了77%和60.1%。

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